Refine
Year of publication
Document Type
- Doctoral Thesis (202)
- Journal article (156)
- Other (1)
- Report (1)
Keywords
- Ackerschmalwand (39)
- Arabidopsis thaliana (28)
- Abscisinsäure (14)
- Pflanzen (12)
- Arabidopsis (10)
- Mais (10)
- Schließzelle (10)
- Kutikula (9)
- Pseudomonas syringae (9)
- Schmalwand <Arabidopsis> (9)
- Signaltransduktion (9)
- Calcium (8)
- Oxylipine (8)
- Wurzel (8)
- gene expression (8)
- Genexpression (7)
- Jasmonate (7)
- Kaliumkanal (7)
- Tabak (7)
- optogenetics (7)
- ABA (6)
- Bakterien (6)
- Biologie (6)
- Elektrophysiologie (6)
- Gerste (6)
- Meeresschwämme (6)
- Molekularbiologie (6)
- Tomate (6)
- Vakuole (6)
- actinomycetes (6)
- arabidopsis thaliana (6)
- guard cell (6)
- stomata (6)
- Abwehrreaktion (5)
- Anionentranslokator (5)
- Ionenkanal (5)
- Jasmonsäure (5)
- Knochen-Morphogenese-Proteine (5)
- Optogenetics (5)
- Phytoprostane (5)
- ROS (5)
- SLAC1 (5)
- Spaltöffnung (5)
- Transkriptionsfaktor (5)
- guard cells (5)
- jasmonates (5)
- marine sponges (5)
- membrane potential (5)
- metabolomics (5)
- salt stress (5)
- sponges (5)
- Agrobacterium tumefaciens (4)
- Aquaporin (4)
- Drosophila melanogaster (4)
- Genregulation (4)
- Glatter Krallenfrosch (4)
- Invertase (4)
- Kutikularwachs (4)
- Nitratreduktase (4)
- Optogenetik (4)
- Plasmamembran (4)
- Saccharose (4)
- Salzstress (4)
- SnRK1 (4)
- Stofftransport <Biologie> (4)
- Venusfliegenfalle (4)
- Zea mays (4)
- abscisic acid (4)
- calcium (4)
- marine sponge (4)
- phytoprostanes (4)
- plant cuticle (4)
- potassium (4)
- signal transduction (4)
- tomato (4)
- wax (4)
- Abwehr (3)
- Adjuvans (3)
- Anionenkanal (3)
- Antikörper (3)
- BMP (3)
- Bacteria (3)
- Channelrhodopsin-2 (3)
- Chemische Ökologie (3)
- Cyanobacteria (3)
- Dionaea muscipula (3)
- Inhibitor (3)
- Lycopersicon esculentum (3)
- Membranpotential (3)
- Mensch (3)
- Mesophyll (3)
- Nicotiana tabacum (3)
- OST1 (3)
- Oxidativer Stress (3)
- Pappel (3)
- Pflanzenfressende Insekten (3)
- Pseudomonas (3)
- Regulation (3)
- Resistenz (3)
- Rezeptor (3)
- Schließzellen (3)
- Schwämme (3)
- Sekundärmetabolit (3)
- Stickstoffmonoxid (3)
- Stomata (3)
- Stress (3)
- Suberin (3)
- Symbiose (3)
- TRAF2 (3)
- TWEAK (3)
- Taufliege (3)
- Transforming Growth Factor (3)
- Trockenstress (3)
- Wachs (3)
- abiotic stress (3)
- anion channel (3)
- aquaporin (3)
- bZIP (3)
- biology (3)
- crystal structure (3)
- detoxification (3)
- photosynthesis (3)
- plants (3)
- pollen tube (3)
- protein purification (3)
- salt (3)
- secondary metabolites (3)
- sequence motif analysis (3)
- sodium (3)
- streptomyces (3)
- stress (3)
- sucrose (3)
- transcription factors (3)
- ALMT (2)
- Abscisic Acid (2)
- Abscisic acid (2)
- Ackerbohne (2)
- Actinomyceten (2)
- Actinomycetes (2)
- Adjuvant (2)
- Agrobacterium (2)
- Aldehyde (2)
- Apoplast (2)
- Apoptosis (2)
- Aquaporine (2)
- AtSUC4 (2)
- Biomembran (2)
- Blumeria graminis (2)
- Botanik (2)
- ChR2 (2)
- Channelrhodopsin (2)
- Cuticle (2)
- Cuticular waxes (2)
- DNA methylation (2)
- Endodermis (2)
- Epichloë (2)
- Epiphyten (2)
- Erysiphe graminis (2)
- Flavonoide (2)
- Fluoreszenzmikroskopie (2)
- Glucosetransport (2)
- Glucosinolate (2)
- Hitzestress (2)
- Induzierte Resistenz (2)
- Insekten (2)
- Interaktion (2)
- Isoprostane (2)
- Jasmonatbiosynthese (2)
- Jasmonates (2)
- K+ channels (2)
- Kalium (2)
- Licht (2)
- Lipid-Carrier-Proteine (2)
- Lipidstoffwechsel (2)
- Lipoxygenase (2)
- Lipoxygenase 6 (2)
- Lolium perenne (2)
- Lyme-Borreliose (2)
- Mehltau (2)
- Membrandomänen (2)
- Membranpotenzial (2)
- Membranproteine (2)
- Membrantransport (2)
- Metabolomics (2)
- Metagenom (2)
- Metagenomics (2)
- Microarray (2)
- NMR (2)
- NRPS (2)
- Nitrate Reductase (2)
- Oozyte (2)
- PAC (2)
- Patch-Clamp-Methode (2)
- Pathogens (2)
- Permeation (2)
- Pflanzenhormon (2)
- Pflanzenschutzmittel (2)
- Pflanzenwachstum (2)
- Pharmakokinetik (2)
- Phoenix dactylifera (2)
- Phyllosphäre (2)
- Phytohormone (2)
- Plant Protection (2)
- Plant cuticle (2)
- Pollen (2)
- Pollenschlauch (2)
- Porifera (2)
- Porin (2)
- Prostaglandin-ähnliche Verbindungen in Pflanzen (2)
- Prostaglandine (2)
- Proteinreinigung (2)
- Protonenpumpe (2)
- Protoplast (2)
- RES-Oxylipine (2)
- RS1 (2)
- Rhodopsin (2)
- Rizinus (2)
- SLAC/SLAH (2)
- Samenpflanzen (2)
- Schwamm (2)
- Sojabohne (2)
- Solanum lycopersicum (2)
- Sphingolipide (2)
- Sphingolipids (2)
- Sponges (2)
- Stomaschluss (2)
- Strahlenpilze (2)
- Streptomyces (2)
- Streptomyces axinellae (2)
- Stressreaktion (2)
- Symport (2)
- Transpiration <Pflanzen> (2)
- Transport (2)
- Ulcerative colitis (2)
- Wasserhaushalt (2)
- Wassertransport (2)
- Wurzelhalsgalle (2)
- Xylem (2)
- Zellkultur (2)
- ZmSUT1 (2)
- abscisic acid (ABA) (2)
- active ingredients (2)
- agrobacterium tumefaciens (2)
- alkaloids (2)
- anti-infective (2)
- anti-parasitic (2)
- anti-protease (2)
- anti-trypanosomal (2)
- apoptosis (2)
- aquaporins (2)
- atopic diseases (2)
- auxins (2)
- barley (2)
- bioactivity (2)
- biosynthesis (2)
- cAMP (2)
- cancer (2)
- chemical ecology (2)
- circadian rhythms (2)
- coreceptor (2)
- corn (2)
- cuticle (2)
- cysteine protease (2)
- cytotoxic (2)
- dereplication (2)
- drought stress (2)
- endophyte (2)
- epicuticular wax crystals (2)
- epikutikuläre Wachskristalle (2)
- feeding (2)
- flavonoids (2)
- fruit (2)
- fungi (2)
- gene-expression (2)
- herbivory (2)
- honeybee (2)
- hydraulic conductivity (2)
- in vitro (2)
- innate immunity (2)
- ion channel (2)
- ion channels (2)
- jasmonic acid (2)
- juvenile hormone (2)
- kidney (2)
- maize (2)
- metabolism (2)
- metabolites (2)
- metagenomics (2)
- mitochondria (2)
- model (2)
- oncogenes (2)
- optogenetic (2)
- oxylipins (2)
- pH (2)
- pharmacokinetics (2)
- phosphorylation (2)
- phyllosphere (2)
- phylogenetic analysis (2)
- physiology (2)
- plant (2)
- plant defence (2)
- plant defenses (2)
- potassium channel (2)
- programmed cell death (2)
- prostaglandin-like compounds in plants (2)
- protease inhibition (2)
- protein domains (2)
- protein kinase (2)
- proton pump (2)
- reactive electrophilic species (2)
- reaktive elektrophile Spezies (2)
- receptor (2)
- rhodopsin (2)
- root (2)
- root growth (2)
- roots (2)
- soil (2)
- soybean (2)
- tetromycin (2)
- thermotolerance (2)
- toxicity (2)
- transcription factor (2)
- transpiration (2)
- transport (2)
- triglycerides (2)
- vacuole (2)
- vertical transmission (2)
- voltage clamp (2)
- vulnerability curve (2)
- wood anatomy (2)
- (Signal transduction pathways) (1)
- - (1)
- . (1)
- 12-oxo-phytodienoic acid (1)
- 14-3-3 (1)
- 14-3-3 . calcium (1)
- 14-3-3s (1)
- 16S metabarcoding (1)
- 18D1 (1)
- 9-HOT (1)
- 9-Hydroxyoktadekatriensäure (1)
- A-D (1)
- A. thaliana (1)
- ABA receptors (1)
- ABA-GE (1)
- ABA-Konjugate (1)
- ABA-conjugates (1)
- ACC deaminase (1)
- ACL (1)
- ADHD (1)
- AIDS (1)
- AKT1 (1)
- AKT1-like (1)
- APOPLAST (1)
- ATR-FTIR (1)
- AZI1 (1)
- Abschirmung (1)
- Abwehrmechanismen (1)
- Acer platanoides (1)
- Acromesomelic dysplasias (1)
- Actinokineospora (1)
- Activin (1)
- Adapterproteine (1)
- Adenylatcyclase (1)
- Advanced Therapy Medicinal Product (1)
- Agonist (1)
- Aktionspotenzial (1)
- Aktivierungsenergie (1)
- Aktivsubstanzen (1)
- Aliphaten (1)
- Aliphatics (1)
- Alkekengi (1)
- Allendorf-Kapelle (1)
- Allendorf-chapell (1)
- Allendorfkapelle (1)
- Allerg (1)
- Allergie (1)
- Allorhizobium vitis (1)
- Alpha therapy (1)
- Alpha-Glucosidase (1)
- Altern (1)
- Alzheimer's disease (1)
- AmGr1 (1)
- AmGr2 (1)
- AmGr3 (1)
- Ameisen (1)
- American foulbrood (1)
- Amino acids (1)
- Aminosäuren (1)
- Analoga (1)
- Anion (1)
- Anion channel (1)
- Anionen (1)
- Anionenkanäle (1)
- Anoxie (1)
- Anthropogene Störung (1)
- Anthropogener Einfluss (1)
- Antibiotikum (1)
- Antibodies (1)
- Antigen (1)
- Antigen CD23 (1)
- Antigen CD40 (1)
- Antimicrobial activities (1)
- Antimicrobial proteins (1)
- Antimikrobielle Aktivitäten (1)
- Antimikrobieller Wirkstoff (1)
- Antioxidants (1)
- Antiport (1)
- Antisense (1)
- Ants (1)
- Aplysina aerophoba (1)
- Apoptose (1)
- Arabidopside (1)
- Arabidopsides (1)
- Arbeitsteilung (1)
- Arbuscular Mycorrhiza (1)
- Arbuskuläre Mykorrhiza (1)
- Arid biomes (1)
- Artenkombination (1)
- Arzneibuch (1)
- Arzneimittel für neuartige Therapien (1)
- Arzneipflanzen (1)
- Aspergillus medium (1)
- AtERDl6 (1)
- AtTMT1/2 (1)
- AtTORF-Ex-Kollektion (1)
- AtTPC1 (1)
- AtrbohD (1)
- Autoimmune diseases (1)
- Autoimmunity (1)
- Autökologie (1)
- AuxRE (1)
- Auxin (1)
- Auxin-regulated transcription (1)
- Auxine (1)
- Available soil water capacity (1)
- Azelainsäure (1)
- Azospirillum brasilense (1)
- B cells (1)
- BETA-Diversität (1)
- BETA-Multifunktionalität (1)
- BIAcore (1)
- BLUF (1)
- BMP antagonist (1)
- BMP signaling (1)
- BMP-2 (1)
- BMPR1B (1)
- Baja California [(PNN) Mexico] (1)
- Bambi (1)
- Bauchspeicheldrüsenkrebs (1)
- Baumkrone (1)
- Baumphysiologie (1)
- Bestrahlung (1)
- Beta-1-Rezeptor (1)
- Bidirectional manipulation (1)
- Biene (1)
- Bienenwachs (1)
- Bilderzeugung (1)
- Bildgebendes Verfahren (1)
- Biochemie (1)
- Biochemische Analyse (1)
- Biodiversität (1)
- Biogenic (1)
- Bioinformatics (1)
- Bioinformatik (1)
- Biophysics (1)
- Biosensor (1)
- Biosynthese (1)
- Biosynthese-Genclustern (1)
- Biosynthesis of Jasmonates (1)
- Bioverfügbarkeit (1)
- Blatt (1)
- Blattknospen (1)
- Blattkäfer (1)
- Blaulicht (1)
- Blütenpflanzen (1)
- Bodenwasser (1)
- Bone Morphogenetic Proteins (1)
- Bone marrow transplantantation (1)
- Bone morphogenetic protein (1)
- Bone morphogenetic protein-2 (1)
- Borrelia (1)
- Brackwespen (1)
- Brain diseases (1)
- Brassica napus (1)
- Brassicaceae (1)
- Breeding system (1)
- Buche (1)
- Buchweizenkraut (1)
- Bunias orientalis (1)
- Büchold (1)
- C-elegans (1)
- CASPARY-STREIFEN (1)
- CD23 (1)
- CD27 (1)
- CD40 (1)
- CD70 (1)
- CIPK23 (1)
- CNG channel (1)
- CO2 (1)
- CO2 Reaktion (1)
- CO2 Response (1)
- CO2 gas exchange (1)
- CORONATINE INSENSITIVE 1 (1)
- CO\(_{2}\) signaling (1)
- CPK (1)
- CYR61 (1)
- Ca2+ signal (1)
- Ca2+-Signal (1)
- Ca2+-signal (1)
- Ca\(^{2+}\) indicator (1)
- Ca\(^{2+}\) signalling (1)
- Calcium Imaging (1)
- Calcium-Oszillationen (1)
- Calciumion (1)
- Calciumkanal (1)
- Camponotus rufipes (1)
- Cancer (1)
- Cancer of Pancreas (1)
- Candidate Phylum Poribacteria (1)
- Carpinus betulus (1)
- Casparian strip (1)
- Castor bean (1)
- Cation channel (1)
- Celaflor (1)
- Chain-length distribution (1)
- Channelrhodopsinen (1)
- Characterizing New Photoreceptors to Expand the Optogenetic Toolbox (1)
- Chemical Ecology (1)
- Chemiluminescence (1)
- Chemilumineszenz (1)
- Chemosensory neurons (1)
- Chirurgiegeschichte (1)
- Chlamydomonas reinhardii (1)
- Chlamydomonas reinhardtii (1)
- Chlorophyll fluorescence (1)
- Chloroplast (1)
- Chronobiologie (1)
- Chronobiology (1)
- Cirl (1)
- Cis-elements (1)
- Climate change (1)
- Climatic water balance (1)
- Complex medium (1)
- Cortex (1)
- Crown Gall (1)
- Cryptogein (1)
- Cuscuta (1)
- Cuscuta reflexa (1)
- Cuticular transpiration (1)
- Cuticular water permeabilities (1)
- Cutinase (1)
- Cvi-0 (1)
- Cyanobakterien (1)
- Cyclic electron transport (1)
- Cyclic peptides (1)
- Cyclics (1)
- Cyclo-AMP (1)
- Cyclo-GMP (1)
- Cystinknotenprotein (1)
- Cytokine (1)
- Cytokinin (1)
- Cytokinine (1)
- Cytokinins (1)
- Cytoplasma (1)
- Cytoplasmic Ca"+ (1)
- Cytotoxic T lymphocytes (1)
- DAF (1)
- DAN modulator proteins (1)
- DAN-Modulatorproteine (1)
- DC gate (1)
- DEVC (1)
- DIMBOA (1)
- DIRK method (1)
- DNA transcription (1)
- DNA-Methylierung (1)
- DNS (1)
- DRMs (1)
- Darm (1)
- Dattelpalme (1)
- Dauer formation (1)
- Deckenmalerei (1)
- Deep sequencing (1)
- Denaturierende Gradienten-Gelelektrophorese (1)
- Denaturing Gradient Gel Electrophoresis (1)
- Depolarisation (1)
- DiBAC4(3) (1)
- Diabetes (1)
- Dickkopf proteins (1)
- Differential scanning calorimetry (1)
- Differentielle Genexpression (1)
- Diffusion (1)
- Diffusion coefficient (1)
- Dionaea (1)
- Disease network (1)
- Drosophila (1)
- Drosophila melanogaster motoneuron (1)
- Drought stress (1)
- Drug discovery (1)
- Dual-PAM-100 (1)
- Dürreresistenz (1)
- Dürrestress (1)
- EF-TU (1)
- ENDODERMIS (1)
- ER-Export (1)
- ETR (1)
- Ecology (1)
- Efeu (1)
- Egypt (1)
- Einstichmessungen (1)
- Einzelzellgenomik (1)
- Embolism resistance (1)
- Endoplasmatisches Retikulum (1)
- Energy depletion (1)
- Entomology (1)
- Entzündung (1)
- Enyzme (1)
- Enzymatische Regulation (1)
- Enzymes (1)
- Eosinophiler Granulozyt (1)
- Epichloë spp. (1)
- Equisetum (1)
- Esterasen (1)
- Etablierungsstadium (1)
- Euglena gracilis (1)
- Eulen <Schmetterlinge> (1)
- European foulbrood (1)
- Evolution (1)
- Exodermis (1)
- Expansion microscopy (1)
- Expression (1)
- Extrazellulärraum (1)
- FGF signaling (1)
- FISH-CLEM (1)
- FT-IR-Spektroskopie (1)
- FTIR-Spektroskopie (1)
- FTIR-spectroscopy (1)
- FURA (1)
- Fabaceae (1)
- Factor receptor (1)
- Falle (1)
- Farne (1)
- FeS proteins (1)
- Fertilization in angiosperm (1)
- Fettsäure (1)
- Fettsäuren (1)
- Flagelline (1)
- Flash relaxation kinetics (1)
- Fluorescence mi (1)
- Fluoreszenz (1)
- Fluoreszmikroskopie (1)
- Fluorimetrie (1)
- Fn14 (1)
- Foraging behaviour (1)
- Forschungsstation Fabrikschleichach (1)
- Fortpflanzung (1)
- Fortpflanzungsmechanismen (1)
- Fraxinus excelsior (1)
- Fruchtbildung (1)
- Fruit (1)
- Fungus (1)
- Fura-2 (1)
- Furagieraktivität (1)
- G-Protein gekoppelte Rezeptor (1)
- GC-Wert (1)
- GC-value (1)
- GFP (1)
- GLR (1)
- GMP-Regeln (1)
- Gartenerde (1)
- Gaschromatographie-Massenspektrometrie (1)
- Gastrulation (1)
- Gaussia princeps Luziferase (1)
- Gefäßpflanzen (1)
- Geitonogamy (1)
- Gen shaker (1)
- Genaktivierung (1)
- Genanalyse (1)
- Genexpressionsanalysen (1)
- Genmutation (1)
- Genomics (1)
- Germination (1)
- Germination and differentiation (1)
- Gerstenkrankheit (1)
- Geschichte (1)
- Getreide (1)
- Gewebe (1)
- Glaukom (1)
- Gliederfüßer (1)
- Glucocorticosteroide (1)
- Glucose (1)
- Glucose uptake (1)
- Glucose/Saccharose Transport (1)
- Glucosetransportproteine (1)
- Glucosinolates (1)
- Glutamate (1)
- Glutamate-receptor (1)
- Glutamatrezeptor (1)
- Glutathione (1)
- Glycerin (1)
- Glykomodifizierung (1)
- Glykosylierung (1)
- Graft-versus-leukemia (1)
- Grebe dysplasia (1)
- Grenzflächenaktiver Stoff (1)
- GtACR1 (1)
- Guanylatcyclase (1)
- Guanylyl Cyclase (1)
- Guard Cell (1)
- Guard Cells (1)
- H+-atpase (1)
- HAK5-like (1)
- HIV (1)
- HIVDR (1)
- HKT transporter (1)
- HKT1 (1)
- HKT1-like (1)
- HPLC-MS (1)
- HPLC/UPLC methods (1)
- Heat stress (1)
- Hefe-Elicitor (1)
- Hegyi competition index (1)
- Heilpflanzen (1)
- Helianthus annuus (1)
- Hemiparasit (1)
- Herbicid (1)
- Herbivoren-Abwehr-Strategie (1)
- Herbivorie (1)
- Heterologe Expression (1)
- Hexokinase (1)
- High throughput screening (1)
- History of medicine (1)
- History of the medicine (1)
- Hitzeschock-Proteine (1)
- Holz (1)
- Holzbildung (1)
- Holzstrahlen (1)
- Homöostase (1)
- Honigbiene (1)
- Hordeum vulgare (1)
- Hormontransport (1)
- Human sodium iodide symporter (1)
- Hydrathülle (1)
- Hydraulic conductivity (1)
- Hydraulic plasticity (1)
- Hydraulische Leitfähigkeit (1)
- Hydroxylamin (1)
- Hyperpolarisierung (1)
- Hypoxia (1)
- Hypoxie (1)
- Hyrtios (1)
- IL-4 antagonists (1)
- IL8 (1)
- Illumina HiSeq (1)
- Immunactivation (1)
- Immunaktivierung (1)
- Immunologie (1)
- Immunolokalisation (1)
- Immunsystem (1)
- Impfstoff (1)
- In vitro (1)
- Inbreeding depression (1)
- Incompatible parasite-host interaction (1)
- Indirekte Abwehr (1)
- Indonylessigsäure <3-> (1)
- Inf-TRAP-Seq (1)
- Inflammatory bowel disease (1)
- Infliximab (1)
- Inkompatible Parasit-Wirt-Interaktion (1)
- Inoculum production (1)
- Inosite (1)
- Insects (1)
- Insekten-Pflanzen-Interaktionen (1)
- Interleukin (1)
- Interleukin 13 (1)
- Interleukin 4 (1)
- Interleukin 5 (1)
- Interleukin-4 (IL-4) (1)
- Interleukin-4 Antagonist (1)
- Invasion <Biologie> (1)
- Invasive (1)
- Invertase-Inhibitor (1)
- Invertaseinhibitor (1)
- Ionenkanäle (1)
- Ionenleitfähigkeit (1)
- Irradiation (1)
- Isoprostanes (1)
- Isothiocyanate (1)
- JA/JA-Ile transport protein JAT1 (1)
- JMT (1)
- Jaborandi (1)
- Janus kinase (1)
- Jasmonate info (1)
- Jasmonic acid (1)
- Jurkat T cells (1)
- KCO (1)
- Kaliumkanäle (1)
- Kaliumtransporter (1)
- Kannenpflanze (1)
- Kanäle (1)
- Karibisches Meer (1)
- Kationenkanal (1)
- Keimling (1)
- Keimlingsentwicklung (1)
- Keimung (1)
- Kellerassel (1)
- Kernproteine (1)
- Klappertopf (1)
- Klimawandel (1)
- Klimaänderung (1)
- Knochenhomöostase (1)
- Konidie (1)
- Krankheit (1)
- Künstliche Samenalterung (1)
- LC-MS (1)
- LCB (1)
- LC–MS/MS (1)
- LIGNIN (1)
- LMNA S143F (1)
- LRP5/6 (1)
- LRP6 (1)
- Lamin (1)
- Laminopathie (1)
- Larval development (1)
- Laser (1)
- Laser Microdissection (1)
- Laser Mikrodissektion (1)
- Lateral root development (1)
- Latrophilin (1)
- Laurdan (1)
- Leaching (1)
- Leaf (1)
- Leitfähigkeit (1)
- Lernen (1)
- LiDAR (1)
- Ligand (1)
- Ligand <Biochemie> (1)
- Ligand-Rezeptor-Interaktion (1)
- Lignin (1)
- Lipasen (1)
- Lipases (1)
- Lipid Metabolism (1)
- Lipid Transfer Protein (1)
- Lipid Transfer Proteine (1)
- Lipid polarization (1)
- Lipid-Peroxide (1)
- Lipide (1)
- Lipidomik (1)
- Lipidperoxidation (1)
- Lipids (1)
- Lipidtransferprotein (1)
- Lipidumbau (1)
- Lipophilic fluorescent dyes (1)
- Lipoprotein (1)
- Lipoxyg (1)
- Liquid (dis-) ordered phase (1)
- Luciferasen (1)
- Luftröhre (1)
- Lupeol synthase (1)
- Lupeolsynthase (1)
- Lyme disease (1)
- Lyme-Krankheit (1)
- Lymphocytes (1)
- Lymphotoxin (1)
- Lymphozyt (1)
- Lymphozyten (1)
- MAP Kinase (1)
- MAP kinase (1)
- MJE (1)
- MPK12 (1)
- MYB (1)
- MYC (1)
- Malvaviscus arboreus (1)
- Mariae Heimsuchung und Sankt Nikolaus (1)
- Mariae Himmelfahrt (1)
- Marin (1)
- Marine (1)
- Maus (1)
- Mechanisms (1)
- Medicago truncatula (1)
- Medicinal Plant (1)
- Medizingeschichte (1)
- Meerrettichkäfer (1)
- Mehrdimensionale NMR-Spektroskopie (1)
- Membran (1)
- Membrandepolarisierung (1)
- Membrane depolarisation (1)
- Membrane domains (1)
- Mesocestoides corti (1)
- Mesophyllvakuole (1)
- Metabolismus (1)
- Metabolit (1)
- Metabolomik (1)
- Metagenomomanalyse (1)
- Metapleural gland (1)
- Methyl jasmonate esterase (1)
- Methylglasmonat (1)
- Methylierung (1)
- Methyljasmonat (1)
- Methyljasmonat Esterase (1)
- Mexico [North America] (1)
- Micromonospora (1)
- Microscopy (1)
- Middle Age (1)
- Mikrobiologie (1)
- Mikrodissektion (1)
- Mikroorganismen (1)
- Mikroorganismus (1)
- Mikroskopie (1)
- Millisecond-timescale (1)
- Mitochondria (1)
- Mitochondrium (1)
- Mittelalter (1)
- Mitteleuropa (1)
- Modelle (1)
- Modifizierung (1)
- Molecular biophysics (1)
- Molecular neuroscience (1)
- Morgenländisches Zackenschötchen (1)
- Morphogenese (1)
- Mustererkennung (1)
- Mutante (1)
- Mykorrhiza (1)
- Myofibroblast differentiation (1)
- Myrosinase (1)
- NAD(P)H-dehydrogenase (1)
- NAD(P)H-plastoquinone-oxidoreductase (1)
- NADH-dehydrogenase (1)
- NADPH oxidase 2 (NOX2) (1)
- NDH-H (1)
- NDH-I (1)
- NDH-J (1)
- NDH-K (1)
- NFATc1 (1)
- NFKB (1)
- NFkB-Signalling (1)
- NHase (1)
- NMR fingerprint (1)
- NMR spectroscopy (1)
- NSG (1)
- NSG mice (1)
- NSG-UC (1)
- Nachweis (1)
- Nanoparticles (1)
- Naturstoff (1)
- Neisseria gonorrhoeae (1)
- Nekroptose (1)
- Nekrose (1)
- Nektar-Sekretion (1)
- Nektarium (1)
- Nematode Caenorhabditis-elegans (1)
- Neophyten (1)
- Neophyten <Botanik> (1)
- Nepenthes (1)
- Neurochemie (1)
- Neurologie (1)
- Neuronales visuelles System (1)
- Nicandra (1)
- Nichtwirtsresistenz (1)
- Nicotiana benthamiana (1)
- Nierenfunktion (1)
- Nitrate reductase (1)
- Nitration (1)
- Nitric Oxide (1)
- Nitric Oxide Synthase (1)
- Nitric oxide (1)
- Nitrilase (1)
- Nitrite (1)
- NpHR (1)
- NtAQP1 (1)
- Nuklearfaktor Kappa B (1)
- Nährstoffaufnahme (1)
- Nährstoffmangel (1)
- ODC (1)
- OPDA (1)
- Oberflächenplasmonresonanz (SPR) (1)
- Oberfranken (1)
- Olfr1393 (1)
- Oligomerisation (1)
- Oncogene (1)
- Oncolytic Virus (1)
- Onkogen (1)
- Onkolyse (1)
- Oozyten (1)
- Optical control (1)
- Oralsekret (1)
- Oregon Green-BAPTA (1)
- Ornithindecarboxylase (1)
- Orobanche crenata (1)
- Osmolarität (1)
- Oxidosqualene cyclase (1)
- Oxidosqualenzyklase (1)
- Oxophytodiensäure <12-> (1)
- Oxylipines (1)
- Oxylipins (1)
- O–I 1 fluorescence rise (1)
- P515 (1)
- PALM stoichiometry (1)
- PAMPS (1)
- PAR (1)
- PCD (1)
- PER (1)
- PKS (1)
- PKS I (1)
- PKS II (1)
- PLAT-Domain (1)
- PacBio sequencing (1)
- Paenibacterin (1)
- Pankreaskrebs (1)
- Parasit (1)
- Parkinson-Krankheit (1)
- Parkinsonismus (1)
- Parna´iba <Region> (1)
- Patch-Clamp (1)
- Pathogenabwehr (1)
- Pathogene Bakterien (1)
- Pathogener Mikroorganismus (1)
- Pathogeninteraktion (1)
- Pathologie (1)
- Pathology (1)
- Pax-5 (1)
- Performance (1)
- Permeability (1)
- Pesticide (1)
- Pestizide (1)
- Pflanze-Pathogen-Interaktion (1)
- Pflanzen-Insekten Interaktionen (1)
- Pflanzendarstellung (1)
- Pflanzengewebe (1)
- Pflanzengröße (1)
- Pflanzenhormone (1)
- Pflanzenhydraulik (1)
- Pflanzeninhaltsstoff (1)
- Pflanzenmalerei (1)
- Pflanzenphysiologie (1)
- Pflanzenwachs (1)
- Pflanzenzelle (1)
- Pflanzenzellkulturen (1)
- Pflanzenökologie (1)
- Pharmakotherapie (1)
- Pharmazie (1)
- Phenole (1)
- Pheromone (1)
- Phloem (1)
- Phophorylierung (1)
- Photoreceptor (1)
- Photorezeptor (1)
- Photosynthese (1)
- Photosystem I (1)
- Phototropine (1)
- Phototropins (1)
- Phyllosphere (1)
- Physalis (1)
- Physiologie (1)
- Physiologische Chemie (1)
- Phytoalexin (1)
- Phytoalexine (1)
- Phytoalexins (1)
- Phytochemie (1)
- Phytohormon (1)
- Phytopathogene Pilze (1)
- Phytopathologie (1)
- Phytophthora (1)
- Phytoprostanes (1)
- Phytosphingosine (1)
- Phytosterine (1)
- Pichia pastoris (1)
- Pilocarpin (1)
- Pilocarpus (1)
- Pilocarpus microphyllus (1)
- Pilzbefall (1)
- Pilze (1)
- Pilzkörper (1)
- Pimelinsäure (1)
- Pinus sylvestris L. (1)
- Piriformospora indica (1)
- Pitrakinra (1)
- Plant Biology (1)
- Plant Ecology (1)
- Plant Hormones (1)
- Plant antimicrobial proteins (1)
- Plant cell cultures (1)
- Plant fertilization (1)
- Plant growth promotion (1)
- Plant hydraulic (1)
- Plant immunity (1)
- Plant root endophyte (1)
- Plant signalling (1)
- Plant-Insect Interactions (1)
- Plasma membrane (1)
- Plastid DNA (1)
- Pollenkeimung (1)
- Pollenschlauch Calcium Anionen Kanal Kinase (1)
- Polygonum cuspidatum (1)
- Polyphasic fluorescence rise (1)
- Polypodium vulgare (1)
- Populus (1)
- Poribacteria (1)
- Positron Emission Tomography (1)
- Positronen-Emissions-Tomographie (1)
- Posttranslationale Änderung (1)
- Potassium channel (1)
- Powdery mildew fungus (1)
- Precipitation gradient (1)
- Prednisolon (1)
- Prednisolone (1)
- Premna (1)
- Primärmetabolite (1)
- Proliferation (1)
- Promotor <Genetik> (1)
- Promotor Regulation (1)
- Promotoraktivität (1)
- Protein Purification (1)
- Proteinbiochemie (1)
- Proteine (1)
- Proteinen mit antimikrobieller Wirkung (1)
- Proteinkinase (1)
- Proteinkinasen (1)
- Proteinmodifizierung (1)
- Protoplasten (1)
- Protoplasts (1)
- Pseudomonas syringae pv. tabaci (1)
- Pseudomonas syringae tomato (1)
- Pulvini (1)
- Pyrophosphatase (1)
- QTOF (1)
- QUAC (1)
- Quecksilber (1)
- Quercetin (1)
- Quercus petraea (1)
- R-GECO1 cytosolic Ca\(^{2+}\) reporter (1)
- R-type (1)
- R-type currents (1)
- RIP3 (1)
- RNA Integrität (1)
- RNA integrity (1)
- Raps (1)
- Reaktive Sauerstoffspezies (1)
- Receptor (1)
- Recombinant protein (1)
- Red sea (1)
- Reflexa Roxb (1)
- Regenbaum (1)
- Regenerative Medizin (1)
- Regulatory-cells (1)
- Reis (1)
- Rekombinantes Protein (1)
- Remorin (1)
- Renaturierung <Biochemie> (1)
- Resistances (1)
- Resistenzfaktor (1)
- Resorption (1)
- Respiratory chain (1)
- Retroviren (1)
- Rezeptorblocker (1)
- Rezeptorkinasen (1)
- Rheumatoid arthritis (1)
- Rhinanthus (1)
- Rhizodermis (1)
- Ricinus communis (1)
- Root (1)
- Root Nodule Symbiosis (1)
- Rorippa austriaca (1)
- Rose (1)
- Rossameise (1)
- Rothenfels (1)
- Rückfallfieber (1)
- Rüsselreflex (1)
- S-Typ (1)
- S-Typ Anionenkanal (1)
- S-Typ-Anionenkanäle (1)
- S-Type-Anionchannels (1)
- S-typ anionchannel (1)
- S-type (1)
- SGLT-1 (1)
- SGLT1 (1)
- SGLT2 inhibitor (1)
- STP (1)
- SUBERIN (1)
- SUT1 (1)
- SV/TPC1 (1)
- Saatgutbeizung (1)
- Saccharomyces cerevisiae (1)
- Saisonalität (1)
- Salicylhydroxamsäure (1)
- Salz (1)
- Salzresistenz (1)
- Samen (1)
- Samenschale (1)
- Schachtelhalm (1)
- Schachtelhalme (1)
- Schlacke (1)
- Schmalwand (1)
- Schneckenklee (1)
- Schwammsymbionten (1)
- Sclerotinia (1)
- Sclerotinia sclerotiorum (1)
- Sehen (1)
- Sekundärer Bote (1)
- Selective extraction (1)
- Senescence (1)
- Serendipita indica (1)
- Serine proteases (1)
- Shaker (1)
- Siberian spurge (1)
- Signaling (1)
- Signalkette (1)
- Signalling (1)
- Signalpeptide (1)
- Signalweg (1)
- Silver (1)
- Single chain (1)
- Single-cell genomics (1)
- Sink-Source-Relation (1)
- Sleeping Beauty (1)
- Smooth-muscle-cells (1)
- SnRK1-bZIP complex (1)
- Sodium-myoinositol cotransporter-1 (SMIT1) (1)
- Solanaceae (1)
- Solanazeen (1)
- Sonnenblume (1)
- Sonoran Desert (1)
- Spannungsklemmen-Fluorometrie (1)
- Spannungskontrollierter Ionenkanal (1)
- Spheciospongia vagabunda (1)
- Sphingobasen (LCB, LCB-P) (1)
- Sphingobases (1)
- Sphingolipid (1)
- Sphingolipidstoffwechsel (1)
- Spirochäten (1)
- Spodoptera (1)
- Spodoptera frugiperda (1)
- Sponge diseases (1)
- Spross (1)
- SsAQP1 (1)
- SsAQP2 (1)
- SthK-bPAC (1)
- Stickstoffoxide (1)
- Stickstoffoxidsynthase (1)
- Stoffwechsel (1)
- Stoffwechselweg (1)
- Stress-Syndrom (1)
- Struktur-Aktivitäts-B (1)
- Strukturbiologie (1)
- Styrylpyrone (1)
- Subtractive hybridisation (1)
- Subtraktive Hybridisierung (1)
- Sucrose (1)
- Sulforaphan (1)
- Superresolution microscopy (1)
- Suppression (1)
- Surgeon (1)
- Symbionten (1)
- Symbionts (1)
- Symbolik (1)
- Synechocystis 6803 (1)
- Synechocystis sp. PCC6803 (1)
- Synthasen (1)
- Synthese (1)
- Systemic acquired resistance (1)
- Systemisch erworbenen Resistenz (1)
- T-Lymphozyt (1)
- T-cells (1)
- T6P (1)
- TGA-Transkriptionsfaktoren (1)
- TGF (1)
- TGF-beta (1)
- TGF-β superfamily (1)
- TGFβ/BMP signaling (1)
- TH2 Immunantwort (1)
- TNF (1)
- TNF Superfamilie (1)
- TNFR2 (1)
- TOR (1)
- TPC1 channel (1)
- TPCA1 (1)
- TPK (1)
- TRAF (1)
- TRAF1 (1)
- TRAIL (1)
- TRAILR-Mutants (1)
- Tagesrhythmus (1)
- Tansania (1)
- Tanzania (1)
- Targeted Radiotherapy (1)
- Thaumatins (1)
- Thermotoleranz (1)
- Thioredoxin (1)
- Ti plasmids (1)
- Tilia cordata (1)
- Tissue Engineering (1)
- Tod (1)
- Todesrezeptor (1)
- Toxizitätstest (1)
- Trachea (1)
- Transcription factor (1)
- Transforming Growth Factor beta (1)
- Transkriptstabilität (1)
- Translokation (1)
- Transpiration barrier (1)
- Transporter (1)
- Tree physiology (1)
- Triglyceride (1)
- Tritrophische Interaktionen (1)
- Trockenheit (1)
- Tropischer Regenwald (1)
- Tropismen (1)
- Tropismus (1)
- Trypanosoma brucei (1)
- Tumor-necrosis-factor (1)
- Tumorentwicklung (1)
- Twisted gastrulation (1)
- UAV (1)
- Ultraviolett (1)
- Ungesättigte Fettsäuren (1)
- Ustilago zeae (1)
- V-ATPase (1)
- V-ATPasen (1)
- VA-Mykorrhiza (1)
- VCF (1)
- VOC <Ökologische Chemie> (1)
- VOC emissions (1)
- Vaccinia Virus (1)
- Vaccinia-Virus (1)
- Variovorax paradoxus (1)
- Vegetable juice (1)
- Vegetationsentwicklung (1)
- Verteidigung (1)
- Verticillium (1)
- Verticillium dahliae (1)
- Verticillium longisporum (1)
- Vertikale Übertragung (1)
- Verwundung (1)
- Very-long-chain aliphatic (1)
- Vicia (1)
- Vicia faba (1)
- Vielfalt (1)
- Vitis (1)
- Vitis vinifera (1)
- Volatiler oraganischer Verbindungen (1)
- Volatiole Compounds (1)
- WNT (1)
- WRKY (1)
- WURZEL (1)
- Wachstum (1)
- Waldökosystem (1)
- Wasser (1)
- Wasserfluss (1)
- Wasserpermeabilität (1)
- Water stress (1)
- Wechselwirkung (1)
- Weinrebe (1)
- Westliche Balsampappel (1)
- Williamsia sp. ARP1 (1)
- Wirt (1)
- Wirtsfindung (1)
- Wnt signaling cascade (1)
- Wnt signalling (1)
- Wnt-Proteine (1)
- Wuchsleistung (1)
- Wundarznei (1)
- Wurzel-Spross-Stresssignal (1)
- Wurzelhalsgallen (1)
- Wurzelknöllchen (1)
- Wurzelknöllchensymbiose (1)
- Wurzelsystem (1)
- Wurzelzellschichten (1)
- Würzburg (1)
- X-ray crystallography (1)
- X-ray diffraction (1)
- Xenobiotikum (1)
- Xenopus (1)
- Xenopus laevis oocytes (1)
- Xerostomia (1)
- Xylem vulnerability curve (1)
- Y-gastric bypass (1)
- Zea (1)
- Zellschichtspezifische Expression (1)
- Zelltod (1)
- Zentralzylinder (1)
- Zucker (1)
- Zucker-Signaling (1)
- Zuckerrübeneule (1)
- Zuckertransport (1)
- Zuckertransporter (1)
- Zusammensetzung (1)
- Zwei-Hefen-Hybrid-System (1)
- Zwiebel (1)
- abiotic stress tolerance of plants (1)
- abiotische Stresstoleranz von Pflanzen (1)
- abiotische stress (1)
- aboveground biomass (1)
- abscisic-acid activation (1)
- absorption (1)
- acquired thermotolerance (1)
- acquisition (1)
- actinobacteria (1)
- actinosporins (1)
- action potential (1)
- activation (1)
- acylcarnitine (1)
- adaption (1)
- adaptive conflict (1)
- aldehydes (1)
- alien (1)
- alignmen (1)
- aliphatic compounds (1)
- aliphatic glucosinolates (1)
- alkaloid detection methods (1)
- allene oxide synthase (1)
- amino acid analysis (1)
- amino acid transporter (1)
- amino-acid-metabolism (1)
- amplicon pyrosequencing (1)
- angiogenesis (1)
- animal models (1)
- anion channels (1)
- annotation (1)
- anoxia (1)
- antagonist (1)
- antagonists (1)
- anthropogenic disturbance (1)
- anti-microbial activit (1)
- anti-predator defence (1)
- anti-trypanosoma (1)
- antibodies (1)
- antibody production (1)
- antigen binding antibody fragment (Fab) (1)
- antioxidant (1)
- antioxidants (1)
- antiport (1)
- antisense (1)
- apical GLUT2 (1)
- apoplast (1)
- aqueous pathways (1)
- arabidopsis (1)
- arabidopsis-thaliana (1)
- artificial neural network (1)
- artificial rearing (1)
- asparaginase (1)
- asparagine (1)
- asparagine synthetase (1)
- aspergillus fumigatus (1)
- assembly (1)
- atmospheric chemistry (1)
- autotoxicity (1)
- auxin (1)
- azelaic acid (1)
- bPAC (1)
- bZIP transcription fators (1)
- bZIPs (1)
- bacteria (1)
- bacterial communities (1)
- bacterial community (1)
- bacterial genomics (1)
- bariatric surgery (1)
- basale Immunität (1)
- bee disease (1)
- behavior (1)
- beta diversity (1)
- beta-multifunctionality (1)
- beta1-adrenergic receptor (1)
- betaglycan (1)
- biliopancreatic diversion (1)
- binding analysis (1)
- bioactive (1)
- bioartificial tissue (1)
- bioartifizielles Rekonstruktionsgewebe (1)
- bioassays (1)
- bioavailibility (1)
- biofilms (1)
- biogenic volatile organic compounds (1)
- biological locomotion (1)
- biomass (1)
- biophysics (1)
- biosurfactants (1)
- biosynthetic gene clusters (1)
- biosynthetic glycosylation (1)
- biotic and abiotic stress (1)
- biotic stress (1)
- biotische stress (1)
- bipartite metabolism (1)
- bluelight (1)
- body weight (1)
- bone homeostasis (1)
- bone morphogenetic protein 2 (BMP2) (1)
- bone morphogenetic proteins (1)
- bone regeneration (1)
- brush border membrane (1)
- bryozoan bugula-neritina (1)
- buckwheat (1)
- buds (1)
- butenolide (1)
- cGMP (1)
- cIAP (1)
- caged glutamate (1)
- calcium absorption (1)
- calcium dependent membrane conductance (1)
- calcium oscillations (1)
- calcium signalling (1)
- calciumabhängige Membranleitfähigkeiten (1)
- canine cancer cell lines (1)
- canine cancer therapy (1)
- canine soft tissue sarcoma (CSTS) (1)
- capra hircus (1)
- cardiomyocytes (1)
- carnivorus plants (1)
- carrier (1)
- caterpillars (1)
- cathepsin (1)
- cathepsin-L (1)
- cell binding assay (1)
- cell compartmentation (1)
- cell culture (1)
- cell cycle and cell division (1)
- cell death (1)
- cell membranes (1)
- cell metabolism (1)
- cell-type specific (1)
- cell-wall invertases (1)
- cellular binding studies (1)
- channelrhodopsin (1)
- channelrhodopsins (1)
- channels (1)
- chemical glycosylation (1)
- chemische Ökologie (1)
- chemotherapy (1)
- chlamydomonas reinhardtii (1)
- chlamyopsin (1)
- chlorella (1)
- chlorophyll fluorescence (1)
- chlorophyll fluorescence imaging (1)
- chondrodysplasia (1)
- circadian rhythm (1)
- circular dichroism spectra (1)
- cis-element modules (1)
- class II TGA factors (1)
- climatological water deficit (1)
- clinical practice guidelines (1)
- co-cultivation (1)
- cold stress (1)
- community structure (1)
- compounds (1)
- computational cell biology (1)
- conductance (1)
- conidial differentiation (1)
- contact lens (1)
- cool-season grass species (1)
- cotransporter (1)
- cotransporter SGLT1 (1)
- covalent coupling (1)
- cpYFP cytosolic pH reporter (1)
- cristae (1)
- crown gall (1)
- crown galls (1)
- cultivation (1)
- cuticular permeability (1)
- cuticular transpiration (1)
- cuticular uptake (1)
- cuticular wax (1)
- cuticular waxes (1)
- cutin (1)
- cyanobacteria (1)
- cyanobacterium (1)
- cyclic GMP (1)
- cyclic compounds (1)
- cyclic dipeptide (1)
- cyclin-dependent kinases (1)
- cystin knot protein (1)
- cytokinins (1)
- cytosolic pH (1)
- de novo sequenced genomes (1)
- defence (1)
- defence response (1)
- dehydration (1)
- denaturing gradient gel electrophoresis (1)
- density (1)
- depolarization (1)
- desert (1)
- desert soil (1)
- diazepinomicin (1)
- diazidisches Motiv (1)
- differential coverage binning (1)
- differentiation (1)
- diffusive component (1)
- dihydrosphingosine-1-phosphate lyase (1)
- dionaea muscipula (1)
- direct PCR (1)
- discovery (1)
- disease resistance (1)
- divergence times (1)
- dodder (1)
- dominance (1)
- double electrode voltage clamp (1)
- doxorubicin (1)
- draft genome (1)
- drosophila melanogaster (1)
- drug discovery (1)
- drug metabolism (1)
- drugs (1)
- du Pan dysplasia (1)
- duodenal jejunal bypass (1)
- duplicate genes (1)
- eATP (1)
- earlywood (1)
- ecophysiology (1)
- effectors (1)
- electrochromic absorbance shift (1)
- electron density (1)
- electrophysiology (1)
- elektrische Signale (1)
- elicitors (1)
- embolism resistance (1)
- embryology (1)
- empagliflozin (1)
- endoplasmatic reticulum (1)
- enemy hypothesis (1)
- energy conservation (1)
- energy deprivation (1)
- energy dissipation (1)
- energy metabolism (1)
- energy signaling (1)
- enzymes (1)
- eosinophil (1)
- epigenetics (1)
- epiphytes (1)
- epithelial cells (1)
- escherichia coli (1)
- evolution (1)
- evolutionary developmental biology (1)
- excretory-secretory (1)
- exocytosis (1)
- exodermis (1)
- experimental vegetation (1)
- experimentelle Vegetation (1)
- expression (1)
- extended phenotype (1)
- extrafloral nectaries (1)
- extraflorale Nektarien (1)
- extrazelluläre Invertasen (1)
- farm forestry (1)
- farmland woodlots (1)
- fatty acid (1)
- fatty acids (1)
- fermentation (1)
- ferns (1)
- fibre length (1)
- fine root biomass (1)
- fine root necromass (1)
- flagellin (1)
- flg22 (1)
- flow path (1)
- flowering plants (1)
- fluorescence (1)
- fluorescence microscopy (1)
- fluorescent microscopy (1)
- fluorometry (1)
- food intake (1)
- foragers (1)
- foraging (1)
- foraging activity (1)
- fractal analysis (1)
- functional absorption cross section of PS II (1)
- functional studies (1)
- fungal spores (1)
- gamma (1)
- gaschromatography-mass spectrometry (1)
- gastrointestinal mucositis (1)
- gene (1)
- gene activation (1)
- gene expression profiling (1)
- gene regulation (1)
- gene stability (1)
- genetically modified plants (1)
- genome analysis (1)
- genome assembly (1)
- genomic analysis (1)
- genomic databases (1)
- gezielte Radiotherapie (1)
- glands (1)
- glaucoma (1)
- glossy11 (1)
- glucagon like peptide-1 (1)
- glucose (1)
- glucose handling (1)
- glucose lowering agent (1)
- glucose metabolism (1)
- glucose transport (1)
- glucose/sucrose transport (1)
- glycerol (1)
- glycoengineering (1)
- glycophyte Arabidopsis (1)
- glycoprotein (1)
- grass endophytes (1)
- grasslands (1)
- grebe (1)
- green fluorescence protein (GFP) (1)
- growth (1)
- growth and differentiation factor 5 (1)
- growth factor beta (1)
- growth rate (1)
- growth ring width (1)
- guanylyl cyclase (1)
- guanylyl cyclase (GC) (1)
- gustatory receptors (Grs) (1)
- gut hormones (1)
- halophyte Thellungiella/Eutrema (1)
- heart (1)
- heat shock response (1)
- heat stress (1)
- hemiparasite (1)
- hemolymph lipids (1)
- herbivore defense strategies (1)
- heterologous expression (1)
- high performance liquid chromatography (1)
- high resolution visualisation (1)
- high throughput screening (1)
- higher plants (1)
- honeybee taste perception (1)
- hormone flow modelling (1)
- horses (1)
- horsetail (1)
- human diseases (1)
- human interleukin-4 (1)
- humaner Natrium-Iodid-Symporter (1)
- hybrid assembly (1)
- hydration (1)
- hydraulic architecture (1)
- hydraulic efficiency (1)
- hydraulic variability (1)
- hydroxylamine (1)
- hyperexpression techniques (1)
- hyperglycemia (1)
- hyperpolarisation (1)
- hyperpolarization (1)
- iLID (1)
- imaging (1)
- imaging PAM (1)
- immunity response (1)
- immunolocalisation (1)
- immunomodulatory (1)
- in-vitro (1)
- incompatible interaction (1)
- increases bone-formation (1)
- incretin secretion (1)
- indirect defense (1)
- indirect plant defence (1)
- indirekte Verteidigung (1)
- indole-glucosinolates (1)
- induced metabolites (1)
- infection rates (1)
- inflammation (1)
- inflated fruiting calyx (1)
- insect (1)
- insect-plant-interaction (1)
- intact plants (1)
- interaction (1)
- interleukin-13 (1)
- interleukin-4 (1)
- interleukin-5 signaling (1)
- intestinal glucose (1)
- intestinal mucositis (1)
- intraguild predation (1)
- intrauterine growth (1)
- invasive (1)
- invertase (1)
- invertase inhibitor (1)
- iodides (1)
- ion signaling (1)
- ion transport (1)
- isolation (1)
- isoprene (1)
- isoprostanes (1)
- isothiocyanates (1)
- jasmonic acid biosynthesis (1)
- jasmonoyl-isoleucine (1)
- kidney disease (1)
- klinische Studie (1)
- kutikuläre Aufnahme (1)
- lamin (1)
- laminopathy (1)
- latewood (1)
- latitude (1)
- leaching (1)
- leaf (1)
- leaf beetle (1)
- leaf wax analysis (1)
- leaves (1)
- lebende Pflanzen (1)
- lichen (1)
- lichtgesteuerte Manipulation (1)
- ligand (1)
- ligand binding (1)
- ligand-receptor complex (1)
- ligand-receptor promiscuity (1)
- light-driven metabolism (1)
- light-induced dimerization (1)
- light-sensitive anion channel (1)
- lightinduced manipulation (1)
- lignan (1)
- linkage analysis (1)
- lipid peroxidation (1)
- lipid remodeling (1)
- lipid signaling (1)
- lipid transfer proteins (1)
- lipidomics (1)
- lipochitinoligosaccharides (1)
- lipoproteins (1)
- live-cell imaging (1)
- livestock (1)
- living plants (1)
- localization (1)
- locomotor activity (1)
- long-chain base (1)
- lox6 (1)
- luciferase (1)
- luminal Ca2+ sensing sites (1)
- luminale Ca2+-Sensorstellen (1)
- luminescence (1)
- malaria parasites (1)
- male sterility (1)
- marine (1)
- marine Synechococcus strains (1)
- marine bacteria (1)
- marine microalgae (1)
- marine natural products (1)
- marker genes (1)
- mass spectrometry (1)
- mechanisms (1)
- medicinal plant (1)
- medicinal plants (1)
- medicine (1)
- membrane anchor (1)
- membrane depolarization (1)
- membrane protein (1)
- membrane proteins (1)
- membrane remodeling (1)
- mercury (1)
- meristems (1)
- mesophyll (1)
- mesophyll cells (1)
- mesophyll vacuole (1)
- messenger-RNA (1)
- messenger-RNA translation (1)
- metabolic flux analysis (1)
- metabolic profiling (1)
- metabolomic (1)
- metabolomic changes (1)
- method comparison (1)
- methyl jasmonate (1)
- mice (1)
- microarray (1)
- microbial communities (1)
- microbial rhodopsin (1)
- microelectrodes (1)
- microorganism (1)
- mineral nutrient (1)
- minimum (1)
- missense (1)
- mitochondrial activity (1)
- models (1)
- molecular engineering (1)
- molecular structure (1)
- morphological adaptions (1)
- multiple linear regression (1)
- multiple myeloma (1)
- multivariate analysis (1)
- mustard oil bomb (1)
- mutagenesis (1)
- mycotoxins (1)
- männliche Sterilität (1)
- natural products (1)
- ndhH gene (1)
- necromass/biomass ratio (1)
- necrotic cell death (1)
- nectar (1)
- nectar secretion (1)
- nectaries (1)
- needle surface waxes (1)
- nektar (1)
- nektarien (1)
- neuer anti-infektiver Substanzen (1)
- neurochemistry (1)
- neurology (1)
- neuronal silencing (1)
- neuronal visual system (1)
- neutralizing antibody (1)
- next generation sequencing (1)
- nitrate reductase (1)
- nitric oxide (1)
- nitrogen status (1)
- nittric (1)
- non-host resistance (1)
- non-indigenous (1)
- nonribosomal peptide synthetase (1)
- nucleus (1)
- nurse bees (1)
- nursing (1)
- nutrient deficiency (1)
- nutrient uptake (1)
- nutrition (1)
- oberflächenaktive Stoffe (1)
- oil palm (1)
- olfactory bioassay (1)
- olfactory receptor (1)
- oncolytic virus (1)
- onion (1)
- onkolytische Viren (1)
- oocytes (1)
- opsins (1)
- oral mucositis (1)
- organic (1)
- osteoblasts (1)
- osteoporosis (1)
- oxidative NO-Bildung (1)
- oxidative NO-formation (1)
- oxidative and pH dependent regulation (1)
- oxidative stress (1)
- oxidative und pH-abhängige Regulation (1)
- oxide DAF (1)
- oxidized lipids (1)
- ozone (1)
- pH-Wert (1)
- package (1)
- paediatric research (1)
- parasite biology (1)
- parasitic plants (1)
- parasitoid (1)
- parkinsonism (1)
- particle bombardment (1)
- patch-clamp (1)
- patchiness (1)
- pathogen vector (1)
- pathogens (1)
- pbl (1)
- pea (1)
- peltula patellata (1)
- peptide engineering (1)
- peptide-based interleukin-5 inhibitor (1)
- perennial ryegrass (1)
- permeability (1)
- permeation (1)
- pesicicles (1)
- pesticides (1)
- pflanze (1)
- pflanzliche Elektrophysiologie (1)
- pflanzliche Kutikula (1)
- pflanzliche Pathogenresistenz (1)
- pflanzliche Sterole (1)
- pflanzliche Vaccine (1)
- phage display (1)
- pharmacophore map (1)
- pharmacy (1)
- phenolic compounds (1)
- phenolic constituents (1)
- phenolics (1)
- phenology (1)
- phenols (1)
- phenotypic plasticity (1)
- phosphoproteomics (1)
- photoaktiviert (1)
- photoinhibition (1)
- photoprotection (1)
- photoreceptors (1)
- photosynthetic electron transport (1)
- photosystem II (1)
- phylogenetic (1)
- phylogenetic trees (1)
- phylogenetics (1)
- phylogenomics (1)
- phytochemicals (1)
- phytochemistry (1)
- phytohormones (1)
- phytoprostane (1)
- pilocarpine (1)
- pimelic acid (1)
- pit membrane diameter (1)
- placidium (1)
- plakortide E. (1)
- plakortis halichondroides (1)
- plan sciences (1)
- plant cells (1)
- plant communities (1)
- plant decorations (1)
- plant defense (1)
- plant development (1)
- plant fresh/dry weight (1)
- plant genomics (1)
- plant growth and development (1)
- plant immunity (1)
- plant molecular biology (1)
- plant pathogen resistance (1)
- plant photoassimilate partitioning (1)
- plant signaling (1)
- plant signalling (1)
- plant size (1)
- plant sphingolipid metabolism (1)
- plant-animal interaction (1)
- plant-derived vaccines (1)
- plant-pathogen-interaction (1)
- plant-plant interaction (1)
- plants response (1)
- plant–microbe interaction (1)
- plant–pathogen interaction (1)
- plasma membrane (1)
- pollen germination (1)
- pollen tube calcium anion channel kinase (1)
- pollen tubes (1)
- polyamines (1)
- polyketide synthase gene (1)
- polymerization (1)
- polyvinyl chloride (1)
- pore (1)
- porin (1)
- postmenopausal osteoporosis (1)
- postmortales Humangewebe (1)
- postmortem human tissue (1)
- posttranscriptional regulation (1)
- potassium carrier (1)
- potassium channels (1)
- powdery mildew (1)
- powdery mildew desease (1)
- presteady-state (1)
- presteady-state Ströme (1)
- prevention (1)
- primary metabolites (1)
- proboscis extension reflex (1)
- proboscis extension response (PER) (1)
- programmierter Zelltod (1)
- promoter activity (1)
- promoter regulation (1)
- prostaglandins (1)
- protease inhibitor (1)
- protein (1)
- protein interaction (1)
- protein secondary structure (1)
- protein structure (1)
- protein translocation (1)
- protein-1 CDMP1 gene (1)
- protein-protein interactions (1)
- protein-protein recognition (1)
- proteins (1)
- proteomic (1)
- proteomic analysis (1)
- proteomics (1)
- proteomics analysis (1)
- proton efflux (1)
- protoplast (1)
- protoplast transformation (1)
- protoplasten (1)
- protoplasts (1)
- pseudomonas syringae (1)
- psora decipiens (1)
- pulvini (1)
- quantitative trait locus (1)
- quercetin (1)
- quinoa (1)
- rainfall gradient (1)
- random forest (1)
- ranscription factors (1)
- rat hippocampal neurons (1)
- rat model (1)
- rat small-intestine (1)
- rates (1)
- ray solution scattering (1)
- reaction centre (1)
- reactivation (1)
- reactive electrophile oxylipins (1)
- reactive oxygen species (ROS) (1)
- recent origin (1)
- receptor kinases (1)
- receptor type III (1)
- recj exonuclease (1)
- redox homeostasis (1)
- regulator genes (1)
- regurgitation (1)
- relapsing fever (1)
- repeated dose (1)
- resistance (1)
- resveratrol biosynthesis (1)
- reveals (1)
- rheumatoid-arthritis (1)
- rhizobacteria (1)
- rhodesain (1)
- ribosomal RNA (1)
- ribosomal RNA genes (1)
- rice (1)
- root infection systems (1)
- root morphology (1)
- root pathogens (1)
- root-to-shoot stress signal (1)
- rootsystem (1)
- rough woodlouse (1)
- s-phase (1)
- sRNA (1)
- saccharmyces cerevisiae (1)
- safety-efficiency trade-off (1)
- salicylic acid (1)
- salinity stress (1)
- scFv (1)
- schutz (1)
- sclerostin (1)
- screening tools (1)
- seasonality (1)
- secondary metabolomics (1)
- seed coat (1)
- seed dispersal strategy (1)
- seed protein concentration (1)
- seed treatment (1)
- seedling establishment (1)
- seedlings (1)
- selection (1)
- sequence analysis (1)
- sequestration (1)
- shock response (1)
- signal inhibition (1)
- signal specification (1)
- single cell (1)
- single-cell genomics (1)
- single-stranded-DNA (1)
- slowly-binding reversible inhibitor (1)
- small-angle scattering (1)
- sodium channel (1)
- sodium uptake (1)
- sodium/glucose cotransporters (SGLT) (1)
- soil crust (1)
- soil-borne microorganisms (1)
- spacer sequences (1)
- species composition (1)
- specificity (1)
- sphingolipid (1)
- sphingomonads (1)
- sponge (1)
- sponge holicolona-simulans (1)
- sponge microbiome (1)
- sponge-associated actinomyetes (1)
- staphilococci (1)
- staurosporine (1)
- stomatal closure (1)
- stress signaling cascade (1)
- stress tolerance (1)
- striga (1)
- structural biology (1)
- structure (1)
- structure analysis (1)
- structured illumination microscope (1)
- styrylpyrones (1)
- subcutaneous animal model (1)
- suberin (1)
- successional stage (1)
- sugar absorption (1)
- sugar beet (1)
- sugar responsiveness (1)
- sugar signaling (1)
- sugar transport (1)
- sugar transport protein (1)
- sulforaphane (1)
- superfamily (1)
- support vector machine (1)
- surface potential recording (1)
- surfactants (1)
- symbionts (1)
- symbiosis (1)
- symbiotic bacteria (1)
- symbolism (1)
- symport (1)
- synechocystis (1)
- synthetic D-glucose analogy (1)
- syringae (1)
- systemic acquired resistance (1)
- systemic resistance (1)
- systemisch erworbene Resistenz (1)
- systemische Resistenz (1)
- tannins (1)
- targeting (1)
- task allocation (1)
- taxonomy (1)
- temperature (1)
- terpenes (1)
- thaliana (1)
- tobacco (1)
- tool (1)
- topology (1)
- toxicity testing (1)
- transcription factor function (1)
- transcriptional profiling (1)
- transformation (1)
- transiente Transformation (1)
- transition temperature (1)
- transporter (1)
- transporters (1)
- tree architecture (1)
- tree growth (1)
- triacylglycerols (1)
- triterpenoids (1)
- tritrophic interactions (1)
- tropisms (1)
- trypanosoma brucei (1)
- tryptophan (1)
- tumor cell (1)
- tumor development (1)
- two-component (1)
- two-component system (1)
- two-hybrid system (1)
- tyloses (1)
- type 2 diabetes (1)
- ultrastructure (1)
- ultraviolet (1)
- ultraviolet radiation (1)
- ultraviolette Strahlung (1)
- undernourishment (1)
- unfolded protein response (1)
- unsaturated Fatty Acids (1)
- vacuolar calcium sensor (1)
- vacuolar membrane (1)
- vacuolar proton-ATPase (1)
- valinomycin (1)
- vertical and radial variation (1)
- vertikale Weitergabe (1)
- very long-chain aliphatic compounds (1)
- very-long-chain aldehydes (1)
- vessel lumen diameter (1)
- vessel tapering (1)
- volatile (1)
- volatile organic compounds (1)
- volatiles (1)
- voltage clamp fluorometry (1)
- voltage dependent (1)
- voltage gating (1)
- volvox carteri (1)
- von Willebrand type C domain (1)
- wasserhaushalt (1)
- water (1)
- water availability (1)
- water flow (1)
- water relation (1)
- water relations (1)
- water transport root (1)
- waterpermeability (1)
- wax biosynthesis (1)
- wax composition (1)
- waxes (1)
- web server (1)
- weed dodder (1)
- whole genome sequencing (1)
- whole-genome duplication (1)
- windpipe (1)
- wood density (1)
- wood formation (1)
- wood production (1)
- wood rays (1)
- xenobiotic metabolism (1)
- xerostomia (1)
- xylem (1)
- xylem loading (1)
- yeast-elicitor (1)
- zelluläre Bindungsstudien (1)
- zyklische Peptide (1)
- Ökologie (1)
- Ökophysiologie (1)
- Österreichische Sumpfkresse (1)
- ß-D-Glucosidase (1)
- ß-D-glucosidase (1)
Institute
- Julius-von-Sachs-Institut für Biowissenschaften (360) (remove)
Sonstige beteiligte Institutionen
- Albert-Ludwigs-Universität Freiburg (1)
- Fraunhofer IGB Stuttgart (1)
- GEOMAR Helmholtz-Zentrum für Ozeanforschung Kiel (1)
- Goethe-Universität Frankfurt (1)
- IZKF (Interdisziplinäres Zentrum für Klinische Forschung), Universität Würzburg (1)
- IZKF Laboratory for Microarray Applications, University Hospital of Wuerzburg, Wuerzburg, Germany (1)
- Julius-von-Sachs-Institut für Biowissenschaften Lehrstuhl für Botanik II - Ökophysiologie und Vegetationsökologie (1)
- Leuphana Universität Lüneburg (1)
- Technische Universität Dresden (1)
- Technische Universität München (1)
Plant–pathogen interactions have been widely studied, but mostly from the site of the plant secondary defense. Less is known about the effects of pathogen infection on plant primary metabolism. The possibility to transform a fluorescing protein into prokaryotes is a promising phenotyping tool to follow a bacterial infection in plants in a noninvasive manner. In the present study, virulent and avirulent Pseudomonas syringae strains were transformed with green fluorescent protein (GFP) to follow the spread of bacteria in vivo by imaging Pulse-Amplitude-Modulation (PAM) fluorescence and conventional binocular microscopy. The combination of various wavelengths and filters allowed simultaneous detection of GFP-transformed bacteria, PAM chlorophyll fluorescence, and phenolic fluorescence from pathogen-infected plant leaves. The results show that fluorescence imaging allows spatiotemporal monitoring of pathogen spread as well as phenolic and chlorophyll fluorescence in situ, thus providing a novel means to study complex plant–pathogen interactions and relate the responses of primary and secondary metabolism to pathogen spread and multiplication. The study establishes a deeper understanding of imaging data and their implementation into disease screening.
The control of energy homeostasis is of pivotal importance for all living organisms. In the last years emerged the idea that many stress responses that are apparently unrelated, are actually united by a common increase of the cellular energy demand. Therefore, the so called energy signaling is activated by many kind of stresses and is responsible for the activation of the general stress response. In Arabidopsis thaliana the protein family SnF1- related protein kinases (SnRK1) is involved in the regulation of many physiological processes but is more known for its involvement in the regulation of the energy homeostasis in response to various stresses. To the SnRK1 protein family belong SnRK1.1 (also known as KIN10), SnRK1.2 (KIN11), and SnRK1.3 (KIN12). SnRK1 exerts its function regulating directly the activity of metabolic enzymes or those of key transcription factors (TFs). The only TFs regulated by SnRK1 identified so far is the basic leucine zipper (bZIP) 63. bZIP63 belongs to the C group of bZIPs (C-bZIPs) protein family together with bZIP9, bZIP10, and bZIP25. SnRK1.1 phosphorylates bZIP63 on three amino acids residues, serine (S) 29, S294, and S300. The phosphorylation of tbZIP63 is strongly related to the energy status of the plant, shifting from almost absent during the normal growth to strongly phosphorylated when the plant is exposed to extended dark. bZIPs normally bind the DNA as dimer in order to regulate the expression of their target genes. C-bZIPs preferentially form dimers with S1-bZIPs, constituting the so called C/S1- bZIPs network. The SnRk1 dependent phosphorylation of bZIP63 regulates its activation potential and its dimerization properties. In particular bZIP63 shift its dimerization preferences according to its phosphorylation status. The non-phosphorylated form of bZIP63 dimerize bZIP1, the phosphorylates ones, instead, forms dimer with bZIP1, bZIP11, and bZIP63 its self. Together with bZIP63, S1-bZIPs are important mediator of part of the huge transcriptional reprogramming induced by SnRK1 in response to extended dark. S1-bZIPs regulate, indeed, the expression of 4'000 of the 10'000 SnRK1-regulated genes in response to energy deprivation. In particular S1-bZIPs are very important for the regulation of many genes encoding for enzymes involved in the amino acid metabolism and for their use as alternative energy source. After the exposition for some hours to extended dark, indeed, the plant make use of every energy substrate and amino acids are considered an important energy source together with lipids and proteins. Interestingly, S1- bZIPs regulate the expression of ETFQO. ETFQO is a unique protein that convoglia the electrons provenienti from the branch chain amino acids catabolism into the mitochondrial electron transport chain. The dimer formed between bZIP63 and bZIP2 recruits SnRK1.1 directly on the chromatin of ETFQO promoter. The recruitment of SnRK1 on ETFQO promoter is associated with its acetylation on the lysine 14 of the histone protein 3 (K14H3). This chromatin modification is normally asociated with an euchromatic status of the DNA and therefore with its transcriptional activation. Beside the particular case of the regulation of ETFQO gene, S1-bZIPs are involved in the regulation of many other genes activated in response of different stresses. bZIP1 is for example an important mediator of the salt stress response. In particular bZIP1 regulates the primary C- and N-metabolism. The expression of bZIP1, in response of both salt ans energy stress seems to be regulated by SnRK1, as it is the expression of bZIP53 and bZIP63.
Beside its involvement in the regulation of the energy stress response and salt response, SnRK1 is the primary activators of the lipids metabolism during see germination. SnRK1, indeed, controls the expression of CALEOSINs and OLEOSINs. Those proteins are very important for lipids remobilization from oil droplets. Without their expression seed germination and subsequent establishment do not take place because of the absence of fuel to sustain these highly energy costly processes, which entirely depend on the catabolism of seed storages.
Background:
In previous studies, the gram-positive firmicute genus Paenibacillus was found with significant abundances in nests of wild solitary bees. Paenibacillus larvae is well-known for beekeepers as a severe pathogen causing the fatal honey bee disease American foulbrood, and other members of the genus are either secondary invaders of European foulbrood or considered a threat to honey bees. We thus investigated whether Paenibacillus is a common bacterium associated with various wild bees and hence poses a latent threat to honey bees visiting the same flowers.
Results:
We collected 202 samples from 82 individuals or nests of 13 bee species at the same location and screened each for Paenibacillus using high-throughput sequencing-based 16S metabarcoding. We then isolated the identified strain Paenibacillus MBD-MB06 from a solitary bee nest and sequenced its genome. We did find conserved toxin genes and such encoding for chitin-binding proteins, yet none specifically related to foulbrood virulence or chitinases. Phylogenomic analysis revealed a closer relationship to strains of root-associated Paenibacillus rather than strains causing foulbrood or other accompanying diseases. We found anti-microbial evidence within the genome, confirmed by experimental bioassays with strong growth inhibition of selected fungi as well as gram-positive and gram-negative bacteria.
Conclusions:
The isolated wild bee associate Paenibacillus MBD-MB06 is a common, but irregularly occurring part of wild bee microbiomes, present on adult body surfaces and guts and within nests especially in megachilids. It was phylogenetically and functionally distinct from harmful members causing honey bee colony diseases, although it shared few conserved proteins putatively toxic to insects that might indicate ancestral predisposition for the evolution of insect pathogens within the group. By contrast, our strain showed anti-microbial capabilities and the genome further indicates abilities for chitin-binding and biofilm-forming, suggesting it is likely a useful associate to avoid fungal penetration of the bee cuticula and a beneficial inhabitant of nests to repress fungal threats in humid and nutrient-rich environments of wild bee nests.
Two-component cyclase opsins of green algae are ATP-dependent and light-inhibited guanylyl cyclases
(2018)
Background:
The green algae Chlamydomonas reinhardtii and Volvox carteri are important models for studying light perception and response, expressing many different photoreceptors. More than 10 opsins were reported in C. reinhardtii, yet only two—the channelrhodopsins—were functionally characterized. Characterization of new opsins would help to understand the green algae photobiology and to develop new tools for optogenetics.
Results:
Here we report the characterization of a novel opsin family from these green algae: light-inhibited guanylyl cyclases regulated through a two-component-like phosphoryl transfer, called “two-component cyclase opsins” (2c-Cyclops). We prove the existence of such opsins in C. reinhardtii and V. carteri and show that they have cytosolic N- and C-termini, implying an eight-transmembrane helix structure. We also demonstrate that cGMP production is both light-inhibited and ATP-dependent. The cyclase activity of Cr2c-Cyclop1 is kept functional by the ongoing phosphorylation and phosphoryl transfer from the histidine kinase to the response regulator in the dark, proven by mutagenesis. Absorption of a photon inhibits the cyclase activity, most likely by inhibiting the phosphoryl transfer. Overexpression of Vc2c-Cyclop1 protein in V. carteri leads to significantly increased cGMP levels, demonstrating guanylyl cyclase activity of Vc2c-Cyclop1 in vivo. Live cell imaging of YFP-tagged Vc2c-Cyclop1 in V. carteri revealed a development-dependent, layer-like structure at the immediate periphery of the nucleus and intense spots in the cell periphery.
Conclusions:
Cr2c-Cyclop1 and Vc2c-Cyclop1 are light-inhibited and ATP-dependent guanylyl cyclases with an unusual eight-transmembrane helix structure of the type I opsin domain which we propose to classify as type Ib, in contrast to the 7 TM type Ia opsins. Overexpression of Vc2c-Cyclop1 protein in V. carteri led to a significant increase of cGMP, demonstrating enzyme functionality in the organism of origin. Fluorescent live cell imaging revealed that Vc2c-Cyclop1 is located in the periphery of the nucleus and in confined areas at the cell periphery.
Rhodopsin-cyclases for photocontrol of cGMP/cAMP and 2.3 Å structure of the adenylyl cyclase domain
(2018)
The cyclic nucleotides cAMP and cGMP are important second messengers that orchestrate fundamental cellular responses. Here, we present the characterization of the rhodopsinguanylyl cyclase from Catenaria anguillulae (CaRhGC), which produces cGMP in response to green light with a light to dark activity ratio > 1000. After light excitation the putative signaling state forms with tau = 31 ms and decays with tau = 570 ms. Mutations (up to 6) within the nucleotide binding site generate rhodopsin-adenylyl cyclases (CaRhACs) of which the double mutated YFP-CaRhAC (E497K/C566D) is the most suitable for rapid cAMP production in neurons. Furthermore, the crystal structure of the ligand-bound AC domain (2.25 angstrom) reveals detailed information about the nucleotide binding mode within this recently discovered class of enzyme rhodopsin. Both YFP-CaRhGC and YFP-CaRhAC are favorable optogenetic tools for non-invasive, cell-selective, and spatio-temporally precise modulation of cAMP/cGMP with light.
The plant cuticle is a continuous extracellular protective layer covering the outermost surfaces of higher plants that are in contact with the surrounding atmosphere. The primary function of the cuticular lipid membrane, which is mainly composed of biopolymer cutin and cuticular waxes, is to protect the plant organs against uncontrolled water loss. The chemical composition and the biophysical properties of cuticular waxes affect the rate of water diffusion across the cuticle. Fruit transpiration plays an important role in the development and the maintenance of fruit quality. The fruit has been suggested to present better dehydration stress tolerance than the leaf. However, the differences in transpiration and the chemical composition of cuticular waxes between fruit and leaf have yet to be comprehensively investigated.
The present study aims to investigate the water permeability and cuticular wax composition of fruit and leaf cuticles of a wide range of plant species and to elucidate the different roles of the cuticular wax components in the transpiration barrier. To address these objectives, fruit and leaf samples from 17 species were investigated. The cuticular transpiration of intact fruits and astomatous adaxial leaf surfaces and the minimum leaf conductance obtained by leaf drying curves for intact leaves were gravimetrically determined for a variety of plant species. The chemical composition of cuticular waxes of fruits and leaves was thoroughly analysed by gas chromatography with flame ionization and mass spectrometry.
The water permeability of fruits ranged from 3.7 x 10-5 m s-1 (Prunus domestica subsp. syriaca) to 37.4 x 10-5 m s-1 (Coffea arabica), whereas permeability for leaves varied between 1.6 x 10-5 m s-1 (Cornus officinalis) and 4.5 x 10-5 m s-1 (Prunus domestica subsp. syriaca (L.)). The interspecies range of water permeability of fruits was significantly higher than that of leaves. Chemical analyses of the cuticular waxes demonstrated that fatty acids, primary alcohols, n-alkanes, aldehydes and alkyl esters were the predominant very-long-chain aliphatic compound classes of fruit and leaf surfaces. Sterols, such as β-sitosterol and campesterol, and triterpenoids, such as oleanolic acid, ursolic acid, α-amyrin and ß-amyrin, were the major cyclic compound classes in the cuticular wax membrane.
The amount and composition of cuticular waxes of both fruits and leaves varied at an intraspecific level. There were no significant correlations between the total cuticular wax load or the individual cuticular wax composition and the water permeability of fruits or leaves independently or together. After combining the fruit and leaf data set, a significant correlation between the average chain length of very-long-chain aliphatic compounds and permeabilities was detected, i.e. the longer the average chain length, the lower the water permeability.
Interestingly, n-Nonacosane (C29) was abundantly detected in fruit waxes of Rosaceae species. These fruits exhibited a relatively low transpiration level, which was very close to their leaf cuticular permeability. The present study suggests that the lower cuticular permeability of leaves, in comparison to that of fruits, may be attributed to the longer average chain length of aliphatic compounds. The accumulation of total wax, triterpenoids and aliphatic compounds may not contribute to the transpiration barrier directly. The present results are highly consistent with the previous model assumptions for the cuticular structure and transport barrier. Furthermore, this comparative study on leaf and fruit cuticles provides further insights linking the cuticular wax chemistry to the physiological properties of the plant cuticle.
Malvaviscus arboreus Cav. is a medicinal plant belonging to family Malvaceae with both ethnomedical and culinary value; however, its phytochemical and biological profiles have been scarcely studied. Accordingly, this work was designed to explore the chemical composition and the hepatoprotective potential of M. arboreus against carbon tetrachloride (CCl\(_4\))-induced hepatotoxicity. The total extract of the aerial parts and its derived fractions (petroleum ether, dichloromethane, ethyl acetate, and aqueous) were orally administered to rats for six consecutive days, followed by injection of CCl\(_4\) (1:1 v/v, in olive oil, 1.5 ml/kg, i.p.) on the next day. Results showed that the ethyl acetate and dichloromethane fractions significantly alleviated liver injury in rats as indicated by the reduced levels of alanine transaminase (ALT), aspartate transaminase (AST), alkaline phosphatase (ALP), total bilirubin (TB), and malondialdehyde (MDA), along with enhancement of the total antioxidant capacities of their livers, with the maximum effects were recorded by the ethyl acetate fraction. Moreover, the protective actions of both fractions were comparable to those of silymarin (100 mg/kg), and have been also substantiated by histopathological evaluations. On the other hand, liquid chromatography-high resolution electrospray ionization mass spectrometry (LC‒HR‒ESI‒MS) metabolomic profiling of the crude extract of M. arboreus aerial parts showed the presence of a variety of phytochemicals, mostly phenolics, whereas the detailed chemical analysis of the most active fraction (i.e. ethyl acetate) resulted in the isolation and identification of six compounds for the first time in the genus, comprising four phenolic acids; β-resorcylic, caffeic, protocatechuic, and 4-hydroxyphenylacetic acids, in addition to two flavonoids; trifolin and astragalin. Such phenolic principles, together with their probable synergistic antioxidant and liver-protecting properties, seem to contribute to the observed hepatoprotective potential of M. arboreus.
The number of plants pollinated by ants is surprisingly low given the abundance of ants and the fact that they are common visitors of angiosperms. Generally ants are considered as nectar robbers that do not provide pollination service. We studied the pollination system of the endangered dry grassland forb Euphorbia seguieriana and found two ant species to be the most frequent visitors of its flowers. Workers of Formica cunicularia carried five times more pollen than smaller Tapinoma erraticum individuals, but significantly more viable pollen was recovered from the latter. Overall, the viability of pollen on ant cuticles was significantly lower (p < 0.001)-presumably an antibiotic effect of the metapleural gland secretion. A marking experiment suggested that ants were unlikely to facilitate outcrossing as workers repeatedly returned to the same individual plant. In open pollinated plants and when access was given exclusively to flying insects, fruit set was nearly 100%. In plants visited by ants only, roughly one third of flowers set fruit, and almost none set fruit when all insects were excluded. The germination rate of seeds from flowers pollinated by flying insects was 31 +/- 7% in contrast to 1 +/- 1% resulting from ant pollination. We conclude that inbreeding depression may be responsible for the very low germination rate in ant pollinated flowers and that ants, although the most frequent visitors, play a negligible or even deleterious role in the reproduction of E. seguieriana. Our study reiterates the need to investigate plant fitness effects beyond seed set in order to confirm ant-plant mutualisms.
Arbuscular Mycorrhiza and Root Nodule Symbiosis are symbiotic interactions with a high benefit for plant growth and crop production. Thus, it is of great interest to understand the developmental process of these symbioses in detail. We analysed very early symbiotic responses of Medicago truncatula root hair cells, by stimulation with lipochitinoligosaccharides specific for the induction of nodules (Nod-LCOs), or the interaction with mycorrhiza (Myc-LCOs). Intracellular micro electrodes were used, in combination with Ca\(^{2+}\) sensitive reporter dyes, to study the relations between cytosolic Ca\(^{2+}\) signals and membrane potential changes. We found that sulfated Myc- as well as Nod-LCOs initiate a membrane depolarization, which depends on the chemical composition of these signaling molecules, as well as the genotype of the plants that were studied. A successive application of sulfated Myc-LCOs and Nod-LCOs resulted only in a single transient depolarization, indicating that Myc-LCOs can repress plasma membrane responses to Nod-LCOs. In contrast to current models, the Nod-LCO-induced depolarization precedes changes in the cytosolic Ca\(^{2+}\) level of root hair cells. The Nod-LCO induced membrane depolarization thus is most likely independent of cytosolic Ca\(^{2+}\) signals and nuclear Ca\(^{2+}\) spiking.
Sodium-glucose transporters (SGLT) belong to the solute carrier 5 family, which is characterized by sodium dependent transport of sugars and other solutes. In contrast, the human SGLT3 (hSGLT3) isoform, encoded by SLC5A4, acts as a glucose sensor that does not transport sugar but induces membrane depolarization by Na\(^{+}\) currents upon ligand binding. Whole-exome sequencing (WES) of several extended pedigrees with high density of attention-deficit/hyperactivity disorder (ADHD) identified a triplet ATG deletion in SLC5A4 leading to a single amino acid loss (ΔM500) in the hSGLT3 protein imperfectly co-segregating with the clinical phenotype of ADHD. Since mutations in homologous domains of hSGLT1 and hSGLT2 were found to affect intestinal and renal function, respectively, we analyzed the functional properties of hSGLT3[wt] and [ΔM500] by voltage clamp and current clamp recordings from cRNA-injected Xenopus laevis oocytes.
The cation conductance of hSGLT3[wt] was activated by application of glucose or the specific agonist 1-desoxynojirimycin (DNJ) as revealed by inward currents in the voltage clamp configuration and cell depolarization in the current clamp mode. Almost no currents and changes in membrane potential were observed when glucose or DNJ were applied to hSGLT3[ΔM500]-injected oocytes, demonstrating a loss of function by this amino acid deletion in hSGLT3. To monitor membrane targeting of wt and mutant hSGLT3, fusion constructs with YFP were generated, heterologously expressed in Xenopus laevis oocytes and analyzed for membrane fluorescence by confocal microscopy. In comparison to hSGLT3[wt] the fluorescent signal of mutant [ΔM500] was reduced by 43% indicating that the mutant phenotype might mainly result from inaccurate membrane targeting. As revealed by homology modeling, residue M500 is located in TM11 suggesting that in addition to the core structure (TM1-TM10) of the transporter, the surrounding TMs are equally crucial for transport/sensor function.
In conclusion, our findings indicate that the deletion [ΔM500] in hSGLT3 inhibits membrane targeting and thus largely disrupts glucose-induced sodium conductance, which may, in interaction with other ADHD risk-related gene variants, influence the risk for ADHD in deletion carriers.
Optogenetic manipulation of cells or living organisms became widely used in neuroscience following the introduction of the light-gated ion channel channelrhodopsin-2 (ChR2). ChR2 is a non-selective cation channel, ideally suited to depolarize and evoke action potentials in neurons. However, its calcium (Ca2\(^{2+}\)) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca\(^{2+}\) might be desirable. Moreover, there is need for an efficient light-gated potassium (K\(^{+}\)) channel that can rapidly inhibit spiking in targeted neurons. Considering the importance of Ca\(^{2+}\) and K\(^{+}\) in cell physiology, light-activated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca\(^{2+}\) or for K\(^{+}\), respectively. Optimized fusion constructs showed strong light-gated conductance in Xenopus laevis oocytes and in rat hippocampal neurons. These constructs could also be used to control the motility of Drosophila melanogaster larvae, when expressed in motoneurons. Illumination led to body contraction when motoneurons expressed the light-sensitive Ca\(^{2+}\)-permeant channel, and to body extension when expressing the light-sensitive K\(^{+}\) channel, both effectively and reversibly paralyzing the larvae. Further optimization of these constructs will be required for application in adult flies since both constructs led to eclosion failure when expressed in motoneurons.
Plants are exposed to high temperature, especially during hot summer days. Temperatures are typically lowest in the morning and reach a maximum in the afternoon. Plants can tolerate and survive short-term heat stress even on hot summer days. A. thaliana seedlings have been reported to tolerate higher temperatures for different time periods, a phenomenon that has been termed basal thermotolerance. In addition, plants have the inherent capacity to acclimate to otherwise lethal temperatures. Arabidopsis thaliana seedlings acclimate at moderately elevated temperatures between 32–38° C. During heat acclimation, a genetically programmed heat shock response (HSR) is triggered that is characterized by a rapid activation of heat shock transcription factors (HSFs), which trigger a massive accumulation of heat shock proteins that are chiefly involved in protein folding and protection.
Although the HSF-triggered heat-shock response is well characterized, little is known about the metabolic adjustments during heat stress. The aim of this work was to get more insight into heat-responsive metabolism and its importance for thermotolerance.
In order to identify the response of metabolites to elevated temperatures, global metabolite profiles of heat-acclimated and control seedlings were compared. Untargeted metabolite analyses revealed that levels of polyunsaturated triacylglycerols (TG) rapidly increase during heat acclimation. TG accumulation was found to be temperature-dependent in a temperature range from 32–50° C (optimum at 42° C). Heat-induced TG accumulation was localized in extra-chloroplastic compartments by chloroplast isolation as well as by fluorescence microscopy of A. thaliana cell cultures.
Analysis of mutants deficient in all four HSFA1 master regulator genes or the HSFA2 gene revealed that TG accumulation occurred independently to HSF. Moreover, the TG response was not limited to heat stress since drought and salt stress (but not short-term osmotic, cold and high light stress) also triggered an accumulation of TGs.
In order to reveal the origin of TG synthesis, lipid analysis was carried out. Heat-induced accumulation of TGs does not derive from massive de novo fatty acid (FA) synthesis. On the other hand, lipidomic analyses of A. thaliana seedlings indicated that polyunsaturated FA from thylakoid galactolipids are incorporated into cytosolic TGs during heat stress. This was verified by lipidomic analyses of A. thaliana fad7/8 transgenic seedlings, which displayed altered FA compositions of plastidic lipids. In addition, wild type A. thaliana seedlings displayed a rapid conversion of plastidic monogalactosyldiacylglycerols (MGDGs) into oligogalactolipids, acylated MGDGs and diacylglycerols (DGs). For TG synthesis, DG requires a FA from the acyl CoA pool or phosphatidylcholine (PC). Seedlings deficient in phospholipid:diacylglycerol acyltransferase1 (PDAT1) were unable to accumulate TGs following heat stress; thus PC appears to be the major FA donor for TGs during heat treatment. These results suggest that TG and oligogalactolipid accumulation during heat stress is driven by post-translationally regulated plastid lipid metabolism.
TG accumulation following heat stress was found to increase basal thermotolerance. Pdat1 mutant seedlings were more sensitive to severe heat stress without prior acclimatization, as revealed by a more dramatic decline of the maximum efficiency of PSII and lower survival rate compared to wild type seedlings. In contrast, tgd1 mutants over-accumulating TGs and oligogalactolipids displayed a higher basal thermotolerance compared to wild type seedlings. These results therefore suggest that accumulation of TGs increases thermotolerance in addition to the genetically encoded heat shock response.
Host–microbe interactions are the key to understand why and how microbes inhabit specific environments. With the scientific fields of microbial genomics and metagenomics, evolving on an unprecedented scale, one is able to gain insights in these interactions on a molecular and ecological level. The goal of this PhD thesis was to make (meta–)genomic data accessible, integrate it in a comparative manner and to gain comprehensive taxonomic and functional insights into bacterial strains and communities derived from two different environments: the phyllosphere of Arabidopsis thaliana and the mesohyl interior of marine sponges.
This thesis focused first on the de novo assembly of bacterial genomes. A 5–step protocol was developed, each step including a quality control. The examination of different assembly software in a comparative way identified SPAdes as most suitable. The protocol enables the user to chose the best tailored assembly. Contamination issues were solved by an initial filtering of the data and methods normally used for the binning of metagenomic datasets. This step is missed in many published assembly pipelines. The described protocol offers assemblies of high quality ready for downstream analysis.
Subsequently, assemblies generated with the developed protocol were annotated and explored
in terms of their function. In a first study, the genome of a phyllosphere bacterium, Williamsia sp. ARP1, was analyzed, offering many adaptions to the leaf habitat: it can deal with temperature shifts, react to oxygen species, produces mycosporins as protection against UV–light, and is able to uptake photosynthates. Further, its taxonomic position within the Actinomycetales was infered from 16S rRNA and comparative genomics showing the close relation between the genera Williamsia and Gordonia.
In a second study, six sponge–derived actinomycete genomes were investigated for secondary metabolism. By use of state–of–the–art software, these strains exhibited numerous gene clusters, mostly linked to polykethide synthases, non–ribosomal peptide synthesis, terpenes, fatty acids and saccharides. Subsequent predictions on these clusters offered a great variety of possible produced compounds with antibiotic, antifungal or anti–cancer activity. These analysis highlight the potential for the synthesis of natural products and the use of genomic data as screening toolkit.
In a last study, three sponge–derived and one seawater metagenomes were functionally compared. Different signatures regarding the microbial composition and GC–distribution were observed between the two environments. With a focus on bacerial defense systems, the data indicates a pronounced repertoire of sponge associated bacteria for bacterial defense systems, in particular, Clustered Regularly Interspaced Short Palindromic Repeats, restriction modification system, DNA phosphorothioation and phage growth limitation. In addition, characterizing genes for secondary metabolite cluster differed between sponge and seawater microbiomes. Moreover, a variety of Type I polyketide synthases were only found within the sponge microbiomes. With that, metagenomics are shown to be a useful tool for the screening of secondary metabolite genes. Furthermore, enriched defense systems are highlighted as feature of sponge-associated microbes and marks them as a selective trait.
Antikörper, die Oberflächenantigene erkennen, sind sowohl in der Diagnostik als auch in der Therapie verschiedener Erkrankungen von enormer Bedeutung. Damit Antikörper in diesen Bereichen eingesetzt werden können, ist es sehr wichtig, dass die Interaktion eines Antikörpers oder auch eines Antikörperkonjugats mit seinem Antigen oder Fc-Rezeptoren ausreichend charakterisiert wird. Hierfür werden meist zellfreie Verfahren angewandt, wie die isotherme Titrationskalorimetrie oder die Oberflächenplasmonenresonanzspektroskopie. Diese unterliegen verschiedenen Limitationen, beispielsweise der Verfügbarkeit von rekombinantem Antigen. Vor allem aber werden zelluläre Einflüsse, die die Bindungseigenschaften der Antikörper beeinflussen, nicht berücksichtigt. Aber auch die derzeit angewandten Verfahren für zelluläre Bindungsstudien können problematisch sein, da sie meist auf Antikörpern basieren, die biochemisch markiert worden sind, was zu funktionellen Beeinträchtigungen führen kann. Außerdem zeigen solche Antikörper häufig keine einheitliche Stöchiometrie der jeweiligen Reporterstoffe und die Reproduzierbarkeit des Markierungsverfahrens ist in den meisten Fällen nicht gewährleistet. Positionsspezifische Markierungen sind jedoch vergleichsweise sehr aufwendig.
Um die genannten Probleme zu umgehen, wurden in der vorliegenden Arbeit am Beispiel des Fn14-spezifischen Antikörpers 18D1 Antikörper-Fusionsproteine hergestellt und charakterisiert, die an verschiedenen Positionen genetisch mit der Gaussia princeps Luziferase (GpL) fusioniert worden sind. Dabei zeigte sich, dass die Positionierung der Luziferase am C-Terminus der leichten Kette des Antikörpers (GpL(CT-LC)) die Bindungseigenschaften der GpL-18D1-IgG1-Fusionsproteine an Fn14 und an die verschiedenen Fcγ-Rezeptoren (FcγR) nicht oder nur in geringem Umfang beeinflusst. Auch die agonistische Aktivität der GpL-18D1-IgG1-Fusionsproteine, welche abhängig ist von der Oligomerisierung über Protein G oder der FcγR-Bindung, wurde durch die GpL-Markierung nicht wesentlich beeinflusst. Diese Ergebnisse ließen sich am Bespiel von 18D1 ebenfalls auf die dimeren Antikörper-Isotypen IgG2, mIgG1 und mIgG2A übertragen. GpL-Fusionsproteine der Antikörper E09-IgG1 (CD95-spezifisch), G28.5-IgG1 (CD40-spezifisch) und BHA10-IgG1 (LTβR-spezifisch) zeigten gleichfalls keine gravierenden Veränderungen der Bindungseigenschaften oder den funktionellen Eigenschaften, was für eine breite Anwendbarkeit von GpL-Antikörper-Fusionsproteinen spricht.
Zusammenfassend betrachtet zeigen die hier präsentierten Ergebnisse, dass die genetische Fusion der Gaussia princeps Luziferase an das C-terminale Ende der leichten Antikörperkette eine sehr gute Möglichkeit darstellt, Antigen-Antikörper-Interaktionen zu charakterisieren ohne dabei mit den Eigenschaften des Antikörpers zu interferieren. Dabei besticht dieser Ansatz im Vergleich zu anderen gängigen Verfahren durch seine Reproduzierbarkeit, eine einfache Handhabung, geringe Kosten und eine extrem hohe Sensitivität. Außerdem könnte dieses Antikörper-Fusionsproteinformat zukünftig auch in vielen Bereichen als Tracer eingesetzt werden mit dem Vorteil, dass keinerlei Radioaktivität benötigt werden würde.
Pollenschläuche sind ein Modellsystem zur Untersuchung pflanzlicher Wachstumsprozesse. Zellwachstum in Pollenschläuchen zeichnet sich durch den gerichteten Transport und Fusion von Vesikeln mit der apikalen Zellmembran des Pollenschlauchs aus. Der Vesikeltransport erfolgt entlang des Pollenschlauchs durch Aktin-Filamente bis an die Organell- und Zytoskelett-freie apikale Zone, wo sich die Vesikel sammeln und in oszillierenden Wachstumsschüben mit der apikalen Zellmembran fusionieren (Yang et al., 1998; Zonia et al., 2001, Gu et al., 2005; Chen et al., 2003; Gu et al., 2005; de Graaf et al., 2005; Lee et al., 2008; Cheung et al., 2010; Quin und Yang et al., 2011). Die polaren Wachstumsprozesse des Pollenschlauches sind an ein Ionenflussmuster gekoppelt, welches durch den Einsatz der Vibrating Probe-Technik zeitlich aufgelöst werden konnten. Es konnte ein zeitversetzter oszillierender Einstrom von Calcium, Kalium und Protonen sowie der zeitgleich mit den Wachstumsschüben auftretende oszillierende Ausstrom von Chlorid aus der Pollenschlauchspitze nachgewiesen werden (Kühtreiber und Jaffe et al., 1990; Holdaway-Clarke et al., 1997; Feijo et al., 1999, Messerli et al., 1999, Zonia et al., 2001). Die Inhibierung des Chloridausstroms resultiert in einem sofortigen Wachstumsstopp und verdeutlicht die Notwendigkeit des Anionenausstroms für das polare Zellwachstum in Pollenschläuchen (Breygina et al., 2009).
Durch die in dieser Arbeit durchgeführten Experimente konnten die an dem Anionenausstrom beteiligten Anionenkanäle, sowie deren Ca2+-abhängigen regulatorischen Komponenten identifiziert und mit Hilfe der TEVC-Technik elektrophysiologisch an intakten Arabidopsis thaliana-Pollenschläuchen charakterisiert werden. Weiterhin konnte die physiologische Rolle der für den Anionenausstrom verantwortlichen Kanäle auf das polare Zellwachstum in Arabidopsis thaliana Pollenschläuchen nachgewiesen werden.
Durch Transkriptionsanalysen wurde die Expression des S-Typ-Anionenkanals SLAH3 sowie der R-Typ-Anionenkanäle ALMT12, ALMT13 und ALMT14 in Arabidopsis thaliana Pollenschläuchen belegt und deren transkriptionelle Regulation durch die Anionenkonzentration und Komposition des Keimungsmediums nachgewiesen werden. Eine elektrophysiologische Charakterisierung an intakten Arabidopsis thaliana Pollenschläuchen konnte sowohl einen Anstieg der SLAH3 vermittelten S-Typ-Ströme, als auch ALMT12-, ALMT13- und ALMT14 vermittelte R Typ-Anionenströme bei steigenden Anionenkonzentrationen im Keimungsmedium nachweisen. Die Charakterisierung der Verlustmutanten von SLAH3, ALMT12, ALMT13 und ALMT14 resultierte in einer Abnahme des Anionenausstroms und einer Reduktion des Längenwachstums der getesteten Mutanten. Es konnten ebenfalls die regulatorischen Komponenten der Signalkette zur Anionenkanalaktivierung identifiziert werden. Die Aktivierung von SLAH3 und ALMT12 durch die Calcium-abhängigen Kinasen CPK2, CPK20 und CPK6 aus Arabidopsis thaliana Pollenschläuchen konnte mittels einer Kombination von elektrophysiologischen- und molekularbiologischen Techniken nachgewiesen werden. Somit wurden nicht nur die für den Anionenausstrom verantwortlichen Anionenkanäle identifiziert, sondern auch die Signalkette zu deren Aktivierung durch spitzenlokalisierte Calcium-abhängige Kinasen aufgeklärt werden. Diese Signalkaskade führt ebenfalls durch die artifizielle Erhöhung der zytoplasmatischen Calciumkonzentration durch das Calcium-Ionophor A23187 zu einem Anstieg des S Typ- und R Typ Anionenkanalaktivität in Arabidopsis thaliana-Pollenschläuchen.
Eine intensivere Charakterisierung des entdeckten Calcium-vermittelten Anionenausstroms erfolgte am transgenen pLat52-Chlorid-Sensor bzw. an YC3.6 Tabak Pollenschläuchen durch die Kombination von TEVC-Technik und Fluoreszensmikroskopie. Dies ermöglichte die simultane Messung der zytoplasmatischen Calcium- bzw. Chloridkonzentration in Nicotiana tabacum Pollenschläuchen bei gleichzeitiger Ableitung der Ganzzellströme. Die elektrophysiologische und fluoreszenzmikroskopische Charakterisierung erbrachte erstmals den Nachweis für eine exklusive Lokalisation von hyperpolarisations-aktivierten Calciumkanälen in der Pollenschlauchspitze, welche sich durch die Verwendung der TEVC-Technik gezielt aktivieren ließen. Diese Aktivierung der spitzenlokalisierten Calciumkanäle induziert den Anionenausstrom durch den Anstieg der apikalen Calciumkonzentration. Die Inhibierung der Calciumkanäle durch den Calciumkanalblocker Lanthan führt zu einem vollständigen Verlust des Calciumeinstroms und des daraus resultierenden Anioneneinstroms. Durch die Inhibierung der Calciumkanäle kommt es gleichzeitig zu einer Akkumulation von Chlorid in der apikalen Zone, die zum Anschwellen der Pollenschlauchspitze führt. Die Inhibierung der Anionenkanäle durch Niflumsäure hat hingegen keinen Einfluss auf den spitzenlokalisierten Calciumeinstrom, sondern reduziert nur den gemessenen Anionenausstrom. Somit wird ein kausaler Zusammenhang zwischen der Erhöhung der apikalen Ca2+-Konzentration und einer Anionenkanalaktivierung weiter verdeutlicht. Durch die Anwendung der TEVC-Technik an intakten Pollenschläuchen konnten erstmals Aktionspotenzial ähnliche Depolarisierungstransienten, welche sich auf die apikale Zone des Pollenschlauchs beschränken und zeitgleich mit dem Anionenausstrom stattfinden, nachgewiesen werden.
Durch diese Arbeit kann erstmals ein Modell des Calcium-vermittelten oszillierenden Anionenausstroms aus der Pollenschlauchspitze aufgestellt werden. Dieses verknüpft die Regulation der beteiligten R-Typ-Anionenkanäle ALMT12, ALMT13 und ALMT14 und des S-Typ-Anionenkanals SLAH3 durch die Calcium-abhängigen Kinasen CPK2, CPK20 und CPK6 mit dem spitzenlokalisierten oszillierenden Calciumeinstrom. Das Modell verdeutlicht die physiologische Bedeutung des simultanen Ca2+-Ein- und Anionenausstroms für das polare Zellwachstum von Pollenschläuchen.
Latrophilin, alternatively named calcium-independent receptor of α-latrotoxin (CIRL), resembles a prototype of the adhesion class G-protein coupled receptors (GPCRs). Initially identified as a high-affinity receptor for α-latrotoxin, a component of the black widow spider, latrophilins are now associated with various distinct functions, such as synaptic exocytosis, tissue polarity and fertility (Tobaben et al., 2002; Langenhan et al., 2009; Promel et al., 2012). Despite these exploratory efforts the precise subcellular localisation as well as the endogenous ligand of CIRL still remains elusive. In this work genetic experiments, imaging approaches and behavioural studies have been used to unravel the localisation and physiological function of the latrophilin homolog dCirl in Drosophila melanogaster. Containing only one latrophilin homolog together with its genetic accessibility and well-established transgenic approaches, Drosophila seemed an ideally suited model organism. The present study showed that dCirl is widely expressed in the larval central nervous system including moto- and sensory neurons. Further, this work revealed that removal of the latrophilin homolog does not greatly affect synaptic transmission but it seems that aspects of the postsynaptic structural layout are controlled by dCIRL in the fruit fly. Additionally, dCirl expression at the transcriptional level was confirmed in larval and adult chordotonal organs, specialised mechanosensors implicated in proprioception (Eberl, 1999). Expression of dCIRL at the protein level could not yet been confirmed in moto- and sensory neurons likely due to low endogenous expression. However, behavioural studies using dCirl knockout mutant larvae indicated a putative mechanosensory function of dCIRL regarding touch sensitivity and locomotion behaviour.
The second part of this thesis presents a strategy to examine interactions between several presynaptic proteins in living cells. The attempt described in this work is based on the discovery that GFP when split into two non-fluorescent fragments can form a fluorescent complex. The association of the fragments can be facilitated by fusing them to two proteins that interact with each other. Therefore, the split GFP method enables direct visualization of synaptic protein interactions in living cells. In initial experiments I could show that full length reporter protein fusions with n-Synaptobrevin (n-Syb), Synaptotagmin (Syt) and Syntaxin (Syx) allow expression in Drosophila and confirmed that fusion to either end of each synaptic protein did not impair expression or influence the viability of transgenic flies. Further, transgenes containing protein fusions of Syx, Syt, and n-Syb with split GFP fragments were established in previous studies (Gehring, 2010). The present work characterises the interaction of these protein fusions during different stages of synaptic vesicle turnover at active zones such as synaptic vesicle docking at the presynaptic membrane and vesicle fusion. These results suggest that the spGFP assay seems only partly suitable for resolving fast and transient protein-protein interactions at larval Drosophila active zones in vivo.
Optogenetics is a method to control the cell activity with light by expression of a natural or engineered photoreceptor via genetic modification technology. Optogenetics early success came with the light-gated cation channel "Channelrhodopsin-2" in neurons and expanded from neuroscience to other research fields such as cardiac research and cell signaling, also due to the enrichment by new photoreceptors. In this study, I focus on searching and characterizing new photoreceptors to expand the optogenetic tool box. In this work I characterize three newly discovered microbial rhodopsins and some engineered mutants of them.
The first rhodopsin is a proton pump from the diatom Fragilariopsis cylindrus, Fragilariopsis Rhodopsin or abbreviated: FR. I cloned the full-length FR and proved it to be a light-activated proton pump with high efficacy in comparison to Bacteriorhodopsin (BR). During this study, I also developed a new method to improve the plasma membrane targeting of several microbial rhodopsins. I also obtained a FR mutant (channel-like FR or chFR) which behaves like a light-gated proton channel. FR can be used for optogenetic hyperpolarization or alkalization of a cell while the chFR could be used for depolarization or lowering of the cellular pH. The induction of FR expression under iron-limited conditions in the diatom indicated an alternative energy generation mechanism of F. cylindrus when iron-containing enzymes are scarce.
I then characterized a new microbial rhodopsin with novel light-regulated Guanylyl Cyclase (GC) activity. This rhodopsin guanylyl cyclase from the fungus Blastocladiella emersonii (B.e. CyclaseOpsin or BeCyclOp) has been proven by me to be an efficient light-gated GC with high specificity and fast kinetics. BeCyclOp also has a novel structure with eight transmembrane helices, containing a long cytosolic N-terminus which participates in the tight regulation of the GC activity. In collaboration with Prof. Alexander Gottschalk (Univ. Frankfurt/M.), BeCyclOp has been tested in muscle cells and sensory neurons of Caenorhabditis elegans and proven to be a powerful optogenetic tool in a living animal. I also generated a BeCyclOp mutant with enhanced light sensitivity.
Already more than ten years ago, guanylyl cyclase rhodopsins were suggested to exist in Chlamydomonas reinhardtii by analyzing genomic sequence data. But until now no functional proof existed. By further cloning and sequencing I discovered such a rhodopsin with light-regulated guanylyl cyclase activity. This functional Cyclaseopsin (COP6c) is quite different to BeCyclOp, as it was proven to be a light-inhibited GC. Cop6c is much larger than BeCyclOp with a His-Kinase and a response regulator domain between the rhodopsin and the cyclase domain.
I also introduced a new strategy for generating optogenetic tools by fusing the photoactivated adenylyl cyclase bPAC to two different CNG channels. These new tools function via light-gated cAMP production and subsequent CNG channel activation. These tools combined the properties of bPAC (highly sensitive to blue light) and CNG channels (high single-channel conductance and high Ca2+ permeability), as demonstrated by expression in Xenopus oocytes. As a further benefit the fusing of bPAC to CNG channels leads to a bPAC with a more than tenfold reduced dark activity which is a valuable improvement for bPAC itself as an optogenetic tool.
Multiple myeloma (MM), a malignancy of the bone marrow, is characterized by a pathological increase in antibody-producing plasma cells and an increase in immunoglobulins (plasmacytosis). In recent years, bone morphogenetic proteins (BMPs) have been reported to be activators of apoptotic cell death in neoplastic B cells in MM. Here, we use bone morphogenetic protein 2 (BMP2) to show that the "apoptotic" effect of BMPs on human neoplastic B cells is dominated by anti-proliferative activities and cell cycle arrest and is apoptosis-independent. The anti-proliferative effect of BMP2 was analysed in the human cell lines KMS12-BM and L363 using WST-1 and a Coulter counter and was confirmed using CytoTox assays with established inhibitors of programmed cell death (zVAD-fmk and necrostatin-1). Furthermore, apoptotic activity was compared in both cell lines employing western blot analysis for caspase 3 and 8 in cells treated with BMP2 and FasL. Additionally, expression profiles of marker genes of different cell death pathways were analysed in both cell lines after stimulation with BMP2 for 48h using an RT-PCR-based array. In our experiments we observed that there was rather no reduction in absolute cell number, but cells stopped proliferating following treatment with BMP2 instead. The time frame (48–72 h) after BMP2 treatment at which a reduction in cell number is detectable is too long to indicate a directly BMP2-triggered apoptosis. Moreover, in comparison to robust apoptosis induced by the approved apoptotic factor FasL, BMP2 only marginally induced cell death. Consistently, neither the known inhibitor of apoptotic cell death zVAD-fmk nor the necroptosis inhibitor necrostatin-1 was able to rescue myeloma cell growth in the presence of BMP2.
A new cyclic dipeptide, petrocidin A (\(\textbf{1}\)), along with three known compounds—2,3-dihydroxybenzoic acid (\(\textbf{2}\)), 2,3-dihydroxybenzamide (\(\textbf{3}\)), and maltol (\(\textbf{4}\))—were isolated from the solid culture of \(Streptomyces\) sp. SBT348. The strain \(Streptomyces\) sp. SBT348 had been prioritized in a strain collection of 64 sponge-associated actinomycetes based on its distinct metabolomic profile using liquid chromatography/high-resolution mass spectrometry (LC-HRMS) and nuclear magnetic resonance (NMR). The absolute configuration of all α-amino acids was determined by HPLC analysis after derivatization with Marfey’s reagent and comparison with commercially available reference amino acids. Structure elucidation was pursued in the presented study by mass spectrometry and NMR spectral data. Petrocidin A (\(\textbf{1}\)) and 2,3-dihydroxybenzamide (\(\textbf{3}\)) exhibited significant cytotoxicity towards the human promyelocytic HL-60 and the human colon adenocarcinoma HT-29 cell lines. These results demonstrated the potential of sponge-associated actinomycetes for the discovery of novel and pharmacologically active natural products.
Embryo implantation requires a hospitable uterine environment. A key metabolic change that occurs during the peri-implantation period, and throughout early pregnancy, is the rise in endometrial glycogen content. Glycogen accumulation requires prior cellular uptake of glucose. Here we show that both human and murine endometrial epithelial cells express the high affinity Na\(^+\)-coupled glucose carrier SGLT1. Ussing chamber experiments revealed electrogenic glucose transport across the endometrium in wild type (\(Slc5a1^{+/+}\)) but not in SGLT1 defcient (\(Slc5a1^{−/−}\)) mice. Endometrial glycogen content, litter size and weight of offspring at birth were signifcantly lower in \(Slc5a1^{−/−}\) mice. In humans, \(SLC5A1\) expression was upregulated upon decidualization of primary endometrial stromal cells. Endometrial \(SLC5A1\) expression during the implantation window was attenuated in patients with recurrent pregnancy loss when compared with control subjects. Our fndings reveal a novel mechanism establishing adequate endometrial glycogen stores for pregnancy. Disruption of this histiotrophic pathway leads to adverse pregnancy outcome.
Marine sponge-derived Streptomyces sp SBT343 extract inhibits staphylococcal biofilm formation
(2017)
Staphylococcus epidermidis and Staphylococcus aureus are opportunistic pathogens that cause nosocomial and chronic biofilm-associated infections. Indwelling medical devices and contact lenses are ideal ecological niches for formation of staphylococcal biofilms. Bacteria within biofilms are known to display reduced susceptibilities to antimicrobials and are protected from the host immune system. High rates of acquired antibiotic resistances in staphylococci and other biofilm-forming bacteria further hamper treatment options and highlight the need for new anti-biofilm strategies. Here, we aimed to evaluate the potential of marine sponge-derived actinomycetes in inhibiting biofilm formation of several strains of S. epidermidis, S. aureus, and Pseudomonas aeruginosa. Results from in vitro biofilm-formation assays, as well as scanning electron and confocal microscopy, revealed that an organic extract derived from the marine sponge-associated bacterium Streptomyces sp. SBT343 significantly inhibited staphylococcal biofilm formation on polystyrene, glass and contact lens surfaces, without affecting bacterial growth. The extract also displayed similar antagonistic effects towards the biofilm formation of other S. epidermidis and S. aureus strains tested but had no inhibitory effects towards Pseudomonas biofilms. Interestingly the extract, at lower effective concentrations, did not exhibit cytotoxic effects on mouse fibroblast, macrophage and human corneal epithelial cell lines. Chemical analysis by High Resolution Fourier Transform Mass Spectrometry (HRMS) of the Streptomyces sp. SBT343 extract proportion revealed its chemical richness and complexity. Preliminary physico-chemical characterization of the extract highlighted the heat-stable and non-proteinaceous nature of the active component(s). The combined data suggest that the Streptomyces sp. SBT343 extract selectively inhibits staphylococcal biofilm formation without interfering with bacterial cell viability. Due to absence of cell toxicity, the extract might represent a good starting material to develop a future remedy to block staphylococcal biofilm formation on contact lenses and thereby to prevent intractable contact lens-mediated ocular infections.
Sponges (phylum Porifera) are evolutionary ancient, sessile filter-feeders that harbor a largely diverse microbial community within their internal mesohyl matrix. Throughout this thesis project, I aimed at exploring the adaptations of these symbionts to life within their sponge host by sequencing and analyzing the genomes of a variety of bacteria from the microbiome of the Mediterranean sponge Aplysina aerophoba. Employed methods were fluorescence-activated cell sorting with subsequent multiple displacement amplification and single-cell / ‘mini-metagenome’ sequencing, and metagenomic sequencing followed by differential coverage binning. These two main approaches both aimed at obtaining genome sequences of bacterial symbionts of A. aerophoba, that were then compared to each other and to references from other environments, to gain information on adaptations to the host sponge environment and on possible interactions with the host and within the microbial community.
Cyanobacteria are frequent members of the sponge microbial community. My ‘mini-metagenome’ sequencing project delivered three draft genomes of “Candidatus Synechococcus spongiarum,” the cyanobacterial symbiont of A. aerophoba and many more sponges inhabiting the photic zone. The most complete of these genomes was compared to other clades of this symbiont and to closely related free-living cyanobacterial references in a collaborative project published in Burgsdorf I*, Slaby BM* et al. (2015; *shared first authorship). Although the four clades of “Ca. Synechococcus spongiarum” from the four sponge species A. aerophoba, Ircinia variabilis, Theonella swinhoei, and Carteriospongia foliascens were approximately 99% identical on the level of 16S rRNA gene sequences, they greatly differed on the genomic level. Not only the genome sizes were different from clade to clade, but also the gene content and a number of features including proteins containing the eukaryotic-type domains leucine-rich repeats or tetratricopeptide repeats. On the other hand, the four clades shared a number of features such as ankyrin repeat domain-containing proteins that seemed to be conserved also among other microbial phyla in different sponge hosts and from different geographic locations. A possible novel mechanism for host phagocytosis evasion and phage resistance by means of an altered O antigen of the lipopolysaccharide was identified.
To test previous hypotheses on adaptations of sponge-associated bacteria on a broader spectrum of the microbiome of A. aerophoba while also taking a step forward in methodology, I developed a bioinformatic pipeline to combine metagenomic Illumina short-read sequencing data with PacBio long-read data. At the beginning of this project, no pipelines to combine short-read and long-read data for metagenomics were published, and at time of writing, there are still no projects published with a comparable aim of un-targeted assembly, binning and analysis of a metagenome. I tried a variety of assembly programs and settings on a simulated test dataset reflecting the properties of the real metagenomic data. The developed assembly pipeline improved not only the overall assembly statistics, but also the quality of the binned genomes, which was evaluated by comparison to the originally published genome assemblies.
The microbiome of A. aerophoba was studied from various angles in the recent years, but only genomes of the candidate phylum Poribacteria and the cyanobacterial sequences from my above-described project have been published to date. By applying my newly developed assembly pipeline to a metagenomic dataset of A. aerophoba consisting of a PacBio long-read dataset and six Illumina short-read datasets optimized for subsequent differential coverage binning, I aimed at sequencing a larger number and greater diversity of symbionts. The results of this project are currently in review by The ISME Journal. The complementation of Illumina short-read with PacBio long-read sequencing data for binning of this highly complex metagenome greatly improved the overall assembly statistics and improved the quality of the binned genomes. Thirty-seven genomes from 13 bacterial phyla and candidate phyla were binned representing the most prominent members of the microbiome of A. aerophoba. A statistical comparison revealed an enrichment of genes involved in restriction modification and toxin-antitoxin systems in most symbiont genomes over selected reference genomes. Both are defense features against incoming foreign DNA, which may be important for sponge symbionts due to the sponge’s filtration and phagocytosis activity that exposes the symbionts to high levels of free DNA. Also host colonization and matrix utilization features were significantly enriched. Due to the diversity of the binned symbiont genomes, a within-symbionts genome comparison was possible, that revealed three guilds of symbionts characterized by i) nutritional specialization on the metabolization of carnitine, ii) specialization on sulfated polysaccharides, and iii) apparent nutritional generalism. Both carnitine and sulfated polysaccharides are abundant in the sponge extracellular matrix and therefore available to the sponge symbionts as substrates. In summary, the genomes of the diverse community of symbionts in A. aerophoba were united in their defense features, but specialized regarding their nutritional preferences.
Hyperglycemia (HG) stimulates the production of reactive oxygen species in the heart through activation of NADPH oxidase 2 (NOX2). This production is independent of glucose metabolism but requires sodium/glucose cotransporters (SGLT). Seven SGLT isoforms (SGLT1 to 6 and sodium-myoinositol cotransporter-1, SMIT1) are known, although their expression and function in the heart remain elusive. We investigated these 7 isoforms and found that only SGLT1 and SMIT1 were expressed in mouse, rat and human hearts. In cardiomyocytes, galactose (transported through SGLT1) did not activate NOX2. Accordingly, SGLT1 deficiency did not prevent HG-induced NOX2 activation, ruling it out in the cellular response to HG. In contrast, myo-inositol (transported through SMIT1) reproduced the toxic effects of HG. SMIT1 overexpression exacerbated glucotoxicity and sensitized cardiomyocytes to HG, whereas its deletion prevented HG-induced NOX2 activation. In conclusion, our results show that heart SMIT1 senses HG and triggers NOX2 activation. This could participate in the redox signaling in hyperglycemic heart and contribute to the pathophysiology of diabetic cardiomyopathy.
Plants have to tightly control their energy homeostasis to ensure survival and fitness under constantly changing environmental conditions. Thus, it is stringently required that energy-consuming stress-adaptation and growth-related processes are dynamically tuned according to the prevailing energy availability. The evolutionary conserved SUCROSE NON-FERMENTING1 RELATED KINASES1 (SnRK1) and the downstream group C/S\(_{1}\) basic leucine zipper (bZIP) transcription factors (TFs) are well-characterised central players in plants’ low-energy management. Nevertheless, mechanistic insights into plant growth control under energy deprived conditions remains largely elusive. In this work, we disclose the novel function of the low-energy activated group S\(_{1}\) bZIP11-related TFs as regulators of auxin-mediated primary root growth. Whereas transgenic gain-of-function approaches of these bZIPs interfere with the activity of the root apical meristem and result in root growth repression, root growth of loss-of-function plants show a pronounced insensitivity to low-energy conditions. Based on ensuing molecular and biochemical analyses, we propose a mechanistic model, in which bZIP11-related TFs gain control over the root meristem by directly activating IAA3/SHY2 transcription. IAA3/SHY2 is a pivotal negative regulator of root growth, which has been demonstrated to efficiently repress transcription of major auxin transport facilitators of the PIN-FORMED (PIN) gene family, thereby restricting polar auxin transport to the root tip and in consequence auxin-driven primary root growth. Taken together, our results disclose the central low-energy activated SnRK1-C/S\(_{1}\)-bZIP signalling module as gateway to integrate information on the plant’s energy status into root meristem control, thereby balancing plant growth and cellular energy resources.
Design and validation of a disease network of inflammatory processes in the NSG-UC mouse model
(2017)
Background: Ulcerative colitis (UC) is a highly progressive inflammatory disease that requires the interaction of epithelial, immune, endothelial and muscle cells and fibroblasts. Previous studies suggested two inflammatory conditions in UC-patients: ‘acute’ and ‘remodeling’ and that the design of a disease network might improve the understanding of the inflammatory processes. The objective of the study was to design and validate a disease network in the NOD-SCID IL2rγ\(^{null}\) (NSG)-UC mouse model to get a better understanding of the inflammatory processes.
Methods: Leukocytes were isolated from the spleen of NSG-UC mice and subjected to flow cytometric analysis. RT-PCR and RNAseq analysis were performed from distal parts of the colon. Based on these analyses and the effects of interleukins, chemokines and growth factors described in the literature, a disease network was designed. To validate the disease network the effect of infliximab and pitrakinra was tested in the NSG-UC model. A clinical- and histological score, frequencies of human leukocytes isolated from spleen and mRNA expression levels from distal parts of the colon were determined.
Results: Analysis of leukocytes isolated from the spleen of challenged NSG-UC mice corroborated CD64, CD163 and CD1a expressing CD14+ monocytes, CD1a expressing CD11b+ macrophages and HGF, TARC, IFNγ and TGFß1 mRNA as inflammatory markers. The disease network suggested that a proinflammatory condition elicited by IL-17c and lipids and relayed by cytotoxic T-cells, Th17 cells and CD1a expressing macrophages and monocytes. Conversely, the remodeling condition was evoked by IL-34 and TARC and promoted by Th2 cells and M2 monocytes. Mice benefitted from treatment with infliximab as indicated by the histological- and clinical score. As predicted by the disease network infliximab reduced the proinflammatory response by suppressing M1 monocytes and CD1a expressing monocytes and macrophages and decreased levels of IFNγ, TARC and HGF mRNA. As predicted by the disease network inflammation aggravated in the presence of pitrakinra as indicated by the clinical and histological score, elevated frequencies of CD1a expressing macrophages and TNFα and IFNγ mRNA levels.
Conclusions: The combination of the disease network and the NSG-UC animal model might be developed into a powerful tool to predict efficacy or in-efficacy and potential mechanistic side effects.
Marine sponges are known as a rich source for novel bioactive compounds with valuable pharmacological potential. One of the most predominant sponge genera is Hyrtios, reported to have various species such as Hyrtios erectus, Hyrtios reticulatus, Hyrtios gumminae, Hyrtios communis, and Hyrtios tubulatus and a number of undescribed species. Members of the genus Hyrtios are a rich source of natural products with diverse and valuable biological activities, represented by different chemical classes including alkaloids, sesterterpenes and sesquiterpenes. This review covers the literature until June 2016, providing a complete survey of all compounds isolated from the genus Hyrtios with their corresponding biological activities whenever applicable.
Electrophilic oxylipins trigger a heat-shock-like response in the absence of heat through the canonical heat-shock transcription factor A1, thereby helping to cope with stresses associated with protein damage.Abiotic and biotic stresses are often characterized by an induction of reactive electrophile species (RES) such as the jasmonate 12-oxo-phytodienoic acid (OPDA) or the structurally related phytoprostanes. Previously, RES oxylipins have been shown massively to induce heat-shock-response (HSR) genes including HSP101 chaperones. Moreover, jasmonates have been reported to play a role in basal thermotolerance. We show that representative HSR marker genes are strongly induced by RES oxylipins through the four master regulator transcription factors HSFA1a, b, d, and e essential for short-term adaptation to heat stress in Arabidopsis. When compared with Arabidopsis seedlings treated at the optimal acclimation temperature of 37 A degrees C, the exogenous application of RES oxylipins at 20 A degrees C induced a much weaker induction of HSP101 at both the gene and protein expression levels which, however, was not sufficient to confer short-term acquired thermotolerance. Moreover, jasmonate-deficient mutant lines displayed a wild-type-like HSR and were not compromised in acquiring thermotolerance. Hence, the OPDA- and RES oxylipin-induced HSR is not sufficient to protect seedlings from severe heat stress but may help plants to cope better with stresses associated with protein unfolding by inducing a battery of chaperones in the absence of heat.
Biogenic volatile organic compounds (BVOCs) produced by plants have a major role in atmospheric chemistry. The different physicochemical properties of BVOCs affect their transport within and out of the plant as well as their reactions along the way. Some of these compounds may accumulate in or on the waxy surface layer of conifer needles and participate in chemical reactions on or near the foliage surface. The aim of this work was to determine whether terpenes, a key category of BVOCs produced by trees, can be found on the epicuticles of Scots pine (Pinus sylvestris L.) and, if so, how they compare with the terpenes found in shoot emissions of the same tree. We measured shoot-level emissions of pine seedlings at a remote outdoor location in central Finland and subsequently analysed the needle surface waxes for the same compounds. Both emissions and wax extracts were clearly dominated by monoterpenes, but the proportion of sesquiterpenes was higher in the wax extracts. There were also differences in the terpene spectra of the emissions and the wax extracts. The results, therefore, support the existence of BVOC associated to the epicuticular waxes. We briefly discuss the different pathways for terpenes to reach the needle surfaces and the implications for air chemistry.
Accumulating evidences have assigned a central role to parasite-derived proteins in immunomodulation. Here, we report on the proteomic identification and characterization of immunomodulatory excretory-secretory (ES) products from the metacestode larva (tetrathyridium) of the tapeworm Mesocestoides corti (syn. M. vogae). We demonstrate that ES products but not larval homogenates inhibit the stimuli-driven release of the pro-inflammatory, Th1-inducing cytokine IL-12p70 by murine bone marrow-derived dendritic cells (BMDCs). Within the ES fraction, we biochemically narrowed down the immunosuppressive activity to glycoproteins since active components were lipid-free, but sensitive to heat- and carbohydrate-treatment. Finally, using bioassay-guided chromatographic analyses assisted by comparative proteomics of active and inactive fractions of the ES products, we defined a comprehensive list of candidate proteins released by M. corti tetrathyridia as potential suppressors of DC functions. Our study provides a comprehensive library of somatic and ES products and highlight some candidate parasite factors that might drive the subversion of DC functions to facilitate the persistence of M. corti tetrathyridia in their hosts.
Animal models reflective of ulcerative colitis (UC) remain a major challenge, and yet are crucial to understand mechanisms underlying the onset of disease and inflammatory characteristics of relapses and remission. Mouse models in which colitis-like symptoms are induced through challenge with toxins such as oxazolone, dextran sodium sulfate (DSS) or 2,4,6-trinitrobenzenesulfonic acid (TNBS) have been instrumental in understanding the inflammatory processes of UC. However, these neither reflect the heterogeneous symptoms observed in the UC-affected population nor can they be used to test the efficacy of inhibitors developed against human targets where high sequence and structural similarity of the respective ligands is lacking. In an attempt to overcome these problems, we have developed a mouse model that relies on NOD-scid IL2R γnull mice reconstituted with peripheral blood mononuclear cells derived from UC-affected individuals. Upon challenge with ethanol, mice developed colitis-like symptoms and changes in the colon architecture, characterized by influx of inflammatory cells, edema, crypt loss, crypt abscesses and epithelial hyperplasia, as previously observed in immune-competent mice. TARC, TGFβ1 and HGF expression increased in distal parts of the colon. Analysis of human leucocytes isolated from mouse spleen revealed an increase in frequencies of CD1a+, CD64+, CD163+ and TSLPR+ CD14+ monocytes, and antigen-experienced CD44+ CD4+ and CD8+ T-cells in response to ethanol. Analysis of human leucocytes from the colon of challenged mice identified CD14+ monocytes and CD11b+ monocytes as the predominant populations. Quantitative real-time PCR (RT-PCR) analysis from distal parts of the colon indicated that IFNγ might be one of the cytokines driving inflammation. Treatment with infliximab ameliorated symptoms and pathological manifestations, whereas pitrakinra had no therapeutic benefit. Thus, this model is partially reflective of the human disease and might help to increase the translation of animal and clinical studies.
13-Lipoxygenase-derived oxylipins, such as jasmonates act as potent signaling molecules in plants. Although experimental evidence supports the impact of oxylipins generated by the 9-Lipoxygenase (9-LOX) pathway in root development and pathogen defense, their signaling function in plants remains largely elusive. Based on the root growth inhibiting properties of the 9-LOX-oxylipin 9-HOT (9-hydroxy-10,12,15-octadecatrienoic acid), we established a screening approach aiming at identifying transcription factors (TFs) involved in signaling and/or metabolism of this oxylipin. Making use of the AtTORF-Ex (Arabidopsis thaliana Transcription Factor Open Reading Frame Expression) collection of plant lines overexpressing TF genes, we screened for those TFs which restore root growth on 9-HOT. Out of 6,000 lines, eight TFs were recovered at least three times and were therefore selected for detailed analysis. Overexpression of the basic leucine Zipper (bZIP) TF TGA5 and its target, the monoxygenase CYP81D11 reduced the effect of added 9-HOT, presumably due to activation of a detoxification pathway. The highly related ETHYLENE RESPONSE FACTORs ERF106 and ERF107 induce a broad detoxification response towards 9-LOX-oxylipins and xenobiotic compounds. From a set of 18 related group S-bZIP factors isolated in the screen, bZIP11 is known to participate in auxin-mediated root growth and may connect oxylipins to root meristem function. The TF candidates isolated in this screen provide starting points for further attempts to dissect putative signaling pathways involving 9-LOX-derived oxylipins.
Synthese und Relevanz von Oxylipinen in Blättern, Wurzeln und Samen von \(Arabidopsis\) \(thaliana\)
(2016)
Die Lipidoxidation kann sowohl enzymatisch als auch nicht enzymatisch erfolgen. Der erste Schritt der enzymatischen Oxidation wird durch Lipoxygenasen katalysiert, von welchen es in Arabidopsis thaliana sechs verschiedene Isoformen gibt. Dabei werden die Lipoxygenasen nach dem Kohlenstoffatom klassifiziert, welches sie oxidieren. Somit gehören die LOX1 und LOX5 zu den 9-Lipoxygenasen, während LOX2, LOX3, LOX4 und LOX6 zu den 13 Lipoxygenasen zählen. Während der Samenalterung findet vermehrt eine Lipidperoxidation statt, welche mit einem Verfall des Samens sowie einer verringerten Keimrate korreliert. Im Rahmen dieser Arbeit wurde zunächst erfolgreich ein System zur künstlichen Samenalterung von Arabidopsis thaliana etabliert. Bei der künstlichen Alterung stiegen ähnlich wie bei der natürlichen Samenalterung oxidierte Lipide an und die Keimrate fiel ab. Nach Alterung konnte ein Anstieg von sechs verschiedenen oxidierten Triacylglycerolen detektiert werden. Es konnte in dieser Arbeit mit Hilfe von Mutanten mit Defekten in mehreren der Lipoxygenase Gene gezeigt werden, dass die Oxidation dieser veresterten Fettsäuren zum größten Teil nicht enzymatisch erfolgt. Bei der Alterung stiegen zudem enzymatisch gebildete 9 Lipoxygenase Produkte wie freie Hydroxy- und Ketofettsäuren an. Bei einer Analyse der freien oxidierten Fettsäuren konnte ebenfalls mit Lipoxygenase Mutanten ermittelt werden, dass diese hauptsächlich via LOX1 oxidiert werden. Die Untersuchung der Keimraten der Lipoxygenase Mutanten nach Alterung zeigte in mehreren Versuchen eine leicht erhöhte Keimrate der lox1 im Vergleich zum Wildtyp. Eine exogene Behandlung von Wildtyp Samen mit verschiedenen 9-Lipoxygenase Produkten, welche bei der Alterung ansteigen, führte allerdings nicht zu einer Keimungshemmung. Somit scheinen Produkte wie Hydroxy- und Ketofettsäuren der 9-Lipoxygenase LOX1 nicht die Hauptursache für die Keimungshemmung nach Alterung zu sein.
Darüber hinaus konnte in dieser Arbeit gezeigt werden, dass eine Behandlung der Blüten des Wildtyps mit Methyljasmonat zu einer signifikant höheren Keimrate der Samen im Vergleich zu Samen von unbehandelten Pflanzen nach Alterung führt. Ein „Lipidprofiling“ der Samen von mit Methyljasmonat behandelten Pflanzen wies signifikant geringere Gehalte sowohl an freien als auch veresterten oxidierten Fettsäuren auf, was mit einer erhöhten Lebensfähigkeit korrelierte. Diese Erkenntnisse könnten von großer Relevanz für die Landwirtschaft sein, falls eine Übertragung auf Nutzpflanzen möglich ist.
Ein weiterer Schwerpunkt dieser Arbeit war eine eingehende Untersuchung der Rolle und Funktion der LOX6. Mit Hilfe von GUS Färbungen konnte eine Lokalisation der LOX6 in Blättern und Wurzeln nachgewiesen werden.
Zudem wurde ein 35SLOX6GFP Konstrukt erstellt und in Arabidopsis thaliana Pflanzen stabil transformiert. Mit den selektionierten Linien könnte in Zukunft auch die intrazelluläre Lokalisation der LOX6 untersucht werden. Außerdem wurden Konstrukte mit dem Reportergen GFP und AOS sowie LOX2 hinter dem 35S Promotor kloniert, welche ebenfalls für weitere Lokalisations- und Kolokalisationsstudien genutzt werden können. Zudem wurde mit der Klonierung eines Konstruktes begonnen, um in Zukunft einen spezifischen LOX6 Antikörper herstellen und auch die endogene LOX6 Lokalisation in dem Wildtyp analysieren zu können. Um die Produkte der LOX6 zu untersuchen, wurden 35SLOX6 Linien sowie die lox6 Mutante verwendet. Obwohl Hydroxyfettsäuren und Jasmonate Folgeprodukte der LOX6 sind, wiesen die 35SLOX6 Linien weder basal, noch nach Stress erhöhte Gehalte dieser im Vergleich zum Wildtyp auf. Somit geben die 35SLOX6 Linien einen Hinweis darauf, dass LOX6 im Wildtyp nicht limitierend für die Produktion von Hydroxyfettsäuren und Jasmonaten sein könnte. Um zu untersuchen, ob das Substrat der LOX6 der limitierende Faktor sein könnte, wurde eine Behandlung mit α Linolensäure durchgeführt. Dabei entstanden allerdings nicht mehr Folgeprodukte der LOX6, sondern es fand sowohl in den 35SLOX6 Linien als auch in dem Wildtyp eine massive nicht enzymatische radikalische Oxidation der Fettsäuren statt. Um festzustellen, ob sich durch eine LOX6 Überexpression das Metabolom ändert, wurde eine „untargeted Analyse“ mit 35SLOX6 Linien durchgeführt. Diese zeigte vier Metabolite, welche in den 35SLOX6 Linien im Vergleich zum Wildtyp unterschiedlich stark vorhanden waren. Zudem sollte untersucht werden, ob sich die Physiologie und Stressresistenz in den Überexpressionslinien im Vergleich zum Wildtyp unterscheiden. Dabei zeichneten sich die 35SLOX6 Linien durch kleinere, hellere und rundere Blätter aus. Zudem wurden die Wurzeln der 35SLOX6 Linien bei Fraßversuchen mit Pocellio scaber im Vergleich zum Wildtyp weniger bevorzugt gefressen. Diese Erkenntnisse sowie die generierten Konstrukte und Pflanzenlinien können in der Zukunft einen weiteren Einblick in die vielfältigen Funktionen und Produkte der LOX6 gewähren.
Die ersten Landpflanzen standen vor der Herausforderung sich mit der wechselnden Verfügbarkeit von Wasser an Land arrangieren zu müssen. Daraus ergab sich die Notwendigkeit den Wasserverlust zu minimieren und dennoch ausreichend CO2 für die Photosynthese aufzunehmen (Raven, 2002). Im Laufe der Evolution der Pflanzen entstanden mehrere Anpassungen an diese neuen Gegebenheiten, die schließlich auch zur Entstehung von regulierbaren Öffnungen, den Stomata, in der Blattepidermis führte. Zwei Schließzellen umschließen das Stoma und regulieren über die Aufnahme oder Abgabe von osmotisch-aktiven Teilchen ihren Turgordruck und damit die Öffnungsweite des Stomas. Das Kation Kalium und die Anionen Chlorid und Nitrat repräsentieren die Hauptosmotika, die je nach Bedarf durch Transportproteine über die Plasmamembran der Schließzellen geschleust werden. In den Samenpflanzen wie zum Beispiel der Modellpflanze Arabidopsis thaliana, ist der Signalweg in Schließzellen, der bei Trockenheit zu einem schnellen Schluss des Stomas führt bereits sehr gut untersucht. Bei Wassermangel synthetisiert die Pflanze das Trockenstresshormon ABA (Abscisinsäure). Das Hormon wird durch ABA-Rezeptoren erkannt und resultiert schließlich in der Aktivität der Proteinkinase OST1. Daraufhin reguliert diese Kinase zum einen die Transkription ABA-abhängiger Gene, die der Pflanze eine langfristige Adaptation an Trockenheit und Austrocknungstoleranz verleiht. Zum anderen, phosphoryliert OST1 den Anionenkanal SLAC1 und aktiviert ihn so. Die Aktivität des Kanals initiiert schließlich den Stomaschluss durch einen Ausstrom von Anionen aus den Schließzellen, der mit einer Depolarisation der Schließzellmembran einhergeht.
Der ABA-Signalweg, der zur transkriptionellen Regulation von Genen und der damit verbunden Trockentoleranz führt ist ein sehr stark konservierter und evolutiv sehr alter Signalweg, der in allen Geweben von Pflanzen bei Trockenheit beschritten wird. Der schnelle ABA-Signalweg, der die Aktivität der SLAC1 Anionenkanäle reguliert, ist auf Schließzellen begrenzt. Da sich Schließzellen aber erst spät in der Evolution von Landpflanzen etablierten, erhob sich die Frage, wann in der Evolution geriet SLAC1 unter die Kontrolle das ABA-Signalwegs? Geht diese Regulation von SLAC1 mit der Entstehung von Schließzellen einher oder bestand dieser Regulationsmechanismus bereits in Pflanzen, die keine Schließzellen besitzen. Zur Beantwortung dieser Frage untersuchte ich die einzelnen Komponenten des Signalwegs und ihre Beziehungen zu einander im heterologen Expressionssystem der Xenopus laevis Oozyten.
Im Laufe dieser Arbeit wurden Schlüsselelemente des ABA-Signalwegs aus sechs verschiedenen Versuchspflanzen kloniert und in Oozyten charakterisiert. Für die Untersuchung der Evolution des schnellen ABA-Signalwegs wurden die sechs Versuchspflanzen aus je einem rezenten Vertreter der Grünalgen (Klebsormidium nitens), der Lebermoose (Marchantia polymorpha), der Laubmoose (Physcomitrella patens), der Lycophyten (Selaginella moellendorffii) und der Farne (Ceratopteris richardii) ausgewählt und mit der Samenpflanze Arabidopsis thaliana verglichen. Die sechs Pflanzengruppen spalteten sich an unterschiedlichen Zeitpunkten im Laufe der pflanzlichen Evolution von der Entwicklung der restlichen Pflanzen ab und erlauben so einen bestmöglichen Einblick in den jeweiligen Entwicklungsstand der Landpflanzen während der Entstehung der einzelnen Pflanzenfamilien. Obwohl sich die ersten Stomata erst in den Laubmoosen entwickelten, besitzen schon die Grünalgen OST1-Kinasen und SLAC1-Kanäle. Interessanterweise konnte wir zeigen, dass schon die frühen OST1-Kinasen aus Algen und Moosen dazu in der Lage sind, in den höher entwickelten Samenpflanzen die Rolle in der Regulation der ABA-abhängigen Expression von Genen zu übernehmen. Außerdem zeigte sich im Laufe meiner biophysikalischen Untersuchungen, dass alle dreizehn getesteten OST1-Kinasen aus den sechs unterschiedlichen Versuchspflanzenarten in Lage sind, den Anionenkanal SLAC1 aus Arabidopsis in Xenopus Oozyten zu aktivieren. Diese Austauschbarkeit von den AtSLAC1-aktivierenden Kinasen deutet auf eine sehr starke Konservierung der Struktur und Funktion von OST1 hin. Anders verhielt es sich bei der funktionellen Analyse der Anionenkanäle aus den verschiedenen Versuchspflanzen: Hier bildete nur der evolutionär gesehen jüngsten SLAC-Kanal AtSLAC1 aus Arabidopsis ein funktionelles Pärchen mit OST1. Die SLAC1 Kanäle aus der Grünalge, dem Lebermoos, den Lycophyten und dem Farn blieben ohne messbare Aktivität bei einer Co-expression mit den verschiedenen OST1 Kinasen. Nur beim Laubmoos (Physcomitrella patens) konnte noch ein funktionelles Kinase-Anionenkanal Pärchen gefunden werden. Struktur-Funktionsuntersuchungen erlaubten mir schließlich zu zeigen, dass bestimmte funktionelle Domänen sowohl im N-terminus als auch im C-terminus von SLAC1 erforderlich sind, um eine Aktivierung des Kanals durch OST1 Kinasen sicherzustellen.
Oxylipine sind Signalmoleküle, die durch enzymatische Oxidation oder durch Autoxidation von mehrfach ungesättigten Fettsäuren entstehen. Sie akkumulieren während einer Vielzahl von biotischen und abiotischen Stressen und spielen eine bedeutende Rolle bei der Abwehr verschiedener Stressoren. In vielen physiologischen Entwicklungsprozessen sind Oxylipine ebenfalls wichtig.
Eine bisher wenig erforschte Untergruppe dieser Oxylipine bilden reaktive elektrophile Spezies, die sog. RES-Oxylipine. Hierzu gehören unter anderem der Jasmonsäure-Vorläufer 12 Oxophytodiensäure (OPDA), aber auch (E)-2-Hexenal oder Phytoprostan A1 (PPA1). Diese Substanzen sind aufgrund einer α,β ungesättigten Carbonylgruppe elektrophil und damit chemisch reaktiv. Diese Reaktivität wird als Grund für ihre biologische Aktivität angesehen: RES-Oxylipine sind Induktoren einer Reihe von Genen. Allerdings ist bisher wenig über den Signalweg sowie die Funktionen der RES-Oxylipine in Arabidopsis thaliana bekannt.
Fast die Hälfte (40 %) aller durch OPDA-induzierten Gene in A. thaliana sind abhängig von TGA-Transkriptionsfaktoren, jedoch werden OPDA-responsive Hitzeschockgene (z.B. Hitzeschockproteine) unabhängig von TGA-Transkriptionsfaktoren induziert. Außerdem gibt es Hinweise auf eine Akkumulation des RES-Oxylipins OPDA, aber auch des non-RES-Oxylipins Jasmonsäure (JA) durch eine Behandlung mit 38° C in A. thaliana. Eine exogene Applikation von JA bewirkt jedoch, im Gegensatz zu OPDA, keine Genexpression von Hitzeschockgenen in Arabidopsis.
Ziel dieser Arbeit war es, die Funktion der RES-Oxylipine OPDA und Prostaglandin A1 (PGA1, ein Analogon zu PPA1) während der Hitzeschockantwort in Arabidopsis thaliana, sowie die TGA-unabhängige Signaltransduktion der Hitzeschockgene, aufzuklären.
Durch einen Vergleich zweier bereits veröffentlichter Transkriptomdaten in silico konnte die Überschneidung des Hitze-induzierten- (1 h, 37 °C) und des OPDA-induzierten-Transkriptoms (4 h, 75 µM) genau analysiert werden. Es werden 30 Gene sowohl von OPDA als auch durch 37 °C mehr als dreifach hochreguliert. Dieses Ergebnis konnte durch realtime qPCR vier repräsentativer Gene (HSP101, HSP26.5, DREB2A, HSFA2) bestätigt werden. Allerdings zeigten sich deutliche Unterschiede in der Stärke und Kinetik der Induktion: Hitze (37 °C) hat einen sehr viel stärkeren Einfluss auf die Hochregulation der Genexpression als die getesteten RES-Oxylipine OPDA und PGA1 (unter 10 % der Induktion durch 37 °C, Ausnahme DREB2A). Zudem resultiert eine Hitzebehandlung in einer schnellen und transienten Genexpression, das Maximum ist nach 1 bis 2 h erreicht während die Addition von RES-Oxylipinen eine langsamere Induktion der Genexpression bewirkt (Maximum nach 4 bis 6 h).
Eine Genexpressionsanalyse mit verschiedenen Signaltransduktionsmutanten half bei der Aufklärung möglicher Signaltransduktionskomponenten der RES-Oxylipine. So konnte gezeigt werden, dass der putative OPDA-Rezeptor Cyclophilin 20-3 sowie sein Interaktionspartner, das Protein Serin-Acetyltransferase 1, keine Bedeutung in der Regulation von Hitzeschockgenen durch RES-Oxylipine haben. Die Hitze-Masterregulatoren HSFA1 a,b,d (und e) jedoch sind für die Induktion der Hitzeschockgene HSP101, HSP26.5 und HSFA2 durch RES-Oxylipine essentiell und für DREB2A zumindest teilweise notwendig. Dennoch spielt der durch Hitze induzierbare Transkriptionsfaktor HSFA2 in der Signaltransduktion von RES-Oxylipinen (bezüglich der Hitzeschockgeninduktion) keine Rolle.
Durch ein Screening strukturell verschiedener RES hinsichtlich ihrer Induktion von HSP101 konnte geklärt werden, dass nicht die Anwesenheit einer α,β ungesättigten Carbonylgruppe, sondern vielmehr die Eigenschaft der Elektrophilie für die Induktion des HSP101 verantwortlich ist. Auch das RES Sulforaphan vermittelt, wie die RES-Oxylipine OPDA und PGA1, die Induktion der Hitzeschockgene über die HSFA1-Transkritionsfaktoren.
Ein weiterer Schwerpunkt dieser Arbeit lag in der Quantifizierung der endogenen Oxylipine in zehn Tage alten Arabidopsis-Keimligen nach einer Hitzebehandlung unter Kurztag-Lichtbedingungen. Weder während eines kurzzeitigen Hitzestresses (bis zu 8 h) noch während einer längerfristigen Hitzebehandlung (bis zu 7 Tage) steigt der Gehalt des RES Oxylipins OPDA signifikant an. Das non-RES-Oxylipin Jasmonsäure hingegen akkumuliert transient (Maximum 2 h nach Beginn eines Hitzestresses) und signifikant, allerdings ist dieser Anstieg in seiner Stärke (13fach) nicht vergleichbar mit einer Akkumulation beispielsweise nach Verwundung (hier ist ein 1000facher Anstieg möglich).
In weiteren Experimenten wurde eine mögliche Korrelation der endogenen Oxylipin-Akkumulation (verursacht durch Verwundung oder osmotischen Stress) mit der Genexpression von Hitzeschockgenen untersucht. …
Salinity stress tolerance in durum wheat is strongly associated with a plant's ability to control Na\(^+\) delivery to the shoot. Two loci, termed Nax1 and Nax2, were recently identified as being critical for this process and the sodium transporters HKT1;4 and HKT1; 5 were identified as the respective candidate genes. These transporters retrieve Na\(^+\) from the xylem, thus limiting the rates of Na\(^+\) transport from the root to the shoot. In this work, we show that the Nax loci also affect activity and expression levels of the SOS1-like Na\(^+\)/H\(^+\) exchanger in both root cortical and stelar tissues. Net Na\(^+\) efflux measured in isolated steles from salt-treated plants, using the non-invasive ion flux measuring MIFE technique, decreased in the sequence: Tamaroi (parental line)>Nax1=Nax2>Nax1:Nax2 lines. This efflux was sensitive to amiloride (a known inhibitor of the Na\(^+\)/H\(^+\) exchanger) and was mirrored by net H\(^+\) flux changes. TdSOS1 relative transcript levels were 6-10-fold lower in Nax lines compared with Tamaroi. Thus, it appears that Nax loci confer two highly complementary mechanisms, both of which contribute towards reducing the xylem Na\(^+\) content. One enhances the retrieval of Na\(^+\) back into the root stele via HKT1;4 or HKT1;5, whilst the other reduces the rate of Na\(^+\) loading into the xylem via SOS1. It is suggested that such duality plays an important adaptive role with greater versatility for responding to a changing environment and controlling Na\(^+\) delivery to the shoot.
Donor CD4\(^+\)Foxp3\(^+\) regulatory T cells (T reg cells) suppress graft-versus-host disease (GvHD) after allogeneic hematopoietic stem cell transplantation (HCT allo-HCT]). Current clinical study protocols rely on the ex vivo expansion of donor T reg cells and their infusion in high numbers. In this study, we present a novel strategy for inhibiting GvHD that is based on the in vivo expansion of recipient T reg cells before allo-HCT, exploiting the crucial role of tumor necrosis factor receptor 2 (TNFR2) in T reg cell biology. Expanding radiation-resistant host T reg cells in recipient mice using a mouse TNFR2-selective agonist before allo-HCT significantly prolonged survival and reduced GvHD severity in a TNFR2-and T reg cell-dependent manner. The beneficial effects of transplanted T cells against leukemia cells and infectious pathogens remained unaffected. A corresponding human TNFR2-specific agonist expanded human T reg cells in vitro. These observations indicate the potential of our strategy to protect allo-HCT patients from acute GvHD by expanding T reg cells via selective TNFR2 activation in vivo.
Draft genome of the \(Arabidopsis\) \(thaliana\) phyllosphere bacterium, \(Williamsia\) sp. ARP1
(2016)
The Gram-positive actinomycete \(Williamsia\) sp. ARP1 was originally isolated from the \(Arabidopsis\) \(thaliana\) phyllosphere. Here we describe the general physiological features of this microorganism together with the draft genome sequence and annotation. The 4,745,080 bp long genome contains 4434 protein-coding genes and 70 RNA genes. To our knowledge, this is only the second reported genome from the genus \(Williamsia\) and the first sequenced strain from the phyllosphere. The presented genomic information is interpreted in the context of an adaptation to the phyllosphere habitat.
The Venus Flytrap Dionaea muscipula Counts Prey-Induced Action Potentials to Induce Sodium Uptake
(2016)
Carnivorous plants, such as the Venus flytrap (Dionaea muscipula), depend on an animal diet when grown in nutrient-poor soils. When an insect visits the trap and tilts the mechanosensors on the inner surface, action potentials (APs) are fired. After a moving object elicits two APs, the trap snaps shut, encaging the victim. Panicking preys repeatedly touch the trigger hairs over the subsequent hours, leading to a hermetically closed trap, which via the gland-based endocrine system is flooded by a prey-decomposing acidic enzyme cocktail. Here, we asked the question as to how many times trigger hairs have to be stimulated (e.g., now many APs are required) for the flytrap to recognize an encaged object as potential food, thus making it worthwhile activating the glands. By applying a series of trigger-hair stimulations, we found that the touch hormone jasmonic acid (JA) signaling pathway is activated after the second stimulus, while more than three APs are required to trigger an expression of genes encoding prey-degrading hydrolases, and that this expression is proportional to the number of mechanical stimulations. A decomposing animal contains a sodium load, and we have found that these sodium ions enter the capture organ via glands. We identified a flytrap sodium channel DmHKT1 as responsible for this sodium acquisition, with the number of transcripts expressed being dependent on the number of mechano-electric stimulations. Hence, the number of APs a victim triggers while trying to break out of the trap identifies the moving prey as a struggling Na+-rich animal and nutrition for the plant.
Adjuvants are compounds added to an agrochemical spray formulation to improve or modify the action of an active ingredient (AI) or the physico-chemical characteristics of the spray liquid. Adjuvants can have more than only one distinct mode of action (MoA) during the foliar spray application process and they are generally known to be the best tools to improve agrochemical formulations. The main objective for this work was to elucidate the basic MoA of adjuvants by uncoupling different aspects of the spray application. Laboratory experiments, beginning from retention and spreading characteristics, followed by humectant effects concerning the spray deposit on the leaf surface and ultimately the cuticular penetration of an AI, were figured out to evaluate overall in vivo effects of adjuvants which were also obtained in a greenhouse spray test. For this comprehensive study, the surfactant classes of non-ionic sorbitan esters (Span), polysorbates (Tween) and oleyl alcohol polyglycol ether (Genapol O) were generally considered because of their common promoting potential in agrochemical formulations and their structural diversity.
The reduction of interfacial tension is one of the most crucial physico-chemical properties of surfactants. The dynamic surface tension (DST) was monitored to characterise the surface tension lowering behaviour which is known to influence the droplet formation and retention characteristics. The DST is a function of time and the critical time frame of droplet impact might be at about 100 ms. None of the selected surfactants were found to lower the surface tension sufficiently during this short timeframe (chapter I). At ca. 100 ms, Tween 20 resulted in the lowest DST value. When surfactant monomers are fully saturated at the droplet-air-interface, an equilibrium surface tension (STeq) value can be determined which may be used to predict spreading or run-off effects. The majority of selected surfactants resulted in a narrow distribution of STeq values, ranging between 30 and 45 mN m- 1. Nevertheless, all surfactants were able to decrease the surface tension considerably compared to pure water (72 mN m- 1). The influence of different surfactants on the wetting process was evaluated by studying time-dependent static contact angles on different surfaces and the droplet spread area on Triticum aestivum leaves after water evaporation. The spreading potential was observed to be better for Spans than for Tweens. Especially Span 20 showed maximum spreading results. To transfer laboratory findings to spray application, related to field conditions, retention and leaf coverage was measured quantitatively on wheat leaves by using a variable track sprayer. Since the retention process involves short time dynamics, it is well-known that the spray retention on a plant surface is not correlated to STeq but to DST values. The relationship between DST at ca. 100 ms and results from the track sprayer showed increasing retention results with decreasing DST, whereas at DST values below ca. 60 mN m- 1 no further retention improvement could be observed.
Under field conditions, water evaporates from the droplet within a few seconds to minutes after droplet deposition on the leaf surface. Since precipitation of the AI must essentially being avoided by holding the AI in solution, so-called humectants are used as tank-mix adjuvants. The ability of pure surfactants to absorb water from the surrounding atmosphere was investigated comprehensively by analysing water sorption isotherms (chapter II). These isotherms showed an exponential shape with a steep water sorption increase starting at 60% to 70% RH. Water sorption was low for Spans and much more distinct for the polyethoxylated surfactants (Tweens and Genapol O series). The relationship between the water sorption behaviour and the molecular structure of surfactants was considered as the so-called humectant activity. With an increasing ethylene oxide (EO) content, the humectant activity increased concerning the particular class of Genapol O. However, it could be shown that the moisture absorption across all classes of selected surfactants correlates rather better with their hydrophilic-lipophilic balance values with the EO content.
All aboveground organs of plants are covered by the cuticular membrane which is therefore the first rate limiting barrier for AI uptake. In vitro penetration experiments through an astomatous model cuticle were performed to study the effects of adjuvants on the penetration of the lipophilic herbicide Pinoxaden (PXD) (chapter III). In order to understand the influence of different adjuvant MoA like humectancy, experiments were performed under three different humidity levels. No explicit relationship could be found between humidity levels and the PXD penetration which might be explained by the fact that humidity effects would rather affect hydrophilic AIs than lipophilic ones. Especially for Tween 20, it became obvious that a complex balance between multiple MoA like spreading, humectancy and plasticising effects have to be considered.
Greenhouse trials, focussing the adjuvant impact on in vivo action of PXD, were evaluated on five different grass-weed species (chapter III). Since agrochemical spray application and its following action on living plants also includes translocation processes in planta and species dependent physiological effects, this investigation may help to simulate the situation on the field. Even though the absolute weed damage was different, depending both on plant species and also on PXD rates, adjuvant effects in greenhouse experiments displayed the same ranking as in cuticular penetration studies: Tween 20 > Tween 80 > Span 20 ≥ Span 80.
Thus, the present work shows for the first time that findings obtained in laboratory experiments can be successfully transferred to spray application studies on living plants concerning adjuvant MoA. A comparative analysis, using radar charts, could demonstrate systematic derivations from structural similarities of adjuvants to their MoA (summarising discussion and outlook). Exemplarily, Tween 20 and Tween 80 cover a wide range of selected variables by having no outstanding MoA improving one distinct process during foliar application, compared to non-ethoxylated Span 20 and Span 80 which primarily revealed a surface active action. Most adjuvants used in this study represent polydisperse mixtures bearing a complex distribution of EO and aliphatic chains. From this study it seems alike that adjuvants having a wide EO distribution offer broader potential than adjuvants with a small EO distribution. It might be a speculation that due to this broad distribution of single molecules, all bearing their individual specific physico-chemical nature, a wide range of properties concerning their MoA is covered.
Biogenic volatile organic compounds (BVOCs) produced by plants have a major role in atmospheric chemistry. The different physicochemical properties of BVOCs affect their transport within and out of the plant as well as their reactions along the way. Some of these compounds may accumulate in or on the waxy surface layer of conifer needles and participate in chemical reactions on or near the foliage surface. The aim of this work was to determine whether terpenes, a key category of BVOCs produced by trees, can be found on the epicuticles of Scots pine (Pinus sylvestris L.) and, if so, how they compare with the terpenes found in shoot emissions of the same tree. We measured shoot-level emissions of pine seedlings at a remote outdoor location in central Finland and subsequently analysed the needle surface waxes for the same compounds. Both emissions and wax extracts were clearly dominated by monoterpenes, but the proportion of sesquiterpenes was higher in the wax extracts. There were also differences in the terpene spectra of the emissions and the wax extracts. The results, therefore, support the existence of BVOC associated to the epicuticular waxes. We briefly discuss the different pathways for terpenes to reach the needle surfaces and the implications for air chemistry.
The Venus flytrap Dionaea muscipula counts prey-induced action potentials to induce sodium uptake
(2016)
Carnivorous plants, such as the Venus flytrap (Dionaea muscipula), depend on an animal diet when grown in nutrient-poor soils. When an insect visits the trap and tilts the mechanosensors on the inner surface, action potentials (APs) are fired. After a moving object elicits two APs, the trap snaps shut, encaging the victim. Panicking preys repeatedly touch the trigger hairs over the subsequent hours, leading to a hermetically closed trap, which via the gland-based endocrine system is flooded by a prey-decomposing acidic enzyme cocktail. Here, we asked the question as to how many times trigger hairs have to be stimulated (e.g., now many APs are required) for the flytrap to recognize an encaged object as potential food, thus making it worthwhile activating the glands. By applying a series of trigger-hair stimulations, we found that the touch hormone jasmonic acid (JA) signaling pathway is activated after the second stimulus, while more than three APs are required to trigger an expression of genes encoding prey-degrading hydrolases, and that this expression is proportional to the number of mechanical stimulations. A decomposing animal contains a sodium load, and we have found that these sodium ions enter the capture organ via glands. We identified a flytrap sodium channel DmHKT1 as responsible for this sodium acquisition, with the number of transcripts expressed being dependent on the number of mechano-electric stimulations. Hence, the number of APs a victim triggers while trying to break out of the trap identifies the moving prey as a struggling Na\(^+\)-rich animal and nutrition for the plant.
Since years, research on SnRK1, the major cellular energy sensor in plants, has tried to define its role in energy signalling. However, these attempts were notoriously hampered by the lethality of a complete knockout of SnRK1. Therefore, we generated an inducible amiRNA::SnRK1α2 in a snrk1α1 knock out background (snrk1α1/α2) to abolish SnRK1 activity to understand major systemic functions of SnRK1 signalling under energy deprivation triggered by extended night treatment. We analysed the in vivo phosphoproteome, proteome and metabolome and found that activation of SnRK1 is essential for repression of high energy demanding cell processes such as protein synthesis. The most abundant effect was the constitutively high phosphorylation of ribosomal protein S6 (RPS6) in the snrk1α1/α2 mutant. RPS6 is a major target of TOR signalling and its phosphorylation correlates with translation. Further evidence for an antagonistic SnRK1 and TOR crosstalk comparable to the animal system was demonstrated by the in vivo interaction of SnRK1α1 and RAPTOR1B in the cytosol and by phosphorylation of RAPTOR1B by SnRK1α1 in kinase assays. Moreover, changed levels of phosphorylation states of several chloroplastic proteins in the snrk1α1/α2 mutant indicated an unexpected link to regulation of photosynthesis, the main energy source in plants.
Background:
Similar to tumor cells, activated T-lymphocytes generate ATP mainly by glycolytic degradation of glucose. Lymphocyte glucose uptake involves non-concentrative glucose carriers of the GLUT family. In contrast to GLUT isoforms, Na+-coupled glucose-carrier SGLT1 accumulates glucose against glucose gradients and is effective at low extracellular glucose concentrations. The present study explored expression and regulation of SGLT1 in activated murine splenic cytotoxic T cells (CTLs) and human Jurkat T cells.
Methods:
FACS analysis, immunofluorescence, confocal microscopy, chemiluminescence and Western blotting were employed to estimate SGLT1 expression, function and regulation in lymphocytes, as well as dual electrode voltage clamp in SGLT1 ± JAK3 expressing Xenopus oocytes to quantify the effect of janus kinase3 (JAK3) on SGLT1 function.
Results:
SGLT1 is expressed in murine CTLs and also in human Jurkat T cells. 2-(N-(7-nitrobenz-2-oxa-1,3-diazol-4-yl)amino)-2-deoxyglucose uptake was significantly decreased by SGLT1-blocker phloridzin (0.2 mM) and by pharmacological inhibition of JAK3 with WHI-P131 (156 µM), WHI-P154 (11.2 µM) and JAK3 inhibitor VI (0.5 µM). Electrogenic glucose transport (Iglucose) in Xenopus oocytes expressing human SGLT1 was increased by additional expression of human wild type JAK3, active A568VJAK3 but not inactive K851AJAK3. Coexpression of JAK3 enhanced the maximal transport rate without significantly modifying affinity of the carrier. Iglucose in SGLT1+JAK3 expressing oocytes was significantly decreased by WHI-P154 (11.2 µM). JAK3 increased the SGLT1 protein abundance in the cell membrane. Inhibition of carrier insertion by brefeldin A (5 µM) in SGLT1+JAK3 expressing oocytes resulted in a decline of Iglucose, which was similar in presence and absence of JAK3.
Conclusions:
SGLT1 is expressed in murine cytotoxic T cells and human Jurkat T cells and significantly contributes to glucose uptake in those cells post activation. JAK3 up-regulates SGLT1 activity by increasing the carrier protein abundance in the cell membrane, an effect enforcing cellular glucose uptake into activated lymphocytes and thus contributing to the immune response.
The glycoprotein sclerostin has been identified as a negative regulator of bone growth. It exerts its function by interacting with the Wnt co-receptor LRP5/6, blocks the binding of Wnt factors and thereby inhibits Wnt signalling. Neutralizing anti-sclerostin antibodies are able to restore Wnt activity and enhance bone growth thereby presenting a new osteoanabolic therapy approach for diseases such as osteoporosis. We have generated various Fab antibodies against human and murine sclerostin using a phage display set-up. Biochemical analyses have identified one Fab developed against murine sclerostin, AbD09097 that efficiently neutralizes sclerostin's Wnt inhibitory activity. In vitro interaction analysis using sclerostin variants revealed that this neutralizing Fab binds to sclerostin's flexible second loop, which has been shown to harbour the LRP5/6 binding motif. Affinity maturation was then applied to AbD09097, providing a set of improved neutralizing Fab antibodies which particularly bind human sclerostin with enhanced affinity. Determining the crystal structure of AbD09097 provides first insights into how this antibody might recognize and neutralize sclerostin. Together with the structure–function relationship derived from affinity maturation these new data will foster the rational design of new and highly efficient anti-sclerostin antibodies for the therapy of bone loss diseases such as osteoporosis.
The animal diet of the carnivorous Venus flytrap, Dionaea muscipula, contains a sodium load that enters the capture organ via an HKT1-type sodium channel, expressed in special epithelia cells on the inner trap lobe surface. DmHKT1 expression and sodium uptake activity is induced upon prey contact. Here, we analyzed the HKT1 properties required for prey sodium osmolyte management of carnivorous Dionaea. Analyses were based on homology modeling, generation of model-derived point mutants, and their functional testing in Xenopus oocytes. We showed that the wild-type HKT1 and its Na\(^+\)- and K\(^+\)-permeable mutants function as ion channels rather than K\(^+\) transporters driven by proton or sodium gradients. These structural and biophysical features of a high-capacity, Na\(^+\)-selective ion channel enable Dionaea glands to manage prey-derived sodium loads without confounding the action potential-based information management of the flytrap.
A newly developed compact measuring system for assessment of transmittance changes in the near-infrared spectral region is described; it allows deconvolution of redox changes due to ferredoxin (Fd), P700, and plastocyanin (PC) in intact leaves. In addition, it can also simultaneously measure chlorophyll fluorescence. The major opto-electronic components as well as the principles of data acquisition and signal deconvolution are outlined. Four original pulse-modulated dual-wavelength difference signals are measured (785-840 nm, 810-870 nm, 870-970 nm, and 795-970 nm). Deconvolution is based on specific spectral information presented graphically in the form of 'Differential Model Plots' (DMP) of Fd, P700, and PC that are derived empirically from selective changes of these three components under appropriately chosen physiological conditions. Whereas information on maximal changes of Fd is obtained upon illumination after dark-acclimation, maximal changes of P700 and PC can be readily induced by saturating light pulses in the presence of far-red light. Using the information of DMP and maximal changes, the new measuring system enables on-line deconvolution of Fd, P700, and PC. The performance of the new device is demonstrated by some examples of practical applications, including fast measurements of flash relaxation kinetics and of the Fd, P700, and PC changes paralleling the polyphasic fluorescence rise upon application of a 300-ms pulse of saturating light.
Trypanosomes are masters of adaptation to different host environments during their complex life cycle. Large-scale proteomic approaches provide information on changes at the cellular level, and in a systematic way. However, detailed work on single components is necessary to understand the adaptation mechanisms on a molecular level. Here, we have performed a detailed characterization of a bloodstream form (BSF) stage-specific putative flagellar host adaptation factor Tb927.11.2400, identified previously in a SILAC-based comparative proteome study. Tb927.11.2400 shares 38% amino acid identity with TbFlabarin (Tb927.11.2410), a procyclic form (PCF) stage-specific flagellar BAR domain protein. We named Tb927.11.2400 TbFlabarin-like (TbFlabarinL), and demonstrate that it originates from a gene duplication event, which occurred in the African trypanosomes. TbFlabarinL is not essential for the growth of the parasites under cell culture conditions and it is dispensable for developmental differentiation from BSF to the PCF in vitro. We generated TbFlabarinL-specific antibodies, and showed that it localizes in the flagellum. Co-immunoprecipitation experiments together with a biochemical cell fractionation suggest a dual association of TbFlabarinL with the flagellar membrane and the components of the paraflagellar rod.
Plant gas exchange is regulated by guard cells that form stomatal pores. Stomatal adjustments are crucial for plant survival; they regulate uptake of CO\(_{2}\) for photosynthesis, loss of water, and entrance of air pollutants such as ozone. We mapped ozone hypersensitivity, more open stomata, and stomatal CO\(_{2}\)-insensitivity phenotypes of the Arabidopsis thaliana accession Cvi-0 to a single amino acid substitution in MITOGEN-ACTIVATED PROTEIN (MAP) KINASE 12 (MPK12). In parallel, we showed that stomatal CO\(_{2}\)-insensitivity phenotypes of a mutant cis (CO\(_{2}\)-insensitive) were caused by a deletion of MPK12. Lack of MPK12 impaired bicarbonate-induced activation of S-type anion channels. We demonstrated that MPK12 interacted with the protein kinase HIGH LEAF TEMPERATURE 1 (HT1)—a central node in guard cell CO\(_{2}\) signaling—and that MPK12 functions as an inhibitor of HT1. These data provide a new function for plant MPKs as protein kinase inhibitors and suggest a mechanism through which guard cell CO\(_{2}\) signaling controls plant water management.
Olfactory receptors (ORs) are G protein-coupled receptors which serve important sensory functions beyond their role as odorant detectors in the olfactory epithelium. Here we describe a novel role for one of these ORs, Olfr1393, as a regulator of renal glucose handling. Olfr1393 is specifically expressed in the kidney proximal tubule, which is the site of renal glucose reabsorption. Olfr1393 knockout mice exhibit urinary glucose wasting and improved glucose tolerance, despite euglycemia and normal insulin levels. Consistent with this phenotype, Olfr1393 knockout mice have a significant decrease in luminal expression of Sglt1, a key renal glucose transporter, uncovering a novel regulatory pathway involving Olfr1393 and Sglt1. In addition, by utilizing a large scale screen of over 1400 chemicals we reveal the ligand profile of Olfr1393 for the first time, offering new insight into potential pathways of physiological regulation for this novel signaling pathway.
Blood glucose control is the primary strategy to prevent complications in diabetes. At the onset of kidney disease, therapies that inhibit components of the renin angiotensin system (RAS) are also indicated, but these approaches are not wholly effective. Here, we show that once daily administration of the novel glucose lowering agent, empagliflozin, an SGLT2 inhibitor which targets the kidney to block glucose reabsorption, has the potential to improve kidney disease in type 2 diabetes. In male db/db mice, a 10-week treatment with empagliflozin attenuated the diabetes-induced upregulation of profibrotic gene markers, fibronectin and transforming-growth-factor-beta. Other molecular (collagen IV and connective tissue growth factor) and histological (tubulointerstitial total collagen and glomerular collagen IV accumulation) benefits were seen upon dual therapy with metformin. Albuminuria, urinary markers of tubule damage (kidney injury molecule-1, KIM-1 and neutrophil gelatinase-associated lipocalin, NGAL), kidney growth, and glomerulosclerosis, however, were not improved with empagliflozin or metformin, and plasma and intra-renal renin activity was enhanced with empagliflozin. In this model, blood glucose lowering with empagliflozin attenuated some molecular and histological markers of fibrosis but, as per treatment with metformin, did not provide complete renoprotection. Further research to refine the treatment regimen in type 2 diabetes and nephropathy is warranted.
Maintaining the integrity of the cuticular transpiration barrier even at elevated temperatures is of vital importance especially for hot-desert plants. Currently, the temperature dependence of the leaf cuticular water permeability and its relationship with the chemistry of the cuticles are not known for a single desert plant. This study investigates whether (i) the cuticular permeability of a desert plant is lower than that of species from non-desert habitats, (ii) the temperature-dependent increase of permeability is less pronounced than in those species and (iii) whether the susceptibility of the cuticular permeability barrier to high temperatures is related to the amounts or properties of the cutin or the cuticular waxes. We test these questions with Rhazya stricta using the minimum leaf water vapour conductance (gmin) as a proxy for cuticular water permeability. gmin of R. stricta (5.41 × 10\(^{-5}\) m s\(^{-1}\) at 25 °C) is in the upper range of all existing data for woody species from various non-desert habitats. At the same time, in R. stricta, the effect of temperature (15-50 °C) on gmin (2.4-fold) is lower than in all other species (up to 12-fold). Rhazya stricta is also special since the temperature dependence of gmin does not become steeper above a certain transition temperature. For identifying the chemical and physical foundation of this phenomenon, the amounts and the compositions of cuticular waxes and cutin were determined. The leaf cuticular wax (251.4 μg cm\(^{-2}\)) is mainly composed of pentacyclic triterpenoids (85.2% of total wax) while long-chain aliphatics contribute only 3.4%. In comparison with many other species, the triterpenoid-to-cutin ratio of R. stricta (0.63) is high. We propose that the triterpenoids deposited within the cutin matrix restrict the thermal expansion of the polymer and, thus, prevent thermal damage to the highly ordered aliphatic wax barrier even at high temperatures.
Assigning functions to uncultivated environmental microorganisms continues to be a challenging endeavour. Here, we present a new microscopy protocol for fluorescence in situ hybridisation-correlative light and electron microscopy (FISH-CLEM) that enabled, to our knowledge for the first time, the identification of single cells within their complex microenvironment at electron microscopy resolution. Members of the candidate phylum Poribacteria, common and uncultivated symbionts of marine sponges, were used towards this goal. Cellular 3D reconstructions revealed bipolar, spherical granules of low electron density, which likely represent carbon reserves. Poribacterial activity profiles were retrieved from prokaryotic enriched sponge metatranscriptomes using simulation-based optimised mapping. We observed high transcriptional activity for proteins related to bacterial microcompartments (BMC) and we resolved their subcellular localisation by combining FISH-CLEM with immunohistochemistry (IHC) on ultra-thin sponge tissue sections. In terms of functional relevance, we propose that the BMC-A region may be involved in 1,2-propanediol degradation. The FISH-IHC-CLEM approach was proven an effective toolkit to combine -omics approaches with functional studies and it should be widely applicable in environmental microbiology.
The "Candidatus Synechococcus spongiarum" group includes different clades of cyanobacteria with high 16S rRNA sequence identity (~99%) and is the most abundant and widespread cyanobacterial symbiont of marine sponges. The first draft genome of a "Ca. Synechococcus spongiarum" group member was recently published, providing evidence of genome reduction by loss of genes involved in several nonessential functions. However, "Ca. Synechococcus spongiarum" includes a variety of clades that may differ widely in genomic repertoire and consequently in physiology and symbiotic function. Here, we present three additional draft genomes of "Ca. Synechococcus spongiarum," each from a different clade. By comparing all four symbiont genomes to those of free-living cyanobacteria, we revealed general adaptations to life inside sponges and specific adaptations of each phylotype. Symbiont genomes shared about half of their total number of coding genes. Common traits of "Ca. Synechococcus spongiarum" members were a high abundance of DNA modification and recombination genes and a reduction in genes involved in inorganic ion transport and metabolism, cell wall biogenesis, and signal transduction mechanisms. Moreover, these symbionts were characterized by a reduced number of antioxidant enzymes and low-weight peptides of photosystem II compared to their free-living relatives. Variability within the "Ca. Synechococcus spongiarum" group was mostly related to immune system features, potential for siderophore-mediated iron transport, and dependency on methionine from external sources. The common absence of genes involved in synthesis of residues, typical of the O antigen of free-living Synechococcus species, suggests a novel mechanism utilized by these symbionts to avoid sponge predation and phage attack.
IMPORTANCE
While the Synechococcus/Prochlorococcus-type cyanobacteria are widely distributed in the world's oceans, a subgroup has established its niche within marine sponge tissues. Recently, the first genome of sponge-associated cyanobacteria, " Candidatus Synechococcus spongiarum," was described. The sequencing of three representatives of different clades within this cyanobacterial group has enabled us to investigate intraspecies diversity, as well as to give a more comprehensive understanding of the common symbiotic features that adapt "Ca. Synechococcus spongiarum" to its life within the sponge host.
Bariatric operations in obese patients with type 2 diabetes often improve diabetes before weight loss is observed. In patients mainly Roux-en-Y-gastric bypass with partial stomach resection is performed. Duodenojejunal bypass (DJB) and ileal interposition (IIP) are employed in animal experiments. Due to increased glucose exposition of L-cells located in distal ileum, all bariatric surgery procedures lead to higher secretion of antidiabetic glucagon like peptide-1 (GLP-1) after glucose gavage. After DJB also downregulation of Na\(^{+}\)-D-glucose cotransporter SGLT1 was observed. This suggested a direct contribution of decreased glucose absorption to the antidiabetic effect of bariatric surgery. To investigate whether glucose absorption is also decreased after IIP, we induced diabetes with decreased glucose tolerance and insulin sensitivity in male rats and investigated effects of IIP on diabetes and SGLT1. After IIP, we observed weight-independent improvement of glucose tolerance, increased insulin sensitivity, and increased plasma GLP-1 after glucose gavage. The interposed ileum was increased in diameter and showed increased length of villi, hyperplasia of the epithelial layer, and increased number of L-cells. The amount of SGLT1-mediated glucose uptake in interposed ileum was increased 2-fold reaching the same level as in jejunum. Thus, improvement of glycemic control by bariatric surgery does not require decreased glucose absorption.
Kinetic assessment by in vitro approaches - A contribution to reduce animals in toxicity testing
(2015)
The adoption of directives and regulations by the EU requires the development of alternative testing strategies as opposed to animal testing for risk assessment of xenobiotics. Additionally, high attrition rates of drugs late in the discovery phase demand improvement of current test batteries applied in the preclinical phase within the pharmaceutical area. These issues were taken up by the EU founded 7th Framework Program “Predict-IV”; with the overall goal to improve the predictability of safety of an investigational product, after repeated exposure, by integration of “omics” technologies applied on well established in vitro approaches. Three major target organs for drug-induced toxicity were in focus: liver, kidney and central nervous system. To relate obtained dynamic data with the in vivo situation, kinetics of the test compounds have to be evaluated and extrapolated by physiologically based pharmacokinetic modeling.
This thesis assessed in vitro kinetics of the selected test compounds (cyclosporine A, adefovir dipivoxil and cisplatinum) regarding their reliability and relevance to respective in vivo pharmacokinetics. Cells were exposed daily or every other day to the test compounds at two concentration levels (toxic and non-toxic) for up to 14 days. Concentrations of the test compounds or their major biotransformation products were determined by LC-MS/MS or ICP-MS in vehicle, media, cells and plastic adsorption samples generated at five different time-points on the first and the last treatment day.
Cyclosporine A bioaccumulation was evident in primary rat hepatocytes (PRH) at the high concentration, while efficient biotransformation mediated by CYP3A4 and CYP3A5 was determined in primary human hepatocytes (PHH) and HepaRG cells. The lower biotransformation in PRH is in accordance with observation made in vivo with the rat being a poor model for CYP3A biotransformation. Further, inter-assay variability was noticed in PHH caused by biological variability in CYP3A4 and CYP3A5 activity in human donors. The inter-assay variability observed for PRH and HepaRG cells was a result of differences between vehicles regarding their cyclosporine A content. Cyclosporine A biotransformation was more prominent in HepaRG cells due to stable and high CYP3A4 and CYP3A5 activity. In addition, in vitro clearances were calculated and scaled to in vivo. All scaled in vitro clearances were overestimated (PRH: 10-fold, PHH: 2-fold, HepaRG cells: 2-fold). These results should be proven by physiologically-based pharmacokinetic modeling and additional experiments, in order to verify that these overestimations are constant for each system and subsequently can be diminished by implementation of further scaling factors.
Brain cell cultures, primary neuronal culture of mouse cortex cells and primary aggregating rat brain cells, revealed fast achieved steady state levels of cyclosporine A. This indicates a chemical distribution of cyclosporine A between the aqueous and organic phases and only minor involvement of biological processes such as active transport and biotransformation. Hence, cyclosporine A uptake into cells is presumably transport mediated, supported by findings of transporter experiments performed on a parallel artificial membrane and Caco-2 cells. Plastic adsorption of cyclosporine A was significant, but different for each model, and should be considered by physiologically based pharmacokinetic modeling.
Kinetics of adefovir dipivoxil highlights the limits of in vitro approaches. Active transporters are required for adefovir uptake, but were not functional in RPTECT/TERT1. Therefore, adefovir uptake was limited to passive diffusion of adefovir dipivoxil, which itself degrades time-dependently under culture conditions.
Cisplatinum kinetics, studied in RPTEC/TERT1 cells, indicated intracellular enrichment of platinum, while significant bioaccumulation was not noted. This could be due to cisplatinum not reaching steady state levels within 14 days repeated exposure. As shown in vivo, active transport occurred from the basolateral to apical side, but with lower velocity. Hence, obtained data need to be modeled to estimate cellular processes, which can be scaled and compared to in vivo.
Repeated daily exposure to two different drug concentrations makes it possible to account for bioaccumulation at toxic concentrations or biotransformation/extrusion at non-toxic concentrations. Potential errors leading to misinterpretation of data were reduced by analyses of the vehicles as the applied drug concentrations do not necessarily correspond to the nominal concentrations. Finally, analyses of separate compartments (medium, cells, plastic) give insights into a compound’s distribution, reduce misprediction of cellular processes, e.g. biotransformation, and help to interpret kinetic data. On the other hand, the limits of in vitro approaches have also been pointed out. For correct extrapolation to in vivo, it is essential that the studied in vitro system exhibits the functionality of proteins, which play a key role in the specific drug induced toxicity. Considering the benefits and limitations, it is worth to validate this long-term treatment experimental set-up and expand it on co-culture systems and on organs-on-chips with regard to alternative toxicity testing strategies for repeated dose toxicity studies.
The stress hormone abscisic acid (ABA) induces expression of defence genes in many organs, modulates ion homeostasis and metabolism in guard cells, and inhibits germination and seedling growth. Concerning the latter effect, several mutants of Arabidopsis thaliana with improved capability for \(H^+\) efflux (wat1-1D, overexpression of AKT1 and ost2-1D) are less sensitive to inhibition by ABA than the wild type. This suggested that ABA could inhibit \(H^+\) efflux (\(H^+\)-ATPase) and induce cytosolic acidification as a mechanism of growth inhibition. Measurements to test this hypothesis could not be done in germinating seeds and we used roots as the most convenient system. ABA inhibited the root plasma-membrane H+-ATPase measured in vitro (ATP hydrolysis by isolated vesicles) and in vivo (\(H^+\) efflux from seedling roots). This inhibition involved the core ABA signalling elements: PYR/PYL/RCAR ABA receptors, ABA-inhibited protein phosphatases (HAB1), and ABA-activated protein kinases (SnRK2.2 and SnRK2.3). Electrophysiological measurements in root epidermal cells indicated that ABA, acting through the PYR/PYL/RCAR receptors, induced membrane hyperpolarization (due to \(K^+\) efflux through the GORK channel) and cytosolic acidification. This acidification was not observed in the wat1-1D mutant. The mechanism of inhibition of the \(H^+\)-ATPase by ABA and its effects on cytosolic pH and membrane potential in roots were different from those in guard cells. ABA did not affect the in vivo phosphorylation level of the known activating site (penultimate threonine) of (\(H^+\)-ATPase in roots, and SnRK2.2 phosphorylated in vitro the C-terminal regulatory domain of (\(H^+\)-ATPase while the guard-cell kinase SnRK2.6/OST1 did not.
Der Natrium-D-Glukose Kotransporter 1 (SGLT1) spielt eine wichtige Rolle bei der Aufnahme von Glukose aus dem Darmlumen in die Enterozyten des Darms. Anhand von Untersuchungen an Xenopus laevis-Oozyten konnte in unserem Labor das Protein RS1 als posttranslationales Regulatorprotein für SGLT1 und diverse andere Transporter ermittelt werden. Es wurde eine regulatorische Domäne aus RS1 mit vielen potentiellen Phosphorylierungsstellen isoliert (RS1-Reg) und gezeigt dass RS1-Reg die Abschnürung von Transporter enthaltenen Vesikeln vom Transgolgi-Netzwerk hemmt. Neben SGLT1 reguliert RS1 auch die konzentrierenden Nukleosidtransporter (CNTs) am TGN. Die Regulation der Transporter ist vom Phosphorylierungszustand von RS1-Reg abhängig. So wurde durch Versuche an Oozyten von Xenopus laevis und Injektion von RS1-Reg Mutanten gezeigt, dass die Phosphorylierung von RS1-Reg an einigen Stellen zu einer Inhibition von SGLT1 führte, während der Nukleosidtransporter CNT1 durch die dephosphorylierte Mutante herunterreguliert wurden. Neben der phosphorylierungsabhängigen Regulation konnte für SGLT1 auch gezeigt werden, dass die Herunterregulation nur unter Niedrigzucker-Bedingungen erfolgte, nicht jedoch bei hohen Glukosekonzentrationen. Für die CNTs war eine derartige Zuckerabhängigkeit nicht zu beobachten.
Im Rahmen der vorliegenden Studie wurde untersucht, ob die Ergebnisse aus den Oozytenmessungen auch in vivo in einem Säugetier gezeigt werden können. Hierzu wurden Mutanten der regulatorischen Domäne (RS1-Reg) des Maus-Proteins, welche den phosphorylierten Zustand simulierten (RS1-Reg (S19E)), oder die Phosphorylierung verhinderten (RS1-Reg (S19A)) eingesetzt. Diese wurden an ein Nanohydrogel gekoppelt, um eine Aufnahme in die Enterozyten im Darm zu gewährleisten. Es wurde in der RS1KO-Mausohne funktionelles RS1 gezeigt, dass auch im in vivo-System eine Herunterregulation von SGLT1 durch mRS1-Reg (S19E), nicht jedoch durch mRS1-Reg (S19A) erfolgte, während die CNTs nur durch mRS1-Reg (S19A) inhibiert wurden. Des Weiteren führte mRS1-Reg (S19A) in der Wildtypmaus bei niedrigen Zuckerkonzentrationen zu einer Stimulation von SGLT1, was für eine Kompetition mit dem endogenen RS1-Proteins spricht. Es konnte indirekt der Beweis erbracht werden, dass über Nanohydrogele längere Proteine in die Zelle gebracht werden können und dort funktionell freigesetzt werden.
Die Venusfliegenfalle, Dionaea muscipula, weckte aufgrund ihrer karnivoren Lebensweise schon sehr früh das Interesse vieler Wissenschaftler. Für karnivore Pflanzen, die auf Nährstoff-armen Böden wachsen, spielen Insekten als Beute und somit als Nährstofflieferant eine entscheidende Rolle. So können die Pflanzen durch die Verdauung der Beute mit wichtigen Makro- und Mikronährstoffen, wie Stickstoff, Phosphat, Kalium oder Natrium versorgt werden. Aus diesem Grund sollte im Rahmen meiner Arbeit ein besonderes Augenmerk auf die molekularen Mechanismen der Kationenaufnahme während der Nährstoffresorption gerichtet werden. Insbesondere die aus dem Insekt stammenden Nährstoffe Kalium und Natrium waren dabei von großem Interesse.
Im Allgemeinen sind Kaliumionen für Pflanzen eine essentielle anorganische Substanz und von großer physiologischer Bedeutung für die Entwicklung, den Metabolismus, die Osmoregulation, das Membranpotential und viele zelluläre Prozesse. Analysen der Kaliumaufnahme an Wurzeln von Modellpflanzen wie Arabidopsis thaliana und Reis zeigten, dass die Aufnahme von K+ ein Zusammenspiel von hoch-affinen K+-Transportern der HAK5-Familie und nieder-affinen Kaliumkanälen (AKT1/AtKC1) erfordert, die in ein komplexes
(De-)Phosphorylierungsnetzwerk eingebunden sind. In der vorliegenden Arbeit war es mir möglich das Netzwerk zur Kaliumaufnahme in den Drüsen der Venusfliegenfalle zu entschlüsseln. Es konnten Orthologe zum Kaliumtransporter HAK5 aus Arabidopsis (DmHAK5) und zum Kaliumkanal AKT1 (DmKT1) identifiziert und im heterologen Expressionssystem der Xenopus laevis Oozyten elektrophysiologisch charakterisiert werden. Dabei zeigte sich, das DmKT1 durch einen Ca2+-Sensor/Kinase-Komplex aus der CBL/CIPK-Familie phosphoryliert und somit aktiviert wird. Phylogenetische Analysen von DmKT1 bestätigten die Eingruppierung dieses Kaliumkanals in die Gruppe der pflanzlichen Shaker-Kaliumkanäle des AKT1-Typs. Die Transporteigenschaften zeigten zudem, dass DmKT1 bei hyperpolarisierenden Membranpotentialen aktiviert wird und einen K+-selektiven Einwärtsstrom vermittelt. In Oozyten konnte eine Kaliumaufnahme bis zu einer externen Konzentration von ≥1 mM beobachtet werden. DmKT1 repräsentiert also einen Kaliumkanal mit einer hohen Transportkapazität, der die nieder-affine Kaliumaufnahme in die Drüsenzellen der Venusfliegenfalle vermitteln kann.
Unterhalb einer externen Kaliumkonzentration von 1 mM würde der anliegende elektrochemische Kaliumgradient einen Kaliumausstrom und somit einen Verlust von Kalium favorisieren. Hoch-affine K+/H+-Symporter können durch die Ausnutzung des Protonengradienten eine Kaliumaufnahme im mikromolaren Bereich gewährleisten. In Wurzelhaaren von Arabidopsis vermittelt der Transporter AtHAK5 die Kaliumaufnahme unter Kaliummangelbedingungen. DmHAK5, ein Ortholog zu AtHAK5, ist in Dionaea Drüsen exprimiert und konnte zum ersten Mal im heterologen Expressionssystem der Xenopus Oozyten im Detail charakterisiert werden. Interessanterweise zeigte sich, dass DmHAK5 wie der K+-Kanal DmKT1 durch denselben CBL/CIPK-Komplex posttranslational reguliert und aktiviert wird. Die Transporteigenschaften von DmHAK5 wiesen auf einen Transporter mit einer breiten Substratspezifität hin, sodass sich DmHAK5 neben Kalium auch für Ammonium permeabel zeigte. Affinitätsuntersuchungen von DmHAK5 zu seinem Substrat Kalium klassifizierten das Protein als einen hoch-affinen Kaliumtransporter, der im Symport mit Protonen die Kaliumaufnahme im mikromolaren Konzentrationsbereich vermitteln kann.
Das Kaliumtransportmodul besteht also aus dem K+-selektiven Kanal DmKT1 und dem
K+/H+-Symporter DmHAK5, die die hoch- und nieder-affine Kaliumaufnahme in den Drüsenzellen während der Beuteverdauung in Dionaea muscipula Fallen ermöglichen. Beide Transportmodule werden Kalzium-abhängig durch die Kinase CIPK23 und den Ca2+-Sensor CBL9 auf posttranslationaler Ebene reguliert.
Zusammenfassend gelang es in dieser Arbeit Einblicke in die Kationenaufnahme während der Nährstoffresorptionsphase der Venusfliegenfalle, Dionaea muscipula, zu gewinnen. Dabei wurde klar, dass Dionaea muscipula im Laufe ihrer Evolution zu einer karnivoren Pflanze, nicht neue Transportmodule zur Nährstoffresorption aus der Beute entwickelte, sondern bekannte aus Wurzeln stammende Transportmodule umfunktionierte. Auf molekularer Ebene konnten die biophysikalischen Charakteristika der K+- und Na+-Transportproteine, sowie ihre Regulation entschlüsselt werden. Diese Erkenntnisse wurden schließlich in den Kontext des Beutefangs der Venusfliegenfalle gebracht und diskutiert.
Marine sponge–associated actinomycetes are considered as promising sources for the discovery of novel biologically active compounds. In the present study, a total of 64 actinomycetes were isolated from 12 different marine sponge species that had been collected offshore the islands of Milos and Crete, Greece, eastern Mediterranean. The isolates were affiliated to 23 genera representing 8 different suborders based on nearly full length 16S rRNA gene sequencing. Four putatively novel species belonging to genera Geodermatophilus, Microlunatus, Rhodococcus and Actinomycetospora were identified based on a 16S rRNA gene sequence similarity of < 98.5% to currently described strains. Eight actinomycete isolates showed bioactivities against Trypanosma brucei brucei TC221 with half maximal inhibitory concentration (IC50) values <20 μg/mL. Thirty four isolates from the Milos collection and 12 isolates from the Crete collection were subjected to metabolomic analysis using high resolution LC-MS and NMR for dereplication purposes. Two isolates belonging to the genera Streptomyces (SBT348) and Micromonospora (SBT687) were prioritized based on their distinct chemistry profiles as well as their anti-trypanosomal activities. These findings demonstrated the feasibility and efficacy of utilizing metabolomics tools to prioritize chemically unique strains from microorganism collections and further highlight sponges as rich source for novel and bioactive actinomycetes.
Mining Genomes of Three Marine Sponge-Associated Actinobacterial Isolates for Secondary Metabolism
(2015)
Here, we report the draft genome sequences of three actinobacterial isolates, Micromonospora sp. RV43, Rubrobacter sp. RV113, and Nocardiopsis sp. RV163 that had previously been isolated from Mediterranean sponges. The draft genomes were analyzed for the presence of gene clusters indicative of secondary metabolism using antiSMASH 3.0 and NapDos pipelines. Our findings demonstrated the chemical richness of sponge-associated actinomycetes and the efficacy of genome mining in exploring the genomic potential of sponge-derived actinomycetes.
Virotherapy on the basis of oncolytic vaccinia virus (VACV) strains is a novel approach for canine cancer therapy. Here we describe, for the first time, the characterization and the use of VACV strain GLV-5b451 expressing the anti-vascular endothelial growth factor (VEGF) single-chain antibody (scAb) GLAF-2 as therapeutic agent against different canine cancers. Cell culture data demonstrated that GLV-5b451 efficiently infected and destroyed all four tested canine cancer cell lines including: mammary carcinoma (MTH52c), mammary adenoma (ZMTH3), prostate carcinoma (CT1258), and soft tissue sarcoma (STSA-1). The GLV-5b451 virus-mediated production of GLAF-2 antibody was observed in all four cancer cell lines. In addition, this antibody specifically recognized canine VEGF. Finally, in canine soft tissue sarcoma (CSTS) xenografted mice, a single systemic administration of GLV-5b451 was found to be safe and led to anti-tumor effects resulting in the significant reduction and substantial long-term inhibition of tumor growth. A CD31-based immuno-staining showed significantly decreased neo-angiogenesis in GLV-5b451-treated tumors compared to the controls. In summary, these findings indicate that GLV-5b451 has potential for use as a therapeutic agent in the treatment of CSTS.
Background
Bone morphogenetic protein (BMP)-2 and growth and differentiation factor (GDF)-5 are two related transforming growth factor (TGF)-β family members with important functions in embryonic development and tissue homeostasis. BMP-2 is best known for its osteoinductive properties whereas GDF-5—as evident from its alternative name, cartilage derived morphogenetic protein 1—plays an important role in the formation of cartilage. In spite of these differences both factors signal by binding to the same subset of BMP receptors, raising the question how these different functionalities are generated. The largest difference in receptor binding is observed in the interaction with the type I receptor BMPR-IA. GDF-5, in contrast to BMP-2, shows preferential binding to the isoform BMPR-IB, which is abrogated by a single amino acid (A57R) substitution. The resulting variant, GDF-5 R57A, represents a “BMP-2 mimic” with respect to BMP receptor binding. In this study we thus wanted to analyze whether the two growth factors can induce distinct signals via an identically composed receptor.
Results
Unexpectedly and dependent on the cellular context, GDF-5 R57A showed clear differences in its activity compared to BMP-2. In ATDC-5 cells, both ligands induced alkaline phosphatase (ALP) expression with similar potency. But in C2C12 cells, the BMP-2 mimic GDF-5 R57A (and also wild-type GDF-5) clearly antagonized BMP-2-mediated ALP expression, despite signaling in both cell lines occurring solely via BMPR-IA. The BMP-2- antagonizing properties of GDF-5 and GDF-5 R57A could also be observed in vivo when implanting BMP-2 and either one of the two GDF-5 ligands simultaneously at heterotopic sites.
Conclusions
Although comparison of the crystal structures of the GDF-5 R57A:BMPR-IAEC- and BMP-2:BMPR-IAEC complex revealed small ligand-specific differences, these cannot account for the different signaling characteristics because the complexes seem identical in both differently reacting cell lines. We thus predict an additional component, most likely a not yet identified GDF-5-specific co-receptor, which alters the output of the signaling complexes. Hence the presence or absence of this component then switches GDF-5′s signaling capabilities to act either similar to BMP-2 or as a BMP-2 antagonist. These findings might shed new light on the role of GDF-5, e.g., in cartilage maintenance and/or limb development in that it might act as an inhibitor of signaling events initiated by other BMPs.
Virulent Agrobacterium tumefaciens strains integrate their T-DNA into the plant genome where the encoded agrobacterial oncogenes are expressed and cause crown gall disease. Essential for crown gall development are IaaH (indole-3-acetamide hydrolase), IaaM (tryptophan monooxygenase) and Ipt (isopentenyl transferase), which encode enzymes for the biosynthesis of auxin (IaaH, IaaM) and cytokinin (Ipt). Although these oncogenes are well studied as the tumor-inducing principle, nothing is known about the regulation of oncogene expression in plant cells. Our studies show that the intergenic regions (IGRs) between the coding sequences (CDS) of the three oncogenes function as promoters in plant cells. These promoters possess a eukaryotic sequence organization and cis-regulatory elements for the binding of plant transcription factors. WRKY18, WRKY40, WRKY60 and ARF5 were identified as activators of the Ipt promoter whereas IaaH and IaaM is constitutively expressed and no transcription factor further activates their promoters. Consistent with these results, the wrky triple mutant plants in particular, develops smaller crown galls than wild-type and exhibits a reduced Ipt transcription, despite the presence of an intact ARF5 gene. WRKY40 and WRKY60 gene expression is induced by A. tumefaciens within a few hours whereas the ARF5 gene is transcribed later during crown gall development. The WRKY proteins interact with ARF5 in the plant nucleus, but only WRKY40 together with ARF5 synergistically boosts the activation of the Ipt promoter in an auxin-dependent manner. From our data, we propose that A. tumefaciens initially induces WRKY40 gene expression as a pathogen defense response of the host cell. The WRKY protein is recruited to induce Ipt expression, which initiates cytokinin-dependent host cell division. With increasing auxin levels triggered by ubiquitous expression of IaaH and IaaM, ARF5 is activated and interacts with WRKY40 to potentiate Ipt expression and balance cytokinin and auxin levels for further cell proliferation.
Regulation Tumornekrosefaktor (TNF) Rezeptor assoziierter Signalwege durch das Adapterprotein TRAF1
(2015)
TWEAK ist ein zu der TNF-Superfamilie (Tumor Necrosis Factor) zugehöriges Zytokin, welches in Form löslicher und membranständiger Moleküle vorkommt. Beide Formen des Liganden können an den Rezeptor (Fn14) binden. Viele verschiedene intrazelluläre Signalwege werden durch den Fn14 aktiviert, beispielweise Erk1/2, JNK, Jun und STAT3, vor allem jedoch das NFkB. Lösliches und membranständiges TWEAK zeigen eine ähnliche Aktivierungseffizienz bezüglich des alternativen NFkB-Signalwegs, wohingegen membranständiges TWEAK weit besser als lösliches TWEAK den klassischen NFkB-Signalweg aktiviert. In der vorliegenden Arbeit wurde zunächst die TWEAK-vermittelte Induzierbarkeit von verschiedenen Zielgenen des NFkB-Systems untersucht. Lösliches TWEAK zeigte einen weit schwächeren aktivierenden Effekt auf den klassischen NFkB-Signalweg als TNF, das ein sehr guter Aktivator des klassischen NFkB-Systems ist (Abb. 5, 6). Nichtsdestotrotz war TWEAK imstande eine stärkere TRAF1-Induktion als TNF herbeizuführen (Abbildung 7, 8). TRAF1 ist ein durch NFkB-System stark reguliertes Gen. Um posttranskriptionelle TRAF1-Modifikationen als Ursache für die unerwartet gute TRAF1-Induktion durch lösliches TWEAK auszuschließen, wurde die TRAF1-Expression nach Proteasom- und Caspasen-Inhibition untersucht (Abbildung 9). Dies ergab keinen Hinweis auf einen Einfluss dieser Prozessen auf der TRAF1-Expression.
Mittels des IKK2-spezifischen Inhibitor TPCA-1 wurde die TWEAK-vermittelte TRAF1-Induktion Zelltyp-abhängig gehemmt, wohingegen die TNF-vermittelte Induktion von TRAF1 in allen Zelllinien vollständig inhibiert wurde (Abbildung 13). Versuche mit dem NEDD8-aktivierenden Enzym (NAE) Inhibitor MLN4924, resultierten in einer totalen Inhibition der TRAF1-Expression in allen TWEAK- und TNF-stimulierten Zellen (Abbildung 14). Diese Befunde sprechen dafür, dass bei der TWEAK-vermittelten TRAF1-Expression beide Zweige des NFkB-Signalwegs Zelltyp-abhängig beteiligt sind.
Die Oligomerisierung der Liganden der TNF-Familie verstärkt oft ihre Aktivität. Oligomerisiertes TWEAK imitiert die biologische Aktivität von membranständigem TWEAK. Lösliches TWEAK wurde mit einem anti-Flag Antikörper oligomerisiert und die TRAF1-Induktion durch den alternativen NFkB-Signalweg wurde analysiert
Oligomerisiertes TWEAK aktivierte Zelltyp-unabhängig den klassischen NFkB-Signalweg stärker als lösliches TWEAK, wohingegen kein Effekt auf die TRAF1-Induktion oder auf die Aktivierung den alternativen NFkB-Signalweg festgestellt wurde (Abbildung 11, 12). TWEAK ist imstande die TRAF2-vermittelte CD40-Induktion des klassischen NFkB-Signalwegs zu hemmen (Abbildung 16, 17). Um den Beitrag von TWEAK-Induziertem TRAF1 zur CD40-Inhibition zu herauszufinden, wurden TRAF1-stabil transfizierte 786O- und U2OS-Zellen hergestellt (Abbildung 19). Die CD40-Induzierte IkBa-Degradation und IL8/6 Produktion war in den TRAF1-Transfektanten als auch in mit löslichem TWEAK vorbehandelte Zellen stark inhibiert (Abbildung 21, 22), wobei die CD40-Expression und CD40/CD40L-Interaktion unverändert blieb (Abbildung 20). Diese Ergebnisse sprechen für einen wichtigen Beitrag des Adaptorprotein TRAF1 in der TWEAK-vermittelte Inhibition der CD40-induzierte Aktivierung des klassischen NFkB-Signalwegs.
Stomata sind mikroskopisch kleine Poren in der Blattoberfläche der Landpflanzen, über die das Blattgewebe mit CO2 versorgt wird. Als Schutz vor Austrocknung oder einer Infektion durch Pathogene entwickelte sich ein Mechanismus, um die Porenweite durch Bewegung der sie umgebenden Schließzellen an die Bedürfnisse der Pflanze anzupassen. Ein eng geknüpftes Signalnetzwerk kontrolliert diese Bewegungen und ist in der Lage, externe wie interne Stimuli zu verarbeiten. Der Schließvorgang wird osmotisch durch den Turgorverlust in den Schließzellen angetrieben, der durch den Efflux von Ionen wie K+ ausgelöst wird. In dieser Arbeit wurde die Regulation durch Phosphorylierung des wichtigsten K+-Effluxkanals für den Stomaschluss, GORK, untersucht. Folgende Erkenntnisse wurden durch elektrophysiologische Untersuchungen mit der DEVC-Methode gewonnen: GORK wird durch OST1 auf Ca2+- unabhängige und durch CBL1/9-CIPK5 und CBL1-CIPK23 auf Ca2+-abhängige Weise phosphoryliert und damit aktiviert. CBL1 muss CIPK5 an der Plasmamembran verankern und Ca2+ binden. CIPK5 benötigt ATP und eine Konformationsänderung, um GORK zu phosphorylieren. Im Rahmen dieser Arbeit wurde auch zum ersten Mal gezeigt, dass die PP2CPhosphatase ABI2 direkt mit einem Kanal interagiert und dessen Aktivität hemmt. ABI2 interagiert auch mit den Kinasen OST1, CIPK5 und CIPK23, sodass die Kontrolle der Kanalaktivität auf multiple Weise stattfinden kann. OST1 und ABI2 verbinden die GORKRegulation mit dem ABA-Signalweg. Schließzellen von gork1-2, cbl1/cbl9 und cipk5-2 sind insensitiv auf MeJA, nicht aber auf ABA. Dies stellt eine direkte Verbindung zwischen dem Jasmonatsignalweg und der Ca2+-Signalgebung dar. Im Rahmen dieser Arbeit konnten weitere Hinweise für das komplexe Zusammenspiel der Phytohormone ABA, JA und des Pseudomonas- Effektors Coronatin gefunden werden. Hier konnte zum ersten Mal gezeigt werden, dass Schließzellen je nach Inkubationszeit unterschiedlich auf MeJA und das Phytotoxin Coronatin reagieren. ABA und Coronatin verhalten sich dabei antagonistisch zueinander, wobei der Effekt der Stimuli auf die Stomaweite von der zeitlichen Abfolge der Perzeption abhängt. Der Jasmonat-Signalweg in Schließzellen löst eine geringe ABA-Synthese sowie den Proteinabbau durch das Ubiquitin/26S-Proteasom-System aus und benötigt ABA-Rezeptoren (PYR/PYLs), um einen Stomaschluss einzuleiten. Durch diese Arbeit konnte somit die JA-gesteuerte Regulation des Kaliumefflux-Kanals GORK entschlüsselt sowie einige Unterschiede zwischen den ABA, JA und Coronatin-vermittelten Schließzellbewegungen aufgedeckt werden.
Die vorliegende Arbeit behandelt TRAIL-induzierte Apoptose und Nekroptose in verschiedenen Zelllinien. Im Speziellen wurden die verschiedenen Funktionen des TNF receptor-associated factor 2 (TRAF2) untersucht. Hierzu wurde ein transienter Knockdown etabliert und dessen Wirkung auf die Suszeptibilität der Zellen gegenüber dem Zytokin TRAIL untersucht. Es konnte gezeigt werden, dass ein Knockdown von TRAF2 nicht nur zur Sensitivierung für Apoptose führt, sondern auch in Nekroptose-kompetenten Zellen zu einer Verstärkung der durch Caspaseinhibition mittels zVAD-fmk nach TRAIL-Stimulation induzierten Nekroptose führt. Mittels des Zytokins Fc-TWEAK wurde Fn14-vermittelt TRAF2 aus dem Zytosol in ein Triton X100-unlösliches Kompartiment rekrutiert und dadurch physiologisch depletiert. Dies führte zwar kaum zu gesteigerter TRAIL-abhängiger Apoptose, sensitivierte jedoch analog zum TRAF2-Knockdown RIP3-exprimierende Zellen für Nekroptose. Durch Vergleich RIP3-negativer (HeLa-Leervektor) mit RIP3-exprimierenden Zellen (HeLa RIP3, HT29, HaCaT) konnte die Essentialität von RIP3 für die Nekroptose herausgestellt werden und Einsatz des RIP1-Kinase-Inhibitors Necrostatin-1 sowie des MLKL-Inhibitors Necrosulfonamide belegte die Beteiligung der Nekroptosomkomponenten RIP1 und MLKL. Antagonismus putativen autokrinen TNFs bewies, dass es sich bei dem durch Fc-TWEAK verstärkten Zelltod um einen direkten TRAIL-Effekt handelte und Inhibition kanonischen NFkBs durch IKK2-Inhibitor TPCA-1, dass die TRAF2-Knockdown-vermittelte Sensitivierung gegenüber TRAIL nicht auf verändertes NFkB-Signalling zurückzuführen ist. Einsatz des SMAC-Mimetikums BV6 rekapitulierte zudem stark das im TRAF2-Knockdown Gesehene und unterstrich die Bedeutung der cIAPs. Immunpräzipitation von Caspase 8 unter nekroptotischen Bedingungen zeigte bei TRAF2-Knockdown eine Depletion von TRAF2 und cIAP1/2 sowie RIP1 und RIP3 aus dem Komplex mit Caspase 8. Insgesamt wird deutlich, dass TRAF2 einerseits antiapoptotisch wirkt als K48-Ubiquitinligase, die die Halbwertszeit aktiver Caspase 8-Komplexe determiniert und andererseits eine antinekroptotische Funktion hat, da es durch Rekrutierung von cIAP1/2 an RIP1 die TRAIL-induzierte Nekroptose verhindert, wenn die Caspasen inhibiert sind.
By comparison with plant microbe interaction, little is known about the interaction of parasitic plants with their hosts. Plants of the genus Cuscuta belong to the family of Cuscutaceae and comprise about 200 species, all of which live as stem holoparasites on other plants. Cuscuta spp. possess no roots nor fully expanded leaves and the vegetative portion appears to be a stem only. The parasite winds around plants and penetrates the host stems via haustoria, forming direct connections to the vascular bundles of their hosts to withdraw water, carbohydrates, and other solutes. Besides susceptible hosts, a few plants exist that exhibit an active resistance against infestation by Cuscuta spp. For example, cultivated tomato (Solanum lycopersicum) fends off Cuscuta reflexa by means of a hypersensitive-type response occurring in the early penetration phase. This report on the plant plant dialog between Cuscuta spp. and its host plants focuses on the incompatible interaction of C. reflexa with tomato.
Background:
Grebe dysplasia, Hunter-Thompson dysplasia, and du Pan dysplasia constitute a spectrum of skeletal dysplasias inherited as an autosomal recessive trait characterized by short stature, severe acromesomelic shortening of the limbs, and normal axial skeleton. The majority of patients with these disorders have biallelic loss-of-function mutations of GDF5. In single instances, Grebe dysplasia and a Grebe dysplasia-like phenotype with genital anomalies have been shown to be caused by mutations in BMPR1B, encoding a GDF5 receptor.
Methods:
We clinically and radiologically characterised an acromesomelic chondrodysplasia in an adult woman born to consanguineous parents. We sequenced GDF5 and BMPR1B on DNA of the proposita. We performed 3D structural analysis and luciferase reporter assays to functionally investigate the identified BMPR1B mutation.
Results:
We extend the genotype-phenotype correlation in the acromesomelic chondrodysplasias by showing that the milder du Pan dysplasia can be caused by a hypomorphic BMPR1B mutation. We show that the homozygous c.91C>T, p.(Arg31Cys) mutation causing du Pan dysplasia leads to a significant loss of BMPR1B function, but to a lesser extent than the previously reported p.Cys53Arg mutation that results in the more severe Grebe dysplasia.
Conclusions:
The phenotypic severity gradient of the clinically and radiologically related acromesomelic chondrodysplasia spectrum of skeletal disorders may be due to the extent of functional impairment of the ligand-receptor pair GDF5-BMPR1B.
In Tumoren an Arabidopsis thaliana, induziert über Agrobacterium tumefaciens (Stamm C58), ist von den 49 bekannten Lipidtransferproteinen (LTPs) nur die Expression von LTP2 stark erhöht (Deeken et al., 2006). Mutanten ohne LTP2-Transkripte (ltp2KO) entwickeln deutlich kleinere Tumore als der Wildtyp. Durch die permanenten Zellstreckungs- und Dehnungsprozesse besitzen Tumore keine intakte Epidermis (Efetova et al., 2007). Dies wiederum führt zum Verlust einer vollständigen Cuticula-Schicht, welche von der Epidermis produziert wird und dieser als Barriere zur Umwelt aufgelagert ist. Um den transpirationsbedingten Wasserverlust zu minimieren, werden in Tumoren langkettige Aliphaten in die äußeren Zellschichten eingelagert (Efetova et al., 2006). Ein ähnliches Szenario findet um Verwundungsareale statt (Kolattukudy et al., 2001). Die Gen-Expression von LTP2 wird nicht durch tumorinduzierende Agrobakterien ausgelöst. Faktoren wie Verwundung, sowie die Applikation des Trockenstress-Phytohormons Abscisinsäure (ABA) begünstigen die LTP2-Gen-Expression positiv. Außerdem ist der LTP2-Promotor in Gewebe aktiv, in welchem sekundäre Zellwandmodifikationen auftreten, sowie insbesondere in Abscissionsschichten von welkenden Organen. Ungerichtete Lipidanalysen der ltp2KO-Mutante im Vergleich zum Wildtyp zeigten nur signifikante Veränderungen in der Menge definierter Sphingolipide – obwohl bislang eine Beteiligung von LTP2 am Transfer von Phospholipiden postuliert wurde. Allerdings kann das LTP2-Protein, wie Protein-Lipid-Overlay-Analysen demonstrierten, weder komplexen Sphingolipide noch Sphingobasen binden. Neben Sphingobasen sind auch langkettige Fettsäuren Bestandteile von Sphingolipiden und diese sind wiederum Bindepartner von LTP2. Um eine eventuelle Beteiligung von LTP2 an der Bildung von Suberin von Tumoren zu zeigen, wurde dieses analysiert. Die GC-MS-Analysen des Tumor-Suberins haben jedoch veranschaulicht, dass durch das Fehlen von LTP2-Transkripten das Lipidmuster nicht beeinträchtigt wird. Eine Überexpression von LTP2 im gesamten Kormophyten war trotz drei unabhängiger experimenteller Ansätze nicht möglich. Daher wurde das Protein ektopisch in epidermalen Zellen exprimiert (CER5Prom::LTP2). Die Transgenen CER5Prom::LTP2 wiesen einige morphologische Besonderheiten auf, wie verminderte Oberflächenhydrophobizität, aberrante Blüten- und Blattmorphologien etc., die typisch für Wachsmutanten sind. GC-MS-Analysen der cuticulären Wachse dieser transgenen Pflanzen zeigten, einen erhöhten Gehalt an C24- und C26-Fettsäuren, wohingegen die korrespondierenden Aliphaten wie Aldehyde und Alkane dezimiert waren. Unterstützend zeigten Lokalisationsanalysen, dass das LTP2-Protein an/in der Plasmamembran assoziiert ist.
Somit kann die These aufgestellt werden, dass LTP2 langkettigen, unverzweigten Aliphaten (Fettsäuren) an der Grenzfläche Plasmamembran/Zellwand transferiert, die zur Versieglung und Festigung von Zellwänden benötigt werden.
Functionally active (conformational) autoantibodies directed against the β1-adrenergic receptor (β1-AR) are supposed to have a pathogenic relevance in human heart failure, particularly in idiopathic dilated cardiomyopathy (DCM). Prevalence of anti-β1-autoantibodies (anti-β1-aabs) in the healthy population is almost negligible, whereas it amounts to up to 30% in heart failure patients with idiopathic DCM. As β1-ARs are not restricted to the heart and are also highly expressed in particular segments of the nephron, it is conceivable that such autoantibodies might also affect kidney function to some extent through the activation of renal β1-ARs.
In the kidney, β1-ARs are highly abundant in the juxtaglomerular apparatus, the distal convoluted tubules, the collecting duct, and the renal arteries. However, the functional significance of β1-ARs at these particular sites along the nephron is poorly understood, as are the effects of conformational stimulating anti-β1-aabs on renal β1-ARs. From the available literature, it is well known that the β1-adrenergic system is involved in, e.g., the regulation of renin-secretion from juxtaglomerular cells. In addition, the β1-adrenergic system is thought to be involved in the regulation of the urine pH via type B-intercalated cells in the collecting duct. In contrast, the regulation of salt- and fluid-secretion in the medullary collecting duct appears to occur independently from the SNS.
As a consequence, the present work aimed to unravel the potential pathophysiological links between renal function, alterations in the cardiovascular system, and circulating agonist-like anti- β1-abs. We analyzed possible renal effects of anti-β1-abs in a human-analogous rat model. After immunization with a GST-fusion protein containing the second extracellular loop (β1-ECII) of the human β1-AR, Lewis-rats develop functionally active, stimulating, conformational anti-β1-ECII-abs. Within the first 6 months, anti-β1-ECII-ab-positive animals develop a hypertensive phenotype, which after 9 months evolves into a DCM phenotype.
In n=40 GST/ β1-ECII-immunized Lewis rats and n=40 age-matched, 0.9% NaCl-injected control animals, we sequentially (i.e. at months 1, 2, 3, 6, 9, 12, 15, and 18 after start of immunization) analyzed the changes in renal function on a molecular, functional, and structural level. We could show that the presence of stimulating anti-β1-ECII-abs – even though having detrimental effects on the heart – has only a minor impact on kidney function and structure. Within the first 3 months after induction of anti-β1-ECII-abs, the levels and activity of renin were significantly increased in immunized compared to corresponding control animals, which was confirmed by experiments on isolated perfused kidneys, in which anti-β1-ECII-abs were able to directly induce the liberation of renin. However, within several weeks the initial anti-β1-ECII-ab-mediated RAAS activation was counter-regulated by auto-regulatory mechanisms activated in the kidney. Similarly, glomerular filtration rate (GFR) and renal blood flow (RBF) were initially decreased in the presence of the stimulating anti-β1-ECII-abs, but returned to control values within 3 months after immunization of the animals. Although expression of several pro-fibrotic markers was significantly up-regulated in anti-β1-ECII-ab-positive rats, no significant differences were noted on a histomorphological level with regard to the occurrence of renal fibrosis, glomerular damage, tubular damage, and perivascular fibrosis. Only a mild decrease in glomerular filtration function was observed in the kidneys of anti-β1-ECII-ab-positive animals from immunization-month 12 on, apparent by increased levels of urinary protein.
Even though anti-β1-ECII-abs were able to induce mild changes in renal function, their effects were not strong enough to critically damage the kidneys in our rat-model. Differences between immunized anti-β1-ECII-ab-positive and corresponding control rats at later time-points (that is, from immunization-month 12 on) are most likely secondary to the progressive heart failure phenotype that immunized animals develop in the course of the experiment.
The present study is the first to focus on the effects of stimulating anti-β1-ECII-abs on the kidney, and on the prevalence of these effects for the heart (referred to as cardio-renal crosstalk). Although our results were obtained in a rat model, they might contribute to better understand the situation in anti-β1-AR-aab-positive human patients. Following the results of our experiments, treatment of such patients should focus on direct and specific neutralization/elimination of stimulating anti-β1-ECII-aab or at least comprise therapeutic strategies that counteract the anti-β1-ECII-aab-effects on the heart by standard treatment for heart failure (i.e. ACE inhibitors, AT1-receptor blockers, and β-blockers) according to current guidelines.
CD70-abhängige und spezifische Aktivierung von TRAILR1 oder TRAILR2 durch scFv:CD70-TRAIL-Mutanten
(2014)
Das Ziel dieser Arbeit bestand darin, den T-Zell-inhibierenden Effekt eines CD70-blockierenden Antikörpers mit einer Fc-unabhängigen Zelltod-induzierenden Aktivität auf CD70-exprimierende Tumoren zu kombinieren. Dazu wurden Fusionsproteine hergestellt und untersucht, die aus einer CD70-bindenden scFv-Domäne sowie aus einer TRAIL-Domäne bestehen.
Der CD70-spezifische monoklonale Antikörper lαhCD70 sowie der beretis bekannte hCD70-spezifische Antikörper 1F6 blockieren mit hoher Effizienz die CD27/CD70-Interaktion von CD70-exprimierenden Zelllinien (Mino, OVCAR-3, U-266) und inhibieren dadurch die Induktion der IL8-Produktion durch diese Zellen in kokultivierten HT1080-CD27-Zellen. IL8 wird durch den klassischen NFκB-Signalweg reguliert und ist für den pro-angiogenetischen Effekt von entscheidender Bedeutung (Abb. 2, 3). Mit Hilfe zellulärer Gleichgewichtsbindungsstudien mit mono- und trimeren scFv:lαhCD70-GpL-Fusionsproteinen (Abb. 4) auf Mino- und OVCAR-3-Zellen konnte gezeigt werden, dass die Trimerisierung in beiden Zelllinien zu einer Steigerung der apparenten Affinität der scFv:lαhCD70-CD70 Interaktion führt und damit einen Effekt auf die CD70-Belegung hat (Abb. 5). Für die Konstruktion der Fusionsproteine wurde sowohl Wildtyp-TRAIL als auch TRAIL-Mutanten mit Präferenz für den TRAILR1 oder TRAILR2 verwendet. Die TRAILR-Präferenz der verwendeten TRAIL-Mutanten (wt, mutR1, mutR2) wurde nicht nur in zellulären GpL-Bindungsstudien (Abb. 7) sondern zusätzlich auch in TRAILR Immobilisierungsexperimenten (Abb. 8) bewiesen. Hier zeigte sich, dass bei TRAILR1 keine Interaktion mit TRAILmutR2, so wie bei TRAILR2 keine signifikante Bindung mit TRAILmutR1 erfolgte. Nur der TRAIL-Wildtyp band signifikant an beide TRAIL-Todesrezeptoren. Vitalitätsexperimente (Abb. 10) und Western-Blot Analysen der Caspase-Prozessierung (Abb. 11) bestätigten die starke TRAILR1- bzw. TRAILR2-Spezifität der TRAILmutR1- und TRAILmutR2-Varianten. Im Gegensatz zu den unvernetzten löslichen TRAIL-Trimeren waren nur die
quervernetzten TRAIL-TNC-Varianten in der Lage, eine signifikante Apoptose-Signalkaskade bei relativ geringen Konzentrationen zu induzieren. Die toxischen ED50-Konzentrationen der unoligomerisierten TRAIL-Formen lagen um einen Faktor 100 höher als die der oligomerisierten Varianten. Zusammenfassend zeigten die ED50-Werte der Zytotoxizitätsexperimente von M2-oligomerisierten zu -unoligomerisierten trimeren TRAIL-Varianten bei allen Fusionskonstrukten und Zelllinien eine eindeutige Verstärkung der Apoptoseinduktion durch die M2-Quervernetzung. Bei Jurkat- und Mino-Zellen konnte größtenteils erst nach Oligomerisierung überhaupt eine Bioaktivität bzw. eine Zelltodinduktion beobachtet werden. In OVCAR-3-Zellen zeigte sich eine 100-1000 fache apoptotische Verstärkung durch die Oligomerisierung (Abb. 10). Weiterhin zeigten Zytotoxizitätsexperimente, dass sich durch Bindung an hCD70 das Ausmaß der Toxizität der Fusionsproteine auf allen CD70-exprimierenden Zelllinien 10-100x verstärkte (Abb. 15, 17). In Übereinstimmung mit der verstärkten TRAIL-Todesrezeptor-Aktivierung durch die CD70-Bindung der scFv-TRAIL-Fusionsproteine, konnte durch eine CD70-Blockade die Caspase-8 Aktivierung und die Prozessierung von Caspase-3 signifikant unterbunden werden (Abb. 18). Die Trimerisierung des scFv:lαhCD70-Antikörpers führte zu keiner Apoptose und beeinflußte auch nicht die Aktivität von TRAIL (Abb. 19) was belegt, dass die beobachteten Effekte auf einer stärkeren TRAIL-induzierten Apoptose nach CD70-Bindung der Konstrukte beruhen muss.
Die Fusionsproteine beseitigen somit nachweislich einerseits das Problem der limitierenden Aktivität von löslichem TRAIL über ihre Verankerung an CD70 (Abb. 15-20) und anderseits die potentielle unerwünschte CD70-vermittelte protumorale CD27-Stimulation (Abb. 3). Darüber hinaus könnten die TRAILR-spezifischen TRAIL-Mutanten helfen, Nebeneffekte zu reduzieren, die primär durch den jeweils anderen TRAIL-Todesrezeptor vermittelt werden. Jedoch sind weiter Forschungen insbesondere in vivo Experimente notwendig, um Aussagen über Funktionalität, Halbwertszeiten, sowie Effektivität und Verträglichkeit treffen zu können.
Im Rahmen der hier vorliegenden Arbeit konnten neue Erkenntnisse zur oxidativen, pH- und ATP-abhängigen Regulation der V-ATPase-Funktion in Mesophyllvakuolen von A. thaliana erarbeitet werden. Dazu wurden Patch-Clamp-Experimente an der vakuolären Protonen-ATPase durchgeführt, die eine elektrophysiologische Untersuchung der Protonentransporteigenschaften und deren Regulation ermöglichten. Zusätzlich gestattete die Anwendung von intrazellulären Mikroelektroden zusammen mit einem Fluoreszenz-Bildgebungsverfahren an intakten Wurzelrhizodermiszellen von A. thaliana Keimlingen die in vivo Untersuchung von vakuolären Membranleitfähigkeiten und deren Regulation durch cytosolisches Calcium.
Durch die Patch-Clamp-Technik konnte die Spannungsabhängigkeit der V-ATPase bei verschiedenen luminalen pH-Werten erfasst werden. Mit Hilfe thermodynamischer Berechnungen konnte daraus eine Abnahme der Protonentransportrate pro hydrolysiertem ATP-Molekül bei gleichzeitigem Anstieg der vakuolären Protonenkonzentration berechnet werden. Durch die Kombination verschiedener pH-Werte in Cytosol bzw. Vakuole und zusätzlich ansteigenden ATP-Konzentrationen konnten tiefere Einblicke in die pH-abhängige Regulation der V-ATPase-Aktivität erlangt werden. Es konnte aufgezeigt werden, dass eine Abweichung des vakuolären pH-Wertes wesentlich stärker auf die ATP-Bindungsaffinität und Transportkapazität des Enzyms wirkt, als Änderungen der Protonenkonzentration auf cytosolischer Seite. Daraus konnte abgeleitet werden, dass cytosolische bzw. luminale pH-Änderungen auf das gesamte Membran-durchquerende Enzym wirken und jeweils auf die andere Membranseite der V-ATPase weitergegeben werden. Zusätzlich wurden die in dieser Arbeit erhobenen Daten zur V-ATPase im Rahmen einer Zusammenarbeit von Prof. Dr. Ingo Dreyer (Universidad Politecnica, Madrid, Spanien) für die Erstellung eines mathematischen Modells genutzt. Es untermauert einen Rückkopplungsmechanismus der Protonenkonzentration auf die maximale Protonentransportrate (vmax) und die ATP-Affinität (Km) und schlägt eine pH-abhängige Dissoziation der Protonen von der V-ATPase, auch unter ungünstigen intrazellulären Bedingungen, vor. Die Ausweitung der Regulationsstudien unter Einbeziehung verschiedener Mutanten konnte in Zusammenarbeit mit Jun. Prof. Dr. Thorsten Seidel und Mitarbeitern (Universität Bielefeld, Deutschland) eine oxidative Inhibierung der V-ATPase-Aktivität durch den Wegfall von Disulfidbrücken innerhalb des Pumpproteins erfassen und mögliche Auswirkungen von Disulfidbindungen auf die Protonenkopplungsrate aufzeigen.
Mit Hilfe von intrazellulären Mikroelektroden konnte im zweiten Teil der vorliegenden Arbeit der Nachweis erbracht werden, dass vakuoläre Leitfähigkeiten von Atrichoblasten in A. thaliana durch Stressfaktoren – verursacht durch den Einstich von intrazellulären Mikroelektroden – deutliche Veränderungen zeigen. Durch die Kombination der Zwei-Elektroden-Spannungsklemme mit einem Fluoreszenz-Bildgebungsverfahren konnte eine Methode zur simultanen Aufzeichnung von Calciumänderungen und elektrischen Membranleitfähigkeiten an Trichoblastenvakuolen entwickelt werden. Dadurch konnte in weiterführenden Untersuchungen in vivo nachgewiesen werden, dass ein transienter Anstieg der cytosolischen Calciumkonzentration zu einer reversiblen Zunahme der Ströme von vakuolären Membranleitfähigkeiten führt, deren unbekannter Ursprung allerdings bereits bekannten Transportproteinen noch zugeordnet werden muss.
RNA polymerase II dependent transcription and nucleotide excision repair are mediated by a multifaceted interplay of subunits within the general transcription factor II H (TFIIH). A better understanding of the molecular structure of TFIIH is the key to unravel the mechanism of action of this versatile protein complex within these vital cellular processes. The importance of this complex becomes further evident in the context of severe diseases like xeroderma pigmentosum, Cockayne's syndrome and trichothiodystrophy, that arise from single point mutations in TFIIH subunits. Here we describe the structure of the p34 subunit of the TFIIH complex from the eukaryotic thermophilic fungus Chaetomium thermophilum. The structure revealed that p34 contains a von Willebrand Factor A (vWA) like domain, a fold which is generally known to be involved in protein-protein interactions. Within TFIIH p34 strongly interacts with p44, a positive regulator of the helicase XPD. Putative protein-protein interfaces are analyzed and possible binding sites for the p34-p44 interaction suggested.
A novel cost effective and high-throughput isolation and identification method for marine microalgae
(2014)
BACKROUND:
Marine microalgae are of major ecologic and emerging economic importance. Biotechnological screening schemes of microalgae for specific traits and laboratory experiments to advance our knowledge on algal biology and evolution strongly benefit from culture collections reflecting a maximum of the natural inter- and intraspecific diversity. However, standard procedures for strain isolation and identification, namely DNA extraction, purification, amplification, sequencing and taxonomic identification still include considerable constraints increasing the time required to establish new cultures.
RESULTS:
In this study, we report a cost effective and high-throughput isolation and identification method for marine microalgae. The throughput was increased by applying strain isolation on plates and taxonomic identification by direct PCR (dPCR) of phylogenetic marker genes in combination with a novel sequencing electropherogram based screening method to assess the taxonomic diversity and identity of the isolated cultures. For validation of the effectiveness of this approach, we isolated and identified a range of unialgal cultures from natural phytoplankton communities sampled in the Arctic Ocean. These cultures include the isolate of a novel marine Chlorophyceae strain among several different diatoms.
CONCLUSIONS:
We provide an efficient and effective approach leading from natural phytoplankton communities to isolated and taxonomically identified algal strains in only a few weeks. Validated with sensitive Arctic phytoplankton, this approach overcomes the constraints of standard molecular characterisation and establishment of unialgal cultures."
Does Dionaea muscipula, the Venus flytrap, use a particular mechanism to attract animal prey? This question was raised by Charles Darwin 140 years ago, but it remains unanswered. This study tested the hypothesis that Dionaea releases volatile organic compounds (VOCs) to allure prey insects. For this purpose, olfactory choice bioassays were performed to elucidate if Dionaea attracts Drosophila melanogaster. The VOCs emitted by the plant were further analysed by GC-MS and proton transfer reaction-mass spectrometry (PTR-MS). The bioassays documented that Drosophila was strongly attracted by the carnivorous plant. Over 60 VOCs, including terpenes, benzenoids, and aliphatics, were emitted by Dionaea, predominantly in the light. This work further tested whether attraction of animal prey is affected by the nutritional status of the plant. For this purpose, Dionaea plants were fed with insect biomass to improve plant N status. However, although such feeding altered the VOC emission pattern by reducing terpene release, the attraction of Drosophila was not affected. From these results it is concluded that Dionaea attracts insects on the basis of food smell mimicry because the scent released has strong similarity to the bouquet of fruits and plant flowers. Such a volatile blend is emitted to attract insects searching for food to visit the deadly capture organ of the Venus flytrap.
High resolution Fourier transform mass spectrometry (HRFTMS) and nuclear magnetic resonance (NMR) spectroscopy were employed as complementary metabolomic tools to dereplicate the chemical profile of the new and antitrypanosomally active sponge-associated bacterium Actinokineospora sp. EG49 extract. Principal Component (PCA), hierarchical clustering (HCA), and orthogonal partial least square-discriminant analysis (OPLS-DA) were used to evaluate the HRFTMS and NMR data of crude extracts from four different fermentation approaches. Statistical analysis identified the best culture one-strain-many-compounds (OSMAC) condition and extraction procedure, which was used for the isolation of novel bioactive metabolites. As a result, two new O-glycosylated angucyclines, named actinosporins A (1) and B (2), were isolated from the broth culture of Actinokineospora sp. strain EG49, which was cultivated from the Red Sea sponge Spheciospongia vagabunda. The structures of actinosporins A and B were determined by 1D- and 2D-NMR techniques, as well as high resolution tandem mass spectrometry. Testing for antiparasitic properties showed that actinosporin A exhibited activity against Trypanosoma brucei brucei with an IC₅₀ value of 15 µM; however no activity was detected against Leishmania major and Plasmodium falciparum, therefore suggesting its selectivity against the parasite Trypanosoma brucei brucei; the causative agent of sleeping sickness.
Agrobacterium tumefaciens causes crown gall disease on various plant species by introducing its T-DNA into the genome. Therefore, Agrobacterium has been extensively studied both as a pathogen and an important biotechnological tool. The infection process involves the transfer of T-DNA and virulence proteins into the plant cell. At that time the gene expression patterns of host plants differ depending on the Agrobacterium strain, plant species and cell-type used. Later on, integration of the T-DNA into the plant host genome, expression of the encoded oncogenes, and increase in phytohormone levels induce a fundamental reprogramming of the transformed cells. This results in their proliferation and finally formation of plant tumors. The process of reprogramming is accompanied by altered gene expression, morphology and metabolism. In addition to changes in the transcriptome and metabolome, further genome-wide ("omic") approaches have recently deepened our understanding of the genetic and epigenetic basis of crown gall tumor formation. This review summarizes the current knowledge about plant responses in the course of tumor development. Special emphasis is placed on the connection between epigenetic, transcriptomic, metabolomic, and morphological changes in the developing tumor. These changes not only result in abnormally proliferating host cells with a heterotrophic and transport-dependent metabolism, but also cause differentiation and serve as mechanisms to balance pathogen defense and adapt to abiotic stress conditions, thereby allowing the coexistence of the crown gall and host plant.
In this paper, we report new protease inhibitory activity of plakortide E towards cathepsins and cathepsin-like parasitic proteases. We further report on its anti-parasitic activity against Trypanosoma brucei with an IC50 value of 5 mu M and without cytotoxic effects against J774.1 macrophages at 100 mu M concentration. Plakortide E was isolated from the sponge Plakortis halichondroides using enzyme assay-guided fractionation and identified by NMR spectroscopy and mass spectrometry. Furthermore, enzyme kinetic studies confirmed plakortide E as a non-competitive, slowly-binding, reversible inhibitor of rhodesain.
Two sponge-derived actinomycetes, Actinokineospora sp. EG49 and Nocardiopsis sp. RV163, were grown in co-culture and the presence of induced metabolites monitored by H-1 NMR. Ten known compounds, including angucycline, diketopiperazine and beta-carboline derivatives 1-10, were isolated from the EtOAc extracts of Actinokineospora sp. EG49 and Nocardiopsis sp. RV163. Co-cultivation of Actinokineospora sp. EG49 and Nocardiopsis sp. RV163 induced the biosynthesis of three natural products that were not detected in the single culture of either microorganism, namely N-(2-hydroxyphenyl)-acetamide (11), 1,6-dihydroxyphenazine (12) and 5a, 6,11a, 12-tetrahydro-5a, 11a-dimethyl[1,4]benzoxazino[3,2-b][1,4]benzoxazine (13a). When tested for biological activity against a range of bacteria and parasites, only the phenazine 12 was active against Bacillus sp. P25, Trypanosoma brucei and interestingly, against Actinokineospora sp. EG49. These findings highlight the co-cultivation approach as an effective strategy to access the bioactive secondary metabolites hidden in the genomes of marine actinomycetes.
Marine invertebrate-associated symbiotic bacteria produce a plethora of novel secondary metabolites which may be structurally unique with interesting pharmacological properties. Selection of strains usually relies on literature searching, genetic screening and bioactivity results, often without considering the chemical novelty and abundance of secondary metabolites being produced by the microorganism until the time-consuming bioassay-guided isolation stages. To fast track the selection process, metabolomic tools were used to aid strain selection by investigating differences in the chemical profiles of 77 bacterial extracts isolated from cold water marine invertebrates from Orkney, Scotland using liquid chromatography-high resolution mass spectrometry (LC-HRMS) and nuclear magnetic resonance (NMR) spectroscopy. Following mass spectrometric analysis and dereplication using an Excel macro developed in-house, principal component analysis (PCA) was employed to differentiate the bacterial strains based on their chemical profiles. NMR H-1 and correlation spectroscopy (COSY) were also employed to obtain a chemical fingerprint of each bacterial strain and to confirm the presence of functional groups and spin systems. These results were then combined with taxonomic identification and bioassay screening data to identify three bacterial strains, namely Bacillus sp. 4117, Rhodococcus sp. ZS402 and Vibrio splendidus strain LGP32, to prioritize for scale-up based on their chemically interesting secondary metabolomes, established through dereplication and interesting bioactivities, determined from bioassay screening.
Stress impacts negatively on plant growth and crop productivity, causing extensive losses to agricultural production worldwide. Throughout their life, plants are often confronted with multiple types of stress that affect overall cellular energy status and activate energy-saving responses. The resulting low energy syndrome (LES) includes transcriptional, translational, and metabolic reprogramming and is essential for stress adaptation. The conserved kinases sucrose-non-fermenting-1-related protein kinase-1 (SnRK1) and target of rapamycin (TOR) play central roles in the regulation of LES in response to stress conditions, affecting cellular processes and leading to growth arrest and metabolic reprogramming. We review the current understanding of how TOR and SnRK1 are involved in regulating the response of plants to low energy conditions. The central role in the regulation of cellular processes, the reprogramming of metabolism, and the phenotypic consequences of these two kinases will be discussed in light of current knowledge and potential future developments.
Background: Recent studies demonstrated that engagement of sodium glucose transporter 1 (SGLT-1) by orally administered D-glucose protects the intestinal mucosa from lipopolysaccharide (LPS)-induced injury. We tested whether SGLT-1 engagement might protect the intestinal mucosa from doxorubicin (DXR)- and 5-fluorouracil (5-FU)-induced injury in animal models mimicking acute or chronic mucositis.
Methods: Mice were treated intraperitoneally with DXR, alone or in combination with 5-FU, and orally with BLF501, a glucose-derived synthetic compound with high affinity for SGLT-1. Intestinal mucosal epithelium integrity was assessed by histological analysis, cellular proliferation assays, real-time PCR gene expression assays and Western blot assays. Student's t-test (paired two-tailed) and X-2 analyses were used for comparisons between groups. Differences were considered significant at p < 0.05.
Results: BLF501 administration in mice treated with DXR and/or 5-FU decreased the injuries to the mucosa in terms of epithelial integrity and cellular proliferative ability. Co-treatment with BLF501 led to a normal expression and distribution of both zonula occludens-1 (ZO-1) and beta-catenin, which were underexpressed after treatment with either chemotherapeutic agent alone. BLF501 administration also restored normal expression of caspase-3 and ezrin/radixin/moesin (ERM), which were overexpressed after treatment with DXR and 5-FU. In SGLT1-/- mice, BLF501 had no detectable effects. BLF501 administration in wild-type mice with growing A431 tumors did not modify antitumor activity of DXR.
Conclusions: BLF501-induced protection of the intestinal mucosa is a promising novel therapeutic approach to reducing the severity of chemotherapy-induced mucositis.
DNA binding properties of human Cdc45 suggest a function as molecular wedge for DNA unwinding
(2014)
The cell division cycle protein 45 (Cdc45) represents an essential replication factor that, together with the Mcm2-7 complex and the four subunits of GINS, forms the replicative DNA helicase in eukaryotes. Recombinant human Cdc45 (hCdc45) was structurally characterized and its DNA-binding properties were determined. Synchrotron radiation circular dichroism spectroscopy, dynamic light scattering, small-angle X-ray scattering and atomic force microscopy revealed that hCdc45 exists as an alpha-helical monomer and possesses a structure similar to its bacterial homolog RecJ. hCdc45 bound long (113-mer or 80-mer) single-stranded DNA fragments with a higher affinity than shorter ones (34-mer). hCdc45 displayed a preference for 3' protruding strands and bound tightly to single-strand/double-strand DNA junctions, such as those presented by Y-shaped DNA, bubbles and displacement loops, all of which appear transiently during the initiation of DNA replication. Collectively, our findings suggest that hCdc45 not only binds to but also slides on DNA with a 3'-5' polarity and, thereby acts as a molecular 'wedge' to initiate DNA strand displacement.
Intestinal glucose absorption is mediated by SGLT1 whereas GLUT2 is considered to provide basolateral exit. Recently, it was proposed that GLUT2 can be recruited into the apical membrane after a high luminal glucose bolus allowing bulk absorption of glucose by facilitated diffusion. Moreover, SGLT1 and GLUT2 are suggested to play an important role in intestinal glucose sensing and incretin secretion. In mice that lack either SGLT1 or GLUT2 we re-assessed the role of these transporters in intestinal glucose uptake after radiotracer glucose gavage and performed Western blot analysis for transporter abundance in apical membrane fractions in a comparative approach. Moreover, we examined the contribution of these transporters to glucose-induced changes in plasma GIP, GLP-1 and insulin levels. In mice lacking SGLT1, tissue retention of tracer glucose was drastically reduced throughout the entire small intestine whereas GLUT2-deficient animals exhibited higher tracer contents in tissue samples than wild type animals. Deletion of SGLT1 resulted also in reduced blood glucose elevations and abolished GIP and GLP-1 secretion in response to glucose. In mice lacking GLUT2, glucose-induced insulin but not incretin secretion was impaired. Western blot analysis revealed unchanged protein levels of SGLT1 after glucose gavage. GLUT2 detected in apical membrane fractions mainly resulted from contamination with basolateral membranes but did not change in density after glucose administration. SGLT1 is unequivocally the prime intestinal glucose transporter even at high luminal glucose concentrations. Moreover, SGLT1 mediates glucose-induced incretin secretion. Our studies do not provide evidence for GLUT2 playing any role in either apical glucose influx or incretin secretion.
Despite the completion of the Arabidopsis genome sequence, for only a relatively low percentage of the encoded proteins experimental evidence concerning their function is available. Plant proteins that harbour a single PLAT (Polycystin, Lipoxygenase, Alpha-toxin and Triacylglycerol lipase) domain and belong to the PLAT-plant-stress protein family are ubiquitously present in monocot and dicots. However, the function of PLAT-plant-stress proteins is still poorly understood. Therefore, we have assessed the function of the uncharacterised Arabidopsis PLAT-plant-stress family members through a combination of functional genetic and physiological approaches. PLAT1 overexpression conferred increased abiotic stress tolerance, including cold, drought and salt stress, while loss-of-function resulted in opposite effects on abiotic stress tolerance. Strikingly, PLAT1 promoted growth under non-stressed conditions. Abiotic stress treatments induced PLAT1 expression and caused expansion of its expression domain. The ABF/ABRE transcription factors, which are positive mediators of abscisic acid signalling, activate PLAT1 promoter activity in transactivation assays and directly bind to the ABRE elements located in this promoter in electrophoretic mobility shift assays. This suggests that PLAT1 represents a novel downstream target of the abscisic acid signalling pathway. Thus, we showed that PLAT1 critically functions as positive regulator of abiotic stress tolerance, but also is involved in regulating plant growth, and thereby assigned a function to this previously uncharacterised PLAT domain protein. The functional data obtained for PLAT1 support that PLAT-plant-stress proteins in general could be promising targets for improving abiotic stress tolerance without yield penalty.
The diversity of actinomycetes associated with marine sponges collected off Fsar Reef (Saudi Arabia) was investigated in the present study. Forty-seven actinomycetes were cultivated and phylogenetically identified based on 16S rRNA gene sequencing and were assigned to 10 different actinomycete genera. Eight putatively novel species belonging to genera Kocuria, Mycobacterium, Nocardia, and Rhodococcus were identified based on sequence similarity values below 98.2% to other 16S rRNA gene sequences available in the NCBI database. PCR-based screening for biosynthetic genes including type I and type II polyketide synthases (PKS-I, PKS-II) as well as nonribosomal peptide synthetases (NRPS) showed that 20 actinomycete isolates encoded each at least one type of biosynthetic gene. The organic extracts of nine isolates displayed bioactivity against at least one of the test pathogens, which were Gram-positive and Gram-negative bacteria, fungi, human parasites, as well as in a West Nile Virus protease enzymatic assay. These results emphasize that marine sponges are a prolific resource for novel bioactive actinomycetes with potential for drug discovery.
The candidate phylum Poribacteria is one of the most dominant and widespread members of the microbial communities residing within marine sponges. Cell compartmentalization had been postulated along with their discovery about a decade ago and their phylogenetic association to the Planctomycetes, Verrucomicrobia, Chlamydiae superphylum was proposed soon thereafter. In the present study we revised these features based on genomic data obtained from six poribacterial single cells. We propose that Poribacteria form a distinct monophyletic phylum contiguous to the PVC superphylum together with other candidate phyla. Our genomic analyses supported the possibility of cell compartmentalization in form of bacterial microcompartments. Further analyses of eukaryote-like protein domains stressed the importance of such proteins with features including tetratricopeptide repeats, leucin rich repeats as well as low density lipoproteins receptor repeats, the latter of which are reported here for the first time from a sponge symbiont. Finally, examining the most abundant protein domain family on poribacterial genomes revealed diverse phyH family proteins, some of which may be related to dissolved organic posphorus uptake.
The marine sponge-associated bacterium Actinokineospora sp. strain EG49 produces the antitrypanosomal angucycline-like compound actinosporin A. The draft genome of Actinokineospora sp. EG49 has a size of 7.5 megabases and a GC content of 72.8% and contains 6,629 protein-coding sequences (CDS). antiSMASH predicted 996 genes residing in 36 secondary metabolite gene clusters.
Bone Morphogenetic Proteins (BMPs) sind extrazellulär vorkommende Wachstumsfaktoren und werden der Superfamilie der Transforming Growth Factors β (TGF-β) zugeordnet. Entgegen ihrem Namen spielen sie nicht nur eine Rolle bei der Ausbildung und Regeneration der Knochenmatrix, sondern regulieren bereits während der Embryonalentwicklung zahlreiche Abläufe. Unter anderem sind sie an der Festlegung der Körperachsen und Entwicklung der Organanlagen beteiligt. Später steuern sie das Wachstum von Organen und Geweben und sind schließlich im adulten Organismus für deren Homöostase und Regeneration verantwortlich. Bei fast allen Mitgliedern der TGF-β Superfamilie erfolgt die Signalbildung nach derzeitigem Kenntnisstand durch die Bindung an transmembrane Serin/Threonin-Kinaserezeptoren, die in zwei Untergruppen unterteilt werden können. Dabei werden von einem Liganden jeweils zwei Typ I- und zwei Typ II-Rezeptoren gebunden, wodurch ein aktiver Komplex entsteht, der im Inneren der Zelle eine Signalkaskade auslöst.
Um die vielseitigen Aufgaben der BMPs spezifisch vermitteln zu können, gibt es zahlreiche Mechanismen, die Signalbildung stringent neben der Ligand-Rezeptor-Interaktion zu regulieren. Die Small Mothers Against Decapentaplegic (Smad)-Signalkaskade im Zellinneren wird beispielsweise durch die Interaktion der inhibitorischen Smads mit rezeptor-regulierten Smads oder durch den proteasomalen Abbau der rezeptor-regulierten Smads durch die Bindung von Ubiquitin-Ligasen der Smurf-Familie beeinflusst. Auch auf Membranebene besteht die Möglichkeit der negativen Signalmodulation durch Pseudorezeptoren oder der Verstärkung der Signalbildung durch positive Effektoren wie beispielsweise aktivitätssteigernde Co-Rezeptoren.
Ein Charakteristikum der TGF-β Superfamilie stellt jedoch die Vielzahl an sekretierten, löslichen Modulatorproteinen dar. Die meist glykosylierten Proteine üben, bis auf wenige Ausnahmen, einen antagonistischen Effekt auf die BMPs aus. Bei dem BMP-spezifischen Modulatorprotein Twisted gastrulation handelt es sich um ein extrazelluläres Glykoprotein, das im Gegensatz zu den meisten anderen BMP-Modulatoren jedoch eine duale Funktion als Besonderheit aufweist. Es zeigt zum einen eine anti-BMP-Wirkung, indem es den BMP-inhibierenden Einfluss von Chordin durch Bildung eines stabilen ternären Komplexes verstärkt; andererseits kann Twisted gastrulation in Gegenwart spezifischer Metalloproteasen eine proteolytische Spaltung von Chordin und die anschließende Freisetzung von aktivem BMP fördern und so eine BMP-Aktivität vermittelnde Wirkung aufweisen. Twisted gastrulation hat keine beziehungsweise nur eine äußerst geringe Homologie zu anderen (Modulator)Proteinen. Um daher den komplexen Wirkmechanismus detailliert molekular beschreiben zu können, ist die Aufklärung der Struktur /Funktions-beziehungen essentiell.
Im Rahmen dieser Arbeit konnten unterschiedliche Expressionsstrategien für die rekombinante Herstellung von Twisted gastrulation etabliert werden, welche eine umfassende Charakterisierung des Proteins in vitro ermöglichen. Erste Kristallisationsversuche von isoliertem Twisted gastrulation für die Aufklärung der dreidimensionalen Struktur mittels Röntgenbeugung verliefen ohne Erfolg, allerdings gelang die Präparation stabiler ternärer Proteinkomplexe für weiterführende Kristallisationsansätze. Hochdurchsatzverfahren für die Expression und Interaktionsanalyse erlauben zudem die Untersuchung einer Vielzahl von Twisted gastrulation-Proteinvarianten. Auf diese Weise konnten Aminosäuren identifiziert werden, die an der Wechselwirkung von Twisted gastrulation mit seinem Interaktionspartner BMP 2 beteiligt sind. Dies ermöglichte eine detaillierte Lokalisation des Bindeepitops im N-terminalen Bereich von Twisted gastrulation. Dabei konnte auch gezeigt werden, dass die Glykosylierung von Twisted gastrulation für die Wechselwirkung mit BMP-2 von Bedeutung ist.
Eine experimentelle Strukturanalyse von Twisted gastrulation für die detaillierte Aufklärung des Mechanismus der Interaktion mit BMP-2 und anderen Modulatorproteinen bleibt allerdings weiterhin aufgrund der Einzigartigkeit dieses Modulatorproteins zwingend erforderlich. Für eine Fortsetzung der Untersuchungen bietet der stabile ternäre Komplex eine gute Voraussetzung in Hinblick auf weitere Kristallisationsansätze.
In vielen tierischen Zellen und in Hefe wurden Membrandomänen als Plattformen für die Etablierung von Signalkomplexen bereits gut beschrieben (Foster et al., 2003) und entsprechend ihrer Resistenz gegenüber nicht-ionischen Detergenzien charakterisiert (Shogomori et al., 2003). Die Behandlung von Membranen mit solchen Detergenzien kann zu Artefakten führen und die Anwesenheit eines Proteins in diesen so genannten „DRMs“ bedeutet noch nicht, dass es auch in nativen Membrandomänen lokalisiert ist. Allerdings muss man sich, mangels besserer Methoden zur Aufreinigung von Membrandomänen, heute noch der Methode der DRM-Aufreinigung durch Detergenzien bedienen, um eine erste Vorstellung von der Proteinzusammensetzung dieser bestimmten Membranbereiche zu erhalten.
Mittels Sterolreduktion der DRMs durch die Behandlung der isolierten Membranfraktionen mit MCD und anschließender HPLC-ESI-Massenspektrometrie, konnten 80 Proteine identifiziert werden, die somit als potentiell in Membrandomänen lokalisiert gelten können. Unter diesen befanden sich die beiden Arabidopsis-Remorine AtRem1.2 und AtRem1.3, die Ca2+-abhängige Proteinkinase CPK21 und die Proteinphosphatase 2C ABI1. Dieses Phosphatase-Kinase-Paar reguliert den membranständigen, im Mesophyll exprimierten, Anionenkanal SLAH3 in ABA-abhängiger Weise (Geiger et al., 2011). Mit Hilfe biochemischer, massenspektrometrischer und mikroskopischer Methoden konnte gezeigt werden, dass die Phosphatase ABI1 in Abwesenheit von ABA die Interaktion zwischen der Kinase CPK21 und dem Anionenkanal SLAH3 unterbindet. Dies geschieht indem SLAH3 und CPK21 aus den Membrandomänen in die umgebenden Membranbereiche verlagert werden und somit eine phosphorylierungsabhängige Aktivierung des Anionenkanals verhindert wird (Demir et al., 2013).
Unter den in Nanodomänen lokalisiert Proteinen, konnte auch die NADPH-Oxidase AtrbohD als schwach sterolabhängig identifiziert werden. Diese zeigte im Gegensatz zu der homologen Oxidase AtrbohF, nach transienter Koexpression in Arabidopsis-Epidermiszellen zwar eine Lokalisation in distinkten Membrandomänen, aber keine Kolokalisation mit dem zuvor etablierten Membrandomänenmarker AtRem1.3 (Demir et al., 2013). Dieses Ergebnis impliziert, dass es verschiedene Arten von Membrandomänen geben könnte und dass die beiden Oxidasen (zumindest zeitweise) in unterschiedlichen Membrankompartimenten lokalisiert und dadurch womöglich auch unterschiedlich reguliert sein können. Nach Koexpression der Oxidase AtrbohD mit den weiteren 12 der insgesamt 16 Arabidopsis-Remorinen, konnte eine Kolokalisation der Oxidase mit AtRem1.4 bestätigt werden. Das Remorin AtRem1.4 zeigt in weiteren Versuchen nicht nur eine deutliche Lokalisierung in anderen sterolreichen Membrandomänen als AtRem1.3, es zeigt auch eine eindeutige laterale Immobilität und kann somit als ein Marker für Membrandomänen etabliert werden. Somit bestätigt sich die Annahme, dass es auch in Pflanzen unterschiedliche Arten von Membrankompartimenten gibt.
Zu diesem Zeitpunkt war noch kein, die Funktion der Oxidase regulierender Interaktionspartner von AtrbohD bekannt, um die Frage des Zusammenhangs zwischen Lokalisation und Funktion der Oxidase beantworten zu können. Mit Hilfe verschiedener mikroskopischer Techniken (BiFC, SE-FRET, AB-FRET) zur Untersuchung von Protein-Protein-Interaktionen, konnte aus einer Auswahl von fünf Mesophyll-lokalisierten und Ca2+-unabhängigen Snrk2-Kinasen, zwei potentielle Interaktionspartner identifiziert werden. Genau wie mit der homologen Oxidase AtrbohF (Sirichandra et al., 2007), interagiert die ABA-abhängige Kinase OST1/Snrk2.6 auch mit AtrbohD. Bei dem zweiten potentiellen Interaktionspartner handelt es sich um Snrk2.7. Die Behandlung der transfizierten und in den Interaktionsmessungen eingesetzten Zellen mit der sterolreduzierenden Reagenz MCD resultierte in einem signifikanten Anstieg der zuvor gemessenen Interaktionseffizienzen (EFRET) aller fünf ausgewählten Snrk2-Kinasen mit AtrbohD.
Eine Interaktion zwischen zwei Proteinen muss nicht zwingend bedeuten, dass sie eine funktionelle Einheit in einem Signalweg darstellen. Aus diesem Grund wurde der Einfluss der identifizierten potentiellen Interaktionspartner auf die ROS-Produktionsaktivität der NADPH-Oxidase AtrbohD untersucht. Es zeigt sich, dass Snrk2.7 die ROS-Produktion durch die Oxidase auf ein vergleichbar hohes Niveau steigern kann, wie die zu diesem Zeitpunkt als Interaktionspartner der Oxidase AtrbohD identifizierte Ca2+-abhängige Kinase CPK5 (Dubiella et al., 2013). Die Kinase Snrk2.7 interagiert also nicht nur mit AtrbohD, sondern kann die Oxidase auch phosphorylieren (wahrscheinlich an einer der beiden für die Phosphorylierung von AtrbohD als essentiell beschriebenen Positionen S343 oder S347 (Nühse et al., 2007) und nicht an der untersuchten Position S39) und somit aktivieren. Dem hingegen zeigt OST1, trotz einer zuvor bestätigten Interaktion mit AtrbohD, nicht die Fähigkeit diese Oxidase auch aktivieren zu können. Die Snrk2.7-vermittelte Aktivität von AtrbohD ist ebenfalls deutlich durch eine Behandlung der transfizierten Zellen mit MCD induzierbar.
Die NADPH-Oxidase AtrbohD wird also in Abhängigkeit ihrer Lokalisierung in spezifischen Membrandomänen reguliert. Wenn die zwei essentiellen Phosphorylierungsstellen durch eine Punktmutation ausgeschaltet werden und die Oxidase nicht mehr als Antwort auf Pathogene aktiviert werden kann, lokalisiert diese nicht mehr in den AtRem1.4-markierten Membrandomänen. Auch zeigt sich, dass die Aktivität der Oxidase, induziert durch eine Interaktion mit der nicht in Membrandomänen lokalisierten Snrk2-Kinase Snrk2.7, gesteigert werden kann, wenn durch MCD die sterolreichen Membrandomänen abgereichert werden. Eventuell dienen Membrandomänen, zumindest im pflanzlichen System, nicht nur der Etablierung von Signalkomplexen, sondern in einigen Fällen auch der Negativregulierung von bestimmten Proteinaktivitäten, wie zum Beispiel in diesem Fall, der Produktion von reaktiven Sauerstoffspezies (ROS).
Die zunehmende Versalzung des Bodens führt weltweit zu starken Ernteeinbußen. Ob- wohl die Wurzeln der Pflanzen als erstes mit dem Salzstress in Berührung kommen, ist noch nicht viel über Signaltransduktionswege in Wurzeln zur Anpassung der Pflanze an Salzstress bekannt. Die bZIP-Transkriptionsfaktoren der Gruppe S1, bZIP1 und bZIP53, werden gewebespezifisch in der Wurzel nach Salzstress aktiviert. In dieser Arbeit werden diese bZIPs in ein Netzwerk eingeordnet, von der Aktivierung der Tran- skriptionsfaktoren bis zur Funktion in der Regulation des Stoffwechsels in der salzgest- ressten Pflanze.
Die Aktivierung von bZIP1 kann über verschiedene sowohl ionische als auch osmotische Stimuli erfolgen und ist abhängig von Calcium, der HEXOKINASE 1 und SnRK1- Kinasen (Snf1 RELATED PROTEIN KINASE 1). Die dunkelinduzierte Expression von bZIP1 wird HXK1-abhängig durch Glucose inhibiert, bei Energiemangelbedingungen ist die Aktivierung von bZIP1 SnRK1-abhängig. Beide Enzyme spielen auch in der salzinduzierten Expression von bZIP1 eine Rolle. Über Transkriptom- und Me- tabolomanalysen kann gezeigt werden, dass bZIP1 und bZIP53 an der Umprogram- mierung des Kohlenhydrat- und Aminosäuremetabolismus teilhaben. Besonders Gene der Glukoneogenese (PYRUVAT ORTHOPHOSPHAT DIKINASE und FRUCTOSE- 1,6-BISPHOS- PHATASE) bzw. des Aminosäurekatabolismus (BRANCHED- CHAIN AMINO ACID TRANSAMINASE 2, METHYLCROTONYL- COA-CARBOXYLASE A und HOMOGENTISATE 1,2-DIOXYGENASE ) werden von den Transkriptionsfaktoren reguliert. Das spricht für eine Umprogrammierung des Metabolismus und der Mobilisierung von Energie aus Aminosäuren zur Anpassung an die Stressbedingungen. Die Transkriptionsfaktoren der Gruppe S1 bilden vorzugsweise Heterodimere mit der Gruppe C. Mit Mutantenanalysen, die zum einen die Transkriptionsfaktoren des C/S1-Netzwerks und zum anderen Komponenten der Abscisinsäure (ABA) abhängigen Signaltransduktion beinhalten, konnte ein Signaltransduktionsnetzwerk aufgestellt werden, das die Antwort auf abiotischen Stress mittels des Signalwegs über ABA, SnRK2 und AREB (ABA RESPONSIVE ELEMENTS-BINDING PROTEIN) mit der SnRK1-vermittelten Antwort auf Energiemangelbedingungen in der Pflanze verknüpft. Die gefundenen stress- bzw. energieresponsiven Gene konnten nach den Mutantenana- lysen auf Grund ihrer unterschiedlichen Regulation in vier Klassen eingeteilt werden, wovon nur eine, die Klasse 4, von dem C/S1 Netzwerk reguliert wird. Die Klassen 1- 3 sind unabhängig von den bZIP-Transkriptionsfaktoren der Gruppe C. Die Klasse 1 bilden typische ABA-responsive Gene, die von den Gruppe A-bZIPs reguliert werden. Faktoren der Gruppe A sind auch an der Expression der Gene der Klasse 2 beteiligt, diese werden aber auch durch bZIP1 und bZIP53 induziert. Dieser Klasse konnten Gene zugeordnet werden, die im Abbau verzweigtkettiger Aminosäuren eine Rolle spielen. Am Aminosäureabbau sind außerdem die Gene der Klasse 2 beteiligt. Für diese Gene konnte eine Expressionsregulation durch bZIP1 und bZIP53 gezeigt werden. Für die Bestimmung möglicher Heterodimerisierungspartner bedarf es noch weiterer Analysen. Dieses Model, das den abitoschen Stress abhängigen ABA-Signalweg mit dem ener- gieabhängigen SnRK1-Signaltransduktionsweg verknüpft, zeigt die präzise Regulation von mindestens 4 Gen-Klassen, deren Expression durch die Kombination verschiedener bZIP-Transkriptionsfaktoren aktiviert wird.
Virulent Agrobacterium tumefaciens strains transfer and integrate a DNA region of the tumor-inducing (Ti) plasmid, the T-DNA, into the plant genome and thereby cause crown gall disease. The most essential genes required for crown gall development are the T-DNA-encoded oncogenes, IaaH (indole-3-acetamide hydrolase), IaaM (tryptophan monooxygenase) for auxin, and Ipt (isopentenyl transferase) for cytokinin biosynthesis. When these oncogenes are expressed in the host cell, the levels of auxin and cytokinin increase and cause cell proliferation. The aim of this study was to unravel the molecular mechanisms, which regulate expression of the agrobacterial oncogenes in plant cells. Transcripts of the three oncogenes were expressed in Arabidopsis thaliana crown galls induced by A. tumefaciens strain C58 and the intergenic regions (IGRs) between their coding sequences (CDS) were proven to have promoter activity in plant cells. These promoters possess eukaryotic sequence structures and contain cis-regulatory elements for the binding of plant transcription factors. The high-throughput protoplast transactivation (PTA) system was used and identified the Arabidopsis thaliana transcription factors WRKY18, WRKY40, WRKY60 and ARF5 to activate the Ipt oncogene promoter. No transcription factor promoted the activity of the IaaH and IaaM promoters, despite the fact that the sequences contained binding elements for type B ARR transcription factors. Likewise, the treatment of Arabidopsis mesophyll protoplasts with cytokinin (trans-zeatin) and auxin (1-NAA) exerted no positive effect on IaaH and IaaM promoter activity. In contrast, the Ipt promoter strongly responded to a treatment with auxin and only modestly to cytokinin. The three Arabidopsis WRKYs play a role in crown gall development as the wrky mutants developed smaller crown galls than wild-type plants. The WRKY40 and WRKY60 genes responded very quickly to pathogen infection, two and four hours post infection, respectively. Transcription of the WRKY18 gene was induced upon buffer infiltration, which implicates a response to wounding. The three WRKY proteins interacted with ARF5 and with each other in the plant nucleus, but only WRKY40 together with ARF5 increased activation of the Ipt promoter. Moreover, ARF5 activated the Ipt promoter in an auxin-dependent manner. The severe developmental phenotype of the arf5 mutant prevented studies on crown gall development, nevertheless, the reduced crown gall growth on the transport inhibitor response 1 (TIR1) tir1 mutant, lacking the auxin sensor, suggested that auxin signaling is required for optimal crown gall development. In conclusion, A. tumefaciens recruits the pathogen defense related WRKY40 pathway to activate Ipt expression in T-DNA-transformed plant cells. IaaH and IaaM gene expression seems not to be controlled by transcriptional activators, but the increasing auxin levels are signaled via ARF5. The auxin-depended activation of ARF5 boosts expression of the Ipt gene in combination with WRKY40 to increase cytokinin levels and induce crown gall development.
Die TGF-β-Proteinfamilie umfasst eine Vielzahl von zumeist homodimeren sezernierten Liganden in höheren Tieren, die viele Vorgänge und Entwicklungen im Embryo wie im adulten Lebewesen über absolute oder graduelle Einflussnahme steuern. Die Signalweiterleitung ins Zytoplasma und den Nukleus erfolgt über promisk paarig rekrutierte Typ-I- und Typ-II-Rezeptoren, ehe vorwiegend rezeptorabhängig verschiedene SMAD-Proteine von Typ-I-Kinasen der Rezeptoren aktiviert werden, in den Kern translozieren und die Transkription induzieren. Zu jedem Zeitpunkt dieser Signalweiterleitung kann mittels verschiedener endogener Inhibitoren regulatorisch eingegriffen werden. Dem bisher einzig bekannten membranständigen Pseudorezeptor Bambi (BMP and Activine membrane bound inhibitor) wurde in vorangegangenen Arbeiten inhibitorisches Potential gegenüber dem BMP- und Activin-vermittelten Signalweg über Bindung an distinkte ligandenadressierte Rezeptoren zugeschrieben, wobei die genaue Wirkweise bislang noch vollkommen unklar war.
In der vorliegenden Arbeit wurde initial ein Homologiemodell der extrazellulären Domäne von hBambi anhand der gelösten Kristallstruktur der extrazellulären Domäne von BR1A im gebundenen Zustand (PDB-ID: 1REW) erstellt. Anhand dieses Modells wurde eine Arbeitshypothese entwickelt und es gelang in der Folge, biologisch aktives rekombinantes Protein zum einen aus transfizierten Insektenzellen sowie aus der Renaturierung aus bakteriellen Einschlusskörpern in hinreichender Menge herzustellen und chromatographisch aufzureinigen. Nach einer vergleichenden Qualitätskontrolle beider Exprimate wurden mittels CD-Spektroskopie und analytischer Gelfiltration der Anteil der Sekundärstrukturelemente sowie der Oligomerisierungsgrad erfolgreich bestimmt. In SPR-Bindestudien wurde der Beweis erbracht, dass hBambi-ECD Affinität zu annähernd allen getesteten Liganden der BMP-/GDF-Gruppe, die den SMAD-1/-5-/-8-Signalweg aktivieren, zeigt. Bekannte Typ-I- und Typ-II-Bindungsmutanten von BMP-2 wurden ebenfalls von hBambi-ECD quasi wildtypisch gebunden. Verschiedene Rezeptorektodomänen sowie ActivinA wurden, wie bisher in der Literatur fälschlich angenommen wurde, hingegen nicht gebunden. Die propagierte Homooligomerisierung von Bambi wird überdies nicht über die extrazelluläre Domäne vermittelt. Eingesetzt in Stimulationsversuche mit BMP-responsiven Zellen wurde eine konzentrationsabhängige inhibierende Wirkung von freier hBambi-ECD auf die BMP-2-vermittelte Signalweiterleitung mit unterschiedlichen Nachweismethoden ermittelt, welche die Ergebnisse aus den SPR-Versuchen erfolgreich bestätigten.
In einem weiteren Teil dieser Arbeit wurden verschiedene chimäre Konstrukte aus für Bambi- und BR1A-Domänen kodierenden Sequenzen kloniert, in HEK Ad293-Zellen zusammen mit BMP- und Activin-responsiven Reportergenkonstrukten transient transfiziert und Stimulationsversuche mit BMP-2 und ActivinA durchgeführt. Wildtypisches Bambi zeigte hierbei ein ambivalentes Verhalten in Bezug auf die Regulation des BMP-2-Signals: geringe Mengen wirken agonistisch, höhere Mengen antagonistisch auf die Ausbildung des Reporters. Im Fall von ActivinA zeigte sich hingegen kein antagonistischer Einfluss von Bambi. In den Experimenten mit chimären Varianten erfolgte durch die erhaltenen Daten die Eingrenzung der Bindestelle von hBambi-ECD an BMP-2 auf den Bereich der Typ-I-Bindestelle. Ein direkter Einfluss der intrazellulären Domäne auf den BMP-2-Signalweg wurde ausgeschlossen. Weiterhin konnte gerade in Versuchen mit einem Antikörper gegen BR1A-ECD eine weitere Eigenheit der Bindung von Bambi an den Liganden offenbart werden: so bildet das Konstrukt aus hBambi-ECD und der intrazellulären BR1A-Domäne mit zugehöriger GS-Box und Typ-I-Kinase einen korrekt in den signalaktiven heterohexameren Komplex rekrutierten funktionellen Typ-I-Rezeptor.
Mit den in dieser Arbeit erzielten Ergebnissen, nämlich der gelungenen Erstellung eines Herstellungsprotokolls der ECD, deren erfolgreich identifizierten Bindepartnern sowie der Charakterisierung der Bindung an BMP-2 ist der Grundstein für die Strukturaufklärung von hBambi-ECD gelegt, welche weitere Klarheit in die Funktionalität dieses Modulators der BMP-/GDF-vermittelten Signalweiterleitung bringen wird. Ebenso sind erste das Verständnis der ICD aufklärende Ergebnisse erzielt worden, die das Fundament für weitere Experimente und darauf folgende Kenntnisgewinne darstellen werden.
This study explores novelty choice, a behavioral paradigm for the investigation of visual pattern recognition and learning of the fly Drosophila melanogaster in the flight simulator. Pattern recognition in novelty choice differs significantly from pattern recognition studied by heat conditioning, although both paradigms use the same test. Out of the four pattern parameters that the flies can learn in heat conditioning, novelty choice can be shown for height (horizontal bars differing in height), size and vertical compactness but not for oblique bars oriented at +/- 45°. Upright and inverted Ts [differing in their centers of gravity (CsOG) by 13°] that have been extensively used for heat conditioning experiments, do not elicit novelty choice. In contrast, horizontal bars differing in their CsOG by 13° do elicit novelty choice; so do the Ts after increasing their CsOG difference from 13° to 23°. This indicates that in the Ts the heights of the CsOG are not the only pattern parameters that matter for the novelty choice behavior. The novelty choice and heat conditioning paradigms are further differentiated using the gene rutabaga (rut) coding for a type 1 adenylyl cyclase. This protein had been shown to be involved in memory formation in the heat conditioning paradigm. Novelty choice is not affected by mutations in the rut gene. This is in line with the finding that dopamine, which in olfactory learning is known to regulate Rutabaga via the dopamine receptor Dumb in the mushroom bodies, is dispensable for novelty choice. It is concluded that in novelty choice the Rut cAMP pathway is not involved. Novelty choice requires short term working memory, as has been described in spatial orientation during locomotion. The protein S6KII that has been shown to be involved in visual orientation memory in walking flies is found here to be also required for novelty choice. As in heat conditioning the central complex plays a major role in novelty choice. The S6KII mutant phenotype for height can be rescued in some subsets of the ring neurons of the ellipsoid body. In addition the finding that the ellipsoid body mutants ebo678 and eboKS263 also show a mutant phenotype for height confirm the importance of ellipsoid body for height novelty choice. Interestingly some neurons in the F1 layer of the fan-shaped body are necessary for height novelty choice. Furthermore, different novelty choice phenotypes for different pattern parameters are found with and without mushroom bodies. Mushroom bodies are required in novelty choice for size but they are dispensable for height and vertical compactness. This special circuit requirement for the size parameter in novelty choice is found using various means of interference with mushroom body function during development or adulthood.
Animal models mimicking human diseases have been used extensively to study the pathogenesis of autoimmune diseases and the efficacy of potential therapeutics. They are, however, limited with regard to their similarity to the human disease and cannot be used if the antagonist and its cognate receptor require high similarity in structure or binding. Here, we examine the induction of oxazolone-mediated features of atopic dermatitis (AD) in NOD-scid IL2R \(γ^{null}\) mice engrafted with human peripheral blood mononuclear cells (PBMC). The mice developed the same symptoms as immunocompetent BALB/c mice. Histological alterations induced by oxazolone were characterized by keratosis, epithelial hyperplasia and influx of inflammatory cells into the dermis and epidermis. The cellular infiltrate was identified as human leukocytes, with T cells being the major constituent. In addition, oxazolone increased human serum IgE levels. The response, however, required the engraftment of PBMC derived from patients suffering from AD, which suggests that this model reflects the immunological status of the donor. Taken together, the model described here has the potential to evaluate the efficacy of therapeutics targeting human lymphocytes in vivo and, in addition, might be developed further to elucidate molecular mechanisms inducing and sustaining flares of the disease.
Jasmonates and phytoprostanes are oxylipins that regulate stress responses and diverse physiological and developmental processes. 12-Oxo-phytodienoic acid (OPDA) and phytoprostanes are structurally related electrophilic cyclopentenones, which activate similar gene expression profiles that are for the most part different from the action of the cyclopentanone jasmonic acid (JA) and its biologically active amino acid conjugates. Whereas JA–isoleucine signals through binding to COI1, the bZIP transcription factors TGA2, TGA5, and TGA6 are involved in regulation of gene expression in response to phytoprostanes. Here root growth inhibition and target gene expression were compared after treatment with JA, OPDA, or phytoprostanes in mutants of the COI1/MYC2 pathway and in different TGA factor mutants. Inhibition of root growth by phytoprostanes was dependent on COI1 but independent of jasmonate biosynthesis. In contrast, phytoprostane-responsive gene expression was strongly dependent on TGA2, TGA5, and TGA6, but not dependent on COI1, MYC2, TGA1, and TGA4. Different mutant and overexpressing lines were used to determine individual contributions of TGA factors to cyclopentenone-responsive gene expression. Whereas OPDA-induced expression of the cytochrome P450 gene CYP81D11 was primarily regulated by TGA2 and TGA5, the glutathione S-transferase gene GST25 and the OPDA reductase gene OPR1 were regulated by TGA5 and TGA6, but less so by TGA2. These results support the model that phytoprostanes and OPDA regulate differently (i) growth responses, which are COI1 dependent but jasmonate independent; and (ii) lipid stress responses, which are strongly dependent on TGA2, TGA5, and TGA6. Identification of molecular components in cyclopentenone signalling provides an insight into novel oxylipin signal transduction pathways.
Technical features and examples of application of a special emitter–detector module for highly sensitive measurements of the electrochromic pigment absorbance shift (ECS) via dual-wavelength (550–520 nm) transmittance changes (P515) are described. This device, which has been introduced as an accessory of the standard, commercially available Dual-PAM-100 measuring system, not only allows steady-state assessment of the proton motive force (pmf) and its partitioning into ΔpH and ΔΨ components, but also continuous recording of the overall charge flux driven by photosynthetic light reactions. The new approach employs a double-modulation technique to derive a continuous signal from the light/dark modulation amplitude of the P515 signal. This new, continuously measured signal primarily reflects the rate of proton efflux via the ATP synthase, which under quasi-stationary conditions corresponds to the overall rate of proton influx driven by coupled electron transport. Simultaneous measurements of charge flux and \(CO_2\) uptake as a function of light intensity indicated a close to linear relationship in the light-limited range. A linear relationship between these two signals was also found for different internal \(CO_2\) concentrations, except for very low \(CO_2\), where the rate of charge flux distinctly exceeded the rate of CO2 uptake. Parallel oscillations in \(CO_2\) uptake and charge flux were induced by high \(CO_2\) and \(O_2\). The new device may contribute to the elucidation of complex regulatory mechanisms in intact leaves.
Introduction: Lichen dominated biological soil crusts (BSCs) occur over large areas in the Sonoran Desert of the southwestern USA and northwest Mexico. In Baja California BSCs show a distinct patchiness and several types can be distinguished. Two chlorolichen- and two cyanolichen-dominated BSCs were selected. We hypothesize that patchiness and the resulting domination of certain functional lichen groups will result in patchiness of photosynthetic CO2-uptake related to environmental factors as well.
Methods: Four different soil crust samples were placed in cuvettes and their CO2 exchange was recorded in an open system with an infrared gas analyzer. Air blown over the BSCs had a controlled CO2 content of 350 ppm. Four cuvettes were operated in parallel. Photosynthetic CO2 exchange was continually recorded throughout the experiment.
Results: Besides the dominating chlorolichens Psora decipiens and Placidium squamulosum and the cyanolichens Peltula patellata and P. richardsii, several other lichen species and 12 cyanobacterial species were found in the biological soil crusts sampled. The chlorolichen BSCs already gained positive net photosynthesis with high air humidity alone, while the cyanolichen types did not, but showed smaller CO2-uptake depression after water suprasaturation. Such specific net photosynthesis responses to mode of hydration and to crust water content seem to correlate with precipitation characteristics of their habitat.
Conclusions: Species specific photosynthetic performance related to activation of respiration and net photosynthesis as well as to crust water content help to explain niche occupation and species composition of BSCs. Different functional types have to be considered when they have a patchy distribution.
Background: Plants have evolved an astonishing array of survival strategies. To defend against insects, for example, damaged plants emit volatile organic compounds that attract the herbivore’s natural enemies. So far, plant volatile responses have been studied extensively in conjunction with leaf chewing and sap sucking insects, yet little is known about the relationship between plant volatiles and gall-inducers, the most sophisticated herbivores. Here we describe a new role for volatiles as gall-insects were found to benefit from this plant defence.
Results: Chemical analyses of galls triggered by the gregarious aphid Slavum wertheimae on wild pistachio trees showed that these structures contained and emitted considerably higher quantities of plant terpenes than neighbouring leaves and fruits. Behavioural assays using goats as a generalist herbivore confirmed that the accumulated terpenes acted as olfactory signals and feeding deterrents, thus enabling the gall-inducers to escape from inadvertent predation by mammals.
Conclusions: Increased emission of plant volatiles in response to insect activity is commonly looked upon as a “cry for help” by the plant to attract the insect’s natural enemies. In contrast, we show that such volatiles can serve as a first line of insect defences that extends the ‘extended phenotype’ represented by galls, beyond physical boundaries. Our data support the Enemy hypothesis insofar that high levels of gall secondary metabolites confer protection against natural enemies.
The zona pellucida (ZP) domain is present in extracellular proteins such as the zona pellucida proteins and tectorins and participates in the formation of polymeric protein networks. However, the ZP domain also occurs in the cytokine signaling co-receptor transforming growth factor beta (TGF-\(\beta\)) receptor type 3 (TGFR-3, also known as betaglycan) where it contributes to cytokine ligand recognition. Currently it is unclear how the ZP domain architecture enables this dual functionality. Here, we identify a novel major TGF-beta-binding site in the FG loop of the C-terminal subdomain of the murine TGFR-3 ZP domain (ZP-C) using protein crystallography, limited proteolysis experiments, surface plasmon resonance measurements and synthetic peptides. In the murine 2.7 angstrom crystal structure that we are presenting here, the FG-loop is disordered, however, well-ordered in a recently reported homologous rat ZP-C structure. Surprisingly, the adjacent external hydrophobic patch (EHP) segment is registered differently in the rat and murine structures suggesting that this segment only loosely associates with the remaining ZP-C fold. Such a flexible and temporarily-modulated association of the EHP segment with the ZP domain has been proposed to control the polymerization of ZP domain-containing proteins. Our findings suggest that this flexibility also extends to the ZP domain of TGFR-3 and might facilitate co-receptor ligand interaction and presentation via the adjacent FG-loop. This hints that a similar C-terminal region of the ZP domain architecture possibly regulates both the polymerization of extracellular matrix proteins and cytokine ligand recognition of TGFR-3.