@phdthesis{Lu2024, author = {Lu, Jinping}, title = {The vacuolar TPC1 channel and its luminal calcium sensing site in the luminal pore entrance}, doi = {10.25972/OPUS-25135}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-251353}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2024}, abstract = {The slowly activating vacuolar SV/TPC1 channel is ubiquitously expressed in plants and provides a large cation conductance in the vacuolar membrane. Thereby, monovalent (K+, Na+) and in principle also divalent cations, such as Ca2+, can pass through the channel. The SV/TPC1 channel is activated upon membrane depolarization and cytosolic Ca2+ but inhibited by luminal calcium. With respect to the latter, two luminal Ca2+ binding sites (site 1 Asp240/Asp454/Glu528, site 2 Glu239/Asp240/Glu457) were identified to coordinate luminal Ca2+. In this work, the characteristics of the SV/TPC1 channels in terms of regulation and function were further elucidated, focusing on the TPC1s of Arabidopsis thaliana and Vicia faba. For electrophysiological analysis of the role of distinct pore residues for channel gating and luminal Ca2+ sensing, TPC1 channel variants were generated by site-directed mutagenesis and transiently expressed as eGFP/eYFP-fusion constructs in Arabidopsis thaliana mesophyll protoplasts of the TPC1 loss-of-function mutant attpc1-2. 1. As visualized by confocal fluorescence laser-scanning microscopy, all AtTPC1 (WT, E605A/Q, D606N, D607N, E605A/D606N, E605Q/D606N/D607N, E457N/E605A/D606N) and VfTPC1 channel variants (WT, N458E/A607E/ N608D) were correctly targeted to the vacuole membrane. 2. Patch-clamp studies revealed that removal of one of the negative charges at position Glu605 or Asp606 was already sufficient to promote voltage-dependent channel activation with higher voltage sensitivity. The combined neutralization of these residues (E605A/D606N), however, was required to additionally reduce the luminal Ca2+ sensitivity of the AtTPC1 channel, leading to hyperactive AtTPC1 channels. Thus, the residues Glu605/Asp606 are functionally coupled with the voltage sensor of AtTPC1 channel, thereby modulating channel gating, and form a novel luminal Ca2+ sensing site 3 in AtTPC1 at the luminal entrance of the ion transport pathway. 3. Interestingly, this novel luminal Ca2+ sensing site 3 (Glu605/Asp606) and Glu457 from the luminal Ca2+ sensing site 2 of the luminal Ca2+-sensitive AtTPC1 channel were neutralized by either asparagine or alanine in the TPC1 channel from Vicia faba and many other Fabaceae. Moreover, the VfTPC1 was validated to be a hyperactive TPC1 channel with higher tolerance to luminal Ca2+ loads which was in contrast to the AtTPC1 channel features. As a result, VfTPC1 but not AtTPC1 conferred the hyperexcitability of vacuoles. When AtTPC1 was mutated for the three VfTPC1-homologous polymorphic site residues, the AtTPC1 triple mutant (E457N/E605A/D606N) gained VfTPC1-like characteristics. However, when VfTPC1 was mutated for the three AtTPC1-homologous polymorphic site residues, the VfTPC1 triple mutant (N458E/A607E/N608D) still sustained VfTPC1-WT-like features. These findings indicate that the hyperactivity of VfTPC1 is achieved in part by the loss of negatively charged amino acids at positions that - as part of the luminal Ca2+ sensing sites 2 and 3 - are homologous to AtTPC1-Glu457/Glu605/Asp606 and are likely stabilized by other unknown residues or domains. 4.The luminal polymorphic pore residues (Glu605/Asp606 in AtTPC1) apparently do not contribute to the unitary conductance of TPC1. Under symmetrical K+ conditions, a single channel conductance of about 80 pS was determined for AtTPC1 wild type and the AtTPC1 double mutant E605A/D606A. This is in line with the three-fold higher unitary conductance of VfTPC1 (232 pS), which harbors neutral luminal pore residues at the homologous sites to AtTPC1. In conclusion, by studying TPC1 channel from Arabidopsis thaliana and Vicia faba, the present thesis provides evidence that the natural TPC1 channel variants exhibit differences in voltage gating, luminal Ca2+ sensitivity and luminal Ca2+ binding sites.}, language = {en} } @phdthesis{Anwar2022, author = {Anwar, Ammarah}, title = {Natural variation of gene regulatory networks in \(Arabidopsis\) \(thaliana\)}, doi = {10.25972/OPUS-29154}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-291549}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {Understanding the causal relationship between genotype and phenotype is a major objective in biology. The main interest is in understanding trait architecture and identifying loci contributing to the respective traits. Genome-wide association mapping (GWAS) is one tool to elucidate these relationships and has been successfully used in many different species. However, most studies concentrate on marginal marker effects and ignore epistatic and gene-environment interactions. These interactions are problematic to account for, but are likely to make major contributions to many phenotypes that are not regulated by independent genetic effects, but by more sophisticated gene-regulatory networks. Further complication arises from the fact that these networks vary in different natural accessions. However, understanding the differences of gene regulatory networks and gene-gene interactions is crucial to conceive trait architecture and predict phenotypes. The basic subject of this study - using data from the Arabidopsis 1001 Genomes Project - is the analysis of pre-mature stop codons. These have been incurred in nearly one-third of the ~ 30k genes. A gene-gene interaction network of the co-occurrence of stop codons has been built and the over and under representation of different pairs has been statistically analyzed. To further classify the significant over and under- represented gene-gene interactions in terms of molecular function of the encoded proteins, gene ontology terms (GO-SLIM) have been applied. Furthermore, co- expression analysis specifies gene clusters that co-occur over different genetic and phenotypic backgrounds. To link these patterns to evolutionary constrains, spatial location of the respective alleles have been analyzed as well. The latter shows clear patterns for certain gene pairs that indicate differential selection.}, subject = {Arabidopsis thaliana}, language = {en} } @article{DindasDreyerHuangetal.2021, author = {Dindas, Julian and Dreyer, Ingo and Huang, Shouguang and Hedrich, Rainer and Roelfsema, M. Rob G.}, title = {A voltage-dependent Ca\(^{2+}\) homeostat operates in the plant vacuolar membrane}, series = {New Phytologist}, volume = {230}, journal = {New Phytologist}, number = {4}, doi = {10.1111/nph.17272}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-259627}, pages = {1449-1460}, year = {2021}, abstract = {Cytosolic calcium signals are evoked by a large variety of biotic and abiotic stimuli and play an important role in cellular and long distance signalling in plants. While the function of the plasma membrane in cytosolic Ca\(^{2+}\) signalling has been intensively studied, the role of the vacuolar membrane remains elusive. A newly developed vacuolar voltage clamp technique was used in combination with live-cell imaging, to study the role of the vacuolar membrane in Ca\(^{2+}\) and pH homeostasis of bulging root hair cells of Arabidopsis. Depolarisation of the vacuolar membrane caused a rapid increase in the Ca\(^{2+}\) concentration and alkalised the cytosol, while hyperpolarisation led to the opposite responses. The relationship between the vacuolar membrane potential, the cytosolic pH and Ca2+ concentration suggests that a vacuolar H\(^{+}\)/Ca\(^{2+}\) exchange mechanism plays a central role in cytosolic Ca2+ homeostasis. Mathematical modelling further suggests that the voltage-dependent vacuolar Ca\(^{2+}\) homeostat could contribute to calcium signalling when coupled to a recently discovered K\(^{+}\) channel-dependent module for electrical excitability of the vacuolar membrane.}, language = {en} } @article{NuhkatBroscheStoezleFeixetal.2021, author = {Nuhkat, Maris and Brosch{\´e}, Mikael and Stoezle-Feix, Sonja and Dietrich, Petra and Hedrich, Rainer and Roelfsema, M. Rob G. and Kollist, Hannes}, title = {Rapid depolarization and cytosolic calcium increase go hand-in-hand in mesophyll cells' ozone response}, series = {New Phytologist}, volume = {232}, journal = {New Phytologist}, number = {4}, doi = {10.1111/nph.17711}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-259646}, pages = {1692-1702}, year = {2021}, abstract = {Plant stress signalling involves bursts of reactive oxygen species (ROS), which can be mimicked by the application of acute pulses of ozone. Such ozone-pulses inhibit photosynthesis and trigger stomatal closure in a few minutes, but the signalling that underlies these responses remains largely unknown. We measured changes in Arabidopsis thaliana gas exchange after treatment with acute pulses of ozone and set up a system for simultaneous measurement of membrane potential and cytosolic calcium with the fluorescent reporter R-GECO1. We show that within 1 min, prior to stomatal closure, O\(_{3}\) triggered a drop in whole-plant CO\(_{2}\) uptake. Within this early phase, O\(_{3}\) pulses (200-1000 ppb) elicited simultaneous membrane depolarization and cytosolic calcium increase, whereas these pulses had no long-term effect on either stomatal conductance or photosynthesis. In contrast, pulses of 5000 ppb O\(_{3}\) induced cell death, systemic Ca\(^{2+}\) signals and an irreversible drop in stomatal conductance and photosynthetic capacity. We conclude that mesophyll cells respond to ozone in a few seconds by distinct pattern of plasma membrane depolarizations accompanied by an increase in the cytosolic calcium ion (Ca\(^{2+}\)) level. These responses became systemic only at very high ozone concentrations. Thus, plants have rapid mechanism to sense and discriminate the strength of ozone signals.}, language = {en} } @article{HuangDingRoelfsemaetal.2021, author = {Huang, Shouguang and Ding, Meiqi and Roelfsema, M. Rob G. and Dreyer, Ingo and Scherzer, S{\"o}nke and Al-Rasheid, Khaled A. S and Gao, Shiqiang and Nagel, Georg and Hedrich, Rainer and Konrad, Kai R.}, title = {Optogenetic control of the guard cell membrane potential and stomatal movement by the light-gated anion channel GtACR1}, series = {Science Advances}, volume = {7}, journal = {Science Advances}, number = {28}, doi = {10.1126/sciadv.abg4619}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-260925}, year = {2021}, abstract = {Guard cells control the aperture of plant stomata, which are crucial for global fluxes of CO\(_2\) and water. In turn, guard cell anion channels are seen as key players for stomatal closure, but is activation of these channels sufficient to limit plant water loss? To answer this open question, we used an optogenetic approach based on the light-gated anion channelrhodopsin 1 (GtACR1). In tobacco guard cells that express GtACR1, blue- and green-light pulses elicit Cl\(^-\) and NO\(_3\)\(^-\) currents of -1 to -2 nA. The anion currents depolarize the plasma membrane by 60 to 80 mV, which causes opening of voltage-gated K+ channels and the extrusion of K+. As a result, continuous stimulation with green light leads to loss of guard cell turgor and closure of stomata at conditions that provoke stomatal opening in wild type. GtACR1 optogenetics thus provides unequivocal evidence that opening of anion channels is sufficient to close stomata.}, language = {en} } @article{Froeschel2021, author = {Fr{\"o}schel, Christian}, title = {In-depth evaluation of root infection systems using the vascular fungus Verticillium longisporum as soil-borne model pathogen}, series = {Plant Methods}, volume = {17}, journal = {Plant Methods}, doi = {10.1186/s13007-021-00758-x}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-260807}, year = {2021}, abstract = {Background While leaves are far more accessible for analysing plant defences, roots are hidden in the soil, leading to difficulties in studying soil-borne interactions. Inoculation strategies for infecting model plants with model root pathogens are described in the literature, but it remains demanding to obtain a methodological overview. To address this challenge, this study uses the model root pathogen Verticillium longisporum on Arabidopsis thaliana host plants and provides recommendations for selecting appropriate infection systems to investigate how plants cope with root pathogens. Results A novel root infection system is introduced, while two existing ones are precisely described and optimized. Step-by-step protocols are presented and accompanied by pathogenicity tests, transcriptional analyses of indole-glucosinolate marker genes and independent confirmations using reporter constructs. Advantages and disadvantages of each infection system are assessed. Overall, the results validate the importance of indole-glucosinolates as secondary metabolites that limit the Verticillium propagation in its host plant. Conclusion Detailed assistances on studying host defence strategies and responses against V. longisporum is provided. Furthermore, other soil-borne microorganisms (e.g., V. dahliae) or model plants, such as economically important oilseed rape and tomato, can be introduced in the infection systems described. Hence, these proven manuals can support finding a root infection system for your specific research questions to further decipher root-microbe interactions.}, language = {en} } @phdthesis{Muralidhara2022, author = {Muralidhara, Prathibha}, title = {Perturbations in plant energy homeostasis alter lateral root plasticity via SnRK1-bZIP63-ARF19 signalling}, doi = {10.25972/OPUS-20563}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-205636}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {Photosynthetic plants have a remarkable ability to modify their metabolism and development according to ever changing environmental conditions. The root system displays continuous growth of the primary root and formation of lateral roots enabling efficient water and nutrient uptake and anchorage of the plant in soil. With regard to lateral roots, development is post-embryonic, originating from the pericycle of the primary root. Coordinated activity of several molecular signalling pathways controlled by the hormone auxin is important throughout all stages of lateral root development.At first, two adjacent Xylem Pole Pericycle (XPP) cells are activated and the nuclei of these cells migrate towards a common cell wall.This is followed by XPP cells acquiring volume thus swelling up.The XPP cells then undergo anticlinal cell division, followed by a series of periclinal and anticlinal divisions,leading to lateral root primordia.These break through the radial cell layers and emerge out the primary root. Although root system plasticity is well-described in response to environmental cues such as ion nutrition in the soil, little is known on how root development is shaped according to the endogenous energy status of the plant.In this study, we were able to connect limited perturbations in photosynthetic energy supply to lateral root development.We established two experimental systems - treatment with low light and unexpected darkness which led to short-term energy imbalance in the plant.These short perturbations administered, showed an increase in the emerged lateral root density and decrease in root hexose availability and activation of the low energy marker gene ASN1 (ASPARAGINE SYNTHETASE 1).Although not demonstrated, presumably, these disturbances in the plant energy homeo-stasis activates SnRK1 (SNF1 RELATED KINASE 1),an evolutionary conserved kinase mediat-ing metabolic and transcriptional responses towards low energy conditions. In A. thaliana, two catalytic α-subunits of this kinase (SnRK1.α1 and SnRK1.α2) are functionally active and form ternary complexes with the regulatory β- and γ- subunits. Whereas unexpected darkness results in an increase in emerged lateral root density, the snrk1.α1 loss-of-function mutant displayed decrease in emerged lateral root density. As this effect is not that pronounced in the snrk1.α2 loss-of-function mutant, the α1 catalytic subunit is important for the observed lateral root phenotype under short-term energy perturbations. Moreover, root expression patterns of SnRK1.α1:GFP supports a role of this catalytic subunit in lateral root development. Furthermore, the lateral root response during short-term perturbations requires the SnRK1 downstream transcriptional regulator bZIP63 (BASIC LEU-CINE ZIPPER 63), as demonstrated here by a loss-of-function approach. Phenotypic studies showed that in comparison to wild-type, bzip63 mutants displayed decreased lateral root density upon low-light and unexpected darkness conditions. Previous work has demonstrat-ed that SnRK1 directly phosphorylates bZIP63 at three serine residues. Alanine-exchange mutants of the SnRK1 dependent bZIP63 phosphorylation sites behave similarly to bzip63 loss-of-function mutants and do not display increased lateral root density upon short-term unexpected darkness. This data strongly supports an impact of SnRK1-bZIP63 signalling in mediating the observed lateral root density phenotype. Plants expressing a bZIP63:YFP fu-sion protein showed specific localization patterns in primary root and in all developmental stages of the lateral root. bzip63 loss-of-function mutant lines displayed reduced early stage lateral root initiation events under unexpected darkness as demonstrated by Differen-tial Interference Contrast microscopy (DIC) and the use of a GATA23 reporter line. This data supports a role of bZIP63 in early lateral root initiation. Next, by employing Chromatin Immunoprecitation (ChIP) sequencing, we were able to iden-tify global binding targets of bZIP63, including the auxin-regulated transcription factor (TF) ARF19 (AUXIN RESPONSE FACTOR 19), a well-described central regulator of lateral root development. Additional ChIP experiments confirmed direct binding of bZIP63 to an ARF19 promoter region harboring a G-Box cis-element, a well-established bZIP63 binding site. We also observed that short-term energy perturbation upon unexpected darkness induced tran-scription of ARF19, which was impaired in the bzip63 loss-of-function mutant. These results propose that bZIP63 mediates lateral root development under short-term energy perturba-tion via ARF19. In conclusion, this study provides a novel mechanistic link between energy homeostasis and plant development. By employing reverse genetics, confocal imaging and high-throughput sequencing strategies, we were able to propose a SnRK1-bZIP63-ARF19 signalling module in integrating energy signalling into lateral root developmental programs.}, subject = {Arabidopsis thaliana}, language = {en} } @article{JakobsonVaahteraToldseppetal.2016, author = {Jakobson, Liina and Vaahtera, Lauri and T{\~o}ldsepp, Kadri and Nuhkat, Maris and Wang, Cun and Wang, Yuh-Shuh and H{\~o}rak, Hanna and Valk, Ervin and Pechter, Priit and Sindarovska, Yana and Tang, Jing and Xiao, Chuanlei and Xu, Yang and Talas, Ulvi Gerst and Garc{\´i}a-Sosa, Alfonso T. and Kangasj{\"a}rvi, Saijaliisa and Maran, Uko and Remm, Maido and Roelfsema, M. Rob G. and Hu, Honghong and Kangasj{\"a}rvi, Jaakko and Loog, Mart and Schroeder, Julian I. and Kollist, Hannes and Brosch{\´e}, Mikael}, title = {Natural Variation in Arabidopsis Cvi-0 Accession Reveals an Important Role of MPK12 in Guard Cell CO\(_{2}\) Signaling}, series = {PLoS Biology}, volume = {14}, journal = {PLoS Biology}, number = {12}, doi = {10.1371/journal.pbio.2000322}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-166657}, pages = {e2000322}, year = {2016}, abstract = {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.}, language = {en} } @phdthesis{Dindas2019, author = {Dindas, Julian}, title = {Cytosolic Ca\(^2\)\(^+\), a master regulator of vacuolar ion conductance and fast auxin signaling in \(Arabidopsis\) \(thaliana\)}, doi = {10.25972/OPUS-15863}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-158638}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Das Phytohormon Auxin erf{\"u}llt wichtige Funktionen bei der Initiierung von pflanzlichen Geweben und Organen, wie auch in der Steuerung des Wurzelwachstums im Zusammenspiel mit {\"a}ußeren Reizen wie Schwerkraft, Wasser- und N{\"a}hstoffverf{\"u}gbarkeit. Diese Funktionen basieren dabei vor allem auf der Auxin-abh{\"a}ngigen Regulation von Zellteilung und -streckung. Wichtig f{\"u}r letzteres ist dabei die Kontrolle des Zellturgors durch die Vakuole. Als Speicher f{\"u}r N{\"a}hrstoffe, Metabolite und Toxine sind Vakuolen von essentieller Bedeutung. Vakuol{\"a}r gespeicherte Metabolite und Ionen werden sowohl {\"u}ber aktive Transportprozesse, als auch passiv durch Ionenkan{\"a}le, {\"u}ber die vakuol{\"a}re Membran mit dem Zytoplasma ausgetauscht. In ihrer Funktion als second messenger sind Kalziumionen wichtige Regulatoren, aber auch Gegenstand vakuol{\"a}rer Transportprozesse. {\"A}nderungen der zytosolischen Kalziumkonzentration wirken nicht nur lokal, sie werden auch mit einer Signalweiterleitung {\"u}ber l{\"a}ngere Distanzen in Verbindung gebracht. Im Rahmen dieser Arbeit wurden elektrophysiologische Methoden mit bildgebenden Methoden kombiniert um Einblicke in das Zusammenspiel zwischen zytosolischen Kalziumsignalen, vakuol{\"a}rer Transportprozesse und der Auxin-Physiologie im intakten pflanzlichen Organismus zu gewinnen. Kalziumsignale sind an der Regulierung vakuol{\"a}rer Ionenkan{\"a}le und Transporter beteiligt. Um dies im intakten Organismus zu untersuchen wurden im Modellsystem junger Wurzelhaare von Arabidopsis thaliana Messungen mit intrazellul{\"a}ren Mikroelektroden durchgef{\"u}hrt. Mittels der Zwei-Elektroden-Spannungsklemm-Technik konnte best{\"a}tigt werden, dass die vakuol{\"a}re Membran der limitierende elektrische Wiederstand w{\"a}hrend intravakuol{\"a}rer Messungen ist und so gemessene Ionenstr{\"o}me in der Tat nur die Str{\"o}me {\"u}ber die vakuol{\"a}re Membran repr{\"a}sentieren. Die bereits bekannte zeitabh{\"a}ngige Abnahme der vakuol{\"a}ren Leitf{\"a}higkeit in Einstichexperimenten konnte weiterhin mit einer einstichbedingten, transienten Erh{\"o}hung der zytosolischen Kalziumkonzentration korreliert werden. Durch intravakuol{\"a}re Spannungsklemmexperimente in Wurzelhaarzellen von Kalziumreporterpflanzen konnte dieser Zusammenhang zwischen vakuol{\"a}rer Leitf{\"a}higkeit und der zytosolischen Kalziumkonzentration best{\"a}tigt werden. Die Vakuole ist jedoch nicht nur ein Empf{\"a}nger zytosolischer Kalziumsignale. Da die Vakuole den gr{\"o}ßten intrazellul{\"a}ren Kalziumspeicher darstellt, wird seit Langem diskutiert, ob sie auch an der Erzeugung solcher Signale beteiligt ist. Dies konnte in intakten Wurzelhaarzellen best{\"a}tigt werden. {\"A}nderungen des vakuol{\"a}ren Membranpotentials wirkten sich auf die zytosolische Kalziumkonzentration in diesen Zellen aus. W{\"a}hrend depolarisierende Potentiale zu einer Erh{\"o}hung der zytosolischen Kalziumkonzentration f{\"u}hrten, bewirkte eine Hyperpolarisierung der vakuol{\"a}ren Membran das Gegenteil. Thermodynamische {\"U}berlegungen zum passiven und aktiven Kalziumtransport {\"u}ber die vakuol{\"a}re Membran legten dabei den Schluss nahe, dass die hierin beschriebenen Ergebnisse das Verhalten von vakuol{\"a}ren H+/Ca2+ Austauschern wiederspiegeln, deren Aktivit{\"a}t durch die protonenmotorische Kraft bestimmt wird. Im Rahmen dieser Arbeit stellte sich weiterhin heraus, dass zytosolisches Kalzium ebenso ein zentraler Regulator eines schnellen Auxin-induzierten Signalweges ist, {\"u}ber den der polare Transport des Hormons reguliert wird. Im gleichen Modellsystem junger Wurzelhaare konnte gezeigt werden, dass die externe Applikation von Auxin eine sehr schnelle, Auxinkonzentrations- und pH-abh{\"a}ngige Depolarisation des Plasmamembranpotentials zur Folge hat. Synchron zur Depolarisation des Plasmamembranpotentials wurden im Zytosol transiente Kalziumsignale registriert. Diese wurden durch einen von Auxin aktivierten Einstrom von Kalziumionen durch den Ionenkanal CNGC14 hervorgerufen. Experimente an Verlustmutanten als auch pharmakologische Experimente zeigten, dass zur Auxin-induzierten Aktivierung des Kalziumkanals die Auxin-Perzeption durch die F-box Proteine der TIR1/AFB Familie erforderlich ist. Durch Untersuchungen der Auxin-abh{\"a}ngigen Depolarisation wie auch des Auxin-induzierten Einstroms von Protonen in epidermale Wurzelzellen von Verlustmutanten konnte gezeigt werden, dass die sekund{\"a}r aktive Aufnahme von Auxin durch das hochaffine Transportprotein AUX1 f{\"u}r die schnelle Depolarisation verantwortlich ist. Nicht nur die zytosolischen Kalziumsignale korrelierten mit der CNGC14 Funktion, sondern ebenso die AUX1-vermittelte Depolarisation von Wurzelhaaren. Eine unver{\"a}nderte Expression von AUX1 in der cngc14 Verlustmutante legte dabei den Schluss nahe, dass die Aktivit{\"a}t von AUX1 posttranslational reguliert werden muss. Diese Hypothese erfuhr Unterst{\"u}tzung durch Experimente, in denen die Behandlung mit dem Kalziumkanalblocker Lanthan zu einer Inaktivierung von AUX1 im Wildtyp f{\"u}hrte. Die zytosolische Beladung einzelner epidermaler Wurzelzellen mit Auxin hatte die Ausbreitung lateraler und acropetaler Kalziumwellen zur Folge. Diese korrelierten mit einer Verschiebung des Auxin-Gradienten an der Wurzelspitze und unterst{\"u}tzten somit eine hypothetische Kalziumabh{\"a}ngige Regulation des polaren Auxin Transports. Ein Model f{\"u}r einen schnellen, Auxin induzierten und kalziumabh{\"a}ngigen Signalweg wird pr{\"a}sentiert und dessen Bedeutung f{\"u}r das gravitrope Wurzelwachstum diskutiert. Da die AUX1-vermittelte Depolarisation in Abh{\"a}ngigkeit von der externen Phosphatkonzentration variierte, wird die Bedeutung dieses schnellen Signalwegs ebenso f{\"u}r die Anpassung des Wurzelhaarwachstums an eine nicht ausreichende Verf{\"u}gbarkeit von Phosphat diskutiert.}, subject = {Ackerschmalwand}, language = {en} } @phdthesis{Horn2017, author = {Horn, Hannes}, title = {Analysis and interpretation of (meta-)genomic data from host-associated microorganisms}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-152035}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {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.}, subject = {Bakterien}, language = {en} }