Refine
Has Fulltext
- yes (98)
Is part of the Bibliography
- yes (98) (remove)
Year of publication
Document Type
- Doctoral Thesis (98) (remove)
Keywords
- Genexpression (98) (remove)
Institute
- Theodor-Boveri-Institut für Biowissenschaften (36)
- Graduate School of Life Sciences (18)
- Institut für Molekulare Infektionsbiologie (10)
- Julius-von-Sachs-Institut für Biowissenschaften (7)
- Klinik und Poliklinik für Psychiatrie, Psychosomatik und Psychotherapie (6)
- Institut für Hygiene und Mikrobiologie (4)
- Fakultät für Biologie (3)
- Institut für Pharmazie und Lebensmittelchemie (3)
- Institut für Virologie und Immunbiologie (3)
- Neurologische Klinik und Poliklinik (3)
Sonstige beteiligte Institutionen
The Myb-MuvB (MMB) multiprotein complex is a master regulator of cell cycle-dependent gene expression. Target genes of MMB are expressed at elevated levels in several different cancer types and are included in the chromosomal instability (CIN) signature of lung, brain, and breast tumors.
This doctoral thesis showed that the complete loss of the MMB core subunit LIN9 leads to strong proliferation defects and nuclear abnormalities in primary lung adenocarcinoma cells. Transcriptome profiling and genome-wide DNA-binding analyses of MMB in lung adenocarcinoma cells revealed that MMB drives the expression of genes linked to cell cycle progression, mitosis, and chromosome segregation by direct binding to promoters of these genes. Unexpectedly, a previously unknown overlap between MMB-dependent genes and several signatures of YAP-regulated genes was identified. YAP is a transcriptional co-activator acting downstream of the Hippo signaling pathway, which is deregulated in many tumor types. Here, MMB and YAP were found to physically interact and co-regulate a set of mitotic and cytokinetic target genes, which are important in cancer. Furthermore, the activation of mitotic genes and the induction of entry into mitosis by YAP were strongly dependent on MMB. By ChIP-seq and 4C-seq, the genome-wide binding of MMB upon YAP overexpression was analyzed and long-range chromatin interaction sites of selected MMB target gene promoters were identified. Strikingly, YAP strongly promoted chromatin-association of B-MYB through binding to distal enhancer elements that interact with MMB-regulated promoters through chromatin looping.
Together, the findings of this thesis provide a so far unknown molecular mechanism by which YAP and MMB cooperate to regulate mitotic gene expression and suggest a link between two cancer-relevant signaling pathways.
The expression of genetic information into proteins is a key aspect of life. The efficient and exact regulation of this process is essential for the cell to produce the correct amounts of these effector molecules to a given situation. For this purpose, eukaryotic cells have developed many different levels of transcriptional and posttranscriptional gene regulation. These mechanisms themselves heavily rely on interactions of proteins with associated nucleic acids. In the case of posttranscriptional gene regulation an orchestrated interplay between RNA-binding proteins, messenger RNAs (mRNA), and non-coding RNAs is compulsory to achieve this important function.
A pivotal factor hereby are RNA secondary structures. One of the most stable and diverse representatives is the G-quadruplex structure (G4) implicated in many cellular mechanisms, such as mRNA processing and translation. In protein biosynthesis, G4s often act as obstacles but can also assist in this process. However, their presence has to be tightly regulated, a task which is often fulfilled by helicases.
One of the best characterized G4-resolving factors is the DEAH-box protein DHX36. The in vitro function of this helicase is extensively described and individual reports aimed to address diverse cellular functions as well. Nevertheless, a comprehensive and systems-wide study on the function of this specific helicase was missing, so far.
The here-presented doctoral thesis provides a detailed view on the global cellular function of DHX36. The binding sites of this helicase were defined in a transcriptome-wide manner, a consensus binding motif was deviated, and RNA targets as well as the effect this helicase exerts on them were examined. In human embryonic kidney cells, DHX36 is a mainly cytoplasmic protein preferentially binding to G-rich and G4-forming sequence motifs on more than 4,500 mRNAs. Loss of DHX36 leads to increased target mRNA levels whereas ribosome occupancy on and protein output of these transcripts are reduced. Furthermore, DHX36 knockout leads to higher RNA G4 levels and concomitant stress reactions in the cell. I hypothesize that, upon loss of this helicase, translationally-incompetent structured DHX36 target mRNAs, prone to localize in stress granules, accumulate in the cell. The cell reacts with basal stress to avoid cytotoxic effects produced by these mis-regulated and structured transcripts.
Neurodevelopmental disorders, including attention-deficit/hyperactivity disorder (ADHD) and autism spectrum disorder (ASD) are disorders of mostly unknown etiopathogenesis, for which both genetic and environmental influences are expected to contribute to the phenotype observed in patients. Changes at all levels of brain function, from network connectivity between brain areas, over neuronal survival, synaptic connectivity and axonal growth, down to molecular changes and epigenetic modifications are suspected to play a key roles in these diseases, resulting in life-long behavioural changes.
Genome-wide association as well as copy-number variation studies have linked cadherin-13 (CDH13) as a novel genetic risk factor to neuropsychiatric and neurodevelopmental disorders. CDH13 is highly expressed during embryonic brain development, as well as in the adult brain, where it is present in regions including the hippocampus, striatum and thalamus (among others) and is upregulated in response to chronic stress exposure. It is however unclear how CDH13 interacts with environmentally relevant cues, including stressful triggers, in the formation of long-lasting behavioural and molecular changes. It is currently unknown how the environment influences CDH13 and which long term changes in behaviour and gene expression are caused by their interaction. This work therefore investigates the interaction between CDH13 deficiency and neonatal maternal separation (MS) in mice with the aim to elucidate the function of CDH13 and its role in the response to early-life stress (ELS).
For this purpose, mixed litters of wild-type (Cdh13+/+), heterozygous (Cdh13+/-) and homozygous knockout (Cdh13-/-) mice were maternally separated from postnatal day 1 (PN1) to postnatal day 14 (PN14) for 3 hours each day (180MS; PN1-PN14). In a first series of experiments, these mice were subjected to a battery of behavioural tests starting at 8 weeks of age in order to assess motor activity, memory functions as well as measures of anxiety. Subsequently, expression of RNA in various brain regions was measured using quantitativ real-time polymerase chain reaction (qRT-PCR). A second cohort of mice was exposed to the same MS procedure, but was not behaviourally tested, to assess molecular changes in hippocampus using RNA sequencing.
Behavioural analysis revealed that MS had an overall anxiolytic-like effect, with mice after MS spending more time in the open arms of the elevated-plus-maze (EPM) and the light compartment in the light-dark box (LDB). As a notable exception, Cdh13-/- mice did not show an increase of time spent in the light compartment after MS compared to Cdh13+/+ and Cdh13+/- MS mice. During the Barnes-maze learning task, mice of most groups showed a similar ability in learning the location of the escape hole, both in terms of primary latency and primary errors. Cdh13-/- control (CTRL) mice however committed more primary errors than Cdh13-/- MS mice. In the contextual fear conditioning (cFC) test, Cdh13-/- mice showed more freezing responses during the extinction recall, indicating a reduced extinction of fear memory. In the step-down test, an impulsivity task, Cdh13-/- mice had a tendency to wait longer before stepping down from the platform, indicative of more hesitant behaviour. In the same animals, qRT-PCR of several brain areas revealed changes in the GABAergic and glutamatergic systems, while also highlighting changes in the gatekeeper enzyme Glykogensynthase-Kinase 3 (Gsk3a), both in relation to Cdh13 deficiency and MS. Results from the RNA sequencing study and subsequent gene-set enrichment analysis revealed changes in adhesion and developmental genes due to Cdh13 deficiency, while also highlighting a strong link between CDH13 and endoplasmatic reticulum function. In addition, some results suggest that MS increased pro-survival pathways, while a gene x environment analysis showed alterations in apoptotic pathways and migration, as well as immune factors and membrane metabolism. An analysis of the overlap between gene and environment, as well as their interaction, highlighted an effect on cell adhesion factors, underscoring their importance for adaptation to the environment.
Overall, the stress model resulted in increased stress resilience in Cdh13+/+ and Cdh13+/- mice, a change absent in Cdh13-/- mice, suggesting a role of CDH13 during programming and adaptation to early-life experiences, that can results in long-lasting consequences on brain functions and associated behaviours. These changes were also visible in the RNA sequencing, where key pathways for cell-cell adhesion, neuronal survival and cell-stress adaptation were altered. In conclusion, these findings further highlight the role of CDH13 during brain development, while also shedding light on its function in the adaptation and response during (early life) environmental challenges.
For cellular viability, transcription is a fundamental process. Hereby, the DNA plays the most elemental and highly versatile role. It has long been known that promoters contain conserved and often well-defined motifs, which dictate the site of transcription initiation by providing binding sites for regulatory proteins. However, research within the last decade revealed that it is promoters lacking conserved promoter motifs and transcribing constitutively expressed genes that constitute the majority of promoters in eukaryotes. While the process of transcription initiation is well studied, whether defined DNA sequence motifs are required for the transcription of constitutively expressed genes in eukaryotes remains unknown. In the highly divergent protozoan parasite Trypanosoma brucei, most of the proteincoding genes are organized in large polycistronic transcription units. The genes within one polycistronic transcription unit are generally unrelated and transcribed by a common transcription start site for which no RNA polymerase II promoter motifs have been identified so far. Thus, it is assumed that transcription initiation is not regulated but how transcription is initiated in T. brucei is not known. This study aimed to investigate the requirement of DNA sequence motifs and chromatin structures for transcription initiation in an organism lacking transcriptional regulation. To this end, I performed a systematic analysis to investigate the dependence of transcription initiation on the DNA sequence. I was able to identify GT-rich promoter elements required for directional transcription initiation and targeted deposition of the histone variant H2A.Z, a conserved component during transcription initiation. Furthermore, nucleosome positioning data in this work provide evidence that sites of transcription initiation are rather characterized by broad regions of open and more accessible chromatin than narrow nucleosome depleted regions as it is the case in other eukaryotes. These findings highlight the importance of chromatin during transcription initiation. Polycistronic RNA in T. brucei is separated by adding an independently transcribed miniexon during trans-splicing. The data in this work suggest that nucleosome occupancy plays an important role during RNA maturation by slowing down the progressing polymerase and thereby facilitating the choice of the proper splice site during trans-splicing. Overall, this work investigated the role of the DNA sequence during transcription initiation and nucleosome positioning in a highly divergent eukaryote. Furthermore, the findings shed light on the conservation of the requirement of DNA motifs during transcription initiation and the regulatory potential of chromatin during RNA maturation. The findings improve the understanding of gene expression regulation in T. brucei, a eukaryotic parasite lacking transcriptional Regulation.
Die Pathophysiologie der PNP wie auch die Entstehung der oft assoziierten neuropathischen Schmerzen ist unklar. Gleichzeitig gibt es bislang keine geeigneten Biomarker, die die oft komplizierte Differentialdiagnose vereinfachen können. Einige Tiermodelle und klinische Studien lieferten bereits Hinweise auf die entscheidende Rolle pro- und anti-inflammatorischer Zytokine in diesen Prozessen. Ziel unserer Studie war es, die systemische Genexpression pro- und anti-inflammatorischer Zytokine in einer großen Kohorte von Patienten mit PNP verschiedener Ätiologie zu charakterisieren. Insgesamt konnten 111 PNP-Patienten und 38 gesunde Kontrollpersonen prospektiv rekrutiert werden. Nach Isolation von PBMC aus Blutproben von 97 Patienten wurde die Genexpression der pro-inflammatorischen Zytokine TNF, IL1, IL2, IL6, IL8 und der anti-inflammatorischen Zytokine IL4 und IL10 mittels qRT-PCR bestimmt. Bei 47 Patienten und 12 Kontrollen wurde zudem die IL6-, IL-8- und TNF-Zytokinproduktion von PBMC in vitro nach Stimulation durch LPS mittels ELISA untersucht. Hauptbefund war ein pro-inflammatorisches Zytokinprofil der PNP-Patienten mit höherer Genexpression von IL1, IL2, IL8 und TNF im Vergleich zu den gesunden Kontrollen. Im Falle der entzündlichen Neuropathien konnte zudem eine niedrigere Genexpression von IL10 im Vergleich zu Gesunden nachgewiesen werden. Sowohl schmerzhafte als auch schmerzlose Verlaufsformen wiesen ein pro-inflammatorisches Zytokingenexpressionsprofil im Vergleich zu Gesunden auf, das bei schmerzhaften PNP deutlich mehr beteiligte pro-inflammatorische Zytokine umfasste; relevante Unterschiede zwischen den PNP-Patienten mit und ohne Schmerz sowie der diagnostischen Subgruppen fanden sich nicht. Eine niedrigere Stimulationsschwelle der PBMC lag bei PNP-Patienten im Vergleich zu Gesunden nicht vor. Insgesamt erscheint die Rolle einzelner Zytokine als systemische Biomarker für die Differenzierung verschiedener PNP-Formen bzw. bezüglich neuropathischen Schmerzes aufgrund einer niedrigen Spezifität deutlich eingeschränkt. Dennoch sprechen unsere Ergebnisse für eine mögliche Rolle eines pro-inflammatorischen Milieus bei der Entstehung bzw. des Verlaufes verschiedener entzündlicher und nicht-entzündlicher Neuropathien und neuropathischen Schmerzes.
Biochemische und strukturelle Charakterisierung der Genexpressionsmaschinerie des Vaccinia Virus
(2018)
Die Familie der Pockenviren zeichnet sich durch ein komplexes DNA Genom aus und hat großes medizinisches Potential. Am eindrucksvollsten ist dies für das Vaccinia-Virus (VACV) belegt, welches nicht nur als Pocken-Impfstoff eingesetzt wird, sondern auch als onkolytisches Virus in der Tumorbiologie. VACV hat einen außergewöhnlichen Replikationszyklus, welcher ausschließlich im Zytoplasma der Wirtszelle stattfindet. Somit ist die gesamte virale Genexpressionsmaschinerie völlig unabhängig von kernvermittelten Reaktionen des Wirts und somit auch aus Sicht der Grundlagenforschung von größtem Interesse. Die Schlüsselkomponente der viralen Genexpression ist die makromolekulare DNA-abhängige RNA Polymerase (vvRPO), deren Untereinheiten allesamt Virus-kodiert sind. Zwar wurden in den letzten Jahren Protokolle zur biochemischen und funktionellen Charakterisierung der vvRPO etabliert, ein detailliertes Wissen über deren Zusammenlagerung in vivo und die räumlichen und zeitlichen Interaktionen mit den Transkriptions- bzw. Prozessierungsfaktoren sind aber weitgehend unbekannt.
Diese Arbeit umfasst Untersuchungen zur strukturellen und funktionellen Charakterisierung der vvRPO und seiner assoziierten Faktoren. Grundlage hierfür war die Etablierung eines Reinigungsprotokolls mithilfe eines neu konstruierten rekombinanten VACV (GLV-1h439). Diese Strategie erlaubte es hoch-molekulare native vvRPO Komplexe zu isolieren. Ein transkriptions-inaktiver Komplex (Komplex I) mit einer kalkulierten Masse von 575 kDa bestand aus den acht Untereinheiten des vvRPO Holoenzyms und den Polymerase-assoziierten Faktoren RAP94 und D6. Ein zweiter, transkriptionell aktiver Komplex (Komplex II) mit einer Masse von 803 kDa enthielt, neben dem Holoenzym der vvRPO, noch weitere Faktoren, die primär die Erkennung der DNA-Matrize und die Prozessierung der naszierenden RNA vermitteln. Hierbei handelt es sich um RAP94, das virale Capping Enzym bestehend aus den zwei Untereinheiten D1 und D12, A7 und dem Terminationsfaktor NPH I. Interessanterweise enthielt dieser Komplex zusätzlich mit E11 eine bislang unbekannte weitere Protein-Komponente, sowie tRNAGln und tRNAArg. Der isolierte Kompelx II ist daher ein Ribonukleoprotein (RNP).
Die Verfügbarkeit von hoch-reinen vvRPO Komplexen erlaubte es erstmals deren strukturelle Architektur zu untersuchen. Hierfür wurden drei experimentelle Ansätze, die klassische Röntgenstrukturanalyse, die Kryo-Elektronenmikroskopie (Kryo-EM) und Quervernetzungssstudien miteinander kombiniert. Die Strukturen der Komplexe I und II haben eine Auflösung von 11-12 Å, wobei auffällig war, dass beide eine markante strukturelle Ähnlichkeit zur eukaryotischen RNA Polymerase II aufwiesen. Darüber hinaus gelang es zusätzliche Bereiche im Komplex II zu definieren, welche die Polymerase-assoziierten Prozessierungsfaktoren beherbergen. Zudem konnte die atomare Struktur von E11, mittels Röntgenstrukturanalyse bei einer Auflösung von 1,9 Å, gelöst werden. Das E11 Protein besitzt ein neuartiges Faltungsmuster und weist einen intensiven Dimerisierungskontakt auf, welcher sich über vier ß-Faltblätter ausbildet.
Die im Rahmen dieser Arbeit erhaltenen Daten legen die Grundlage für ein detailliertes Verständnis der räumlichen Organisation der viralen Transkriptonsmaschinerie. Darüber hinaus werden sie funktionelle Studien ermöglichen, welche die Rolle der einzelnen Proteine, sowie der tRNAs bei der mRNA Synthese klären helfen.
Der Einfluss von Arzneistofftransportern auf die pulmonale Absorption inhalierter Arzneistoffe
(2017)
Arzneistofftransporter ermöglichen endogenen und exogenen Molekülen die Überwindung von Zellmembranen und tragen dadurch zur Aufnahme, Verteilung und Elimination von Arzneistoffen bei. Inhalativ applizierte Wirkstoffe, wie Vertreter aus der Gruppe der Beta-2-Sympathomimetika oder Anticholinergika, zählen zu den Substraten wichtiger, pulmonal exprimierter Arzneistofftransporter. Trotz intensivierter Forschung auf dem Gebiet der Transporter-Expression ist diese im humanen Lungengewebe bisher wenig untersucht und deren pharmakokinetische Auswirkungen auf pulmonal verabreichte Arzneistoffe sind kaum bekannt. Im Rahmen der vorliegenden Arbeit sollte der Einfluss von Arzneistofftransportern auf die pulmonale Absorption inhalierter Arzneistoffe untersucht und Erkenntnisse über deren Expressions-Profil im humanen Lungengewebe gewonnen werden.
Pharmakokinetische Parameter des inhalativen Anticholinergikums Ipratropiumbromid wurden an einem ex vivo Modell der humanen Lunge untersucht. Nach vorheriger Applikation des kompetitiven OCTN1/2-Inhibitors L-Carnitin wurde keine signifikante Reduktion der absorbierten Wirkstoffmenge detektiert. Damit zeigten sich die beiden organischen Kationen/Carnitin-Transporter OCTN1 und OCTN2, anders als bisher vermutet, nicht als primär an der Absorption von Ipratropiumbromid beteiligte Transporter. Infolgedessen wurde die Beteiligung weiterer Transporter hypothetisiert.
Erstmals wurden die am humanen Lungen-Perfusions-Modell gewonnenen pharmakokinetischen Daten zur pulmonalen Absorption in direkter Beziehung zur mRNA- und Protein-Expression von Arzneistofftransportern in den jeweiligen individuellen Gewebeproben betrachtet. Die pulmonale Genexpression des Multidrug Resistance-Related Protein MRP5 wies eine signifikante negative Korrelation mit der Area under the curve (AUC0 – 60 min) von Ipratropiumbromid auf (r = -0,699; p < 0,05), was die Beteiligung von MRP5 an den Umverteilungsprozessen von Ipratropiumbromid in der humanen Lunge nahelegte. Auf Protein-Ebene wurde eine positive Korrelation zwischen der Expression des organischen Kationentransporters OCT3 und der AUC0 – 60 min von Ipratropiumbromid ermittelt (r = 0,7499,p < 0,05), woraus sich eine potentielle Beteiligung von OCT3 an der Aufnahme von Ipratropiumbromid aus dem luminalen Lungenbereich ableiten ließ.
Zur Untermauerung dieser Hypothese wurden Untersuchungen mit stabil transfizierten HEK293-Zellen durchgeführt. Sowohl der organische Kationentransporter OCT1 als auch OCT3 trugen dabei signifikant zu einer erhöhten zellulären Aufnahme der beiden Tritium-markierten Bronchodilatatoren Ipratropiumbromid und Salbutamol bei. Damit wurde für OCT3 zum ersten Mal eine Beteiligung an der zellulären Aufnahme dieser beiden Arzneistoffe nachgewiesen.
Im Kontext der Gendermedizin sind geschlechtsspezifische Unterschiede in der Transporter-Expression von großem Interesse. Inwiefern die drei Sexualsteroidhormone Estradiol, Progesteron und Testosteron einen regulatorischen Effekt auf die mRNA-Expression von Membrantransportern haben, wurde erstmals durch in vitro Inkubationsversuche in physiologischen Hormonkonzentrationen mit der humanen Bronchialepithelzelllinie Calu-3 geprüft. Mittels intensiv optimierter und sorgfältig validierter RT-qPCR-Analytik konnten vor allem nach Inkubation mit weiblichen Sexualhormonen verglichen zu keiner Hormon-Zugabe statistisch signifikante Expressions-Unterschiede detektiert werden: Nach Behandlung mit Estradiol zeigten der Oligopeptid-Transporter PEPT2 (80,8 ± 15,6 %) und OCTN2 (82,8 ± 4,2 %) eine geringere Genexpression, das Multidrug Resistance-Related Protein MRP1 (111,6 ± 9,1 %) sowie OCTN1 (112,9 ± 10,1 %) waren nach Zugabe von Estradiol kombiniert mit Progesteron höher exprimiert als ohne Hormon-Zusatz.
Da Estradiol überdies als Inhibitor des OCT1- und OCT3-vermittelten Transports gilt, wurde die Auswirkung des Hormons, unter anderem in physiologischer Konzentration, auf die Aufnahme von Tritium-markierten Ipratropiumbromid in stabil transfizierte HEK293-Zellen untersucht, wobei tatsächlich eine reduzierte zelluläre Ipratropiumbromid-Aufnahme beobachtet wurde. Somit könnte auch in vivo eine geschlechtsspezifische Inhibition der beiden Transporter stattfinden, wodurch deren Substrate einer geschlechtsspezifisch variierenden Pharmakokinetik unterliegen könnten.
Darüber hinaus wurde in rund 80 humanen Lungengewebsproben die Genexpression von Arzneistofftransportern hinsichtlich geschlechts- und altersspezifischer Unterschiede überprüft. In unter 50-jährigen Männern war das Multidrug-Resistance Protein MDR1 signifikant höher exprimiert verglichen zu Männern von 50 - 60 Jahren. OCT1 war in Patienten von
50 - 60 Jahren signifikant geringer exprimiert als in über 60-Jährigen. Daneben lieferte die Analyse aller Gewebeproben das Genexpressions-Profil von Arzneistofftransportern im humanen Lungengewebe, wobei OCT3 das höchste und OCT2 das geringste mRNA-Expressions-Niveau unter den untersuchten Transportern aufwies. Eine wesentliche Beteiligung von OCT3 an Transportvorgängen im humanen Lungengewebe erschien damit wahrscheinlich.
Resümierend konnte mit der vorliegenden Arbeit ein Beitrag zur Aufklärung des Einflusses von Arzneistofftransportern auf die pulmonale Absorption inhalativ verabreichter Arzneistoffe geleistet werden. Dabei konnte OCT3 erstmals als maßgeblich an der zellulären Aufnahme von Ipratropiumbromid beteiligter Transporter in der humanen Lunge identifiziert werden, womit einerseits die Beteiligung von Arzneistofftransportern an pharmakokinetischen Prozessen in vivo und andererseits die Bedeutung von Arzneistofftransportern für die inhalative Arzneimitteltherapie deutlich wurde.
Mechanisms of visual memory formation in bees: About immediate early genes and synaptic plasticity
(2017)
Animals form perceptual associations through processes of learning, and retain that information through mechanisms of memory. Honeybees and bumblebees are classic models for insect perception and learning, and despite their small brains with about one million neurons, they are organized in highly social colonies and possess an astonishing rich behavioral repertoire including navigation, communication and cognition. Honeybees are able to harvest hundreds of morphologically divergent flower types in a quick and efficient manner to gain nutrition and, back in the hive, communicate discovered food sources to nest mates. To accomplish such complex tasks, bees must be equipped with diverse sensory organs receptive to stimuli of different modalities and must be able to associatively learn and memorize the acquired information. Particularly color vision plays a prominent role, e.g. in navigation along landmarks and when bees identify inflorescences by their color signals. Once acquired, bees are known to retain visual information for days or even months. Numerous studies on visual perception and color vision have been conducted in the past decades and largely revealed the information processing pathways in the brain. In contrast, there are no data available on how the brain may change in the course of color learning experience and whether pathways differ for coarse and fine color learning. Although long-term memory (LTM) storage is assumed to generally include reorganization of the neuronal network, to date it is unclear where in the bee brain such changes occur in the course of color learning and whether visual memories are stored in one particular site or decentrally distributed over different brain domains. The present dissertation research aimed to dissect the visual memory trace in bees that is beyond mere stimulus processing and therefore two different approaches were elaborated: first, the application of immediate early genes (IEG) as genetic markers for neuronal activation to localize early processes underlying the formation of a stable LTM. Second, the analysis of late consequences of memory formation, including synaptic reorganization in central brain areas and dependencies of color discrimination complexity.
Immediate early genes (IEG) are a group of rapidly and transiently expressed genes that are induced by various types of cellular stimulation. A great number of different IEGs are routinely used as markers for the localization of neuronal activation in vertebrate brains. The present dissertation research was dedicated to establish this approach for application in bees, with focus on the candidate genes Amjra and Amegr, which are orthologous to the two common vertebrate IEGs c-jun and egr-1. First the general requirement of gene transcription for visual LTM formation was proved. Bumblebees were trained in associative proboscis extension response (PER) conditioning to monochromatic light and subsequently injected with an inhibitor of gene transcription. Memory retention tests at different intervals revealed that gene transcription is not required for the formation of a mid-term memory, but for stable LTM. Next, the appliance of the candidate genes was validated. Honeybees were exposed to stimulation with either alarm pheromone or a light pulse, followed by qPCR analysis of gene expression. Both genes differed in their expression response to sensory exposure: Amjra was upregulated in all analyzed brain parts (antennal lobes, optic lobes and mushroom bodies, MB), independent from stimulus modality, suggesting the gene as a genetic marker for unspecific general arousal. In contrast, Amegr was not significantly affected by mere sensory exposure. Therefore, the relevance of associative learning on Amegr expression was assessed. Honeybees were trained in visual PER conditioning followed by a qPCR-based analysis of the expression of all three Amegr isoforms at different intervals after conditioning. No learning-dependent alteration of gene expression was observed. However, the presence of AmEgr protein in virtually all cerebral cell nuclei was validated by immunofluorescence staining. The most prominent immune-reactivity was detected in MB calyx neurons.
Analysis of task-dependent neuronal correlates underlying visual long-term memory was conducted in free-flying honeybees confronted with either absolute conditioning to one of two perceptually similar colors or differential conditioning with both colors. Subsequent presentation of the two colors in non-rewarded discrimination tests revealed that only bees trained with differential conditioning preferred the previously learned color. In contrast, bees of the absolute conditioning group chose randomly among color stimuli. To investigate whether the observed difference in memory acquisition is also reflected at the level of synaptic microcircuits, so called microglomeruli (MG), within the visual domains of the MB calyces, MG distribution was quantified by whole-mount immunostaining three days following conditioning. Although learning-dependent differences in neuroarchitecture were absent, a significant correlation between learning performance and MG density was observed.
Taken together, this dissertation research provides fundamental work on the potential use of IEGs as markers for neuronal activation and promotes future research approaches combining behaviorally relevant color learning tests in bees with examination of the neuroarchitecture to pave the way for unraveling the visual memory trace.
Regulating and reverting the adipo-osteogenic lineage decision of trabecular human bone marrow stromal cells (hBMSCs) represents a promising approach for osteoporosis therapy and prevention. Fibroblast growth factor 1 (FGF1) and its subfamily member FGF2 were scored as lead candidates to exercise control over lineage switching processes (conversion) in favor of osteogenesis previously. However, their impact on differentiation events is controversially discussed in literature. Hence, the present study aimed to investigate the effects of these FGFs on the adipogenic and osteogenic differentiation and conversion of primary hBMSCs. Moreover, involved downstream signaling mechanisms should be elucidated and, finally, the results should be evaluated with regard to the possible therapeutic approach.
This study clearly revealed that culture in the presence of FGF1 strongly prevented the adipogenic differentiation of hBMSCs as well as the adipogenic conversion of pre-differentiated osteoblastic cells. Lipid droplet formation was completely inhibited by a concentration of 25 ng/µL. Meanwhile, the expression of genetic markers for adipogenic initiation, peroxisome proliferator-activated receptor gamma 2 (PPARg2) and CCAAT/enhancer binding protein alpha (C/EBPa), as well as subsequent adipocyte maturation, fatty acid binding protein 4 (FABP4) and lipoprotein lipase (LPL), were significantly downregulated. Yet, the genetic markers of osteogenic commitment and differentiation were not upregulated during adipogenic differentiation and conversion under FGF supplementation, not supporting an event of osteogenic lineage switching.
Moreover, when examining the effects on the osteogenic differentiation of hBMSCs and the osteogenic conversion of pre-differentiated adipocytic cells, culture in the presence of FGF1 markedly decreased extracellular matrix (ECM) mineralization. Additionally, the gene expression of the osteogenic marker alkaline phosphatase (ALP) was significantly reduced and ALP enzyme activity was decreased. Furthermore, genetic markers of osteogenic commitment, like the master regulator runt-related transcription factor 2 (RUNX2) and bone morphogenetic protein 4 (BMP4), as well as markers of osteogenic differentiation and ECM formation, like collagen 1 A1 (COL1A1) and integrin-binding sialoprotein (IBSP), were downregulated. In contrast, genes known to inhibit ECM mineralization, like ANKH inorganic pyrophosphate transport regulator (ANKH) and osteopontin (OPN), were upregulated. ANKH inhibition revealed that its transcriptional elevation was not crucial for the reduced matrix mineralization, perhaps due to decreased expression of ectonucleotide pyrophosphatase/phosphodiesterase 1 (ENPP1) that likely annulled ANKH upregulation. Like FGF1, also the culture in the presence of FGF2 displayed a marked anti-adipogenic and anti-osteogenic effect.
The FGF receptor 1 (FGFR1) was found to be crucial for mediating the described FGF effects in adipogenic and osteogenic differentiation and conversion. Yet, adipogenic conversion displayed a lower involvement of the FGFR1. For adipogenic differentiation and osteogenic differentiation/conversion, downstream signal transduction involved the extracellular signal-regulated kinases 1 and 2 (ERK1/2) and the mitogen-activated protein kinase (MAPK)/ERK kinases 1 and 2 (MEK1/2), probably via the phosphorylation of FGFR docking protein FGFR substrate 2a (FRS2a) and its effector Ras/MAPK. The c-Jun N-terminal kinase (JNK), p38-MAPK, and protein kinase C (PKC) were not crucial for the signal transduction, yet were in part responsible for the rate of adipogenic and/or osteogenic differentiation itself, in line with current literature.
Taken together, to the best of our knowledge, our study was the first to describe the strong impact of FGF1 and FGF2 on both the adipogenic and osteogenic differentiation and conversion processes of primary hBMSCs in parallel. It clearly revealed that although both FGFs were not able to promote the differentiation and lineage switching towards the osteogenic fate, they strongly prevented adipogenic differentiation and lineage switching, which seem to be elevated during osteoporosis. Our findings indicate that FGF1 and FGF2 entrapped hBMSCs in a pre-committed state. In conclusion, these agents could be applied to potently prevent unwanted adipogenesis in vitro. Moreover, our results might aid in unraveling a pharmacological control point to eliminate the increased adipogenic differentiation and conversion as potential cause of adipose tissue accumulation and decreased osteoblastogenesis in bone marrow during aging and especially in osteoporosis.
LASP1 reguliert die Genexpression und Sekretion von Matrix-Metalloproteasen in Brustkrebszellen
(2016)
Migration und Tumorzellinvasion erfordern die vorhergehende Degradation der umliegenden Extrazellulärmartrix (EZM). Dieser Umbauprozess erfolgt primär durch proteolytische Endopeptidasen, sog. Matrix-Metalloproteasen (MMPs). Damit diese ihre funktionelle Aktivität ausüben können, müssen sie zunächst rekrutiert und mit Hilfe podosomaler bzw. invadopodialer Strukturen in die EZM sezerniert werden.
Das LIM und SH3 Domänen Protein 1 (LASP1), ein neu in Podosomen von Makrophagen identifiziertes regulatorisches Gerüstprotein, beeinflusst, neben Größe, Anzahl und Beständigkeit von Podosomen, in hohem Maße die Matrixdegradationskapazität der Zelle.
Auch in invasiven Brustkrebszellen wurde eine Lokalisation von LASP1 an Invadopodien, den Podosomen-äquivalenten Strukturen, detektiert.
Das primäre Ziel der vorliegenden Arbeit war daher die funktionelle Charakterisierung von LASP1 in Invadopodien. Unter Etablierung eines Matrix-Degradations-Assays konnte gezeigt werden, dass eine Herunterregulation von LASP1 auch in der humanen Brustkrebszelllinie MDA-MB-231, die zuvor schon für Makrophagen gezeigte Matrixdegradation nachhaltig beeinträchtig.
Durch Analyse und Verifikation von zugänglichen Mikroarraydaten mittels qRT-PCR und Western Blot konnte ferner belegt werden, dass LASP1 in den Brustkrebszellen die Genexpression und Proteintranslation von MMP1, -3 und -9 positiv moduliert und somit das gesamt-invasive Potential der Zelle steigert. Darüber hinaus deuten Zymogramme und die Analyse des konditionierten Mediums darauf hin, dass LASP1 als Strukturprotein die vesikuläre Sekretion der inaktiven Zymogene (proMMPs) in die EZM fördert. Demzufolge modifiziert LASP1 während der Krebsprogression die zelluläre Mikroumgebung zugunsten einer erhöhten Metastasierungsrate.
Die neu identifizierte regulatorische Funktion von LASP1 auf die Transkription sowie Sekretion von Matrix-Metalloproteasen erklärt die in früheren Arbeiten beobachtete Korrelation zwischen einer erhöhten LASP1 Konzentration im Gewebe und dem vermehrten Auftreten von Metastasen, und damit einhergehend, schlechteren Überleben der Patientinnen.