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Throughout their lifetime plants need to adapt to temperature changes. Plants adapt to nonfreezing cold temperatures in a process called cold priming (cold acclimation) and lose the acquired freezing tolerance during warmer temperatures through deacclimation. The alternation of both processes is essential for plants to achieve optimal fitness in response to different temperature conditions. Cold acclimation has been extensively studied, however, little is known about the regulation of deacclimation. This thesis elucidates the process of deacclimation on a physiological and molecular level in Arabidopsis thaliana. Electrolyte leakage measurements during cold acclimation and up to four days of deacclimation enabled the identification of four knockout mutants (hra1, lbd41, mbf1c and jub1) with a slower rate of deacclimation compared to the wild type. A transcriptomic study using RNA-Sequencing in A. thaliana Col-0, jub1 and mbf1c identified the importance of the inhibition of stress responsive and Jasmonate-ZIM-domain genes as well as the regulation of cell wall modifications during deacclimation. Moreover, measurements of alcohol dehydrogenase activity and gene expression changes of hypoxia markers during the first four days of deacclimation evidently showed that a hypoxia response is activated during deacclimation. Epigenetic regulation was observed to be extensively involved during cold acclimation and 24 h of deacclimation in A. thaliana. Further, both deacclimation studies showed that the previous hypothesis that heat stress might play a role in early deacclimation, is not likely. A number of DNA- and histone demethylases as well as histone variants were upregulated during deacclimation suggesting a role in plant memory. Recently, multiple studies have shown that plants are able to retain memory of a previous cold stress even after a week of deacclimation. In this work, transcriptomic and metabolomic analyses of Arabidopsis during 24 h of priming (cold acclimation) and triggering (recurring cold stress after deacclimation) revealed a uniquely significant and transient induction of DREB1D, DREB1E and DREB1F transcription factors during triggering contributing to fine-tuning of the second cold stress response. Furthermore, genes encoding Late Embryogenesis Abundant (LEA) and antifreeze proteins and proteins detoxifying reactive oxygen species were higher induced during late triggering (24 h) compared to primed samples, while cell wall remodelers of the class xyloglucan endotransglucosylase/hydrolase were early responders of triggering. The high induction of cell wall remodelers during deacclimation as well as triggering proposes that these proteins play an essential role in the stabilization of the cells during growth as well as the response to recurring stresses. Collectively this work gives new insights on the regulation of deacclimation and cold stress memory in A. thaliana and opens the door to future targeted studies of essential genes in this process.
Epigenetische Mechanismen spielen eine entscheidende Rolle bei der Pathogenese von Colitis ulcerosa (CU). Ihr Einfluss auf das beobachtete Ungleichgewicht zwischen pro- und anti-inflammatorischen Cytokinen ist hingegen weitgehend unerforscht. Einige der wichtigsten immunmodulatorischen Cytokine sind die Mitglieder der heterodimeren Interleukin- (IL-) 12-Familie, die durch das Kombinieren einer der drei α-Ketten (IL-12p35, IL-27p28, IL-23p19) mit den ß-Untereinheiten IL-12p40 oder EBI3 (Epstein-Barr Virus-induziertes Gen 3) charakterisiert sind. IL-35 (IL-12p35/EBI3) spielt eine bedeutende anti-inflammatorische Rolle bei verschiedenen Erkrankungen, wohingegen seine Level bei chronischen Entzündungen erniedrigt sind. Eine mögliche Ursache könnte eine transkriptionelle Stilllegung über epigenetische Modifikationen sein. Tatsächlich konnte durch die Stimulation mit dem DNA-Methyltransferase-Inhibitor (DNMTi) Decitabin (DAC; Dacogen®) eine Induktion von EBI3 in humanen Epithelzellen aus gesundem Colon (HCEC) erreicht werden, die als Modell für ein lokales Entzündungsgeschehen dienten. Diese Regulation über DNA-Methylierung konnte in weiteren humanen Zellen unterschiedlichen Ursprungs sowie durch Stimulation von HCEC-Zellen mit zwei weiteren DNMTi, dem Cytosin-Analogon Azacytidin (AZA; Vidaza®) und dem natürlich vorkommenden, epigenetisch wirksamen Polyphenol Epigallocatechingallat (EGCG), verifiziert werden. Die kombinierte Inkubation mit Tumor-Nekrose-Faktor α (TNFα) resultierte jeweils in einer über-additiven Induktion von EBI3.
Weiterführende Untersuchungen zeigten, dass TNFα trotz Beeinflussung der epigenetischen DNMT- und Ten-eleven Translocation- (TET-) Enzyme keinen Einfluss auf die globalen Methylierungs- oder Hydroxymethylierungslevel hatte, jedoch eine genspezifische DNA-Hypomethylierung im EBI3-Promotor induzierte. Durch Nutzung verschiedener Inhibitoren konnte darüber hinaus nachgewiesen werden, dass der beobachtete synergistische Effekt der gemeinsamen DAC und TNFα-Stimulation hauptsächlich über NFκB (Nuclear factor “kappa-light-chain-enhancer” of activated B-cells) vermittelt wird. Ein Teil verläuft dabei über p38 MAPK (mitogen-activated protein kinases), während die JNK- (c-Jun N-terminale Kinasen-) und ERK- (extracellular-signal-regulated kinases) Signalwege keine Rolle spielen.
In der vorliegenden Arbeit wurde zudem gezeigt, dass die DNA-Hypomethylierung während eines entzündlichen Zustandes auch in einer erhöhten EBI3-Proteinexpression resultiert. Die Höhe der immunologisch detektierten Banden wies auf eine Dimerbildung sowohl im Zelllysat als auch im Überstand hin. Humane Colonepithelzellen sind demnach in der Lage, Cytokine zu bilden und zu sezernieren, was die Bedeutung von Nicht-Immunzellen bei der lokalen Immunantwort unterstreicht. Mittels Genexpressionsanalysen wurden IL-12p35 und IL-23p19 als mögliche Bindungspartner identifiziert. Aufgrund kreuzreaktiver Antikörper ist ein direkter Nachweis der EBI3-Dimere derzeit nicht möglich. Die stattdessen genutzte Kombination verschiedener Methoden dient als geeigneter Ersatz für die problematischen Antikörper-basierten Analysen wie Immunpräzipitation oder ELISA. Durch molekularbiologische, immunologische und massenspektrometrische Methoden konnte IL-35 identifiziert werden, während IL-39 (IL-23p19/EBI3) nicht detektiert wurde. Dies ist in Einklang mit den Erkenntnissen mehrerer Forschungsgruppen, die eine Bildung des nativen humanen Dimers aus IL-23p19 und EBI3 bezweifeln. Des Weiteren wurde die biologische Aktivität des behandlungsinduzierten IL 35-Proteins durch einen Funktionsassay nachgewiesen.
Neben einer DNMTi-bedingten transkriptionellen Aktivierung konnte eine Regulation von EBI3 über Histonacetylierungen gezeigt werden. Der EBI3-induzierende Effekt des Histondeacetylasen-Inhibitors (HDACi) Trichostatin A (TSA) wurde durch SAHA (suberoylanilide hydroxamic acid (Vorinostat; Zolinza®)) verifiziert. Ähnlich zu der Stimulation mit den hypomethylierenden Substanzen wurde ein synergistischer Effekt bei paralleler Inkubation mit TNFα beobachtet, der in einer gesteigerten Bildung des EBI3-Proteins resultierte.
Um die Befunde in einem komplexeren in vivo-Modell zu untersuchen, wurde eine chronische Colitis in Ebi3-defizienten Mäusen und dem dazugehörigen Wildtypstamm C57BL/6 durch zyklische Applikation von Natriumdextransulfat (Dextran sodium sulfate (DSS)) induziert. Der Vergleich klinischer Parameter wie Mortalitätsrate und Körper- sowie Milzgewicht wies bei Abwesenheit von Ebi3 signifikant stärkere colitische Symptome auf. Dies bestätigte die zentrale Rolle von Ebi3 in der Colitisentwicklung und deutete auf eine bevorzugte Bildung des anti-inflammatorisch wirkenden IL-35 statt des pro-inflammatorischen IL-39 in den Wildtyptieren hin. Durch zusätzliche therapeutische Behandlung der C57BL/6-Mäuse nach der DSS-Gabe konnte die in der Literatur beschriebene positive Wirkung von SAHA auf die Colitismanifestation bestätigt werden. Im Gegensatz dazu war der HDACi in den Ebi3-defizienten Tieren nicht in der Lage, die colitischen Parameter zu verbessern beziehungsweise verschlimmerte den Krankheitsphänotyp. Expressionsanalysen von Up- und Downstream-Target-Genen lieferten weitere Hinweise darauf, dass bei Anwesenheit von Ebi3 IL-35 statt IL-39 gebildet wird, was in Einklang mit den in vitro-Untersuchungen steht.
Die vorliegende Arbeit konnte durch den Vergleich der C57BL/6-Mäuse mit den Ebi3-defizienten Tieren neue Erkenntnisse über die Wirkungsweise von SAHA erbringen. Histonacetylierende Bedingungen verbessern colitische Symptome über einen Mechanismus, der die epigenetische Induktion von Ebi3 mit nachfolgender IL-35-Bildung involviert. Durch Kooperation der epigenetischen Mechanismen Hypomethylierung und Histonacetylierung wurde der stärkste Effekt auf die EBI3-Induktion bewirkt.
Insgesamt konnte in der vorliegenden Arbeit durch in vitro- und in vivo-Analysen die epigenetische und NFκB-vermittelte Induktion von EBI3 über DNA-Demethylierung und Histonacetylierung mit nachfolgender IL-35-Bildung und –Sezernierung nachgewiesen werden. Da IL-35 in der Lage ist, colitische Symptome zu mildern, stellt die epigenetische Reaktivierbarkeit von EBI3 durch DNMTi und HDACi eine vielversprechende Alternative für die derzeit genutzten, oft nicht oder nur kurzfristig wirksamen Therapien bei der Behandlung einer CU dar. Einer übermäßigen Immunantwort während schubweiser entzündlicher Phasen könnte entgegengewirkt und Komplikationen wie die Bildung Colitis-assoziierter Karzinome verhindert werden.
Heat stress (HS) is a major abiotic stress that negatively affects plant growth and productivity. However, plants have developed various adaptive mechanisms to cope with HS, including the acquisition and maintenance of thermotolerance, which allows them to respond more effectively to subsequent stress episodes. HS memory includes type II transcriptional memory which is characterized by enhanced re-induction of a subset of HS memory genes upon recurrent HS. In this study, new regulators of HS memory in A. thaliana were identified through the characterization of rein mutants.
The rein1 mutant carries a premature stop in CYCLIN-DEPENDENT-KINASE 8 (CDK8) which is part of the cyclin kinase module of the Mediator complex. Rein1 seedlings show impaired type II transcriptional memory in multiple heat-responsive genes upon re-exposure to HS. Additionally, the mutants exhibit a significant deficiency in HS memory at the physiological level. Interaction studies conducted in this work indicate that CDK8 associates with the memory HEAT SHOCK FACTORs HSAF2 and HSFA3. The results suggest that CDK8 plays a crucial role in HS memory in plants together with other memory HSFs, which may be potential targets of the CDK8 kinase function. Understanding the role and interaction network of the Mediator complex during HS-induced transcriptional memory will be an exciting aspect of future HS memory research.
The second characterized mutant, rein2, was selected based on its strongly impaired pAPX2::LUC re-induction phenotype. In gene expression analysis, the mutant revealed additional defects in the initial induction of HS memory genes. Along with this observation, basal thermotolerance was impaired similarly as HS memory at the physiological level in rein2. Sequencing of backcrossed bulk segregants with subsequent fine mapping narrowed the location of REIN2 to a 1 Mb region on chromosome 1. This interval contains the At1g65440 gene, which encodes the histone chaperone SPT6L. SPT6L interacts with chromatin remodelers and bridges them to the transcription machinery to regulate nucleosome and Pol II occupancy around the transcriptional start site. The EMS-induced missense mutation in SPT6L may cause altered HS-induced gene expression in rein2, possibly triggered by changes in the chromatin environment resulting from altered histone chaperone function.
Expanding research on screen-derived factors that modify type II transcriptional memory has the potential to enhance our understanding of HS memory in plants. Discovering connections between previously identified memory factors will help to elucidate the underlying network of HS memory. This knowledge can initiate new approaches to improve heat resilience in crops.
The increasing introduction of non-native plant species may pose a threat to local biodiversity. However, the basis of successful plant invasion is not conclusively understood, especially since these plant species can adapt to the new range within a short period of time despite impoverished genetic diversity of the starting populations. In this context, DNA methylation is considered promising to explain successful adaptation mechanisms in the new habitat. DNA methylation is a heritable variation in gene expression without changing the underlying genetic information. Thus, DNA methylation is considered a so-called epigenetic mechanism, but has been studied in mainly clonally reproducing plant species or genetic model plants. An understanding of this epigenetic mechanism in the context of non-native, predominantly sexually reproducing plant species might help to expand knowledge in biodiversity research on the interaction between plants and their habitats and, based on this, may enable more precise measures in conservation biology.
For my studies, I combined chemical DNA demethylation of field-collected seed material from predominantly sexually reproducing species and rearing offsping under common climatic conditions to examine DNA methylation in an ecological-evolutionary context. The contrast of chemically treated (demethylated) plants, whose variation in DNA methylation was artificially reduced, and untreated control plants of the same species allowed me to study the impact of this mechanism on adaptive trait differentiation and local adaptation. With this experimental background, I conducted three studies examining the effect of DNA methylation in non-native species along a climatic gradient and also between climatically divergent regions.
The first study focused on adaptive trait differentiation in two invasive perennial goldenrod species, Solidago canadensis sensu latu and S. gigantea AITON, along a climate gradient of more than 1000 km in length in Central Europe. I found population differences in flowering timing, plant height, and biomass in the temporally longer-established S. canadensis, but only in the number of regrowing shoots for S. gigantea. While S. canadensis did not show any population structure, I was able to identify three genetic groups along this climatic gradient in S. gigantea. Surprisingly, demethylated plants of both species showed no change in the majority of traits studied. In the subsequent second study, I focused on the longer-established goldenrod species S. canadensis and used molecular analyses to infer spatial epigenetic and genetic population differences in the same specimens from the previous study. I found weak genetic but no epigenetic spatial variation between populations. Additionally, I was able to identify one genetic marker and one epigenetic marker putatively susceptible to selection. However, the results of this study reconfirmed that the epigenetic mechanism of DNA methylation appears to be hardly involved in adaptive processes within the new range in S. canadensis.
Finally, I conducted a third study in which I reciprocally transplanted short-lived plant species between two climatically divergent regions in Germany to investigate local adaptation at the plant family level. For this purpose, I used four plant families (Amaranthaceae, Asteraceae, Plantaginaceae, Solanaceae) and here I additionally compared between non-native and native plant species. Seeds were transplanted to regions with a distance of more than 600 kilometers and had either a temperate-oceanic or a temperate-continental climate. In this study, some species were found to be maladapted to their own local conditions, both in non-native and native plant species alike. In demethylated individuals of the plant species studied, DNA methylation had inconsistent but species-specific effects on survival and biomass production. The results of this study highlight that DNA methylation did not make a substantial contribution to local adaptation in the non-native as well as native species studied.
In summary, my work showed that DNA methylation plays a negligible role in both adaptive trait variation along climatic gradients and local adaptation in non-native plant species that either exhibit a high degree of genetic variation or rely mainly on sexual reproduction with low clonal propagation. I was able to show that the adaptive success of these non-native plant species can hardly be explained by DNA methylation, but could be a possible consequence of multiple introductions, dispersal corridors and meta-population dynamics. Similarly, my results illustrate that the use of plant species that do not predominantly reproduce clonally and are not model plants is essential to characterize the effect size of epigenetic mechanisms in an ecological-evolutionary context.