Refine
Has Fulltext
- no (16) (remove)
Year of publication
- 2022 (16) (remove)
Document Type
- Doctoral Thesis (16) (remove)
Is part of the Bibliography
- yes (16)
Keywords
- Arabidopsis thaliana (2)
- APX2 (1)
- Annamites (1)
- Arabidopsis (1)
- Deakklimatisierung (1)
- Differenzielle Genexpression (1)
- Early Starvation 1 (1)
- Epigenetik (1)
- H3K9ac (1)
- HAC1 (1)
- HS transcriptional memory (1)
- HS-Transkriptionsgedächtnis (1)
- HSE (1)
- HSFA2 (1)
- Hypoxie (1)
- Koexpression Netzwerk Analysen (1)
- Kältestress (1)
- Neuroendocrine tumors (1)
- RNA-Sequenzierung (1)
- RNA-sequencing (1)
- Theranostic (1)
- Transkriptionsfaktoren (1)
- WGCNA (1)
- actin (1)
- animal (1)
- camera-trap (1)
- cell division (1)
- cell shape (1)
- cellulose biosynthesis inhibitor (1)
- cellulose synthesis (1)
- co-expression network analysis (1)
- cold stress (1)
- deacclimation (1)
- differential gene expression (1)
- epigenetics (1)
- gastric inhibitory polypeptide receptor (1)
- herbicide (1)
- hypoxia (1)
- morphogenesis (1)
- occupancy (1)
- phosphoglucan (1)
- plant cell wall (1)
- root growth (1)
- shoot apical meristem (1)
- starch granule surface (1)
- starch phosphorylation (1)
- targeted therapy (1)
- threatened (1)
- transcription factors (1)
Institute
- Institut für Biochemie und Biologie (16) (remove)
The morphogenesis of sessile plants is mainly driven by directional cell growth and cell division. The organization of their cytoskeleton and the mechanical properties of the cell wall greatly influence morphogenetic events in plants. It is well known that cortical microtubules (CMTs) contribute to directional growth by regulating the deposition of the cellulose microfibrils, as major cell wall fortifying elements. More recent findings demonstrate that mechanical stresses existing in cells and tissues influence microtubule organization. Also, in dividing cells, mechanical stress directions contribute to the orientation of the new cell wall. In comparison to the microtubule cytoskeleton, the role of the actin cytoskeleton in regulating shoot meristem morphogenesis has not been extensively studied.
This thesis focuses on the functional relevance of the actin cytoskeleton during cell and tissue scale morphogenesis in the shoot apical meristem (SAM) of Arabidopsis thaliana. Visualization of transcriptional reporters indicates that ACTIN2 and ACTIN7 are two highly expressed actin genes in the SAM. A link between the actin cytoskeleton and SAM development derives from the observation that the act2-1 act7-1 double mutant has abnormal cell shape and perturbed phyllotactic patterns. Live-cell imaging of the actin cytoskeleton further shows that its organization correlates with cell shape, which indicates a potential role of actin in influencing cellular morphogenesis.
In this thesis, a detailed characterization of the act2-1 act7-1 mutant reveals that perturbation of actin leads to more rectangular cellular geometries with more 90° cell internal angles, and higher incidences of four-way junctions (four cell boundaries intersecting together). This observation deviates from the conventional tricellular junctions found in epidermal cells. Quantitative cellular-level growth data indicates that such differences in the act2-1 act7-1 mutant arise due to the reduced accuracy in the placement of the new cell wall, as well as its mechanical maturation. Changes in cellular morphology observed in the act2-1 act7-1 mutant result in cell packing defects that subsequently compromise the flow of information among cells in the SAM.
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.
Receptors predominantly expressed on tumor cells represent one of the key prerequisites of targeted radiotherapy. The gastric inhibitory polypeptide receptor (GIPR) has emerged as a promising target due to its substantial overexpression in neuroendocrine neoplasms (NENs) and virtual absence in healthy tissues (Waser 2012). So far, only radiolabeled peptides targeting the somatostatin receptor 2 (SSTR2) are approved for targeted radiotherapy of inoperable, metastatic NENs.
The aim of this thesis was to develop highly affine GIPR tracers for targeted radiotherapy by continuous in vitro and in vivo characterization of peptide sequence modifications. It was hypothesized that a GIPR antagonist might increase the sensitivity to detect GIPR-positive tumors relative to the agonist GIP(1-30), as shown for SSTR2 tracers (Reubi 2017). Further comparison to the SSTR2 agonist and antagonist (DOTATATE, JR11) should allow compound ranking regarding their ability to detect NENs.
The novel GIPR-targeting antagonists were conjugated to DOTA, enabling complexation of diagnostic (e. g. 111In) and therapeutic radionuclides (e. g. 177Lu). Among the high number of compounds screened, 3BP-3775 proved to be the most promising candidate for further preclinical and clinical development. High GIPR affinity and long receptor residence time in vitro were reflected in strong tumor uptake and retention in vivo. Low initial kidney accumulation and fast subsequent clearance represented a major advantage relative to previously described GIPR-targeting molecules (Gourni 2014). Furthermore, administration of 177Lu-3BP-3775 demonstrated for the first time strong therapeutic efficacy of a GIPR-targeting compound. In vitro receptor autoradiography with 111In-3BP-3626 (GIPR antagonist) demonstrated up to 6-fold higher signals in gastroenteropancreatic and bronchial NENs, relative to the clinically utilized SSTR2 agonist 111In-DOTATATE. Both receptor antagonists, however, revealed similar signal strength. In contrast to 111In-JR11, 111In-3BP-3626 showed no binding to non-target tissues, which led to higher tumor-to-background ratios for 111In-3BP-3626. Signal strength of the GIPR agonist 111In-GIP(1-30) was close to background in all investigated tumor samples. The ranking of compounds according to their ability to detect NENs based on autoradiographic signal intensities was determined to be: 111In-3BP-3626 ~ 111In-JR11> 111In-DOTATATE > 111In GIP(1-30).
In summary, this thesis proposes the application of the GIPR antagonist 3BP-3775 for a targeted radiotherapy in GEP- and bronchial NENs.
Hitze ist eine bedeutende klimatische Bedingung, die das Wachstum und das Überleben von Pflanzen bedroht. Extreme Temperaturereignisse in der Natur werden gravierender, häufiger, länger anhaltend, was sich nachteilig auf die landwirtschaftliche Produktion auswirkt. Daher ist es wichtig, mehr über die Mechanismen zu erfahren, die zu einer erhöhten Hitzetoleranz bei Pflanzen führen. Um auszuhalten und zu überleben, haben höhere Pflanzen komplexe Mechanismen entwickelt, um auf verschiedene Intensitäten von Hitzestress zu reagieren. Pflanzen haben eine thermische Toleranz, die es ihnen ermöglicht, schnelle und dramatische Temperaturanstiege für eine begrenzte Zeit zu überleben. Pflanzen können auch darauf vorbereitet werden, Hitzestress (HS) zu widerstehen, der ansonsten tödlich wäre, indem man sie kurzen, moderaten und nicht-tödlichen HS (als Priming-Stimulus bezeichnet) aussetzt, bevor sie hohem HS ausgesetzt werden. Eine erworbene Thermotoleranz kann bei Pflanzen unter optimalen Bedingungen lange aufrechterhalten werden, was bedeutet, dass Pflanzen während dieser Zeit Informationen speichern können. Mehrere Studien haben gezeigt, dass sich erworbene Thermotoleranz (Thermopriming) auf die erhöhte Widerstandsfähigkeit von Zellen, Geweben und Organismen gegenüber erhöhten Temperaturen nach vorheriger Hitzeeinwirkung bezieht. Die Aufrechterhaltung der erworbenen Thermotoleranz (Thermomemory) ist mit der Synthese von speziellen Stressproteinen verbunden, die am Zellschutz und der beschleunigten Gewebereparatur beteiligt sind, wie z. B. Hitzeschockproteine (HSPs). Neuere Studien haben eine Beteiligung von Hitzeschockproteinen, z.B. HSP21, in Chloroplasten an der Regulation des Thermogedächtnisses belegt. Als wichtiges Organell ist die mitochondriale Funktion entscheidend für die Reaktion von Pflanzenzellen auf Hitze. Es ist jedoch noch unbekannt, wie die molekulare und physiologische Beteiligung von HSPs an der mitochondrialen Funktion im Thermogedächtnis erfolgt. In unserer Studie haben wir gezeigt, dass Thermopriming Transkript- und Proteinspiegel von zwei mitochondrialen kleinen Hitzeschockproteinen, HSP23.56 (AT5G51440) und HSP23.6 (AT4G25200), induziert, die während der Thermogedächtnisphase 2-3 Tage andauern. Die morphologische Analyse von HSP23.5/6-transgenen Pflanzen zeigte eine HSP23.5/6-Funktionsredundanz bei Hitzestress. Wir zeigten, dass hsp23.5/6-Doppel-Knockout-Pflanzen Anomalien im Thermogedächtnis im Keimlingsstadium aufwiesen und dass reife hsp23.5/6-Pflanzen sowohl mit basaler Thermotoleranz als auch mit Thermogedächtnis empfindlicher sind. Die Wärmebehandlung beeinflusste die Atmungsrate von hsp23.5/6-Keimlingen im Vergleich zu WT signifikant, was auf eine mitochondriale Dysfunktion in Abhängigkeit von HSP23.5 und HSP23.6 hinweist. Darüber hinaus haben wir die Chaperon-Aktivität von HSP23.6 gegenüber dem Modellsubstratprotein Malatdehydrogenase (MDH) in vitro getestet und bestätigt, was darauf hindeutet, dass HSP23.6 möglicherweise zur Aufrechterhaltung der zellulären Lebensfähigkeit beiträgt. Darüber hinaus entdeckten wir ein neues HSP23.6-Clientprotein, CIB22, ein mitochondriales Komplex-I-Untereinheitsprotein. Nach experimentellen Daten (BiFC und Co-IP) interagieren HSP23.6 und CIB22 in Pflanzenzellen. Wir identifizierten auch einen Hitzereaktionsphänotyp in der cib22-Mutante im Vergleich zu WT sowie einen CIB22-Proteinabbau in der hsp23.5/6-Mutante, wenn sie Hitze ausgesetzt wurde. Unsere Ergebnisse legen nahe, dass die beiden mitochondrial lokalisierten
Hitzeschockproteine eine Rolle bei der Thermotoleranz spielen, vermutlich indem sie die mitochondriale Funktion und Struktur beeinflussen. Um neue genetische Komponenten zu identifizieren, die mit dem Thermogedächtnis in Pflanzen verbunden sind, haben wir weiterhin ein Proteom-Profiling von Arabidopsis WT (Col-0) -Keimlingen während des Thermogedächtnisses durchgeführt. Mehrere Zeitpunkte von Priming und Triggerung mit Kontrollen wurden gesammelt und analysiert, um dynamische Proteomänderungen während der Gedächtnisphase in
Arabidopsis-Zellen aufzudecken. Unter den Top-gedächtnis-assoziierten Proteinen entdeckten wir, dass HSP70-4 nach dem Priming signifikant hochreguliert wurde und für die nächsten vier Tage auf hohem Niveau bleibt (mindestens 2-fach erhöht). Durch Analyse ihres Hitzestressverhaltens konnten wir verifizieren, dass HSP70-4 an der 7 Reaktion von Pflanzen auf Hitzestress beteiligt ist. Interessant ist, dass HSP70-4-GFP nach dem Priming zytosolische Foci erzeugt, die für einige Tage während der Erholungsphase bestehen bleiben. Wir schlagen vor, dass der Fokus mit SGs verbunden ist, da Cycloheximid (CHX) GFP-Foci-Signale unterdrückt, wenn sie der Hitze ausgesetzt werden. Diese Ergebnisse weisen auf eine HSP70-4-vermittelte Transkriptions- und Translationssteuerungsverbindung (Modul) während der basalen Thermotoleranz und des Thermogedächtnisses sowie auf ihre potenzielle(n) Rolle(n) bei der Reaktion auf Hitzestress hin.
Zusammenfassend bietet unsere Forschung neue Einblicke in die Rolle von Hitzeschockproteinen bei der Kontrolle der Hitzestresstoleranz und des Gedächtnisses.
Heat stress (HS) is one of the most common abiotic stresses, frequently affecting plant growth and crop production. With its fluctuating nature, HS episodes are frequently interspersed by stress-free intervals. Plants can be primed by HS, allowing them to survive better a recurrent stress episode. A memory of this priming can be maintained during stress-free intervals and this memory is closely correlated with transcriptional memory at several HS-inducible loci. This transcriptional memory is evident from hyper-induction of a locus upon a recurrent HS. ASCORBATE PEROXIDASE 2 (APX2) shows such hyper-induction upon recurring HS, however, the molecular basis of this transcriptional memory is not understood. Previous research showed that the HSinduced transcriptional memory at APX2 can last for up to seven days, and that it is controlled by cis-regulatory elements within the APX2 promoter.
To identify regulators involved in HS transcriptional memory, an unbiased forward genetic screening using EMS mutated seeds of pAPX2::LUC was performed from this screen. Two EMS mutants with affected transcriptional memory of LUC were identified. I confirmed that both two EMS mutants resulted from the gene mutations of HISTONE ACETYLTRANSFERASE 1 (HAC1). Besides pAPX2::LUC, the HS-induced transcription of other HS memory genes were also affected in hac1 mutants. Moreover, HAC1 may promote HS transcriptional memory by acetylating promoters of HS memory genes.
On the other hand, to identify cis-regulatory elements that are required for transcriptional memory of APX2, I performed promoter analysis of the four conserved HSEs identified within a functional APX2 promoter. I found out that one of the HSEs (HSE1) is necessary for both HS-induced APX2 transcription and transcriptional memory, while another one of HSEs (HSE2) is important for HS-induced APX2 transcriptional memory. I also found out that the HSE1 itself (with 10 bp of flanking sequence) is sufficient to confer HS-induced APX2 transcriptional memory, and HSE1 is also necessary for HSFA2 to bind on APX2 promoter and activate APX2 transcription. The findings will provide important clues for the molecular mechanism of transcriptional memory and will enable engineering of enhanced stress tolerance in crops.