TY - JOUR A1 - Schwarte, Sandra A1 - Tiedemann, Ralph T1 - A Gene Duplication/Loss Event in the Ribulose-1,5-Bisphosphate-Carboxylase/Oxygenase (Rubisco) Small Subunit Gene Family among Accessions of Arabidopsis thaliana JF - Molecular biology and evolution N2 - Rubisco (ribulose-1,5-bisphosphate carboxylase/oxygenase; EC 4.1.1.39), the most abundant protein in nature, catalyzes the assimilation of CO(2) (worldwide about 10(11) t each year) by carboxylation of ribulose-1,5-bisphosphate. It is a hexadecamer consisting of eight large and eight small subunits. Although the Rubisco large subunit (rbcL) is encoded by a single gene on the multicopy chloroplast genome, the Rubisco small subunits (rbcS) are encoded by a family of nuclear genes. In Arabidopsis thaliana, the rbcS gene family comprises four members, that is, rbcS-1a, rbcS-1b, rbcS-2b, and rbcS-3b. We sequenced all Rubisco genes in 26 worldwide distributed A. thaliana accessions. In three of these accessions, we detected a gene duplication/loss event, where rbcS-1b was lost and substituted by a duplicate of rbcS-2b (called rbcS-2b*). By screening 74 additional accessions using a specific polymerase chain reaction assay, we detected five additional accessions with this duplication/loss event. In summary, we found the gene duplication/loss in 8 of 100 A. thaliana accessions, namely, Bch, Bu, Bur, Cvi, Fei, Lm, Sha, and Sorbo. We sequenced an about 1-kb promoter region for all Rubisco genes as well. This analysis revealed that the gene duplication/loss event was associated with promoter alterations (two insertions of 450 and 850 bp, one deletion of 730 bp) in rbcS-2b and a promoter deletion (2.3 kb) in rbcS-2b* in all eight affected accessions. The substitution of rbcS-1b by a duplicate of rbcS-2b (i.e., rbcS-2b*) might be caused by gene conversion. All four Rubisco genes evolve under purifying selection, as expected for central genes of the highly conserved photosystem of green plants. We inferred a single positive selected site, a tyrosine to aspartic acid substitution at position 72 in rbcS-1b. Exactly the same substitution compromises carboxylase activity in the cyanobacterium Anacystis nidulans. In A. thaliana, this substitution is associated with an inferred recombination. Functional implications of the substitution remain to be evaluated. KW - Arabidopsis thaliana KW - Arabidopsis lyrata KW - Rubisco KW - gene duplication KW - positive selection Y1 - 2011 U6 - https://doi.org/10.1093/molbev/msr008 SN - 0737-4038 VL - 28 IS - 6 SP - 1861 EP - 1876 PB - Oxford Univ. Press CY - Oxford ER - TY - JOUR A1 - Omidbakhshfard, Mohammad Amin A1 - Winck, Flavia Vischi A1 - Arvidsson, Samuel Janne A1 - Riano-Pachon, Diego M. A1 - Müller-Röber, Bernd T1 - A step-by-step protocol for formaldehyde-assisted isolation of regulatory elements from Arabidopsis thaliana JF - Journal of integrative plant biology N2 - The control of gene expression by transcriptional regulators and other types of functionally relevant DNA transactions such as chromatin remodeling and replication underlie a vast spectrum of biological processes in all organisms. DNA transactions require the controlled interaction of proteins with DNA sequence motifs which are often located in nucleosome-depleted regions (NDRs) of the chromatin. Formaldehyde-assisted isolation of regulatory elements (FAIRE) has been established as an easy-to-implement method for the isolation of NDRs from a number of eukaryotic organisms, and it has been successfully employed for the discovery of new regulatory segments in genomic DNA from, for example, yeast, Drosophila, and humans. Until today, however, FAIRE has only rarely been employed in plant research and currently no detailed FAIRE protocol for plants has been published. Here, we provide a step-by-step FAIRE protocol for NDR discovery in Arabidopsis thaliana. We demonstrate that NDRs isolated from plant chromatin are readily amenable to quantitative polymerase chain reaction and next-generation sequencing. Only minor modification of the FAIRE protocol will be needed to adapt it to other plants, thus facilitating the global inventory of regulatory regions across species. KW - Arabidopsis thaliana KW - chromatin KW - cis-regulatory elements KW - epigenomics KW - FAIRE-qPCR KW - FAIRE-seq KW - gene expression KW - gene regulatory network KW - transcription factor Y1 - 2014 U6 - https://doi.org/10.1111/jipb.12151 SN - 1672-9072 SN - 1744-7909 VL - 56 IS - 6 SP - 527 EP - 538 PB - Wiley-Blackwell CY - Hoboken ER - TY - JOUR A1 - Nguyen, Hung M. A1 - Schippers, Jos H. M. A1 - Goni-Ramos, Oscar A1 - Christoph, Mathias P. A1 - Dortay, Hakan A1 - van der Hoorn, Renier A. L. A1 - Müller-Röber, Bernd T1 - An upstream regulator of the 26S proteasome modulates organ size in Arabidopsis thaliana JF - The plant journal N2 - In both animal and plant kingdoms, body size is a fundamental but still poorly understood attribute of biological systems. Here we report that the Arabidopsis NAC transcription factor Regulator of Proteasomal Gene Expression' (RPX) controls leaf size by positively modulating proteasome activity. We further show that the cis-element recognized by RPX is evolutionarily conserved between higher plant species. Upon over-expression of RPX, plants exhibit reduced growth, which may be reversed by a low concentration of the pharmacological proteasome inhibitor MG132. These data suggest that the rate of protein turnover during growth is a critical parameter for determining final organ size. KW - Arabidopsis thaliana KW - organ size KW - evolution KW - leaf development KW - proteasome KW - gene regulatory network Y1 - 2013 U6 - https://doi.org/10.1111/tpj.12097 SN - 0960-7412 VL - 74 IS - 1 SP - 25 EP - 36 PB - Wiley-Blackwell CY - Hoboken ER - TY - THES A1 - Apriyanto, Ardha T1 - Analysis of starch metabolism in source and sink tissue of plants T1 - Analyse des Stärkestoffwechsels im Source und Sink Gewebe von Pflanzen N2 - Starch is an essential biopolymer produced by plants. Starch can be made inside source tissue (such as leaves) and sink tissue (such as fruits and tubers). Nevertheless, understanding how starch metabolism is regulated in source and sink tissues is fundamental for improving crop production. Despite recent advances in the understanding of starch and its metabolism, there is still a knowledge gap in the source and sink metabolism. Therefore, this study aimed to summarize the state of the art regarding starch structure and metabolism inside plants. In addition, this study aimed to elucidate the regulation of starch metabolism in the source tissue using the leaves of a model organism, Arabidopsis thaliana, and the sink tissue of oil palm (Elaeis guineensis) fruit as a commercial crop. The research regarding the source tissue will focus on the effect of the blockage of starch degradation on the starch parameter in leaves, especially in those of A. thaliana, which lack both disproportionating enzyme 2 (DPE2) and plastidial glucan phosphorylase 1 (PHS1) (dpe2/phs1). The additional elimination of phosphoglucan water dikinase (PWD), starch excess 4 (SEX4), isoamylase 3 (ISA3), and disproportionating enzyme 1 (DPE1) in the dpe2/phs1 mutant background demonstrates the alteration of starch granule number per chloroplast. This study provides insights into the control mechanism of granule number regulation in the chloroplast. The research regarding the sink tissue will emphasize the relationship between starch metabolism and the lipid metabolism pathway in oil palm fruits. This study was conducted to observe the alteration of starch parameters, metabolite abundance, and gene expression during oil palm fruit development with different oil yields. This study shows that starch and sucrose can be used as biomarkers for oil yield in oil palms. In addition, it is revealed that the enzyme isoforms related to starch metabolism influence the oil production in oil palm fruit. Overall, this thesis presents novel information regarding starch metabolism in the source tissue of A.thaliana and the sink tissue of E.guineensis. The results shown in this thesis can be applied to many applications, such as modifying the starch parameter in other plants for specific needs. N2 - Stärke ist ein unverzichtbares Biopolymer, das von Pflanzen sowohl in den Quellgeweben (sources, z. B. Blätter) als auch in den Senkengeweben (sinks, z. B. Früchten und Knollen) gebildet wird. Daher ist ein profundes Wissen über die Regulation des Stärkestoffwechsel in den source und sink Organen von grundlegender Bedeutung für die Verbesserung der Pflanzenproduktion. Trotz der jüngsten Fortschritte im Verständnis des Stärkestoffwechsels bleiben weiterhin viele Fragen über den detaillierten source und sink Metabolismus offen. Ziel dieser Studie war es daher, den aktuellen Forschungsstand über die Struktur und den Stoffwechsel von Stärke in Pflanzen aufzuzeigen. Darüber hinaus sollte in dieser Studie die Regulierung des Stärkestoffwechsels in den Blättern (source) des Modellorganismus Arabidopsis thaliana und in den Ölpalmfrüchten (sink) von Elaeis guineensis, einer Nutzpflanze, aufgeklärt werden. Die Analyse des source Gewebes konzentrierte sich dabei auf die Auswirkungen auf Stärkeparamter wie beispielsweise die Granulazahl durch die Blockierung des Stärkeabbaus in Blättern. Dazu wurde die Arabidopsis Mutante, der das cytosolische Disproportionating Enzym 2 (DPE2) und die plastidiale Glucanphosphorylase 1 (PHS1) fehlen (dpe2/phs1), untersucht. Ebenfalls wurden Dreifachmutanten im Hintergund von dpe2/phs1, denen Starch excess 4 (SEX4), Isoamylase 3, Phosphoglucan-Wasser-Dikinase (PWD) oder das Disproportionating Enzym 1 (DPE1) fehlen, erzeugt. Die Analyse zeigt, dass die Anzahl der Stärkegranula pro Chloroplast nicht festgelegt ist und während des gesamten Wachstums der Pflanze reguliert wird. Diese Daten liefern ein verbessertes Verständnis über die Komplexität der Kontrollmechanismen der Granulazahlregulation in Chloroplasten. Die Untersuchung des sink Gewebes soll die Beziehung zwischen dem Stärkestoffwechsel und dem Lipidstoffwechselweg in Ölpalmenfrüchten verdeutlichen. Diese Studie wurde durchgeführt, um die Veränderung von Stärkeparametern, die Häufigkeit von Metaboliten und die Genexpression während der Entwicklung von Ölpalmenfrüchten mit unterschiedlichen Ölausbeuten zu erforschen. Die Analyse zeigt, dass sowohl Stärke als auch Saccharose als reliable Biomarker für den Ölertrag von Ölpalmen verwendet werden können. Darüber hinaus konnte bewiesen werden, dass die mit dem Stärkestoffwechsel verbundenen Enzymisoformen die Ölproduktion in Ölpalmenfrüchten beeinflussen. Insgesamt liefert diese Arbeit neue Informationen über den Stärkestoffwechsel im source Gewebe von A.thaliana und im sink von E.guineensis. Die in dieser Arbeit gezeigten Ergebnisse können für viele Anwendungen genutzt werden, z. B. für die Veränderung der Stärkeparameter in anderen Pflanzen für spezifische Bedürfnisse. KW - starch KW - oil palm KW - Arabidopsis thaliana KW - source and sink KW - Arabidopsis thaliana KW - Palmöl KW - Source und Sink KW - Stärke Y1 - 2023 ER - TY - THES A1 - Bielecka, Monika T1 - Analysis of transcription factors under sulphur deficiency stress T1 - Analyse von Transkriptionsfaktoren unter Schwefelstress N2 - Sulphur, a macronutrient essential for plant growth, is among the most versatile elements in living organisms. Unfortunately, little is known about regulation of sulphate uptake and assimilation by plants. Identification of sulphate signalling processes will allow to control sulphate acquisition and assimilation and may prove useful in the future to improve sulphur-use efficiency in agriculture. Many of genes involved in sulphate metabolism are regulated on transcriptional level by products of other genes called transcription factors (TF). Several published experiments revealed TF genes that respond to sulphate deprivation, but none of these have been so far been characterized functionally. Thus, we aimed at identifying and characterising transcription factors that control sulphate metabolism in the model plant Arabidopsis thaliana. To achieve that goal we postulated that factors regulating Arabidopsis responses to inorganic sulphate deficiency change their transcriptional levels under sulphur-limited conditions. By comparing TF transcript profiles from plants grown on different sulphate regimes, we identified TF genes that may specifically induce or repress changes in expression of genes that allow plants to adapt to changes in sulphate availability. Candidate genes obtained from this screening were tested by reverse genetics approaches. Transgenic plants constitutively overproducing selected TF genes and mutant plants, lacking functional selected TF genes (knock out), were used. By comparing metabolite and transcript profiles from transgenic and wild type plants we aimed at confirming the role of selected AP2 TF candidate genes in plant adaptation to sulphur unavailability. After preliminary characterisation of WRKY24 and MYB93 TF genes, we postulate that these factors are involved in a complex multifactorial regulatory network, in which WRKY24 and MYB93 would act as superior factors regulating other transcription factors directly involved in the regulation of S-metabolism genes. Results obtained for plants overproducing TOE1 and TOE2 TF genes suggests that these factors may be involved in a mechanism, which is promoting synthesis of an essential amino acid, methionine, over synthesis of another amino acid, cysteine. Thus, TOE1 and TOE2 genes might be a part of transcriptional regulation of methionine synthesis. Approaches creating genetically manipulated plants may produce plant phenotypes of immediate biotechnological interest, such as plants with increased sulphate or sulphate-containing amino acid content, or better adapted to the sulphate unavailability. N2 - Der fuer das Pflanzenwachstum essentielle Makro-Naehrstoff Schwefel gehoert zu den vielseitigsten Elementen in lebenden Organismen. Ungluecklicherweise ist nur wenig ueber die Regulation der Schwefel Aufnahme und Assimilation von Pflanzen bekannt. Die Identifizierung von Schwefel Signalweiterleitungsprozessen wird es erlauben, die Aufnahme und Assimilation von Schwefel zu kontrollieren und koennte sich in der Zukunft als nuetzlich erweisen, die Effizienz der Schwefel Nutzung in der Landwirtschaft zu verbessern. Viele Gene, die am Schwefel Metabolismus beteiligt sind, werden auf Transkriptionsebene durch die Produkte anderer Gene, sogenannter Transkriptionsfaktoren (TF), reguliert. Mehrere veroeffentlichte Versuche beschreiben TF Gene, die auf Schwefel Mangel reagieren, es wurde jedoch bisher keines dieser Gene funktionell charakterisiert. Daher war es unser Ziel die TF, die den Schwefel Metabolismus in der Modellpflanze Arabidopsis thaliana kontrollieren, zu identifizieren und charakterisieren. Um dies zu erreichen postulierten wir, dass die Faktoren, die die Reaktion von Arabidopsis auf den Mangel an anorganischem Schwefel regulieren, das Mass ihrer Transkription unter Schwefelmangel aendern. Durch den Vergleich von TF Transkriptionsprofilen von Pflanzen, die unter verschiedenen Schwefelbedingungen aufgezogen wurden, identifizierten wir TF Gene, die moeglicherweise spezifisch Aenderungen in der Expression von Genen, die den Pflanzen erlauben sich an Aenderungen der Schwefel Verfuegbarkeit anzupassen, induzieren oder reprimieren. Die bei dieser Untersuchung erhaltenen Kandidaten Gene wurden in einen „reverse genetics“ Ansatz getestet. Es wurden transgene Pflanzen, die ausgewaehlte TF Gene konstitutiv ueberproduzieren, und Mutanten, denen ausgewaehlte funktionierende TF Gene fehlen („knock out“), benutzt. Durch den Vergleich von Metabolisten und Transkript Profilen transgener und wildtyp Pflanzen zielten wir auf die Bestaetigung der Rolle ausgewaehlter AP2 TF Kandidaten Gene bei der Anpassung an Schwefel Unverfuegbarkeit ab. Nach vorlaeufiger Charakterisierung von WRKY24 und MYB93 TF Genen postulieren wir, dass diese Faktoren an einem komplexen multifaktoriellen Regulationsnetzwerk beteiligt sind, in dem WRKY24 und MYB93 als uebergeordnete Faktoren agieren und andere TF regulieren, die direkt an der Regulation von Schwefel Metabolismus Genen beteiligt sind. Ergebnisse von Untersuchungen an Pflanzen, die TOE1 und TOE2 TF Gene ueberproduzieren deuten darauf hin, dass diese Faktoren an einem Mechanismus beteiligt sein koennten, der die Synthese einer essentiellen Aminosaeure, Methionin, zu Ungunsten der Synthese einer anderen Aminosaeure, Cystein, foerdert. Daher koennten TOE1 und TOE2 Gene Teil der transkriptionellen Regulation der Methionin Synthese sein. Die Herstellung genetisch manipulierter Pflanzen koennte Pflanzenphaenotypen erzeugen, die von sofortigem biotechnologischen Interesse sind, beispielsweise Pflanzen mit erhoehtem Gehalt an Schwefel oder schwefelhaltigen Aminosaeuren, oder Pflanzen, die besser an Schwefel Unverfuegbarkeit angepasst sind. KW - Schwefel KW - Transkriptionsfaktoren KW - Arabidopsis thaliana KW - sulphur KW - transcription factors KW - Arabidopsis thaliana Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-14812 ER - TY - JOUR A1 - Czesnick, Hjördis A1 - Lenhard, Michael T1 - Antagonistic control of flowering time by functionally specialized poly(A) polymerases in Arabidopsis thaliana JF - The plant journal N2 - Polyadenylation is a critical 3-end processing step during maturation of pre-mRNAs, and the length of the poly(A) tail affects mRNA stability, nuclear export and translation efficiency. The Arabidopsis thaliana genome encodes three canonical nuclear poly(A) polymerase (PAPS) isoforms fulfilling specialized functions, as reflected by their different mutant phenotypes. While PAPS1 affects several processes, such as the immune response, organ growth and male gametophyte development, the roles of PAPS2 and PAPS4 are largely unknown. Here we demonstrate that PAPS2 and PAPS4 promote flowering in a partially redundant manner. The enzymes act antagonistically to PAPS1, which delays the transition to flowering. The opposite flowering-time phenotypes in paps1 and paps2 paps4 mutants are at least partly due to decreased or increased FLC activity, respectively. In contrast to paps2 paps4 mutants, plants with increased PAPS4 activity flower earlier than the wild-type, concomitant with reduced FLC expression. Double mutant analyses suggest that PAPS2 and PAPS4 act independently of the autonomous pathway components FCA, FY and CstF64. The direct polyadenylation targets of the three PAPS isoforms that mediate their effects on flowering time do not include FLC sense mRNA and remain to be identified. Thus, our results uncover a role for canonical PAPS isoforms in flowering-time control, raising the possibility that modulating the balance of the isoform activities could be used to fine tune the transition to flowering. Significance Statement The length of the poly(A) tail affects mRNA stability, nuclear export and translation efficiency. Arabidopsis has three isoforms of nuclear poly(A) polymerase (PAPS): PAPS1 plays a major role in organ growth and plant defence. Here we show that PAPS2 and PAPS4 redundantly promote flowering and act antagonistically to PAPS1, which delays flowering. We suggest that modulating the activity of these isoforms fine-tunes the transition to flowering. KW - polyadenylation KW - 3-end processing KW - poly(A) polymerase KW - flowering time KW - autonomous pathway KW - Arabidopsis thaliana Y1 - 2016 U6 - https://doi.org/10.1111/tpj.13280 SN - 0960-7412 SN - 1365-313X VL - 88 SP - 570 EP - 583 PB - Wiley-Blackwell CY - Hoboken ER - TY - JOUR A1 - Sakuraba, Yasuhito A1 - Bülbül, Selin A1 - Piao, Weilan A1 - Choi, Giltsu A1 - Paek, Nam-Chon T1 - Arabidopsis EARLY FLOWERING3 increases salt tolerance by suppressing salt stress response pathways JF - The plant journal KW - Arabidopsis thaliana KW - salt stress response KW - EARLY FLOWERING3 (ELF3) KW - reactive oxygen species KW - PHYTOCHROME INTERACTING FACTOR4 (PIF4) KW - JUNGBRUNNEN1 (JUB1/ANAC042) KW - ORESARA1 (ORE1/ANAC092) KW - SAG29 Y1 - 2017 U6 - https://doi.org/10.1111/tpj.13747 SN - 0960-7412 SN - 1365-313X VL - 92 SP - 1106 EP - 1120 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Bäurle, Isabel A1 - Brzezinka, Krzysztof A1 - Altmann, Simone T1 - BRUSHY1/TONSOKU/MGOUN3 is required for heat stress memory JF - Plant Cell & Environment N2 - Plants encounter biotic and abiotic stresses many times during their life cycle and this limits their productivity. Moderate heat stress (HS) primes a plant to survive higher temperatures that are lethal in the naïve state. Once temperature stress subsides, the memory of the priming event is actively retained for several days preparing the plant to better cope with recurring HS. Recently, chromatin regulation at different levels has been implicated in HS memory. Here, we report that the chromatin protein BRUSHY1 (BRU1)/TONSOKU/MGOUN3 plays a role in the HS memory in Arabidopsis thaliana. BRU1 is also involved in transcriptional gene silencing and DNA damage repair. This corresponds with the functions of its mammalian orthologue TONSOKU‐LIKE/NFΚBIL2. During HS memory, BRU1 is required to maintain sustained induction of HS memory‐associated genes, whereas it is dispensable for the acquisition of thermotolerance. In summary, we report that BRU1 is required for HS memory in A. thaliana, and propose a model where BRU1 mediates the epigenetic inheritance of chromatin states across DNA replication and cell division. KW - Arabidopsis thaliana KW - BRUSHY1 KW - chromatin KW - priming Y1 - 2019 U6 - https://doi.org/10.1111/pce.13365 VL - 42 SP - 771 EP - 781 ER - TY - JOUR A1 - Muntaha, Sidratul Nur A1 - Li, Xiaoping A1 - Compart, Julia A1 - Apriyanto, Ardha A1 - Fettke, Jörg T1 - Carbon pathways during transitory starch degradation in Arabidopsis differentially affect the starch granule number and morphology in the dpe2/phs1 mutant background JF - Plant physiology and biochemistry : an official journal of the Federation of European Societies of Plant Physiology N2 - The Arabidopsis knockout mutant lacking both the cytosolic disproportionating enzyme 2 (DPE2) and the plastidial phosphorylase (PHS1) had a dwarf-growth phenotype, a reduced and uneven distribution of starch within the plant rosettes, and a lower starch granule number per chloroplast under standard growth conditions. In contrast, a triple mutant impaired in starch degradation by its additional lack of the glucan, water dikinase (GWD) showed improved plant growth, a starch-excess phenotype, and a homogeneous starch distribution. Furthermore, the number of starch granules per chloroplast was increased and was similar to the wild type. We concluded that ongoing starch degradation is mainly responsible for the observed phenotype of dpe2/phs1. Next, we generated two further triple mutants lacking either the phosphoglucan, water dikinase (PWD), or the disproportionating enzyme 1 (DPE1) in the background of the double mutant. Analysis of the starch metabolism revealed that even minor ongoing starch degradation observed in dpe2/phs1/pwd maintained the double mutant phenotype. In contrast, an additional blockage in the glucose pathway of starch breakdown, as in dpe2/phs1/ dpe1, resulted in a nearly starch-free phenotype and massive chloroplast degradation. The characterized mutants were discussed in the context of starch granule formation. KW - Starch granules KW - Starch metabolism KW - Starch granule number per KW - chloroplast KW - Starch morphology KW - LCSM KW - Arabidopsis thaliana Y1 - 2022 U6 - https://doi.org/10.1016/j.plaphy.2022.03.033 SN - 0981-9428 SN - 1873-2690 VL - 180 SP - 35 EP - 41 PB - Elsevier CY - Paris ER - TY - JOUR A1 - Christian, Jan-Ole A1 - Braginets, Rostyslav A1 - Schulze, Waltraud X. A1 - Walther, Dirk T1 - Characterization and prediction of protein phosphorylation hotspots in Arabidopsis thaliana JF - Frontiers in plant science N2 - The regulation of protein function by modulating the surface charge status via sequence-locally enriched phosphorylation sites (P-sites) in so called phosphorylation "hotspots" has gained increased attention in recent years. We set out to identify P-hotspots in the model plant Arabidopsis thaliana. We analyzed the spacing of experimentally detected P-sites within peptide-covered regions along Arabidopsis protein sequences as available from the PhosPhAt database. Confirming earlier reports (Schweiger and Lanial, 2010), we found that, indeed, P-sites tend to cluster and that distributions between serine and threonine P-sites to their respected closest next P-site differ significantly from those for tyrosine P-sites. The ability to predict P-hotspots by applying available computational P-site prediction programs that focus on identifying single P-sites was observed to be severely compromised by the inevitable interference of nearby P-sites. We devised a new approach, named HotSPotter, for the prediction of phosphorylation hotspots. HotSPotter is based primarily on local amino acid compositional preferences rather than sequence position-specific motifs and uses support vector machines as the underlying classification engine. HotSPotter correctly identified experimentally determined phosphorylation hotspots in A. thaliana with high accuracy. Applied to the Arabidopsis proteome, HotSPotter-predicted 13,677 candidate P-hotspots in 9,599 proteins corresponding to 7,847 unique genes. Hotspot containing proteins are involved predominantly in signaling processes confirming the surmised modulating role of hotspots in signaling and interaction events. Our study provides new bioinformatics means to identify phosphorylation hotspots and lays the basis for further investigating novel candidate P-hotspots. All phosphorylation hotspot annotations and predictions have been made available as part of the PhosPhAt database at http://phosphat.mpimp-golm.mpg.de. KW - protein phosphorylation KW - hotspots KW - Arabidopsis thaliana KW - support vector machines KW - regulation Y1 - 2012 U6 - https://doi.org/10.3389/fpls.2012.00207 SN - 1664-462X VL - 3 PB - Frontiers Research Foundation CY - Lausanne ER - TY - JOUR A1 - Küken, Anika A1 - Gennermann, Kristin A1 - Nikoloski, Zoran T1 - Characterization of maximal enzyme catalytic rates in central metabolism of Arabidopsis thaliana JF - The plant journal N2 - Availability of plant-specific enzyme kinetic data is scarce, limiting the predictive power of metabolic models and precluding identification of genetic factors of enzyme properties. Enzyme kinetic data are measuredin vitro, often under non-physiological conditions, and conclusions elicited from modeling warrant caution. Here we estimate maximalin vivocatalytic rates for 168 plant enzymes, including photosystems I and II, cytochrome-b6f complex, ATP-citrate synthase, sucrose-phosphate synthase as well as enzymes from amino acid synthesis with previously undocumented enzyme kinetic data in BRENDA. The estimations are obtained by integrating condition-specific quantitative proteomics data, maximal rates of selected enzymes, growth measurements fromArabidopsis thalianarosette with and fluxes through canonical pathways in a constraint-based model of leaf metabolism. In comparison to findings inEscherichia coli, we demonstrate weaker concordance between the plant-specificin vitroandin vivoenzyme catalytic rates due to a low degree of enzyme saturation. This is supported by the finding that concentrations of nicotinamide adenine dinucleotide (phosphate), adenosine triphosphate and uridine triphosphate, calculated based on our maximalin vivocatalytic rates, and available quantitative metabolomics data are below reportedKMvalues and, therefore, indicate undersaturation of respective enzymes. Our findings show that genome-wide profiling of enzyme kinetic properties is feasible in plants, paving the way for understanding resource allocation. KW - Arabidopsis thaliana KW - constraint-based modeling KW - enzyme catalytic rates KW - kinetic parameter KW - metabolic network KW - turnover number Y1 - 2020 U6 - https://doi.org/10.1111/tpj.14890 SN - 0960-7412 SN - 1365-313X VL - 103 IS - 6 SP - 2168 EP - 2177 PB - Wiley CY - Oxford ER - TY - JOUR A1 - Benina, Maria A1 - Obata, Toshihiro A1 - Mehterov, Nikolay A1 - Ivanov, Ivan A1 - Petrov, Veselin A1 - Toneva, Valentina A1 - Fernie, Alisdair R. A1 - Gechev, Tsanko S. T1 - Comparative metabolic profiling of Haberlea rhodopensis, Thellungiella halophyla, and Arabidopsis thaliana exposed to low temperature JF - Frontiers in plant science N2 - Haberlea rhodopensis is a resurrection species with extreme resistance to drought stress and desiccation but also with ability to withstand low temperatures and freezing stress. In order to identify biochemical strategies which contribute to Haberlea's remarkable stress tolerance, the metabolic reconfiguration of H. rhodopensis during low temperature (4 degrees C) and subsequent return to optimal temperatures (21 degrees C) was investigated and compared with that of the stress tolerant Thellungiella halophyla and the stress sensitive Arabidopsis thaliana. Metabolic analysis by GC-MS revealed intrinsic differences in the metabolite levels of the three species even at 21 degrees C. H. rhodopensis had significantly more raffinose, melibiose, trehalose, rhamnose, myo-inositol, sorbitol, galactinol, erythronate, threonate, 2-oxoglutarate, citrate, and glycerol than the other two species. A. thaliana had the highest levels of putrescine and fumarate, while T halophila had much higher levels of several amino acids, including alanine, asparagine, beta-alanine, histidine, isoleucine, phenylalanine, serine, threonine, and valine. In addition, the three species responded differently to the low temperature treatment and the subsequent recovery, especially with regard to the sugar metabolism. Chilling induced accumulation of maltose in H. rhodopensis and raffinose in A. thaliana but the raffinose levels in low temperature exposed Arabidopsis were still much lower than these in unstressed Haberlea. While all species accumulated sucrose during chilling, that accumulation was transient in H. rhodopensis and A. thaliana but sustained in T halophila after the return to optimal temperature. Thus, Haberlea's metabolome appeared primed for chilling stress but the low temperature acclimation induced additional stress-protective mechanisms. A diverse array of sugars, organic acids, and polyols constitute Haberlea's main metabolic defence mechanisms against chilling, while accumulation of amino acids and amino acid derivatives contribute to the low temperature acclimation in Arabidopsis and Thellungiella. Collectively, these results show inherent differences in the metabolomes under the ambient temperature and the strategies to respond to low temperature in the three species. KW - Arabidopsis thaliana KW - Haberlea rhodopensis KW - low temperature stress KW - metabolite profiling KW - Thellungiella halophila Y1 - 2013 U6 - https://doi.org/10.3389/fpls.2013.00499 SN - 1664-462X VL - 4 IS - 1 PB - Frontiers Research Foundation CY - Lausanne ER - TY - JOUR A1 - Liu, Hsiang-chin A1 - Lämke, Jörn A1 - Lin, Siou-ying A1 - Hung, Meng-Ju A1 - Liu, Kuan-Ming A1 - Charng, Yee-yung A1 - Bäurle, Isabel T1 - Distinct heat shock factors and chromatin modifications mediate the organ-autonomous transcriptional memory of heat stress JF - The plant journal N2 - Plants can be primed by a stress cue to mount a faster or stronger activation of defense mechanisms upon subsequent stress. A crucial component of such stress priming is the modified reactivation of genes upon recurring stress; however, the underlying mechanisms of this are poorly understood. Here, we report that dozens of Arabidopsis thaliana genes display transcriptional memory, i.e. stronger upregulation after a recurring heat stress, that lasts for at least 3 days. We define a set of transcription factors involved in this memory response and show that the transcriptional memory results in enhanced transcriptional activation within minutes of the onset of a heat stress cue. Further, we show that the transcriptional memory is active in all tissues. It may last for up to a week, and is associated during this time with histone H3 lysine 4 hypermethylation. This transcriptional memory is cis-encoded, as we identify a promoter fragment that confers memory onto a heterologous gene. In summary, heat-induced transcriptional memory is a widespread and sustained response, and our study provides a framework for future mechanistic studies of somatic stress memory in higher plants. KW - epigenetics KW - priming KW - heat stress KW - H3K4 methylation KW - transcriptional memory KW - Arabidopsis thaliana KW - HSF Y1 - 2018 U6 - https://doi.org/10.1111/tpj.13958 SN - 0960-7412 SN - 1365-313X VL - 95 IS - 3 SP - 401 EP - 413 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Malinova, Irina A1 - Mahto, Harendra A1 - Brandt, Felix A1 - AL-Rawi, Shadha A1 - Qasim, Hadeel A1 - Brust, Henrike A1 - Hejazi, Mahdi A1 - Fettke, Jörg T1 - EARLY STARVATION1 specifically affects the phosphorylation action of starch-related dikinases JF - The plant journal N2 - Starch phosphorylation by starch-related dikinases glucan, water dikinase (GWD) and phosphoglucan, water dikinase (PWD) is a key step in starch degradation. Little information is known about the precise structure of the glucan substrate utilized by the dikinases and about the mechanisms by which these structures may be influenced. A 50-kDa starch-binding protein named EARLY STARVATION1 (ESV1) was analyzed regarding its impact on starch phosphorylation. In various invitro assays, the influences of the recombinant protein ESV1 on the actions of GWD and PWD on the surfaces of native starch granules were analyzed. In addition, we included starches from various sources as well as truncated forms of GWD. ESV1 preferentially binds to highly ordered, -glucans, such as starch and crystalline maltodextrins. Furthermore, ESV1 specifically influences the action of GWD and PWD at the starch granule surface. Starch phosphorylation by GWD is decreased in the presence of ESV1, whereas the action of PWD increases in the presence of ESV1. The unique alterations observed in starch phosphorylation by the two dikinases are discussed in regard to altered glucan structures at the starch granule surface. KW - Arabidopsis thaliana KW - EARLY STARVATION1 KW - glucan KW - phosphoglucan KW - starch granule surface KW - starch phosphorylation KW - water dikinase Y1 - 2018 U6 - https://doi.org/10.1111/tpj.13937 SN - 0960-7412 SN - 1365-313X VL - 95 IS - 1 SP - 126 EP - 137 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Ud-Din, Aziz A1 - Rauf, Mamoona A1 - Ghafoor, S. A1 - Khattak, M. N. K. A1 - Hameed, M. W. A1 - Shah, H. A1 - Jan, S. A1 - Muhammad, K. A1 - Rehman, A. A1 - Inamullah, T1 - Efficient use of artificial micro-RNA to downregulate the expression of genes at the post-transcriptional level in Arabidopsis thaliana JF - Genetics and molecular research N2 - Micro-RNAs are cellular components regulating gene expression at the post-transcription level. In the present study, artificial micro-RNAs were used to decrease the transcript level of two genes, AtExpA8 (encoding an expansin) and AHL25 (encoding an AT-hook motif nuclear localized protein) in Arabidopsis thaliana. The backbone of the Arabidopsis endogenous MIR319a micro-RNA was used in a site-directed mutagenesis approach for the generation of artificial micro-RNAs targeting two genes. The recombinant cassettes were expressed under the control of the CaMV 35S promoter in individual A. thaliana plants. Transgenic lines of the third generation were tested by isolating total RNA and by subsequent cDNA synthesis using oligo-dT18 primers and mRNAs as templates. The expression of the two target genes was checked through quantitative realtime polymerase chain reaction to confirm reduced transcript levels for AtExpA8 and AHL25. Downregulation of AtExpA8 resulted in the formation of short hypocotyls compared with those of the wild-type control in response to low pH and high salt concentration. This technology could be used to prevent the expression of exogenous and invading genes posing a threat to the normal cellular physiology of the host plant. KW - Artificial micro-RNA KW - Arabidopsis thaliana KW - qRT-PCR KW - AtExpA8 KW - AHL25 Y1 - 2016 U6 - https://doi.org/10.4238/gmr.15027439 SN - 1676-5680 VL - 15 PB - FUNPEC CY - Ribeirao Preto ER - TY - THES A1 - Vyse, Kora T1 - Elucidating molecular determinants of the loss of freezing tolerance during deacclimation after cold priming and low temperature memory after triggering N2 - Während ihrer Entwicklung müssen sich Pflanzen an Temperaturschwankungen anpassen. Niedrige Temperaturen über dem Gefrierpunkt induzieren in Pflanzen eine Kälteakklimatisierung und höhere Frosttoleranz, die sich bei wärmeren Temperaturen durch Deakklimatisierung wieder zurückbildet. Der Wechsel zwischen diesen beiden Prozessen ist für Pflanzen unerlässlich, um als Reaktion auf unterschiedliche Temperaturbedingungen eine optimale Fitness zu erreichen. Die Kälteakklimatisierung ist umfassend untersucht worden,über die Regulierung der Deakklimatisierung ist jedoch wenig bekannt. In dieser Arbeit wird der Prozess der Deakklimatisierung auf physiologischer und molekularer Ebene in Arabidopsis thaliana untersucht. Messungen des Elektrolytverlustes während der Kälteakklimatisierung und bis zu vier Tagen nach Deakklimatisierung ermöglichten die Identifizierung von vier Knockout-Mutanten (hra1, lbd41, mbf1c und jub1), die im Vergleich zum Wildtyp eine langsamere Deakklimatisierungsrate aufwiesen. Eine transkriptomische Studie mit Hilfe von RNA-Sequenzierung von A. thaliana Col-0, jub1 und mbf1c zeigte die Bedeutung der Hemmung von stressreaktiven und Jasmonat-ZIM-Domänen-Genen sowie die Regulierung von Zellwandmodifikationen während der Deakklimatisierung. Darüber hinaus zeigten Messungen der Alkoholdehydrogenase Aktivität und der Genexpressionsänderungen von Hypoxiemarkern während der ersten vier Tagen der Deakklimatisierung, dass eine Hypoxie-Reaktion während der Deakklimatisierung aktiviert wird. Es wurde gezeigt, dass die epigenetische Regulierung während der Kälteakklimatisierung und der 24-stündigen Deakklimatisierung in A. thaliana eine große Rolle spielt. Darüber hinaus zeigten beide Deakklimatisierungsstudien, dass die frühere Hypothese, dass Hitzestress eine Rolle bei der frühen Deakklimatisierung spielen könnte, unwahrscheinlich ist. Eine Reihe von DNA- und Histondemethylasen sowie Histonvarianten wurden während der Deakklimatisierung hochreguliert, was auf eine Rolle im pflanzlichen Gedächtnis schließen lässt. In jüngster Zeit haben mehrere Studien gezeigt, dass Pflanzen in der Lage sind, die Erinnerung an einen vorangegangenen Kältestress auch nach einer Woche Deakklimatisierung zu bewahren. In dieser Arbeit ergaben Transkriptom- und Metabolomanalysen von Arabidopsis während 24 Stunden Priming (Kälteakklimatisierung) und Triggering (wiederkehrender Kältestress nach Deakklimatisierung) eine unikale signifikante und vorübergehende Induktion der Transkriptionsfaktoren DREB1D, DREB1E und DREB1F während des Triggerings, die zur Feinabstimmung der zweiten Kältestressreaktion beiträgt. Darüber hinaus wurden Gene, die für Late Embryogenesis Abundant (LEA) und Frostschutzproteine kodieren, sowie Proteine, die reaktive Sauerstoffspezies entgiften, während des späten Triggerings (24 Stunden) stärker induziert als nach dem ersten Kälteimpuls, während Xyloglucan- Endotransglucosylase/Hydrolase Gene, deren Produkte für eine Restrukturierung der Zellwand verantwortlich sind, früh auf das Triggering reagierten. Die starke Induktion dieser Gene, sowohl bei der Deakklimatisierung als auch beim Triggering, lässt vermuten, dass sie eine wesentliche Rolle bei der Stabilisierung der Zellen während des Wachstums und bei der Reaktion auf wiederkehrende Stressbedingungen spielen. Zusammenfassend gibt diese Arbeit neue Einblicke in die Regulierung der Deakklimatisierung und des Kältestress-Gedächtnisses in A. thaliana und eröffnet neue Möglichkeiten für künftige, gezielte Studien von essentiellen Genen in diesem Prozess. N2 - 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. KW - cold stress KW - deacclimation KW - Arabidopsis thaliana KW - epigenetics KW - co-expression network analysis KW - WGCNA KW - RNA-sequencing KW - differential gene expression KW - hypoxia KW - transcription factors KW - Kältestress KW - Deakklimatisierung KW - Epigenetik KW - Koexpression Netzwerk Analysen KW - RNA-Sequenzierung KW - Differenzielle Genexpression KW - Hypoxie KW - Transkriptionsfaktoren Y1 - 2022 ER - TY - THES A1 - Moreno Curtidor, Catalina T1 - Elucidating the molecular basis of enhanced growth in the Arabidopsis thaliana accession Bur-0 N2 - The life cycle of flowering plants is a dynamic process that involves successful passing through several developmental phases and tremendous progress has been made to reveal cellular and molecular regulatory mechanisms underlying these phases, morphogenesis, and growth. Although several key regulators of plant growth or developmental phase transitions have been identified in Arabidopsis, little is known about factors that become active during embryogenesis, seed development and also during further postembryonic growth. Much less is known about accession-specific factors that determine plant architecture and organ size. Bur-0 has been reported as a natural Arabidopsis thaliana accession with exceptionally big seeds and a large rosette; its phenotype makes it an interesting candidate to study growth and developmental aspects in plants, however, the molecular basis underlying this big phenotype remains to be elucidated. Thus, the general aim of this PhD project was to investigate and unravel the molecular mechanisms underlying the big phenotype in Bur-0. Several natural Arabidopsis accessions and late flowering mutant lines were analysed in this study, including Bur-0. Phenotypes were characterized by determining rosette size, seed size, flowering time, SAM size and growth in different photoperiods, during embryonic and postembryonic development. Our results demonstrate that Bur-0 stands out as an interesting accession with simultaneously larger rosettes, larger SAM, later flowering phenotype and larger seeds, but also larger embryos. Interestingly, inter-accession crosses (F1) resulted in bigger seeds than the parental self-crossed accessions, particularly when Bur-0 was used as the female parental genotype, suggesting parental effects on seed size that might be maternally controlled. Furthermore, developmental stage-based comparisons revealed that the large embryo size of Bur-0 is achieved during late embryogenesis and the large rosette size is achieved during late postembryonic growth. Interestingly, developmental phase progression analyses revealed that from germination onwards, the length of developmental phases during postembryonic growth is delayed in Bur-0, suggesting that in general, the mechanisms that regulate developmental phase progression are shared across developmental phases. On the other hand, a detailed physiological characterization in different tissues at different developmental stages revealed accession-specific physiological and metabolic traits that underlie accession-specific phenotypes and in particular, more carbon resources during embryonic and postembryonic development were found in Bur-0, suggesting an important role of carbohydrates in determination of the bigger Bur-0 phenotype. Additionally, differences in the cellular organization, nuclei DNA content, as well as ploidy level were analyzed in different tissues/cell types and we found that the large organ size in Bur-0 can be mainly attributed to its larger cells and also to higher cell proliferation in the SAM, but not to a different ploidy level. Furthermore, RNA-seq analysis of embryos at torpedo and mature stage, as well as SAMs at vegetative and floral transition stage from Bur-0 and Col-0 was conducted to identify accession-specific genetic determinants of plant phenotypes, shared across tissues and developmental stages during embryonic and postembryonic growth. Potential candidate genes were identified and further validation of transcriptome data by expression analyses of candidate genes as well as known key regulators of organ size and growth during embryonic and postembryonic development confirmed that the high confidence transcriptome datasets generated in this study are reliable for elucidation of molecular mechanisms regulating plant growth and accession-specific phenotypes in Arabidopsis. Taken together, this PhD project contributes to the plant development research field providing a detailed analysis of mechanisms underlying plant growth and development at different levels of biological organization, focusing on Arabidopsis accessions with remarkable phenotypical differences. For this, the natural accession Bur-0 was an ideal outlier candidate and different mechanisms at organ and tissue level, cell level, metabolism, transcript and gene expression level were identified, providing a better understanding of different factors involved in plant growth regulation and mechanisms underlying different growth patterns in nature. N2 - Der Lebenszyklus blühender Pflanzen ist ein dynamischer Prozess, der das erfolgreiche Durchlaufen mehrerer Entwicklungsphasen impliziert. Es wurden enorme Fortschritte gemacht, um zelluläre und molekulare Regulationsmechanismen zu entschlüsseln, die diesen Phasen, der Morphogenese und dem Wachstum zu Grunde liegen. Obwohl mehrere Schlüsselregulatoren des Pflanzenwachstums oder der Entwicklungsphasenübergänge in Arabidopsis identifiziert wurden, ist nur wenig über Faktoren bekannt, die sowohl während der Embryogenese als auch während der Samenentwicklung und dem weiteren Wachstum aktiv werden. Noch viel weniger ist über akzessionspezifische Faktoren bekannt, die die Pflanzenarchitektur und Organgröße bestimmen. Bur-0 wurde als eine natürliche Arabidopsis-Akzession mit außergewöhnlich großen Samen und großer Blattrosette beschrieben. Ihr Phänotyp macht sie zu einem interessanten Kandidaten für die Untersuchung von Wachstums- und Entwicklungsaspekten in Pflanzen, jedoch muss die molekulare Basis, die diesem großen Phänotyp unterliegt, noch entschlüsselt werden. Daher war das allgemeine Ziel dieser Doktorarbeit, die molekularen Mechanismen, die dem großen Phänotyp in Bur-0 zu Grunde liegen, zu entschlüsseln und zu verstehen. Mehrere natürliche Arabidopsis-Akzessionen und spät blühende Mutantenlinien wurden in dieser Studie analysiert, so auch Bur-0. Die Phänotypen wurden durch eine detaillierte Analyse der Rosettengröße, der Samengröße, der Blütezeit, der Sprossapikalmeristemgröße und des Wachstums in verschiedenen Photoperioden, während der embryonalen und postembryonalen Entwicklung charakterisiert. Unsere Ergebnisse zeigen, dass Bur-0 als interessanter Akzession mit gleichzeitig größeren Blattrosetten, größerem Sprossapikalmeristem (SAM), späterem Blühphänotyp und größeren Samen, aber auch größeren Embryonen auffällt. Interessanterweise führten Kreuzungen zwischen den Akzessionen (F1) zu größeren Samen als die elterlichen selbstgekreuzten Akzessionen, insbesondere wenn Bur-0 als weiblicher elterlicher Genotyp verwendet wurde, was auf elterliche Effekte auf die Samengröße hindeutet, die möglicherweise mütterlicherseits kontrolliert werden. Darüber hinaus ergaben Vergleiche auf Basis von Entwicklungsstadien, dass die große Embryogröße von Bur-0 während der späten Embryogenese erreicht wird und die große Blattrosette während des späten postembryonalen Wachstums. Interessanterweise ergaben Analysen der Entwicklungsphasenprogression, dass ab der Keimung die Länge der Entwicklungsphasen während des postembryonalen Wachstums bei Bur-0 verzögert ist, was darauf hindeutet, dass im Allgemeinen die Mechanismen, die die Entwicklungsphasenprogression regulieren, über die Entwicklungsphasen hinweg geteilt werden. Andererseits ergab eine detaillierte physiologische Charakterisierung in verschiedenen Geweben in unterschiedlichen Entwicklungsstadien akzession-spezifische physiologische und metabolische Merkmale, die den akzession-spezifischen Phänotypen zu Grunde liegen. Insbesondere wurden mehr Kohlenstoff-Ressourcen, während der embryonalen und postembryonalen Entwicklung in Bur-0 gefunden, was auf eine wichtige Rolle von Kohlenhydraten bei der Bestimmung des größeren Bur-0-Phänotyps hindeutet. Zusätzlich wurden Unterschiede in der zellulären Organisation, dem DNA-Gehalt der Nuklei sowie dem Ploidiegrad in verschiedenen Geweben/Zelltypen analysiert und wir fanden heraus, dass die größere Organgröße in Bur-0 hauptsächlich auf die größeren Zellen und auch auf eine höhere Zellproliferation im SAM zurückzuführen ist, aber nicht auf einen anderen Ploidiegrad. Darüber hinaus wurden RNA-seq-Analysen von Embryonen im Torpedo- und Reifestadium sowie SAMs im vegetativen und Florenübergangsstadium von Bur-0 und Col-0 durchgeführt, um akzession-spezifische genetische Faktoren für Pflanzenphänotypen zu identifizieren, die in allen Geweben und Entwicklungsstadien während des embryonalen und postembryonalen Wachstums auftreten. Potenzielle Kandidatengene wurden identifiziert und eine weitere Validierung der Transkriptomdaten durch Expressionsanalysen neuartiger Kandidatengene sowie bekannter Schlüsselregulatoren für Organgröße und -wachstum während der embryonalen und postembryonalen Entwicklung bestätigte, dass die in dieser Studie generierten Transkriptomdatensätze mit hoher Zuverlässigkeit für die Aufklärung molekularer Mechanismen zur Regulierung des Pflanzenwachstums und akzessionspezifischer Phänotypen in Arabidopsis geeignet sind. Insgesamt trägt diese Doktorarbeit zur Forschung im Bereich der Pflanzenentwicklung bei, indem sie eine detaillierte Analyse der Mechanismen liefert, die dem Wachstum und der Entwicklung auf verschiedenen Ebenen der biologischen Organisation zu Grunde liegen, wobei der Schwerpunkt auf Arabidopsis-Akzessionen mit bemerkenswerten phänotypischen Unterschieden liegt. Dafür war die natürliche Akzession Bur-0 ein idealer Ausreißerkandidat und es wurden verschiedene Mechanismen auf Organ- und Gewebeebene, Zellebene, Stoffwechsel, Transkript- und Genexpressionsniveau identifiziert, was ein besseres Verständnis der verschiedenen Faktoren, die an der Regulierung des Pflanzenwachstums beteiligt sind, und der Mechanismen, die den verschiedenen Wachstumsmustern in der Natur zu Grunde liegen, ermöglicht. KW - Plant development KW - Plant growth KW - Arabidopsis thaliana KW - Phenotype KW - Transcriptome KW - Pflanzenentwicklung KW - Pflanzenwachstum KW - Arabidopsis thaliana KW - Phänotyp KW - Transkriptom Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-526814 ER - TY - JOUR A1 - Hansen, Bjoern Oest A1 - Meyer, Etienne H. A1 - Ferrari, Camilla A1 - Vaid, Neha A1 - Movahedi, Sara A1 - Vandepoele, Klaas A1 - Nikoloski, Zoran A1 - Mutwil, Marek T1 - Ensemble gene function prediction database reveals genes important for complex I formation in Arabidopsis thaliana JF - New phytologist : international journal of plant science N2 - Recent advances in gene function prediction rely on ensemble approaches that integrate results from multiple inference methods to produce superior predictions. Yet, these developments remain largely unexplored in plants. We have explored and compared two methods to integrate 10 gene co-function networks for Arabidopsis thaliana and demonstrate how the integration of these networks produces more accurate gene function predictions for a larger fraction of genes with unknown function. These predictions were used to identify genes involved in mitochondrial complex I formation, and for five of them, we confirmed the predictions experimentally. The ensemble predictions are provided as a user-friendly online database, EnsembleNet. The methods presented here demonstrate that ensemble gene function prediction is a powerful method to boost prediction performance, whereas the EnsembleNet database provides a cutting-edge community tool to guide experimentalists. KW - Arabidopsis thaliana KW - co-function network KW - complex I KW - ensemble prediction KW - gene function prediction Y1 - 2017 U6 - https://doi.org/10.1111/nph.14921 SN - 0028-646X SN - 1469-8137 VL - 217 IS - 4 SP - 1521 EP - 1534 PB - Wiley CY - Hoboken ER - TY - THES A1 - Schaarschmidt, Stephanie T1 - Evaluation and application of omics approaches to characterize molecular responses to abiotic stresses in plants T1 - Evaluierung und Anwendung von Omics-Methoden zur Charakterisierung von abiotischem Stress in Pflanzen auf molekularer Ebene N2 - Aufgrund des globalen Klimawandels ist die Gewährleistung der Ernährungssicherheit für eine wachsende Weltbevölkerung eine große Herausforderung. Insbesondere abiotische Stressoren wirken sich negativ auf Ernteerträge aus. Um klimaangepasste Nutzpflanzen zu entwickeln, ist ein umfassendes Verständnis molekularer Veränderungen in der Reaktion auf unterschiedlich starke Umweltbelastungen erforderlich. Hochdurchsatz- oder "Omics"-Technologien können dazu beitragen, Schlüsselregulatoren und Wege abiotischer Stressreaktionen zu identifizieren. Zusätzlich zur Gewinnung von Omics-Daten müssen auch Programme und statistische Analysen entwickelt und evaluiert werden, um zuverlässige biologische Ergebnisse zu erhalten. Ich habe diese Problemstellung in drei verschiedenen Studien behandelt und dafür zwei Omics-Technologien benutzt. In der ersten Studie wurden Transkript-Daten von den beiden polymorphen Arabidopsis thaliana Akzessionen Col-0 und N14 verwendet, um sieben Programme hinsichtlich ihrer Fähigkeit zur Positionierung und Quantifizierung von Illumina RNA Sequenz-Fragmenten („Reads“) zu evaluieren. Zwischen 92% und 99% der Reads konnten an die Referenzsequenz positioniert werden und die ermittelten Verteilungen waren hoch korreliert für alle Programme. Bei der Durchführung einer differentiellen Genexpressionsanalyse zwischen Pflanzen, die bei 20 °C oder 4 °C (Kälteakklimatisierung) exponiert wurden, ergab sich eine große paarweise Überlappung zwischen den Programmen. In der zweiten Studie habe ich die Transkriptome von zehn verschiedenen Oryza sativa (Reis) Kultivaren sequenziert. Dafür wurde die PacBio Isoform Sequenzierungstechnologie benutzt. Die de novo Referenztranskriptome hatten zwischen 38.900 bis 54.500 hoch qualitative Isoformen pro Sorte. Die Isoformen wurden kollabiert, um die Sequenzredundanz zu verringern und danach evaluiert z.B. hinsichtlich des Vollständigkeitsgrades (BUSCO), der Transkriptlänge und der Anzahl einzigartiger Transkripte pro Genloci. Für die hitze- und trockenheitstolerante Sorte N22 wurden ca. 650 einzigartige und neue Transkripte identifiziert, von denen 56 signifikant unterschiedlich in sich entwickelnden Samen unter kombiniertem Trocken- und Hitzestress exprimiert wurden. In der letzten Studie habe ich die Veränderungen in Metabolitprofilen von acht Reissorten gemessen und analysiert, die dem Stress hoher Nachttemperaturen (HNT) ausgesetzt waren und während der Trocken- und Regenzeit im Feld auf den Philippinen angebaut wurden. Es wurden jahreszeitlich bedingte Veränderungen im Metabolitspiegel sowie für agronomische Parameter identifiziert und mögliche Stoffwechselwege, die einen Ertragsrückgang unter HNT-Bedingungen verursachen, vorgeschlagen. Zusammenfassend konnte ich zeigen, dass der Vergleich der RNA-seq Programme den Pflanzenwissenschaftler*innen helfen kann, sich für das richtige Werkzeug für ihre Daten zu entscheiden. Die de novo Transkriptom-Rekonstruktion von Reissorten ohne Genomsequenz bietet einen gezielten, kosteneffizienten Ansatz zur Identifizierung neuer Gene, die durch verschiedene Stressbedingungen reguliert werden unabhängig vom Organismus. Mit dem Metabolomik-Ansatz für HNT-Stress in Reis habe ich stress- und jahreszeitenspezifische Metabolite identifiziert, die in Zukunft als molekulare Marker für die Verbesserung von Nutzpflanzen verwendet werden könnten. N2 - Due to global climate change providing food security for an increasing world population is a big challenge. Especially abiotic stressors have a strong negative effect on crop yield. To develop climate-adapted crops a comprehensive understanding of molecular alterations in the response of varying levels of environmental stresses is required. High throughput or ‘omics’ technologies can help to identify key-regulators and pathways of abiotic stress responses. In addition to obtain omics data also tools and statistical analyses need to be designed and evaluated to get reliable biological results. To address these issues, I have conducted three different studies covering two omics technologies. In the first study, I used transcriptomic data from the two polymorphic Arabidopsis thaliana accessions, namely Col-0 and N14, to evaluate seven computational tools for their ability to map and quantify Illumina single-end reads. Between 92% and 99% of the reads were mapped against the reference sequence. The raw count distributions obtained from the different tools were highly correlated. Performing a differential gene expression analysis between plants exposed to 20 °C or 4°C (cold acclimation), a large pairwise overlap between the mappers was obtained. In the second study, I obtained transcript data from ten different Oryza sativa (rice) cultivars by PacBio Isoform sequencing that can capture full-length transcripts. De novo reference transcriptomes were reconstructed resulting in 38,900 to 54,500 high-quality isoforms per cultivar. Isoforms were collapsed to reduce sequence redundancy and evaluated, e.g. for protein completeness level (BUSCO), transcript length, and number of unique transcripts per gene loci. For the heat and drought tolerant aus cultivar N22, I identified around 650 unique and novel transcripts of which 56 were significantly differentially expressed in developing seeds during combined drought and heat stress. In the last study, I measured and analyzed the changes in metabolite profiles of eight rice cultivars exposed to high night temperature (HNT) stress and grown during the dry and wet season on the field in the Philippines. Season-specific changes in metabolite levels, as well as for agronomic parameters, were identified and metabolic pathways causing a yield decline at HNT conditions suggested. In conclusion, the comparison of mapper performances can help plant scientists to decide on the right tool for their data. The de novo reconstruction of rice cultivars without a genome sequence provides a targeted, cost-efficient approach to identify novel genes responding to stress conditions for any organism. With the metabolomics approach for HNT stress in rice, I identified stress and season-specific metabolites which might be used as molecular markers for crop improvement in the future. KW - Arabidopsis thaliana KW - Oryza sativa KW - RNA-seq KW - PacBio IsoSeq KW - metabolomics KW - high night temperature KW - combined heat and drought stress KW - natural genetic variation KW - differential gene expression KW - Arabidopsis thaliana KW - Oryza sativa KW - PacBio IsoSeq KW - RNA-seq KW - kombinierter Hitze- und Trockenstress KW - erhöhte Nachttemperaturen KW - Differenzielle Genexpression KW - Metabolomik KW - natürliche genetische Variation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-509630 ER - TY - THES A1 - Skirycz, Aleksandra T1 - Functional analysis of selected DOF transcription factors in the model plant Arabidopsis thaliana T1 - Funktionsanalyse ausgewählter DOF-Transkriptionsfaktoren bei der Modellpflanze Arabidopsis thaliana N2 - Transcription factors (TFs) are global regulators of gene expression playing essential roles in almost all biological processes, and are therefore of great scientific and biotechnological interest. This project focused on functional characterisation of three DNA-binding-with-one-zinc-finger (DOF) TFs from the genetic model plant Arabidopsis thaliana, namely OBP1, OBP2 and AtDOF4;2. These genes were selected due to severe growth phenotypes conferred upon their constitutive over-expression. To identify biological processes regulated by OBP1, OBP2 and AtDOF4;2 in detail molecular and physiological characterization of transgenic plants with modified levels of OBP1, OBP2 and AtDOF4;2 expression (constitutive and inducible over-expression, RNAi) was performed using both targeted and profiling technologies. Additionally expression patterns of studied TFs and their target genes were analyzed using promoter-GUS lines and publicly available microarray data. Finally selected target genes were confirmed by chromatin immuno-precipitation and electrophoretic-mobility shift assays. This combinatorial approach revealed distinct biological functions of OBP1, OBP2 and AtDOF4;2. Specifically OBP2 controls indole glucosinolate / auxin homeostasis by directly regulating the enzyme at the branch of these pathways; CYP83B1 (Skirycz et al., 2006). Glucosinolates are secondary compounds important for defence against herbivores and pathogens in the plants order Caparales (e.g. Arabidopsis, canola and broccoli) whilst auxin is an essential plant hormone. Hence OBP2 is important for both response to biotic stress and plant growth. Similarly to OBP2 also AtDOF4;2 is involved in the regulation of plant secondary metabolism and affects production of various phenylpropanoid compounds in a tissue and environmental specific manner. It was found that under certain stress conditions AtDOF4;2 negatively regulates flavonoid biosynthetic genes whilst in certain tissues it activates hydroxycinnamic acid production. It was hypothesized that this dual function is most likely related to specific interactions with other proteins; perhaps other TFs (Skirycz et al., 2007). Finally OBP1 regulates both cell proliferation and cell expansion. It was shown that OBP1 controls cell cycle activity by directly targeting the expression of core cell cycle genes (CYCD3;3 and KRP7), other TFs and components of the replication machinery. Evidence for OBP1 mediated activation of cell cycle during embryogenesis and germination will be presented. Additionally and independently on its effects on cell proliferation OBP1 negatively affects cell expansion via reduced expression of cell wall loosening enzymes. Summing up this work provides an important input into our knowledge on DOF TFs function. Future work will concentrate on establishing exact regulatory networks of OBP1, OBP2 and AtDOF4;2 and their possible biotechnological applications. N2 - Biologische Prozesse, wie beispielsweise das Wachstum von Organen und ganzen Organismen oder die Reaktion von Lebewesen auf ungünstige Umweltbedingungen, unterliegen zahlreichen Regulationsmechanismen. Besonders wichtige Regulatoren sind die sogenannten Transkriptionsfaktoren. Dabei handelt es sich um Proteine, die die Aktivität von Erbeinheiten, den Genen, beeinflussen. In Pflanzen gibt es etwa 2000 solcher Regulatoren. Da sie wichtige Kontrollelemente darstellen, sind sie von großem wissenschaftlichen und biotechnologischen Interesse. Im Rahmen der Doktorarbeit sollte die Funktion von drei Transkriptionsfaktoren, genannt OBP1, OBP2 und AtDOF4;2, untersucht werden. Sie wurden bei der Suche nach neuen Wachstumsregulatoren identifiziert. Als Untersuchungsobjekt diente die in der Öffentlichkeit kaum bekannte Pflanze Ackerschmalwand, lateinisch als Arabidopsis thaliana bezeichnet. Um die Funktion der Regulatoren zu entschlüsseln, wurden an der Modellpflanze genetische Veränderungen durchgeführt und die Pflanzen dann mit molekularbiologischen und physiologischen Methoden analysiert. Es zeigte sich, dass OBP1 an der Regulation der Zellteilung beteiligt ist. Alle Lebewesen sind aus Zellen aufgebaut. Gelingt es, die Zellteilung gezielt zu steuern, kann damit beispielsweise die Produktion von pflanzlicher Biomasse verbessert werden. Das OBP1-Protein übt auch einen Einfluss auf die Zellstreckung aus und beeinflusst auch auf diesem Wege das pflanzliche Wachstum. Die beiden anderen Proteine steuern Prozesse, die im Zusammenhang mit der Bildung von Pflanzeninhaltsstoffen stehen. OBP2 ist Teil eines zellulären Netzwerkes, dass die Synthese von sogenannten Glucosinolaten steuert. Glucosinolate kommen unter anderem in Broccoli und Kohl vor. Sie fungieren als Abwehrstoffe gegen Fraßinsekten. Einigen Glucosinolaten wird auch gesundheitsfördernde Wirkung zugesprochen. Das Protein AtDOF4;2 ist Komponente eines anderen Netzwerkes, dass die Bildung von Phenylpropanoiden steuert. Diese Substanzen haben strukturelle Funktion und spielen darüber hinaus eine Rolle bei der pflanzlichen Toleranz gegenüber tiefen Temperaturen. Mit der Doktorarbeit konnte das Wissen über die Transkriptionsfaktoren erheblich erweitert und die Grundlage für interessante zukünftige Arbeiten gelegt werden. Von großer Bedeutung wird es dabei sein, die Netzwerke, in die die Transkriptionsfaktoren eingebunden sind, noch besser zu verstehen. Dann wird es möglich sein, auch Teilnetzwerke gezielt zu beeinflussen, was für biotechnologische Anwendungen, beispielsweise bei der Präzisionszüchtung von nachwachsenden Rohstoffen, von zentraler Bedeutung ist. KW - Transkriptionsfaktoren KW - Arabidopsis thaliana KW - transcription factors KW - Arabidopsis thaliana KW - cell cycle KW - secondary metabolism Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-16987 ER -