{"id":{"repo_id":"wurz-thes","oai_identifier":"oai:opus.bibliothek.uni-wuerzburg.de:843"},"canonical_url":"https://search.dev.ndltd.org/etd/wurz-thes/oai:opus.bibliothek.uni-wuerzburg.de:843","repository":{"repo_id":"wurz-thes","name":"Universität Wüzburg","base_url":"https://opus.bibliothek.uni-wuerzburg.de/oai"},"display":{"title":"The role of DNA supercoiling in the coordinated regulation of gene expression in Helicobacter pylori","abstract":"Summary Mechanisms of global gene regulation in bacteria are not well characterized yet. Changes in global or local supercoiling of chromosomal DNA are thought to play a role in global gene silencing and gene activation. In Helicobacter pylori, a bacterium with few dedicated transcriptional regulators, the structure of some promoters indicates a dependency on DNA topology. For example, the promoter of the major flagellar subunit gene flaA (ó28-dependent) has a shorter spacing of 13 nucleotides (nt) in comparison to the consensus promoter (15 nt). Supercoiling changes might be a mechanism of gene-specific and global transcriptional regulation in this bacterium. The aim of this study was to elucidate, if changes in global supercoiling have an influence on global gene regulation in H. pylori, and on the temporal regulation of the flagellar biosynthesis pathway in this organism. In the present work, global DNA supercoiling in H. pylori was visualized for the first time, by determining the supercoiling state of plasmids under different growth conditions. Using this method, we showed that cellular supercoiling was clearly growth phase-dependent in H. pylori. Coinciding with increased supercoiling during the growth phases, transcription of the flaA gene was increased, while the transcription of a second ó28-dependent gene with regular promoter spacing (HP0472) was reduced, supporting the hypothesis that growth phase-dependency of promoters might be mediated by changes of DNA topology. Supercoiling in H. pylori could be influenced in a reproducible fashion by inhibition of gyrase using novobiocin, which led to DNA relaxation and to a concomitant decrease of flaA transcript levels. Promoter spacer mutagenesis of the flaA promoter was performed. With flaA promoters of increased or reduced length, transcription of flaA was reduced, less susceptible to supercoiling changes, and, under specific conditions, inverted as compared to the wild type promoter. Transcriptional interdependence between the coupled topA-flaB genes and flaA was found by analysis of the flaA promoter mutants. Chromosomally linked gyrA-flgR, and topA-flaB genes were all dependent on supercoiling and coregulated with each other. Comprehensive transcript profiling (DNA microarrays) of wildtype H. pylori with and without novobiocin treatment identified a number of genes (10% of total genes), including flagellin, virulence and housekeeping genes, which were strongly dependent on and appeared to be synchronized by supercoiling changes (transcriptional up- or downregulation). These findings indicate a tightly coupled temporal regulation of flagellar biogenesis and metabolism in H. pylori, dependent on global supercoiling. A specific group of genes was also regulated in H. pylori by overexpression of Topoisomerase I, as detected by genome-wide analysis (DNA microarray). The DNA-bending protein HU is thought to be responsible for influencing the negative supercoiling of DNA, through its ability to wrap DNA. HU is encoded by the hup single gene in H. pylori, and constitutively expressed during the whole growth curve. An H. pylori hup mutant was constructed. H. pylori cells lacking HU protein were viable, but exhibited a severe growth defect. Our data indicate that the lack of HU dramatically changes global DNA supercoiling, indicating an important function of HU in chromosome structuring in H. pylori. Transcriptome analyses were performed and demonstrated that a total of 66 genes were differentially transcribed upon hup deletion, which include virulence genes and many other cell functions. The data indicate that HU might act as further important global regulator in H. pylori. Increased gene expression of heat shock proteins and a decreased transcription of the urease gene cluster may indicate a co-ordinated response of H. pylori to changes of environmental conditions in its specific ecological niche, mediated by HU. After the whole genomic sequences of H. pylori strains 26695 and J99 were published, two ORFs (HP0116 and HP0440) were presumptively annotated as topoisomerase I orthologs. HP0116 is the functional H. pylori topoisomerase I (TopA). HP0440 (topA2) was found in only few (5 of 43) strains. Western blot analysis indicated that TopA2 is antigenically different from TopA. TopA2 is transcribed in H. pylori, but the protein must be functionally different from TopA, since it is lacking one functionally essential zinc finger motif, and was not able to functionally complement a TopA-deficient E. coli. Like topA, topA2 was also transcribed in a growth phase-dependent manner. We did not find a function of TopA2 in DNA structuring or topology, but, in the present study, we were able for the first time to establish a unique function for TopA2 in global gene regulation, by comprehensive transcriptome analysis (DNA microarray). Transcriptome analysis showed that a total of 46 genes were differentially regulated upon topA2 deletion, which included flagellar genes and urease genes. These results suggest that TopA2 might act as a novel important regulator of both flagellar biosynthesis and urease in H. pylori.","abstract_html":"Summary Mechanisms of global gene regulation in bacteria are not well characterized yet. Changes in global or local supercoiling of chromosomal DNA are thought to play a role in global gene silencing and gene activation. In Helicobacter pylori, a bacterium with few dedicated transcriptional regulators, the structure of some promoters indicates a dependency on DNA topology. For example, the promoter of the major flagellar subunit gene flaA (ó28-dependent) has a shorter spacing of 13 nucleotides (nt) in comparison to the consensus promoter (15 nt). Supercoiling changes might be a mechanism of gene-specific and global transcriptional regulation in this bacterium. The aim of this study was to elucidate, if changes in global supercoiling have an influence on global gene regulation in H. pylori, and on the temporal regulation of the flagellar biosynthesis pathway in this organism. In the present work, global DNA supercoiling in H. pylori was visualized for the first time, by determining the supercoiling state of plasmids under different growth conditions. Using this method, we showed that cellular supercoiling was clearly growth phase-dependent in H. pylori. Coinciding with increased supercoiling during the growth phases, transcription of the flaA gene was increased, while the transcription of a second ó28-dependent gene with regular promoter spacing (HP0472) was reduced, supporting the hypothesis that growth phase-dependency of promoters might be mediated by changes of DNA topology. Supercoiling in H. pylori could be influenced in a reproducible fashion by inhibition of gyrase using novobiocin, which led to DNA relaxation and to a concomitant decrease of flaA transcript levels. Promoter spacer mutagenesis of the flaA promoter was performed. With flaA promoters of increased or reduced length, transcription of flaA was reduced, less susceptible to supercoiling changes, and, under specific conditions, inverted as compared to the wild type promoter. Transcriptional interdependence between the coupled topA-flaB genes and flaA was found by analysis of the flaA promoter mutants. Chromosomally linked gyrA-flgR, and topA-flaB genes were all dependent on supercoiling and coregulated with each other. Comprehensive transcript profiling (DNA microarrays) of wildtype H. pylori with and without novobiocin treatment identified a number of genes (10% of total genes), including flagellin, virulence and housekeeping genes, which were strongly dependent on and appeared to be synchronized by supercoiling changes (transcriptional up- or downregulation). These findings indicate a tightly coupled temporal regulation of flagellar biogenesis and metabolism in H. pylori, dependent on global supercoiling. A specific group of genes was also regulated in H. pylori by overexpression of Topoisomerase I, as detected by genome-wide analysis (DNA microarray). The DNA-bending protein HU is thought to be responsible for influencing the negative supercoiling of DNA, through its ability to wrap DNA. HU is encoded by the hup single gene in H. pylori, and constitutively expressed during the whole growth curve. An H. pylori hup mutant was constructed. H. pylori cells lacking HU protein were viable, but exhibited a severe growth defect. Our data indicate that the lack of HU dramatically changes global DNA supercoiling, indicating an important function of HU in chromosome structuring in H. pylori. Transcriptome analyses were performed and demonstrated that a total of 66 genes were differentially transcribed upon hup deletion, which include virulence genes and many other cell functions. The data indicate that HU might act as further important global regulator in H. pylori. Increased gene expression of heat shock proteins and a decreased transcription of the urease gene cluster may indicate a co-ordinated response of H. pylori to changes of environmental conditions in its specific ecological niche, mediated by HU. After the whole genomic sequences of H. pylori strains 26695 and J99 were published, two ORFs (HP0116 and HP0440) were presumptively annotated as topoisomerase I orthologs. HP0116 is the functional H. pylori topoisomerase I (TopA). HP0440 (topA2) was found in only few (5 of 43) strains. Western blot analysis indicated that TopA2 is antigenically different from TopA. TopA2 is transcribed in H. pylori, but the protein must be functionally different from TopA, since it is lacking one functionally essential zinc finger motif, and was not able to functionally complement a TopA-deficient E. coli. Like topA, topA2 was also transcribed in a growth phase-dependent manner. We did not find a function of TopA2 in DNA structuring or topology, but, in the present study, we were able for the first time to establish a unique function for TopA2 in global gene regulation, by comprehensive transcriptome analysis (DNA microarray). Transcriptome analysis showed that a total of 46 genes were differentially regulated upon topA2 deletion, which included flagellar genes and urease genes. These results suggest that TopA2 might act as a novel important regulator of both flagellar biosynthesis and urease in H. pylori.","abstract_has_math":false,"creators":["Ye, Fang"],"institution":"Universität Würzburg","degree_name":null,"degree_level":"thesis.doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":["Suerbaum, Sebastian"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2004,"date_issued":"2004-07-23","date_published":"2004-07-23","updated_at":"2026-07-24T06:11:27Z","subjects":["Supercoiling","regulation","flagella"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://opus.bibliothek.uni-wuerzburg.de/frontdoor/index/index/docId/843","outbound_label":"Repository record","outbound_source":"source_url"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Suerbaum, Sebastian"]},{"key":"dc:creator","label":"Author","values":["Ye, Fang"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:publisher","label":"Institution","values":["Universität Würzburg"]},{"key":"dc:type","label":"Dc Type","values":["doctoralThesis"]},{"key":"thesis:degree_level","label":"Degree Level","values":["thesis.doctoral"]},{"key":"thesis:institution_name","label":"Thesis Institution Name","values":["Universität Würzburg"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Supercoiling","regulation","flagella"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Summary Mechanisms of global gene regulation in bacteria are not well characterized yet. Changes in global or local supercoiling of chromosomal DNA are thought to play a role in global gene silencing and gene activation. In Helicobacter pylori, a bacterium with few dedicated transcriptional regulators, the structure of some promoters indicates a dependency on DNA topology. For example, the promoter of the major flagellar subunit gene flaA (ó28-dependent) has a shorter spacing of 13 nucleotides (nt) in comparison to the consensus promoter (15 nt). Supercoiling changes might be a mechanism of gene-specific and global transcriptional regulation in this bacterium. The aim of this study was to elucidate, if changes in global supercoiling have an influence on global gene regulation in H. pylori, and on the temporal regulation of the flagellar biosynthesis pathway in this organism. In the present work, global DNA supercoiling in H. pylori was visualized for the first time, by determining the supercoiling state of plasmids under different growth conditions. Using this method, we showed that cellular supercoiling was clearly growth phase-dependent in H. pylori. Coinciding with increased supercoiling during the growth phases, transcription of the flaA gene was increased, while the transcription of a second ó28-dependent gene with regular promoter spacing (HP0472) was reduced, supporting the hypothesis that growth phase-dependency of promoters might be mediated by changes of DNA topology. Supercoiling in H. pylori could be influenced in a reproducible fashion by inhibition of gyrase using novobiocin, which led to DNA relaxation and to a concomitant decrease of flaA transcript levels. Promoter spacer mutagenesis of the flaA promoter was performed. With flaA promoters of increased or reduced length, transcription of flaA was reduced, less susceptible to supercoiling changes, and, under specific conditions, inverted as compared to the wild type promoter. Transcriptional interdependence between the coupled topA-flaB genes and flaA was found by analysis of the flaA promoter mutants. Chromosomally linked gyrA-flgR, and topA-flaB genes were all dependent on supercoiling and coregulated with each other. Comprehensive transcript profiling (DNA microarrays) of wildtype H. pylori with and without novobiocin treatment identified a number of genes (10% of total genes), including flagellin, virulence and housekeeping genes, which were strongly dependent on and appeared to be synchronized by supercoiling changes (transcriptional up- or downregulation). These findings indicate a tightly coupled temporal regulation of flagellar biogenesis and metabolism in H. pylori, dependent on global supercoiling. A specific group of genes was also regulated in H. pylori by overexpression of Topoisomerase I, as detected by genome-wide analysis (DNA microarray). The DNA-bending protein HU is thought to be responsible for influencing the negative supercoiling of DNA, through its ability to wrap DNA. HU is encoded by the hup single gene in H. pylori, and constitutively expressed during the whole growth curve. An H. pylori hup mutant was constructed. H. pylori cells lacking HU protein were viable, but exhibited a severe growth defect. Our data indicate that the lack of HU dramatically changes global DNA supercoiling, indicating an important function of HU in chromosome structuring in H. pylori. Transcriptome analyses were performed and demonstrated that a total of 66 genes were differentially transcribed upon hup deletion, which include virulence genes and many other cell functions. The data indicate that HU might act as further important global regulator in H. pylori. Increased gene expression of heat shock proteins and a decreased transcription of the urease gene cluster may indicate a co-ordinated response of H. pylori to changes of environmental conditions in its specific ecological niche, mediated by HU. After the whole genomic sequences of H. pylori strains 26695 and J99 were published, two ORFs (HP0116 and HP0440) were presumptively annotated as topoisomerase I orthologs. HP0116 is the functional H. pylori topoisomerase I (TopA). HP0440 (topA2) was found in only few (5 of 43) strains. Western blot analysis indicated that TopA2 is antigenically different from TopA. TopA2 is transcribed in H. pylori, but the protein must be functionally different from TopA, since it is lacking one functionally essential zinc finger motif, and was not able to functionally complement a TopA-deficient E. coli. Like topA, topA2 was also transcribed in a growth phase-dependent manner. We did not find a function of TopA2 in DNA structuring or topology, but, in the present study, we were able for the first time to establish a unique function for TopA2 in global gene regulation, by comprehensive transcriptome analysis (DNA microarray). Transcriptome analysis showed that a total of 46 genes were differentially regulated upon topA2 deletion, which included flagellar genes and urease genes. These results suggest that TopA2 might act as a novel important regulator of both flagellar biosynthesis and urease in H. pylori.","Zusammenfassung Die Mechanismen der globalen Kontrolle der Genregulation bei Bakterien sind bisher noch wenig charakterisiert. Unterschiede in der globalen oder lokalen Topologie der chromosomalen DNA spielen wahrscheinlich eine Rolle bei der globalen Kontrolle der Genexpression. Bei Helicobacter pylori, einem Bakterium mit wenigen funktionell definierten Transkriptionsregulatoren, spricht die Struktur einiger Promotoren daf&#252;r, da&#223; sie durch die DNA-Topologie kontrolliert werden. Der Promotor des Hauptflagellingens flaA, ein Sigma-28 abh&#228;ngiger Promotor, hat ein gegen&#252;ber dem Konsensuspromotor (15 Nukleotide) verk&#252;rztes Spacing von 13 Nukleotiden. Ver&#228;nderungen der DNA-Superhelizit&#228;t k&#246;nnten ein Mechanismus der genspezifischen und globalen transkriptionellen Kontrolle in diesem Bakterium sein. Ziel dieser Untersuchungen war es zu zeigen, ob Ver&#228;nderungen des globalen Supercoiling-Niveaus einen Einflu&#223; auf die globale Genregulation von H. pylori haben und ob sie sich auf die zeitlich gesteuerte Regulation der Gei&#223;elbiosynthese (Beweglichkeitsorganell; essenzieller Virulenz- und Persistenzfaktor von H. pylori) in diesem Organismus auswirkt. In der vorliegenden Arbeit wurde das Niveau der DNA-Superspiralisierung bei H. pylori erstmals durch Visualisierung des Supercoilingzustands von Plasmiden unter unterschiedlichen Wachstumsbedingungen dargestellt. Wir konnten mit dieser Methode zeigen, da&#223; das zellul&#228;re Supercoiling-Niveau bei H. pylori in Abh&#228;ngigkeit von der Wachstumsphase stark variiert. In Wachstumsphasen mit erh&#246;htem Supercoiling war auch die Transkription des flaA-Gens erh&#246;ht, w&#228;hrend die Transkription eines zweiten Sigma-28-abh&#228;ngigen Gens mit normalem Promotorabstand (HP0472) reduziert war. Dieser Befund st&#252;tzte die Hypothese, da&#223; die wachstumsphasenabh&#228;ngige Aktivit&#228;t dieser Promotoren durch Ver&#228;nderungen der DNA-Topologie bewirkt wird. Das Supercoiling-Niveau konnte reproduzierbar durch Hemmung der Gyrase mit Novobiocin beeinflusst werden. Die Gegenwart von Novobiocin f&#252;hrte zur DNA-Relaxation und zu einem gleichzeitigen Absinken der Transkription von flaA. Es wurde eine gerichtete Mutagenese der Promotor-Spacer-Region des flaA-Promotors durchgef&#252;hrt. Die Verl&#228;ngerung oder Verk&#252;rzung des H.pylori flaA-Promotors f&#252;hrte zu einer verminderten Transkription von flaA, sowie zu reduzierter Empfindlichkeit der Promotoraktivit&#228;t gegen&#252;ber Ver&#228;nderungen des Supercoiling-Niveaus. Unter spezifischen Bedingungen war die Supercoiling-Abh&#228;ngigkeit umgekehrt im Vergleich zum Wildtyppromotor. Es konnte weiterhin eine inverse transkriptionelle Abh&#228;ngigkeit zwischen dem gekoppelten Genpaar topA-flaB und flaA durch Analyse der flaA-Promotormutanten nachgewiesen werden. Auch die chromosomal gekoppelten Gene gyrA und flgR sowie topA und flaB waren abh&#228;ngig vom Supercoiling-Zustand und miteinander koreguliert. Die Analyse des Transkriptoms von H.pylori-Wildtypbakterien mit DNA-Microarrays mit und ohne Novobiocinbehandlung f&#252;hrte zur Identifizierung von zahlreichen Genen (etwa 10% des Gesamttranskriptoms), deren Expression Supercoiling-abh&#228;ngig war und durch Ver&#228;nderungen des Supercoilings synchronisiert ver&#228;ndert werden konnte. Unter diesen waren Flagellin-, andere Virulenz-, sowie Grundstoffwechsel-Gene. Diese Befunde weisen auf eine enge Verbindung zwischen der chronologischen Kontrolle der Flagellen-Biogenese und des Metabolismus bei H. pylori, die gemeinsam durch das Supercoiling-Niveau gesteuert werden. Eine definierte Gruppe von Genen konnte bei H.pylori durch &#220;berexpression von Topoisomerase-1 reguliert werden. Das Protein HU beeinflusst ebenfalls das Supercoiling-Niveau von DNA durch seine F&#228;higkeit, DNA zu biegen. HU wird bei H. pylori durch das Gen hup kodiert und ist w&#228;hrend s&#228;mtlicher Wachstumsphasen konstitutiv exprimiert. Eine HU-defiziente Mutante wurde konstruiert. Zellen, die kein HU-Protein exprimierten, waren lebensf&#228;hig, zeigten aber einen deutlichen Wachstumsdefekt. Unsere Daten weisen daraufhin, da&#223; der Mangel von HU sich dramatisch auf das globale DNA-Supercoiling-Niveau auswirkt, und sprechen f&#252;r eine wichtige Funktion von HU bei der Kontrolle der DNA-Struktur von H. pylori. Mittels DNA-Microarray-Hybridisierung wurden die Transkriptome von H. pylori-Wildtyp und HU-Mutante miteinander verglichen. Die Ergebnisse zeigen, da&#223; insgesamt 66 Gene in der HU-Mutante differentiell transkribiert werden, darunter Virulenzgene und Gene f&#252;r viele andere Zellfunktionen. Diese Daten deuten darauf hin, da&#223; auch HU eine wichtige Rolle in der Kontrolle der globalen Genexpression bei H. pylori spielt. Die erh&#246;hte Expression von Hitzestress-Proteinen, verbunden mit einer verminderten Transkription des Ureasegenclusters, k&#246;nnte auf eine koordinierte Antwort der Bakterien auf Ver&#228;nderungen der Umweltbedingungen in ihrer spezifischen &#246;kologischen Nische hinweisen. Nach der Publikation der Gesamtgenomsequenzen von H.pylori 26695 und J99 wurden 2 ORFs (HP 0116 und HP 0440) als Topoisomerase-1-Orthologe annotiert. HP 0116 ist das funktionelle H.pylori Topoisomerase-1-Gen. HP 0442 (topA2) wurde nur in wenigen (5 aus 43) St&#228;mmen nachgewiesen. topA2 ist trotz seines seltenen Vorkommens kein Pseudogen und wird in H.pylori transkribiert. Westernblot-Analysen sprechen daf&#252;r, da&#223; TopA2 sich antigenetisch von TopA unterscheidet. Das TopA2-Protein unterscheidet sich ebenfalls funktionell von TopA, da ihm ein funktionell essentielles Zinkfingermotiv fehlt. TopA2 konnte au&#223;erdem eine TopA-defiziente E.coli-Mutante nicht funktionell komplementieren. Wie bei topA war auch die Transkription von topA2 von der Wachstumsphase abh&#228;ngig. Eine Funktion von TopA2 bei der Kontrolle der DNA-Topologie konnte bisher nicht nachgewiesen werden, Transkriptomanalysen zeigten aber, dass TopA2 eine klare Regulationsfunktion hat, da die topA2-Mutante gravierende Ver&#228;nderungen des Transkriptoms gegen&#252;ber dem Wildtyp aufwies. Diese Untersuchungen zeigten, da&#223; 46 Gene in der TopA2-Mutante differentiell reguliert wurden, darunter Flagellengene und Ureasegene. Die Ergebnisse sprechen daf&#252;r, da&#223; TopA2 ein weiterer wichtiger Regulator von sowohl Flagellenbiosynthese als auch Ureasebildung bei H.pylori sein k&#246;nnte."]},{"key":"dc:format.medium","label":"Dc Format Medium","values":["application/pdf"]},{"key":"dc:title","label":"Title","values":["The role of DNA supercoiling in the coordinated regulation of gene expression in Helicobacter pylori"]}]}],"canonical_facts":{"dc:contributor":["Suerbaum, Sebastian"],"dc:creator":["Ye, Fang"],"dc:description.abstract":["Summary Mechanisms of global gene regulation in bacteria are not well characterized yet. Changes in global or local supercoiling of chromosomal DNA are thought to play a role in global gene silencing and gene activation. In Helicobacter pylori, a bacterium with few dedicated transcriptional regulators, the structure of some promoters indicates a dependency on DNA topology. For example, the promoter of the major flagellar subunit gene flaA (ó28-dependent) has a shorter spacing of 13 nucleotides (nt) in comparison to the consensus promoter (15 nt). Supercoiling changes might be a mechanism of gene-specific and global transcriptional regulation in this bacterium. The aim of this study was to elucidate, if changes in global supercoiling have an influence on global gene regulation in H. pylori, and on the temporal regulation of the flagellar biosynthesis pathway in this organism. In the present work, global DNA supercoiling in H. pylori was visualized for the first time, by determining the supercoiling state of plasmids under different growth conditions. Using this method, we showed that cellular supercoiling was clearly growth phase-dependent in H. pylori. Coinciding with increased supercoiling during the growth phases, transcription of the flaA gene was increased, while the transcription of a second ó28-dependent gene with regular promoter spacing (HP0472) was reduced, supporting the hypothesis that growth phase-dependency of promoters might be mediated by changes of DNA topology. Supercoiling in H. pylori could be influenced in a reproducible fashion by inhibition of gyrase using novobiocin, which led to DNA relaxation and to a concomitant decrease of flaA transcript levels. Promoter spacer mutagenesis of the flaA promoter was performed. With flaA promoters of increased or reduced length, transcription of flaA was reduced, less susceptible to supercoiling changes, and, under specific conditions, inverted as compared to the wild type promoter. Transcriptional interdependence between the coupled topA-flaB genes and flaA was found by analysis of the flaA promoter mutants. Chromosomally linked gyrA-flgR, and topA-flaB genes were all dependent on supercoiling and coregulated with each other. Comprehensive transcript profiling (DNA microarrays) of wildtype H. pylori with and without novobiocin treatment identified a number of genes (10% of total genes), including flagellin, virulence and housekeeping genes, which were strongly dependent on and appeared to be synchronized by supercoiling changes (transcriptional up- or downregulation). These findings indicate a tightly coupled temporal regulation of flagellar biogenesis and metabolism in H. pylori, dependent on global supercoiling. A specific group of genes was also regulated in H. pylori by overexpression of Topoisomerase I, as detected by genome-wide analysis (DNA microarray). The DNA-bending protein HU is thought to be responsible for influencing the negative supercoiling of DNA, through its ability to wrap DNA. HU is encoded by the hup single gene in H. pylori, and constitutively expressed during the whole growth curve. An H. pylori hup mutant was constructed. H. pylori cells lacking HU protein were viable, but exhibited a severe growth defect. Our data indicate that the lack of HU dramatically changes global DNA supercoiling, indicating an important function of HU in chromosome structuring in H. pylori. Transcriptome analyses were performed and demonstrated that a total of 66 genes were differentially transcribed upon hup deletion, which include virulence genes and many other cell functions. The data indicate that HU might act as further important global regulator in H. pylori. Increased gene expression of heat shock proteins and a decreased transcription of the urease gene cluster may indicate a co-ordinated response of H. pylori to changes of environmental conditions in its specific ecological niche, mediated by HU. After the whole genomic sequences of H. pylori strains 26695 and J99 were published, two ORFs (HP0116 and HP0440) were presumptively annotated as topoisomerase I orthologs. HP0116 is the functional H. pylori topoisomerase I (TopA). HP0440 (topA2) was found in only few (5 of 43) strains. Western blot analysis indicated that TopA2 is antigenically different from TopA. TopA2 is transcribed in H. pylori, but the protein must be functionally different from TopA, since it is lacking one functionally essential zinc finger motif, and was not able to functionally complement a TopA-deficient E. coli. Like topA, topA2 was also transcribed in a growth phase-dependent manner. We did not find a function of TopA2 in DNA structuring or topology, but, in the present study, we were able for the first time to establish a unique function for TopA2 in global gene regulation, by comprehensive transcriptome analysis (DNA microarray). Transcriptome analysis showed that a total of 46 genes were differentially regulated upon topA2 deletion, which included flagellar genes and urease genes. These results suggest that TopA2 might act as a novel important regulator of both flagellar biosynthesis and urease in H. pylori.","Zusammenfassung Die Mechanismen der globalen Kontrolle der Genregulation bei Bakterien sind bisher noch wenig charakterisiert. Unterschiede in der globalen oder lokalen Topologie der chromosomalen DNA spielen wahrscheinlich eine Rolle bei der globalen Kontrolle der Genexpression. Bei Helicobacter pylori, einem Bakterium mit wenigen funktionell definierten Transkriptionsregulatoren, spricht die Struktur einiger Promotoren daf&#252;r, da&#223; sie durch die DNA-Topologie kontrolliert werden. Der Promotor des Hauptflagellingens flaA, ein Sigma-28 abh&#228;ngiger Promotor, hat ein gegen&#252;ber dem Konsensuspromotor (15 Nukleotide) verk&#252;rztes Spacing von 13 Nukleotiden. Ver&#228;nderungen der DNA-Superhelizit&#228;t k&#246;nnten ein Mechanismus der genspezifischen und globalen transkriptionellen Kontrolle in diesem Bakterium sein. Ziel dieser Untersuchungen war es zu zeigen, ob Ver&#228;nderungen des globalen Supercoiling-Niveaus einen Einflu&#223; auf die globale Genregulation von H. pylori haben und ob sie sich auf die zeitlich gesteuerte Regulation der Gei&#223;elbiosynthese (Beweglichkeitsorganell; essenzieller Virulenz- und Persistenzfaktor von H. pylori) in diesem Organismus auswirkt. In der vorliegenden Arbeit wurde das Niveau der DNA-Superspiralisierung bei H. pylori erstmals durch Visualisierung des Supercoilingzustands von Plasmiden unter unterschiedlichen Wachstumsbedingungen dargestellt. Wir konnten mit dieser Methode zeigen, da&#223; das zellul&#228;re Supercoiling-Niveau bei H. pylori in Abh&#228;ngigkeit von der Wachstumsphase stark variiert. In Wachstumsphasen mit erh&#246;htem Supercoiling war auch die Transkription des flaA-Gens erh&#246;ht, w&#228;hrend die Transkription eines zweiten Sigma-28-abh&#228;ngigen Gens mit normalem Promotorabstand (HP0472) reduziert war. Dieser Befund st&#252;tzte die Hypothese, da&#223; die wachstumsphasenabh&#228;ngige Aktivit&#228;t dieser Promotoren durch Ver&#228;nderungen der DNA-Topologie bewirkt wird. Das Supercoiling-Niveau konnte reproduzierbar durch Hemmung der Gyrase mit Novobiocin beeinflusst werden. Die Gegenwart von Novobiocin f&#252;hrte zur DNA-Relaxation und zu einem gleichzeitigen Absinken der Transkription von flaA. Es wurde eine gerichtete Mutagenese der Promotor-Spacer-Region des flaA-Promotors durchgef&#252;hrt. Die Verl&#228;ngerung oder Verk&#252;rzung des H.pylori flaA-Promotors f&#252;hrte zu einer verminderten Transkription von flaA, sowie zu reduzierter Empfindlichkeit der Promotoraktivit&#228;t gegen&#252;ber Ver&#228;nderungen des Supercoiling-Niveaus. Unter spezifischen Bedingungen war die Supercoiling-Abh&#228;ngigkeit umgekehrt im Vergleich zum Wildtyppromotor. Es konnte weiterhin eine inverse transkriptionelle Abh&#228;ngigkeit zwischen dem gekoppelten Genpaar topA-flaB und flaA durch Analyse der flaA-Promotormutanten nachgewiesen werden. Auch die chromosomal gekoppelten Gene gyrA und flgR sowie topA und flaB waren abh&#228;ngig vom Supercoiling-Zustand und miteinander koreguliert. Die Analyse des Transkriptoms von H.pylori-Wildtypbakterien mit DNA-Microarrays mit und ohne Novobiocinbehandlung f&#252;hrte zur Identifizierung von zahlreichen Genen (etwa 10% des Gesamttranskriptoms), deren Expression Supercoiling-abh&#228;ngig war und durch Ver&#228;nderungen des Supercoilings synchronisiert ver&#228;ndert werden konnte. Unter diesen waren Flagellin-, andere Virulenz-, sowie Grundstoffwechsel-Gene. Diese Befunde weisen auf eine enge Verbindung zwischen der chronologischen Kontrolle der Flagellen-Biogenese und des Metabolismus bei H. pylori, die gemeinsam durch das Supercoiling-Niveau gesteuert werden. Eine definierte Gruppe von Genen konnte bei H.pylori durch &#220;berexpression von Topoisomerase-1 reguliert werden. Das Protein HU beeinflusst ebenfalls das Supercoiling-Niveau von DNA durch seine F&#228;higkeit, DNA zu biegen. HU wird bei H. pylori durch das Gen hup kodiert und ist w&#228;hrend s&#228;mtlicher Wachstumsphasen konstitutiv exprimiert. Eine HU-defiziente Mutante wurde konstruiert. Zellen, die kein HU-Protein exprimierten, waren lebensf&#228;hig, zeigten aber einen deutlichen Wachstumsdefekt. Unsere Daten weisen daraufhin, da&#223; der Mangel von HU sich dramatisch auf das globale DNA-Supercoiling-Niveau auswirkt, und sprechen f&#252;r eine wichtige Funktion von HU bei der Kontrolle der DNA-Struktur von H. pylori. Mittels DNA-Microarray-Hybridisierung wurden die Transkriptome von H. pylori-Wildtyp und HU-Mutante miteinander verglichen. Die Ergebnisse zeigen, da&#223; insgesamt 66 Gene in der HU-Mutante differentiell transkribiert werden, darunter Virulenzgene und Gene f&#252;r viele andere Zellfunktionen. Diese Daten deuten darauf hin, da&#223; auch HU eine wichtige Rolle in der Kontrolle der globalen Genexpression bei H. pylori spielt. Die erh&#246;hte Expression von Hitzestress-Proteinen, verbunden mit einer verminderten Transkription des Ureasegenclusters, k&#246;nnte auf eine koordinierte Antwort der Bakterien auf Ver&#228;nderungen der Umweltbedingungen in ihrer spezifischen &#246;kologischen Nische hinweisen. Nach der Publikation der Gesamtgenomsequenzen von H.pylori 26695 und J99 wurden 2 ORFs (HP 0116 und HP 0440) als Topoisomerase-1-Orthologe annotiert. HP 0116 ist das funktionelle H.pylori Topoisomerase-1-Gen. HP 0442 (topA2) wurde nur in wenigen (5 aus 43) St&#228;mmen nachgewiesen. topA2 ist trotz seines seltenen Vorkommens kein Pseudogen und wird in H.pylori transkribiert. Westernblot-Analysen sprechen daf&#252;r, da&#223; TopA2 sich antigenetisch von TopA unterscheidet. Das TopA2-Protein unterscheidet sich ebenfalls funktionell von TopA, da ihm ein funktionell essentielles Zinkfingermotiv fehlt. TopA2 konnte au&#223;erdem eine TopA-defiziente E.coli-Mutante nicht funktionell komplementieren. Wie bei topA war auch die Transkription von topA2 von der Wachstumsphase abh&#228;ngig. Eine Funktion von TopA2 bei der Kontrolle der DNA-Topologie konnte bisher nicht nachgewiesen werden, Transkriptomanalysen zeigten aber, dass TopA2 eine klare Regulationsfunktion hat, da die topA2-Mutante gravierende Ver&#228;nderungen des Transkriptoms gegen&#252;ber dem Wildtyp aufwies. Diese Untersuchungen zeigten, da&#223; 46 Gene in der TopA2-Mutante differentiell reguliert wurden, darunter Flagellengene und Ureasegene. Die Ergebnisse sprechen daf&#252;r, da&#223; TopA2 ein weiterer wichtiger Regulator von sowohl Flagellenbiosynthese als auch Ureasebildung bei H.pylori sein k&#246;nnte."],"dc:format.medium":["application/pdf"],"dc:publisher":["Universität Würzburg"],"dc:subject":["Supercoiling","regulation","flagella"],"dc:title":["The role of DNA supercoiling in the coordinated regulation of gene expression in Helicobacter pylori"],"dc:type":["doctoralThesis"],"thesis:degree_level":["thesis.doctoral"],"thesis:institution_name":["Universität Würzburg"]},"updated_at":"2026-07-24T06:11:27Z"}