TY - JOUR A1 - Mayr, Eva-Maria A1 - Ramírez-Zavala, Bernardo A1 - Krüger, Ines A1 - Morschhäuser, Joachim T1 - A Zinc Cluster Transcription Factor Contributes to the Intrinsic Fluconazole Resistance of Candida auris JF - mSphere N2 - ABSTRACT The recently emerged pathogenic yeast Candida auris is a major concern for human health, because it is easily transmissible, difficult to eradicate from hospitals, and highly drug resistant. Most C. auris isolates are resistant to the widely used antifungal drug fluconazole due to mutations in the target enzyme Erg11 and high activity of efflux pumps, such as Cdr1. In the well-studied, distantly related yeast Candida albicans, overexpression of drug efflux pumps also is a major mechanism of acquired fluconazole resistance and caused by gain-of-function mutations in the zinc cluster transcription factors Mrr1 and Tac1. In this study, we investigated a possible involvement of related transcription factors in efflux pump expression and fluconazole resistance of C. auris. The C. auris genome contains three genes encoding Mrr1 homologs and two genes encoding Tac1 homologs, and we generated deletion mutants lacking these genes in two fluconazole-resistant strains from clade III and clade IV. Deletion of TAC1b decreased the resistance to fluconazole and voriconazole in both strain backgrounds, demonstrating that the encoded transcription factor contributes to azole resistance in C. auris strains from different clades. CDR1 expression was not or only minimally affected in the mutants, indicating that Tac1b can confer increased azole resistance by a CDR1-independent mechanism. IMPORTANCE Candida auris is a recently emerged pathogenic yeast that within a few years after its initial description has spread all over the globe. C. auris is a major concern for human health, because it can cause life-threatening systemic infections, is easily transmissible, and is difficult to eradicate from hospital environments. Furthermore, C. auris is highly drug resistant, especially against the widely used antifungal drug fluconazole. Mutations in the drug target and high activity of efflux pumps are associated with azole resistance, but it is not known how drug resistance genes are regulated in C. auris. We have investigated the potential role of several candidate transcriptional regulators in the intrinsic fluconazole resistance of C. auris and identified a transcription factor that contributes to the high resistance to fluconazole and voriconazole of two C. auris strains from different genetic clades, thereby providing insight into the molecular basis of drug resistance of this medically important yeast." KW - Candida auris KW - fluconazole resistance KW - transcription factor Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229937 VL - 5 IS - 2 ER - TY - JOUR A1 - Tu, Xiaolin A1 - Chen, Jianquan A1 - Lim, Joohyun A1 - Karner, Courtney M. A1 - Lee, Seung-Yon A1 - Heisig, Julia A1 - Wiese, Cornelia A1 - Surendran, Kameswaran A1 - Kopan, Raphael A1 - Gessler, Manfred A1 - Long, Fanxin T1 - Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1 JF - PLoS Genetics N2 - Notch signaling between neighboring cells controls many cell fate decisions in metazoans both during embryogenesis and in postnatal life. Previously, we uncovered a critical role for physiological Notch signaling in suppressing osteoblast differentiation in vivo. However, the contribution of individual Notch receptors and the downstream signaling mechanism have not been elucidated. Here we report that removal of Notch2, but not Notch1, from the embryonic limb mesenchyme markedly increased trabecular bone mass in adolescent mice. Deletion of the transcription factor RBPjk, a mediator of all canonical Notch signaling, in the mesenchymal progenitors but not the more mature osteoblast-lineage cells, caused a dramatic high-bone-mass phenotype characterized by increased osteoblast numbers, diminished bone marrow mesenchymal progenitor pool, and rapid age-dependent bone loss. Moreover, mice deficient in Hey1 and HeyL, two target genes of Notch-RBPjk signaling, exhibited high bone mass. Interestingly, Hey1 bound to and suppressed the NFATc1 promoter, and RBPjk deletion increased NFATc1 expression in bone. Finally, pharmacological inhibition of NFAT alleviated the high-bone-mass phenotype caused by RBPjk deletion. Thus, Notch-RBPjk signaling functions in part through Hey1-mediated inhibition of NFATc1 to suppress osteoblastogenesis, contributing to bone homeostasis in vivo. KW - expression KW - axial skeletal defects KW - transcription factor KW - alagille syndrome KW - osteoblast differentiation KW - human jagged1 KW - aortic-valve KW - T cells KW - mutations KW - mice Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133490 VL - 8 IS - 3 ER - TY - JOUR A1 - Szabó, Áron A1 - Papin, Christian A1 - Zorn, Daniela A1 - Ponien, Prishila A1 - Weber, Frank A1 - Raabe, Thomas A1 - Rouyer, François T1 - The CK2 Kinase Stabilizes CLOCK and Represses Its Activity in the Drosophila Circadian Oscillator JF - PLoS Biology N2 - Phosphorylation is a pivotal regulatory mechanism for protein stability and activity in circadian clocks regardless of their evolutionary origin. It determines the speed and strength of molecular oscillations by acting on transcriptional activators and their repressors, which form negative feedback loops. In Drosophila, the CK2 kinase phosphorylates and destabilizes the PERIOD (PER) and TIMELESS (TIM) proteins, which inhibit CLOCK (CLK) transcriptional activity. Here we show that CK2 also targets the CLK activator directly. Downregulating the activity of the catalytic alpha subunit of CK2 induces CLK degradation, even in the absence of PER and TIM. Unexpectedly, the regulatory beta subunit of the CK2 holoenzyme is not required for the regulation of CLK stability. In addition, downregulation of \(CK2\alpha\) activity decreases CLK phosphorylation and increases per and tim transcription. These results indicate that CK2 inhibits CLK degradation while reducing its activity. Since the CK1 kinase promotes CLK degradation, we suggest that CLK stability and transcriptional activity result from counteracting effects of CK1 and CK2. KW - negative feedback loop KW - PER-TIM complex KW - posttranslational regulation KW - transcription factor KW - in-vivo KW - behavioral rhythms KW - proteins period KW - beta-subunit KW - phosphorylation KW - gene KW - CT, circadian time KW - LD, light:dark KW - DD, constant darkness Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-127234 SN - 1545-7885 VL - 11 IS - 8 ER - TY - THES A1 - Dabas, Neelam T1 - Control of Nitrogen Regulated Virulence Traits of the Human Fungal Pathogen Candida albicans T1 - Steuerung von stickstoffregulierten Virulenzeigenschaften des human-pathogenen Pilzes Candida albicans N2 - Der Hefepilz Candida albicans ist ein harmloser Kommensale auf den Schleimhäuten des Gastrointestinal- und Urogenitaltrakts der meisten gesunden Menschen. Bei einer Störung der natürlichen Mikroflora oder des Wirtsimmunsystems kann der Pilz jedoch auch oberflächliche und sogar systemische Infektionen verursachen. C. albicans weist eine Reihe von Eigenschaften auf, die zur Virulenz des Erregers beitragen. Dazu gehören die Adhärenz an unterschiedliche Wirtsoberflächen, die morphologische Variabilität des Pilzes und die Sekretion von Aspartatproteasen. Die Expression vieler dieser Virulenzfaktoren wird unter anderem durch die Verfügbarkeit von Stickstoff reguliert. Unter Stickstoffmangelbedingungen wechselt C. albicans vom Wachstum als sprossende Hefe zum filamentösen Wachstum, und dieser Wechsel wird durch die Ammoniumpermease Mep2p reguliert. Wie die Induktion des filamentösen Wachstums durch Mep2p kontrolliert wird, ist jedoch weitgehend unbekannt. In der vorliegenden Arbeit wurde eine Mutationsanalyse von Mep2p durchgeführt, um Aminosäuren zu identifizieren, die an der Signalfunktion dieser Permease beteiligt sind. Die C-terminale cytoplasmatische Domäne von Mep2p wird für den Ammoniumtransport nicht benötigt, ist jedoch essentiell für die Signaltransduktion. Progressive C-terminale Verkürzungen von Mep2p zeigten, dass ein MEP2DC433-Allel immer noch in der Lage war, das filamentöse Wachstum zu induzieren, wohingegen die Deletion einer weiteren Aminosäure die Morphogenese blockierte. Das Tyrosin an Position 433 (Y433) ist deshalb die letzte Aminosäure, die für die Signalfunktion von Mep2p essentiell ist. Um besser zu verstehen, wie die Signalaktivität von Mep2p durch die Verfügbarkeit und den Transport von Ammonium reguliert wird, wurden verschiedene hochkonservierte Aminosäuren mutiert, die vermutlich an der Bindung oder dem Transport von Ammonium in die Zelle beteiligt sind. Die Mutation von D180, von dem postuliert wurde, dass es den initialen Kontakt mit extrazellulärem Ammonium ermöglicht, oder der im Transportkanal lokalisierten Histidine H188 und H342 hatte zur Folge, dass Mep2p nicht mehr exprimiert wurde, so dass diese Aminosäuren vermutlich für die Proteinstabilität wichtig sind. Die Mutation von F239, das zusammen mit F126 eine extracytosolische Pforte zur Transportpore bildet, verhinderte trotz korrekter Membranlokalisation sowohl den Ammoniumtransport als auch das filamentöse Wachstum. Allerdings führte auch die Mutation von W167, das vermutlich zusammen mit Y122, F126 und S243 an der Rekrutierung des Ammoniumions an der extrazellulären Seite der Membran beteiligt ist, zur Blockierung des filamentösen Wachstums, obwohl der Ammoniumtransport kaum beeinflusst war. Dies zeigte, dass die intrazelluäre Signaltransduktion durch extrazelluläre Veränderungen in Mep2p beeinflusst werden kann. Die Mutation von Y122 reduzierte die Ammoniumaufnahme weitaus starker als die Mutation von W167, erlaubte jedoch immer noch ein effizientes filamentöses Wachstum. Die Signalaktivität von Mep2p ist deshalb offensichtlich nicht direkt mit der Transportaktivität des Proteins korreliert. Ein wichtiger Aspekt in der Fähigkeit von Mep2p, die Morphogenese zu stimulieren, ist die vergleichsweise starke Expression des Proteins. Um die Regulation der MEP2-Expression aufzuklären, wurden die cis-regulatorischen Sequenzen und die trans-aktivierenden Faktoren, die die MEP2-Induktion unter Stickstoffmangel vermitteln, identifiziert. Eine Promotoranalyse zeigte, dass zwei mutmaßliche Bindungsstellen für GATA-Transkriptionsfaktoren eine zentrale Rolle in der MEP2-Expression haben, da die Deletion oder Mutation dieser GATAA-Sequenzen die Expression von MEP2 stark reduzierte. Um die Rolle der GATA-Transkriptionsfaktoren Gln3p und Gat1p bei der Regulation der MEP2-Expression zu untersuchen, wurden Mutanten hergestellt, in denen die entsprechenden Gene deletiert waren. Die Expression von Mep2p war in gln3D und gat1D Einzelmutanten stark verringert und in gln3D gat1D Doppelmutanten nicht mehr nachweisbar. Die Deletion von GLN3 hatte auch eine starke Reduktion des filamentösen Wachstums zur Folge, die durch die konstitutive Expression von MEP2 unter Kontrolle des ADH1-Promotors aufgehoben wurde. Dagegen hatte die Deletion von GAT1 keinen Einfluss auf das filamentöse Wachstum. Überraschenderweise war das filamentöse Wachstum in den gat1D Mutanten teilweise unabhängig von Mep2p, was darauf hinwies, dass in Abwesenheit von GAT1 andere Signalwege aktiviert werden, die die Morphogenese stimulieren. Diese Ergebnisse zeigten, dass die GATA-Transkriptionsfaktoren Gln3p und Gat1p die Expression der Ammoniumpermease MEP2 kontrollieren und dass Gln3p auch ein wichtiger Regulator des durch Stickstoffmangel induzierten filamentösen Wachstums von C. albicans ist. Mutanten, in denen die beiden GATA-Transkriptionsfaktoren Gln3p und Gat1p fehlten, waren nicht mehr in der Lage, in einem Medium zu wachsen, das bovines Serumalbumin (BSA) als einzige Stickstoffquelle enthält. Die Fähigkeit von C. albicans, Proteine als einzige Stickstoffquelle zum Wachstum zu verwenden, wird durch die sekretierte Aspartatprotease Sap2p, die die Proteine zu Peptiden abbaut, und durch Oligopeptidtransporter, die diese Peptide in die Zelle aufnehmen, vermittelt. Der Wachstumsdefekt der gln3D gat1D Doppelmutanten war hauptsächlich durch einen Defekt in der SAP2-Expression verursacht, da die Expression von SAP2 unter Kontrolle des konstitutiven ADH1-Promotors die Fähigkeit zum Wachstum auf BSA wieder herstellte. Es zeigte sich, dass Gln3p und Gat1p die Expression des Transkriptionsfaktors STP1, der für die Induktion von SAP2 in Gegenwart von Proteinen notwendig ist, regulieren. Bei einer Expression von STP1 unter Kontrolle des induzierbaren Tet-Promotors waren Gln3p und Gat1p nicht mehr notwendig für das Wachstum auf Proteinen. Wenn bevorzugte Stickstoffquellen verfügbar sind, wird SAP2 auch in Gegenwart von Proteinen reprimiert, und diese Stickstoff-Katabolitrepression korrelierte mit einer reduzierten STP1-Expression. Die Expression von STP1 unter Kontrolle des Tet-Promotors hob diese Repression auf, was zeigte, dass die Regulation der STP1-Expression durch die GATA-Transkriptionsfaktoren eine Schlüsselrolle sowohl bei der positiven als auch bei der negativen Kontrolle der SAP2-Expression spielt. Eine regulatorische Kaskade, in der die Expression des spezifischen Transkriptionsfaktors Stp1p durch die allgemeinen Regulatoren Gln3p und Gat1p kontrolliert wird, stellt die Expression von SAP2 in C. albicans deshalb unter Stickstoffkontrolle und gewährleistet eine angepasste Expression dieses Virulenzfaktors. Die Ergebnisse dieser Arbeit illustrieren, dass die GATA-Faktoren Gln3p und Gat1p zum Teil überlappende aber auch spezifische Funktionen in der Anpassung von C. albicans an die Verfügbarkeit verschiedener Stickstoffquellen haben. Diese Anpassungsmechanismen spielen auch eine Rolle in der Pathogenität des Pilzes, wobei die relative Bedeutung von Gln3p und Gat1p vom Zielgen und der Stickstoffquelle abhängt. Diese Erkenntnisse geben einen vertieften Eiblick in die molekularen Grundlagen der Anpassung von C. albicans an unterschiedliche Umweltbedingungen. N2 - The yeast Candida albicans is a member of the normal microflora on the mucosal surfaces of the gastrointestinal and urogenital tract in healthy persons. However, it is an opportunistic pathogen that can cause a range of infections from superficial to disseminated, in response to perturbation of the normal microflora or alterations in the host immunity. C. albicans exhibits a variety of characteristics such as adhesion, morphogenetic switching and secreted aspartic protease production that contribute to its virulence. Expression of many of these virulence factors is controlled by the availability of essential element, nitrogen. C. albicans undergoes morphogenetic transition to form filaments under nitrogen starvation conditions and this switch is controlled by the ammonium permease Mep2p. However, little is known about how this signaling function of Mep2p is regulated. Mutational analysis of Mep2p was carried out to identify the residues that confer signaling activity to this permease. The C-terminal cytoplasmic tail of Mep2p contains a signaling domain that is dispensable for ammonium transport but essential for the signaling activity of Mep2p. In this work, progressive C-terminal truncations analysis demonstrated that a MEP2DC433 allele was still able to induce filamentation while nitrogen starvation-induced filamentous growth was abolished in cells expressing a MEP2DC432 allele. Therefore, tyrosine at position 433 (Y433) is the last amino acid in Mep2p that is essential for signaling. To gain insights into how the signaling activity of Mep2p is regulated by ammonium availability and transport, conserved residues that have been implicated in ammonium binding or uptake were mutated. Mutation of D180, which has been proposed to mediate initial contact with extracellular ammonium, or the pore-lining residues H188 and H342 abolished Mep2p expression, indicating that these residues are important for protein stability. Mutation of F239, which together with F126 is predicted to form an extracytosolic gate to the conductance channel, abolished both ammonium uptake and Mep2p-dependent filamentation, despite proper localization of the protein. On the other hand, mutation of W167, which is assumed to participate along with Y122, F126, and S243 in the recruitment and coordination of the ammonium ion at the extracytosolic side of the cell membrane, also abolished filamentation without having a strong impact on ammonium transport, demonstrating that extracellular alterations in Mep2p can affect intracellular signaling. Mutation of Y122 reduced ammonium uptake much more strongly than mutation of W167 but still allowed efficient filamentation, indicating that the signaling activity of Mep2p is not directly correlated with its transport activity. An important aspect in the ability of Mep2p to stimulate filamentation in response to nitrogen limitation is its high expression levels. The cis-acting sequences and trans-acting regulators that mediate MEP2 induction in response to nitrogen limitation were identified. Promoter analysis revealed that two putative binding sites for GATA transcription factors have a central role in MEP2 expression, as deletion of the region containing these sites or mutation of the GATAA sequences in the full-length MEP2 promoter strongly reduced MEP2 expression. To elucidate the roles of the GATA transcription factors GLN3 and GAT1 in regulating MEP2 expression, mutants lacking one or both of these transcription factors were constructed. Mep2p expression was strongly reduced in gln3D and gat1D single mutants and virtually abolished in gln3D gat1D double mutants. Deletion of GLN3 strongly inhibited filamentous growth under limiting nitrogen conditions, which could be rescued by constitutive expression of MEP2 from the ADH1 promoter. In contrast, inactivation of GAT1 had no effect on filamentation. Surprisingly, filamentation became partially independent of the presence of a functional MEP2 gene in the gat1D mutants, indicating that the loss of GAT1 function results in the activation of other pathways that induce filamentous growth. These findings demonstrated that the GATA transcription factors Gln3p and Gat1p control expression of the MEP2 ammonium permease and that GLN3 is also an important regulator of nitrogen starvation-induced filamentous growth in C. albicans. C. albicans mutants lacking both the GATA transcription factors Gln3p and Gat1p were unable to grow in a medium containing an alternative nitrogen source, bovine serum albumin (BSA) as the sole nitrogen source. The ability to utilize proteins as sole source of nitrogen for growth of C. albicans is conferred by the secreted aspartic protease Sap2p, which degrades the proteins, and oligopeptide transporters that mediate uptake of the proteolytic products into cell. The growth defect of gln3D gat1D mutants was mainly caused by their inability to express the SAP2 gene, as SAP2 expression from the constitutive ADH1 promoter restored the ability of the mutants to grow on BSA. Expression of STP1, which encodes a transcription factor that is required for SAP2 induction in the presence of proteins, was regulated by Gln3p and Gat1p. Forced expression of STP1 from a tetracycline-inducible promoter bypassed the requirement of the GATA transcription factors for growth of C. albicans on proteins. When preferred nitrogen sources are available, SAP2 is repressed and this nitrogen catabolite repression of SAP2 was correlated with downregulation of STP1 under these conditions. Tetracycline-induced STP1 expression abolished nitrogen catabolite repression of SAP2, demonstrating that regulation of STP1 expression levels by the GATA transcription factors is a key aspect of both positive and negative regulation of SAP2 expression. Therefore, by using a regulatory cascade in which expression of the specific transcription factor Stp1p is controlled by the general regulators Gln3p and Gat1p, C. albicans places SAP2 expression under nitrogen control and ensures proper expression of this virulence determinant. In summary, the present study illustrated how GATA factors, Gln3p and Gat1p, play partially overlapping, but distinct roles, in mediating the appropriate responses of C. albicans to the availability of different nitrogen sources. These responses are also determinants of pathogenicity of the fungus. The relative contributions of Gln3p and Gat1p vary with their target genes and the availability of nitrogen source. Overall, these findings provide us with a better understanding of the molecular basis of some of the important processes that help in adaptation of C. albicans to various environmental conditions. The yeast Candida albicans is a member of the normal microflora on the mucosal surfaces of the gastrointestinal and urogenital tract in healthy persons. However, it is an opportunistic pathogen that can cause a range of infections from superficial to disseminated, in response to perturbation of the normal microflora or alterations in the host immunity. C. albicans exhibits a variety of characteristics such as adhesion, morphogenetic switching and secreted aspartic protease production that contribute to its virulence. Expression of many of these virulence factors is controlled by the availability of essential element, nitrogen. C. albicans undergoes morphogenetic transition to form filaments under nitrogen starvation conditions and this switch is controlled by the ammonium permease Mep2p. However, little is known about how this signaling function of Mep2p is regulated. Mutational analysis of Mep2p was carried out to identify the residues that confer signaling activity to this permease. The C-terminal cytoplasmic tail of Mep2p contains a signaling domain that is dispensable for ammonium transport but essential for the signaling activity of Mep2p. In this work, progressive C-terminal truncations analysis demonstrated that a MEP2DC433 allele was still able to induce filamentation while nitrogen starvation-induced filamentous growth was abolished in cells expressing a MEP2DC432 allele. Therefore, tyrosine at position 433 (Y433) is the last amino acid in Mep2p that is essential for signaling. To gain insights into how the signaling activity of Mep2p is regulated by ammonium availability and transport, conserved residues that have been implicated in ammonium binding or uptake were mutated. Mutation of D180, which has been proposed to mediate initial contact with extracellular ammonium, or the pore-lining residues H188 and H342 abolished Mep2p expression, indicating that these residues are important for protein stability. Mutation of F239, which together with F126 is predicted to form an extracytosolic gate to the conductance channel, abolished both ammonium uptake and Mep2p-dependent filamentation, despite proper localization of the protein. On the other hand, mutation of W167, which is assumed to participate along with Y122, F126, and S243 in the recruitment and coordination of the ammonium ion at the extracytosolic side of the cell membrane, also abolished filamentation without having a strong impact on ammonium transport, demonstrating that extracellular alterations in Mep2p can affect intracellular signaling. Mutation of Y122 reduced ammonium uptake much more strongly than mutation of W167 but still allowed efficient filamentation, indicating that the signaling activity of Mep2p is not directly correlated with its transport activity. An important aspect in the ability of Mep2p to stimulate filamentation in response to nitrogen limitation is its high expression levels. The cis-acting sequences and trans-acting regulators that mediate MEP2 induction in response to nitrogen limitation were identified. Promoter analysis revealed that two putative binding sites for GATA transcription factors have a central role in MEP2 expression, as deletion of the region containing these sites or mutation of the GATAA sequences in the full-length MEP2 promoter strongly reduced MEP2 expression. To elucidate the roles of the GATA transcription factors GLN3 and GAT1 in regulating MEP2 expression, mutants lacking one or both of these transcription factors were constructed. Mep2p expression was strongly reduced in gln3D and gat1D single mutants and virtually abolished in gln3D gat1D double mutants. Deletion of GLN3 strongly inhibited filamentous growth under limiting nitrogen conditions, which could be rescued by constitutive expression of MEP2 from the ADH1 promoter. In contrast, inactivation of GAT1 had no effect on filamentation. Surprisingly, filamentation became partially independent of the presence of a functional MEP2 gene in the gat1D mutants, indicating that the loss of GAT1 function results in the activation of other pathways that induce filamentous growth. These findings demonstrated that the GATA transcription factors Gln3p and Gat1p control expression of the MEP2 ammonium permease and that GLN3 is also an important regulator of nitrogen starvation-induced filamentous growth in C. albicans. C. albicans mutants lacking both the GATA transcription factors Gln3p and Gat1p were unable to grow in a medium containing an alternative nitrogen source, bovine serum albumin (BSA) as the sole nitrogen source. The ability to utilize proteins as sole source of nitrogen for growth of C. albicans is conferred by the secreted aspartic protease Sap2p, which degrades the proteins, and oligopeptide transporters that mediate uptake of the proteolytic products into cell. The growth defect of gln3D gat1D mutants was mainly caused by their inability to express the SAP2 gene, as SAP2 expression from the constitutive ADH1 promoter restored the ability of the mutants to grow on BSA. Expression of STP1, which encodes a transcription factor that is required for SAP2 induction in the presence of proteins, was regulated by Gln3p and Gat1p. Forced expression of STP1 from a tetracycline-inducible promoter bypassed the requirement of the GATA transcription factors for growth of C. albicans on proteins. When preferred nitrogen sources are available, SAP2 is repressed and this nitrogen catabolite repression of SAP2 was correlated with downregulation of STP1 under these conditions. Tetracycline-induced STP1 expression abolished nitrogen catabolite repression of SAP2, demonstrating that regulation of STP1 expression levels by the GATA transcription factors is a key aspect of both positive and negative regulation of SAP2 expression. Therefore, by using a regulatory cascade in which expression of the specific transcription factor Stp1p is controlled by the general regulators Gln3p and Gat1p, C. albicans places SAP2 expression under nitrogen control and ensures proper expression of this virulence determinant. In summary, the present study illustrated how GATA factors, Gln3p and Gat1p, play partially overlapping, but distinct roles, in mediating the appropriate responses of C. albicans to the availability of different nitrogen sources. These responses are also determinants of pathogenicity of the fungus. The relative contributions of Gln3p and Gat1p vary with their target genes and the availability of nitrogen source. Overall, these findings provide us with a better understanding of the molecular basis of some of the important processes that help in adaptation of C. albicans to various environmental conditions. KW - Transkriptionsfaktor KW - Candida albicans KW - Stickstoff KW - Stickstoffkontrolle KW - Ammoniumpermease KW - Sekretion von Aspartatproteasen KW - Candida albicans KW - ammonium permease KW - secreted aspartic protease KW - nitrogen regulation KW - transcription factor Y1 - 2008 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-29769 ER - TY - THES A1 - Porsch, Matthias T1 - OMB and ORG-1 T1 - OMB und ORG-1 N2 - Members of the T-box gene family encode transcription factors that play key roles during embryonic development and organogenesis of invertebrates and vertebrates. The defining feature of T-box proteins is an about 200 aa large, conserved DNA binding motif, the T domain. Their importance for proper development is highlighted by the dramatic phenotypes of T-box mutant animals. My thesis was mainly focused on two Drosophila T-box genes, optomotor-blind (omb) and optomotor-blind related 1 (org-1), and included (i) a genetic analysis of org-1 and (ii) the identification of molecular determinants within OMB and ORG-1 that confer functional specificity. (i) Genetic analysis of org-1 initially based on a behavioral Drosophila mutant, C31. C31 is a X-linked, recessive mutant and was mapped to 7E-F, the cytological region of org-1. This pleiotropic mutant is manifested in walking defects, structural aberrations in the central brain, and "held-out" wings. Molecular analysis revealed that C31 contains an insertion of a 5' truncated I retrotransposon within the 3' untranslated transcript of org-1, suggesting that C31 might represent the first org-1 mutant. Based on this hypothesis, we screened 44.500 F1 female offspring of EMS mutagenized males and C31 females for the "held-out" phenotype, but failed to isolate any C31 or org-1 mutant, although this mutagenesis was functional per se. Since we could not exclude the possibility that our failure is due to an idiosyncracy of C31, we intended not to rely on C31 in further genetic experiments and followed a reverse genetic strategy . All P element lines cytologically mapping to 7E-7F were characterized for their precise insertion sites. 13 of the 19 analyzed lines had P element insertions within a hot-spot 37 kb downstream of org-1. No P element insertions within org-1 could be identified, but several P element insertions were determined on either side of org-1. The org-1 nearest insertions were used for local-hop experiments, in which we associated 6 new genes with P insertions, but failed to target org-1. The closest P elements are still 10 kb away from org-1. Subsequently, we employed org-1 flanking P elements to induce precise deletions in 7E-F spanning org-1. Two org-1 flanking P elements were brought together on a recombinant chromosome. Remobilization of P elements in cis configuration frequently results in deletions with the P element insertion sites as deficiency endpoints. In a first attempt, we expected to identify deficiencies by screening for C31 alleles. 8 new C31 alleles could be isolated. The new C31 chromosomes, however, did not carry the desired deletion. Molecular analysis indicated that C31 is not caused by aberrations in org-1, but by mutations in a distal locus. We repeated the P element remobilization and screened for the absence of P element markers. 4 lethal chromosomes could be isolated with a deletion of the org-1 locus. (ii) The consequences of ectopic org-1 were analyzed using UAS-org-1 transgenic flies and a number of different Gal4 driver lines. Misexpression of org-1 during imaginal development interfered with the normal development of many organs and resulted in flies with a plethora of phenotypes. These include a homeotic transformation of distal antenna (flagellum) into distal leg structures, a strong size reduction of the legs along their proximo-distal axis, and stunted wings. Like ectopic org-1, ectopic omb leads to dramatic changes of normal developmental pathways in Drosophila as well. dpp-Gal4/ UAS-omb flies are late pupal lethal and show an ectopic pair of wings and largely reduced eyes. GMR-Gal4 driven ectopic omb expression in the developing eye causes a degeneration of the photoreceptor cells, while GMR-Gal4/ UAS-org-1 flies have intact eyes. Hence, ectopic org-1 and omb induce profound phenotypes that are qualitatively different for these homologous genes. To begin to address the question where within OMB and ORG-1 the specificity determinants reside, we conceptionally subdivided both proteins into three domains and tested the relevance ofthese domains for functional specificity in vivo. The single domains were cloned and used as modules to assemble all possible omb-org-1 chimeric trans- genes. A method was developed to determine the relative expression strength of different UAS-transgenes, allowing to compare the various transgenic constructs for qualitative differences only, excluding different transgene quantities. Analysis of chimeric omb-org-1 transgenes with the GMR-Gal4 driver revealed that all three OMB domains contribute to functional specificity. N2 - Die Mitglieder der T-box Genfamilie kodieren Transkriptionsfaktoren mit Schlüsselrollen in der Embryogenese und der Organentwicklung von Invertebraten und Vertebraten. Charakteristisch für T-box Proteine ist der Besitz einer T Domäne, eines ungefähr 200 Aminosäuren großen, homologen DNA Bindungsmotivs. Die Relevanz dieser Proteine in vielen Entwicklungsprozessen zeigt sich deutlich in den dramatischen Phänotypen von Tieren mit Mutationen in T-box Genen. Die vorliegende Arbeit konzentrierte sich vor allem auf das Studium von zwei Drosophila T-box Genen, optomotor-blind (omb) und optomotor-blind related 1 (org-1) und beinhaltet (i) eine genetische Analyse der org-1 Gens und (ii) die Identifikation der molekularen Determinanten innerhalb OMB und ORG-1, die den verwandten Proteinen ihre funktionelle Spezifität verleihen. (i) Die genetische Analyse des org-1 Gens stützte sich anfänglich auf die Drosophila Mutante C31. C31 ist eine X-gekoppelte, rezessive Mutation und wurde in den Bereich 7E-7F kartiert, in dem sich auch org-1 befindet. C31 Fliegen zeigen Defekte im Laufverhalten, Strukturdefekte im Zentralkomplex des Gehirns und eine Flügelfehlstellung. Eine Molekularanalyse ergab, daß C31 eine Insertion eines 5' verkürzten I Retrotransposons innerhalb des 3' untranslatierten org-1 Transkripts enthält und ließ vermuten, daß C31 das erste mutante org-1 Allel darstellen könnte. Dieser Hypothese folgend durchsuchten wir ca 44.500 F1 Weibchen aus der Kreuzung von EMS mutagenisierten Männchen mit C31 Weibchen auf den C31 Flügelphänotyp, konnten allerdings keine org-1 oder C31 Mutante isolieren. Da wir nicht ausschließen konnten, daß unser Scheitern durch eine Eigentümlichkeit der C31 Mutante verursacht wurde, verfolgten wir nun eine revers-genetische Strategie mit dem Ziel, P Element Insertionen im org-1 Gen zu isolieren. Alle Fliegenlinien mit P Elementen in 7E-7F wurden molekular charakterisiert und ihre Integrationsstellen präzise bestimmt. 13 der 19 analysierten Linien trugen ihre Insertionen in einem hot-spot ungefähr 37 kb distal zu org-1. Keine P Element Insertion konnte im org-1 Gens gefunden werden, jedoch wurden mehrere P Elemente auf beiden Seiten von org-1 identifiziert. Die beiden org-1 nächsten Insertionen wurden für mehrere local-hop Experimente verwendet, in denen wir 6 neue Gene mit P Insertionen assoziieren konnten, jedoch nicht org-1. Nachfolgend wurden zwei org-1 flankierende P Elemente verwendet, um präzise Deletionen über den org-1 Genlokus zu erzeugen. Zwei org-1 flankierende P Elemente wurden zunächst auf ein Chromosom rekombiniert. Die Remobilisierung von P Elementen in cis Anordnung führt häufig zu Deletionen mit den P Element Insertionsstellen als Defizienz-Endpunkten. In einem ersten Versuch erwarteten wir mutmaßliche Defizienzen als neue C31 Allele zu identifizieren. Acht C31 Allele konnten isoliert werden. Zu unserer Überraschung trugen diese neuen C31 Chromosomen aber nicht die gewünschte Deletion. Weitere Analysen ergaben, daß C31 nicht durch Mutationen im org-1 Gen verursacht wird, sondern durch Mutationen in einem distalen Gen. Wir wiederholten die P Element Remobilisierung, suchten nun aber auf Verlust der P Element-Marker nach Defizienzen. Vier lethale Chromosomen konnten isoliert werden, die eine Deletion über org-1 tragen. (ii) Die Konsequenzen einer ektopischen Expression von org-1 wurden mit Hilfe von UAS-org-1 transgenen Fliegen und einer Reihe Gal4 Treiberlinien studiert. Mißexpression von org-1 während der Imaginalentwicklung stört die normale Entwicklung in vielen Organen und führt zu Fliegen mit einer Vielzahl von Phänotypen. Diese beinhalten eine homeotische Transformation distaler Antennensegmente in distale Beinstrukturen, stark verkürzte Beine und verkrüppelte Flügel. Ebenso wie ektopische org-1 Expression bewirkt auch die ektopische Expression von omb eine dramatische Veränderung des normalen Entwicklungsprogramms. dpp-Gal4/ UAS-omb Fliegen sind puppal lethal und weisen ein ektopisches Flügelpaar und verkleinerte Augen auf. GMR-Gal4 getriebene ektopische omb Expression in der Augenentwicklung verursacht eine Degeneration der Photorezeptorzellen, während GMR-Gal4/ UAS-org-1 Tiere intakte Augen besitzen. Die ektopische Expression von omb und org-1 verursacht also jeweils deutliche, jedoch qualitativ sehr unterschiedliche Phänotypen für die homologen Gene. Um zu bestimmen, wo sich innerhalb der OMB und ORG-1 Proteine die Spezifitätsdeterminanten befinden, haben wir beide Proteine konzeptionell in drei Domänen unterteilt und die Bedeutung der einzelnen Domänen für funktionelle Spezifität mit Hilfe von chimären omb-org-1 Transgenen in vivo untersucht. Die Analyse der chimären omb-org-1 Transgene mit der GMR-Gal4 Treiberlinie ergab, daß alle drei OMB Domänen zur funktionellen Spezifität von OMB beitragen. KW - Taufliege KW - Transkriptionsfaktor KW - Embryonalentwicklung KW - Drosophila KW - Transkriptionsfaktor KW - chimär KW - Spezifität KW - Beinentwicklung KW - Drosophila KW - transcription factor KW - chimeric KW - specificity KW - appendage development Y1 - 2002 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-3614 ER -