3 resultados para Cita

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The two-component system DcuSR of Escherichia coli regulates gene expression of anaerobic fumarate respiration and aerobic C4-dicarboxylate uptake. C4-dicarboxylates and citrate are perceived by the periplasmic domain of the membrane-integral sensor histidine kinase DcuS. The signal is transduced across the membrane by phosphorylation of DcuS and of the response regulator DcuR, resulting in activation of DcuR and transcription of the target genes.rnIn this work, the oligomerisation of full-length DcuS was studied in vivo and in vitro. DcuS was genetically fused to derivatives of the green fluorescent protein (GFP), enabling fluorescence resonance energy transfer (FRET) measurements to detect protein-protein interactions in vivo. FRET measurements were also performed with purified His6-DcuS after labelling with fluorescent dyes and reconstitution into liposomes to study oligomerisation of DcuS in vitro. In vitro and in vivo fluorescence resonance energy transfer showed the presence of oligomeric DcuS in the membrane, which was independent of the presence of effector. Chemical crosslinking experiments allowed clear-cut evaluation of the oligomeric state of DcuS. The results showed that detergent-solubilised His6-DcuS was mainly monomeric and demonstrated the presence of tetrameric DcuS in proteoliposomes and in bacterial membranes.rnThe sensor histidine kinase CitA is part of the two-component system CitAB of E. coli, which is structurally related to DcuSR. CitAB regulates gene expression of citrate fermentation in response to external citrate. The sensor kinases DcuS and CitA were fused with an enhanced variant of the yellow fluorescent protein (YFP) and expressed in E. coli under the control of an arabinose-inducible promoter. The subcellular localisation of DcuS-YFP and CitA-YFP within the cell membrane was studied by means of confocal laser fluorescence microscopy. Both fusion proteins were found to accumulate at the cell poles. The polar accumulation was slightly increased in the presence of the stimulus fumarate or citrate, respectively, but independent of the expression level of the fusion proteins. Cell fractionation demonstrated that polar accumulation was not related to inclusion bodies formation. The degree of polar localisation of DcuS-YFP was similar to that of the well-characterised methyl-accepting chemotaxis proteins (MCPs), but independent of their presence. To enable further investigations on the function of the polar localisation of DcuS under physiological conditions, the sensor kinase was genetically fused to the flavin-based fluorescent protein Bs2 which shows fluorescence under aerobic and anaerobic conditions. The resulting dcuS-bs2 gene fusion was inserted into the chromosome of various E. coli strains.rnFurthermore, a protein-protein interaction between the related sensor histidine kinases DcuS and CitA, regulating common metabolic pathways, was detected via expression studies under anaerobic conditions in the presence of citrate and by in vivo FRET measurements.

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Das Zweikomponentensystem DcuSR aus Escherichia coli reguliert in Abhängigkeit von C4-Dicarboxylaten die Expression der Gene der Fumaratatmung. Die Erkennung von C4-Dicarboxylaten erfolgt über die periplasmatische Domäne der Sensorkinase DcuS und führt zur Autophosphorylierung des konservierten Histidinrestes in der Kinasedomäne. Die Phosphatgruppe wird anschließend auf den Responseregulator DcuR übertragen und führt zur Induktion der Zielgene. Dazu gehören der Antiporter DcuB (dcuB), die anaerobe Fumarase B (fumB) und die Fumaratreduktase (frdABCD). DcuS detektiert neben C4-Dicarboxylaten auch Citrat über die periplasmatische Domäne. In dem nah verwandten Sensor CitA wird Citrat spezifisch über die drei Carboxyl- und die Hydroxylgruppe durch die Bindestellen C1, C2, C3 und H erkannt. DcuS benötigt für die Erkennung von C4-Dicarboxylaten und Citrat die gleichen Bindestellen. Die Citratbindung von DcuS ähnelte der von C4-Dicarboxylaten und unterschied sich von der Citraterkennung in CitA. DcuS konnte durch gerichtete Mutagenese der Bindungsstelle in Varianten überführt werden, die spezifisch für C4-Dicarboxylate (DcuSDC) oder Citrat (DcuSCit) waren. DcuSDC und DcuSCit hatten komplementäre Substratspezifitäten und reagierten entweder auf C4-Dicarboxylate oder auf Citrat (und Mesaconat). Citrat wurde vermutlich als C4-Dicarboxylat (mit einem Acetylrest) und somit über die gleichen Bindestellen wie C4-Dicarboxylate erkannt. Die Bindestellen C2 und C3 sind hoch konserviert und essentiell für die Bindung von zwei Carboxylgruppen von Citrat und C4-Dicarboxylaten. Die Stellen C1 und H werden vermutlich für koordinative Zwecke benötigt. Der Fumarat/Succinat-Antiporter DcuB hat neben der Transportaktivität eine regulatorische Aufgabe im DcuSR-System. Die Deletion von DcuB führte zur konstitutiven Expression der dcuB´-´lacZ Reportergenfusion und anderer DcuSR-regulierter Gene in Abwesenheit von C4-Dicarboxylaten. Die Effektor-unabhängige Expression setzte eine intakte periplasmatische Domäne von DcuS voraus und zeigte in Anwesenheit der spezifischen DcuS-Mutanten (DcuSDC, DcuSCit) eine geänderte Antwort. Die lässt vermuten, dass DcuB die regulatorischen Eigenschaften über eine direkte Wechselwirkung mit DcuS ausübt. Um den phosphorylierten Responseregulator DcuR-P in den Ursprungszustand zurückzuführen, muss dieser dephosphoryliert werden. Die bisher unbekannte Dephosphatase kann dabei entweder von dem Responseregulator, der Sensorkinase oder einem weiteren Protein stammen. DcuR verfügt über eine intrinsische Phosphataseaktivität, die durch den Sensor geringfügig stimuliert wurde.

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DcuS is a membrane-integral sensory histidine kinase involved in the DcuSR two-component regulatory system in Escherichia coli by regulating the gene expression of C4-dicarboxylate metabolism in response to external stimuli. How DcuS mediates the signal transduction across the membrane remains little understood. This study focused on the oligomerization and protein-protein interactions of DcuS by using quantitative Fluorescence Resonance Energy Transfer (FRET) spectroscopy. A quantitative FRET analysis for fluorescence spectroscopy has been developed in this study, consisting of three steps: (1) flexible background subtraction to yield background-free spectra, (2) a FRET quantification method to determine FRET efficiency (E) and donor fraction (fD = [donor] / ([donor]+[acceptor])) from the spectra, and (3) a model to determine the degree of oligomerization (interaction stoichiometry) in the protein complexes based on E vs. fD. The accuracy and applicability of this analysis was validated by theoretical simulations and experimental systems. These three steps were integrated into a computer procedure as an automatic quantitative FRET analysis which is easy, fast, and allows high-throughout to quantify FRET accurately and robustly, even in living cells. This method was subsequently applied to investigate oligomerization and protein-protein interactions, in particular in living cells. Cyan (CFP) and yellow fluorescent protein (YFP), two spectral variants of green fluorescent protein, were used as a donor-acceptor pair for in vivo measurements. Based on CFP- and YFP-fusions of non-interacting membrane proteins in the cell membrane, a minor FRET signal (E = 0.06 ± 0.01) can be regarded as an estimate of direct interaction between CFP and YFP moieties of fusion proteins co-localized in the cell membrane (false-positive). To confirm if the FRET occurrence is specific to the interaction of the investigated proteins, their FRET efficiency should be clearly above E = 0.06. The oligomeric state of DcuS was examined both in vivo (CFP/YFP) and in vitro (two different donor-acceptor pairs of organic dyes) by three independent experimental systems. The consistent occurrence of FRET in vitro and in vivo provides the evidence for the homo-dimerization of DcuS as full-length protein for the first time. Moreover, novel interactions (hetero-complexes) between DcuS and its functionally related proteins, citrate-specific sensor kinase CitA and aerobic dicarboxylate transporter DctA respectively, have been identified for the first time by intermolecular FRET in vivo. This analysis can be widely applied as a robust method to determine the interaction stoichiometry of protein complexes for other proteins of interest labeled with adequate fluorophores in vitro or in vivo.