Jörg Stülke
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Full Professor, Head of the Department
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About
Jörg Stülke is a Full Professor and Head of the Department at Georg-August-Universität Göttingen, Germany. His research primarily focuses on structural biology, metabolic pathways, and the model organism Bacillus subtilis. Recent articles include investigations into coenzyme A biosynthesis, protein complex modeling, and the roles of various metabolites and homeostasis in bacteria. He contributes significantly to the understanding of cellular processes and their implications in agricultural contexts.
Recent Grants
Grant: Open
Endoribonuclease-mediated regulation of the balance between RNA degradation and transcription
Open Date: 2023-01-01
Close Date: 2026-12-01
Grant: Close
Cyclic di-AMP signaling in Bacillus subtilis
Open Date: 2019-07-01
Close Date: 2022-06-01
Grant: Close
c-di-AMP Signaling in Bacillus subtilis
Open Date: 2016-01-01
Close Date: 2019-01-01
Grant: Close
MiniCell - A bacterial drug delivery system
Open Date: 2016-01-01
Close Date: 2019-01-01
Grant: Close
Control of bistable gene expression in Bacillus subtilis
Open Date: 2015-01-01
Close Date: 2018-01-01
Articles (20)
c-di-AMP determines the hierarchical organization of bacterial RCK proteins
In bacteria, intracellular K + is involved in the regulation of membrane potential, cytosolic pH, and cell turgor as well as in spore germination, environmental adaptation, cell-to-cell communication in biofilms, antibiotic sensitivity, and infectivity. The second messenger cyclic-di-AMP (c-di-AMP) has a central role in modulating the intracellular K + concentration in many bacterial species, controlling transcription and function of K + channels and transporters. However, our understanding of how this regulatory network responds to c-di-AMP remains poor. We used the RCK (Regulator of Conductance of K + ) proteins that control the activity of Ktr channels in Bacillus subtilis as a model system to analyze the regulatory function of c-di-AMP with a combination of in vivo and in vitro functional and structural characterization. We determined that the two RCK proteins (KtrA and KtrC) are neither physiologically redundant or functionally equivalent. KtrC is the physiologically dominant RCK protein in the regulation of Ktr channel activity. In explaining this hierarchical organization, we found that, unlike KtrA, KtrC is very sensitive to c-di-AMP inactivation and lack of c-di-AMP regulation results in RCK protein toxicity, most likely due to unregulated K + flux. We also found that KtrC can assemble with KtrA, conferring c-di-AMP regulation to the functional KtrA/KtrC heteromers and potentially compensating KtrA toxicity. Altogether, we propose that the central role of c-di-AMP in the control of the K + machinery, by modulating protein levels through gene transcription and by regulating protein activity, has determined the evolutionary selection of KtrC as the dominant RCK protein, shaping the hierarchical organization of regulatory components of the K + machinery.
Year:
2024
Collaborators (12)
João H. Morais-Cabral
University of Porto
Jan de Vries
Professor
University of Göttingen
Juri Rappsilber
Technische Universität Berlin
Fabian Commichau
Full Professor
University of Hohenheim
John Helmann
Professor
Cornell University
Jan Marienhagen
Professor
RWTH Aachen University
Marc Bramkamp
Professor of Microbial Biochemistry and Cell Biology
Christian-Albrechts-Universität zu Kiel
Natalia Tschowri
Professor
Leibniz University Hannover
Till Ischebeck
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Dennis Wicke
University of Göttingen
Ivo Feussner
Full Professor
University of Goettingen
Swantje Lenz
Max Planck Institute of Molecular Cell Biology and Genetics

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