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Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response

The bacterial stringent response involves wide-ranging metabolic reprogramming aimed at increasing long-term survivability during stress conditions. One of the hallmarks of the stringent response is the production of a set of modified nucleotides, known as alarmones, which affect a multitude of cell...

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Autores principales: Bisiak, Francesco, Chrenková, Adriana, Zhang, Sheng-Da, Pedersen, Jannik N., Otzen, Daniel E., Zhang, Yong E., Brodersen, Ditlev E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293644/
https://www.ncbi.nlm.nih.gov/pubmed/35714769
http://dx.doi.org/10.1016/j.jbc.2022.102142
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author Bisiak, Francesco
Chrenková, Adriana
Zhang, Sheng-Da
Pedersen, Jannik N.
Otzen, Daniel E.
Zhang, Yong E.
Brodersen, Ditlev E.
author_facet Bisiak, Francesco
Chrenková, Adriana
Zhang, Sheng-Da
Pedersen, Jannik N.
Otzen, Daniel E.
Zhang, Yong E.
Brodersen, Ditlev E.
author_sort Bisiak, Francesco
collection PubMed
description The bacterial stringent response involves wide-ranging metabolic reprogramming aimed at increasing long-term survivability during stress conditions. One of the hallmarks of the stringent response is the production of a set of modified nucleotides, known as alarmones, which affect a multitude of cellular pathways in diverse ways. Production and degradation of these molecules depend on the activity of enzymes from the RelA/SpoT homologous family, which come in both bifunctional (containing domains to both synthesize and hydrolyze alarmones) and monofunctional (consisting of only synthetase or hydrolase domain) variants, of which the structure, activity, and regulation of the bifunctional RelA/SpoT homologs have been studied most intensely. Despite playing an important role in guanosine nucleotide homeostasis in particular, mechanisms of regulation of the small alarmone hydrolases (SAHs) are still rather unclear. Here, we present crystal structures of SAH enzymes from Corynebacterium glutamicum (RelH(Cg)) and Leptospira levettii (RelH(Ll)) and show that while being highly similar, structural differences in substrate access and dimer conformations might be important for regulating their activity. We propose that a varied dimer form is a general property of the SAH family, based on current structural information as well as prediction models for this class of enzymes. Finally, subtle structural variations between monofunctional and bifunctional enzymes point to how these different classes of enzymes are regulated.
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spelling pubmed-92936442022-07-20 Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response Bisiak, Francesco Chrenková, Adriana Zhang, Sheng-Da Pedersen, Jannik N. Otzen, Daniel E. Zhang, Yong E. Brodersen, Ditlev E. J Biol Chem Research Article The bacterial stringent response involves wide-ranging metabolic reprogramming aimed at increasing long-term survivability during stress conditions. One of the hallmarks of the stringent response is the production of a set of modified nucleotides, known as alarmones, which affect a multitude of cellular pathways in diverse ways. Production and degradation of these molecules depend on the activity of enzymes from the RelA/SpoT homologous family, which come in both bifunctional (containing domains to both synthesize and hydrolyze alarmones) and monofunctional (consisting of only synthetase or hydrolase domain) variants, of which the structure, activity, and regulation of the bifunctional RelA/SpoT homologs have been studied most intensely. Despite playing an important role in guanosine nucleotide homeostasis in particular, mechanisms of regulation of the small alarmone hydrolases (SAHs) are still rather unclear. Here, we present crystal structures of SAH enzymes from Corynebacterium glutamicum (RelH(Cg)) and Leptospira levettii (RelH(Ll)) and show that while being highly similar, structural differences in substrate access and dimer conformations might be important for regulating their activity. We propose that a varied dimer form is a general property of the SAH family, based on current structural information as well as prediction models for this class of enzymes. Finally, subtle structural variations between monofunctional and bifunctional enzymes point to how these different classes of enzymes are regulated. American Society for Biochemistry and Molecular Biology 2022-06-15 /pmc/articles/PMC9293644/ /pubmed/35714769 http://dx.doi.org/10.1016/j.jbc.2022.102142 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Bisiak, Francesco
Chrenková, Adriana
Zhang, Sheng-Da
Pedersen, Jannik N.
Otzen, Daniel E.
Zhang, Yong E.
Brodersen, Ditlev E.
Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title_full Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title_fullStr Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title_full_unstemmed Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title_short Structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
title_sort structural variations between small alarmone hydrolase dimers support different modes of regulation of the stringent response
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293644/
https://www.ncbi.nlm.nih.gov/pubmed/35714769
http://dx.doi.org/10.1016/j.jbc.2022.102142
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