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Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility

Mutual gliding motility A (MglA), a small Ras-like GTPase; Mutual gliding motility B (MglB), its GTPase activating protein (GAP); and Required for Motility Response Regulator (RomR), a protein that contains a response regulator receiver domain, are major components of a GTPase-dependent biochemical...

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Autores principales: Baranwal, Jyoti, Lhospice, Sébastien, Kanade, Manil, Chakraborty, Sukanya, Gade, Priyanka Rajendra, Harne, Shrikant, Herrou, Julien, Mignot, Tâm, Gayathri, Pananghat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6785124/
https://www.ncbi.nlm.nih.gov/pubmed/31560685
http://dx.doi.org/10.1371/journal.pbio.3000459
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author Baranwal, Jyoti
Lhospice, Sébastien
Kanade, Manil
Chakraborty, Sukanya
Gade, Priyanka Rajendra
Harne, Shrikant
Herrou, Julien
Mignot, Tâm
Gayathri, Pananghat
author_facet Baranwal, Jyoti
Lhospice, Sébastien
Kanade, Manil
Chakraborty, Sukanya
Gade, Priyanka Rajendra
Harne, Shrikant
Herrou, Julien
Mignot, Tâm
Gayathri, Pananghat
author_sort Baranwal, Jyoti
collection PubMed
description Mutual gliding motility A (MglA), a small Ras-like GTPase; Mutual gliding motility B (MglB), its GTPase activating protein (GAP); and Required for Motility Response Regulator (RomR), a protein that contains a response regulator receiver domain, are major components of a GTPase-dependent biochemical oscillator that drives cell polarity reversals in the bacterium Myxococcus xanthus. We report the crystal structure of a complex of M. xanthus MglA and MglB, which reveals that the C-terminal helix (Ct-helix) from one protomer of the dimeric MglB binds to a pocket distal to the active site of MglA. MglB increases the GTPase activity of MglA by reorientation of key catalytic residues of MglA (a GAP function) combined with allosteric regulation of nucleotide exchange by the Ct-helix (a guanine nucleotide exchange factor [GEF] function). The dual GAP-GEF activities of MglB accelerate the rate of GTP hydrolysis over multiple enzymatic cycles. Consistent with its GAP and GEF activities, MglB interacts with MglA bound to either GTP or GDP. The regulation is essential for cell polarity, because deletion of the Ct-helix causes bipolar localization of MglA, MglB, and RomR, thereby causing reversal defects in M. xanthus. A bioinformatics analysis reveals the presence of Ct-helix in homologues of MglB in other bacterial phyla, suggestive of the prevalence of the allosteric mechanism among other prokaryotic small Ras-like GTPases.
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spelling pubmed-67851242019-10-18 Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility Baranwal, Jyoti Lhospice, Sébastien Kanade, Manil Chakraborty, Sukanya Gade, Priyanka Rajendra Harne, Shrikant Herrou, Julien Mignot, Tâm Gayathri, Pananghat PLoS Biol Research Article Mutual gliding motility A (MglA), a small Ras-like GTPase; Mutual gliding motility B (MglB), its GTPase activating protein (GAP); and Required for Motility Response Regulator (RomR), a protein that contains a response regulator receiver domain, are major components of a GTPase-dependent biochemical oscillator that drives cell polarity reversals in the bacterium Myxococcus xanthus. We report the crystal structure of a complex of M. xanthus MglA and MglB, which reveals that the C-terminal helix (Ct-helix) from one protomer of the dimeric MglB binds to a pocket distal to the active site of MglA. MglB increases the GTPase activity of MglA by reorientation of key catalytic residues of MglA (a GAP function) combined with allosteric regulation of nucleotide exchange by the Ct-helix (a guanine nucleotide exchange factor [GEF] function). The dual GAP-GEF activities of MglB accelerate the rate of GTP hydrolysis over multiple enzymatic cycles. Consistent with its GAP and GEF activities, MglB interacts with MglA bound to either GTP or GDP. The regulation is essential for cell polarity, because deletion of the Ct-helix causes bipolar localization of MglA, MglB, and RomR, thereby causing reversal defects in M. xanthus. A bioinformatics analysis reveals the presence of Ct-helix in homologues of MglB in other bacterial phyla, suggestive of the prevalence of the allosteric mechanism among other prokaryotic small Ras-like GTPases. Public Library of Science 2019-09-27 /pmc/articles/PMC6785124/ /pubmed/31560685 http://dx.doi.org/10.1371/journal.pbio.3000459 Text en © 2019 Baranwal et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Baranwal, Jyoti
Lhospice, Sébastien
Kanade, Manil
Chakraborty, Sukanya
Gade, Priyanka Rajendra
Harne, Shrikant
Herrou, Julien
Mignot, Tâm
Gayathri, Pananghat
Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title_full Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title_fullStr Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title_full_unstemmed Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title_short Allosteric regulation of a prokaryotic small Ras-like GTPase contributes to cell polarity oscillations in bacterial motility
title_sort allosteric regulation of a prokaryotic small ras-like gtpase contributes to cell polarity oscillations in bacterial motility
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6785124/
https://www.ncbi.nlm.nih.gov/pubmed/31560685
http://dx.doi.org/10.1371/journal.pbio.3000459
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