A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus

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Standard

A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus. / Zhang, Yong; Guzzo, Mathilde; Ducret, Adrien; Li, Yue Zhong; Mignot, Tâm.

I: PLOS Genetics, Bind 8, Nr. 8, e1002872, 01.08.2012.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Zhang, Y, Guzzo, M, Ducret, A, Li, YZ & Mignot, T 2012, 'A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus', PLOS Genetics, bind 8, nr. 8, e1002872. https://doi.org/10.1371/journal.pgen.1002872

APA

Zhang, Y., Guzzo, M., Ducret, A., Li, Y. Z., & Mignot, T. (2012). A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus. PLOS Genetics, 8(8), [e1002872]. https://doi.org/10.1371/journal.pgen.1002872

Vancouver

Zhang Y, Guzzo M, Ducret A, Li YZ, Mignot T. A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus. PLOS Genetics. 2012 aug. 1;8(8). e1002872. https://doi.org/10.1371/journal.pgen.1002872

Author

Zhang, Yong ; Guzzo, Mathilde ; Ducret, Adrien ; Li, Yue Zhong ; Mignot, Tâm. / A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus. I: PLOS Genetics. 2012 ; Bind 8, Nr. 8.

Bibtex

@article{ba8f3e56926f45229a8d282447487b74,
title = "A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus",
abstract = "Migrating cells employ sophisticated signal transduction systems to respond to their environment and polarize towards attractant sources. Bacterial cells also regulate their polarity dynamically to reverse their direction of movement. In Myxococcus xanthus, a GTP-bound Ras-like G-protein, MglA, activates the motility machineries at the leading cell pole. Reversals are provoked by pole-to-pole switching of MglA, which is under the control of a chemosensory-like signal transduction cascade (Frz). It was previously known that the asymmetric localization of MglA at one cell pole is regulated by MglB, a GTPase Activating Protein (GAP). In this process, MglB specifically localizes at the opposite lagging cell pole and blocks MglA localization at that pole. However, how MglA is targeted to the leading pole and how Frz activity switches the localizations of MglA and MglB synchronously remained unknown. Here, we show that MglA requires RomR, a previously known response regulator protein, to localize to the leading cell pole efficiently. Specifically, RomR-MglA and RomR-MglB complexes are formed and act complementarily to establish the polarity axis, segregating MglA and MglB to opposite cell poles. Finally, we present evidence that Frz signaling may regulate MglA localization through RomR, suggesting that RomR constitutes a link between the Frz-signaling and MglAB polarity modules. Thus, in Myxococcus xanthus, a response regulator protein governs the localization of a small G-protein, adding further insight to the polarization mechanism and suggesting that motility regulation evolved by recruiting and combining existing signaling modules of diverse origins.",
author = "Yong Zhang and Mathilde Guzzo and Adrien Ducret and Li, {Yue Zhong} and T{\^a}m Mignot",
year = "2012",
month = aug,
day = "1",
doi = "10.1371/journal.pgen.1002872",
language = "English",
volume = "8",
journal = "P L o S Genetics",
issn = "1553-7390",
publisher = "Public Library of Science",
number = "8",

}

RIS

TY - JOUR

T1 - A Dynamic Response Regulator Protein Modulates G-Protein-Dependent Polarity in the Bacterium Myxococcus xanthus

AU - Zhang, Yong

AU - Guzzo, Mathilde

AU - Ducret, Adrien

AU - Li, Yue Zhong

AU - Mignot, Tâm

PY - 2012/8/1

Y1 - 2012/8/1

N2 - Migrating cells employ sophisticated signal transduction systems to respond to their environment and polarize towards attractant sources. Bacterial cells also regulate their polarity dynamically to reverse their direction of movement. In Myxococcus xanthus, a GTP-bound Ras-like G-protein, MglA, activates the motility machineries at the leading cell pole. Reversals are provoked by pole-to-pole switching of MglA, which is under the control of a chemosensory-like signal transduction cascade (Frz). It was previously known that the asymmetric localization of MglA at one cell pole is regulated by MglB, a GTPase Activating Protein (GAP). In this process, MglB specifically localizes at the opposite lagging cell pole and blocks MglA localization at that pole. However, how MglA is targeted to the leading pole and how Frz activity switches the localizations of MglA and MglB synchronously remained unknown. Here, we show that MglA requires RomR, a previously known response regulator protein, to localize to the leading cell pole efficiently. Specifically, RomR-MglA and RomR-MglB complexes are formed and act complementarily to establish the polarity axis, segregating MglA and MglB to opposite cell poles. Finally, we present evidence that Frz signaling may regulate MglA localization through RomR, suggesting that RomR constitutes a link between the Frz-signaling and MglAB polarity modules. Thus, in Myxococcus xanthus, a response regulator protein governs the localization of a small G-protein, adding further insight to the polarization mechanism and suggesting that motility regulation evolved by recruiting and combining existing signaling modules of diverse origins.

AB - Migrating cells employ sophisticated signal transduction systems to respond to their environment and polarize towards attractant sources. Bacterial cells also regulate their polarity dynamically to reverse their direction of movement. In Myxococcus xanthus, a GTP-bound Ras-like G-protein, MglA, activates the motility machineries at the leading cell pole. Reversals are provoked by pole-to-pole switching of MglA, which is under the control of a chemosensory-like signal transduction cascade (Frz). It was previously known that the asymmetric localization of MglA at one cell pole is regulated by MglB, a GTPase Activating Protein (GAP). In this process, MglB specifically localizes at the opposite lagging cell pole and blocks MglA localization at that pole. However, how MglA is targeted to the leading pole and how Frz activity switches the localizations of MglA and MglB synchronously remained unknown. Here, we show that MglA requires RomR, a previously known response regulator protein, to localize to the leading cell pole efficiently. Specifically, RomR-MglA and RomR-MglB complexes are formed and act complementarily to establish the polarity axis, segregating MglA and MglB to opposite cell poles. Finally, we present evidence that Frz signaling may regulate MglA localization through RomR, suggesting that RomR constitutes a link between the Frz-signaling and MglAB polarity modules. Thus, in Myxococcus xanthus, a response regulator protein governs the localization of a small G-protein, adding further insight to the polarization mechanism and suggesting that motility regulation evolved by recruiting and combining existing signaling modules of diverse origins.

U2 - 10.1371/journal.pgen.1002872

DO - 10.1371/journal.pgen.1002872

M3 - Journal article

C2 - 22916026

AN - SCOPUS:84866167344

VL - 8

JO - P L o S Genetics

JF - P L o S Genetics

SN - 1553-7390

IS - 8

M1 - e1002872

ER -

ID: 227661077