Rapid Dephosphorylation of the TorR Response Regulator by the TorS Unorthodox Sensor in Escherichia coli

Author:

Ansaldi Mireille1,Jourlin-Castelli Cécile1,Lepelletier Michèle1,Théraulaz Laurence1,Méjean Vincent1

Affiliation:

1. Laboratoire de Chimie Bactérienne, Institut de Biologie Structurale et Microbiologie, Centre National de la Recherche Scientifique, 13402 Marseille Cedex 20, France

Abstract

ABSTRACT Induction of the torCAD operon, encoding the trimethylamine N -oxide (TMAO) respiratory system, is tightly controlled by the TorS-TorR phosphorelay system in response to TMAO availability. TorS is an unorthodox sensor that contains three phosphorylation sites and transphosphorylates TorR via a four-step phosphorelay, His443→Asp723→His850→Asp(TorR). In this study, we provide genetic evidence that TorS can dephosphorylate phospho-TorR when TMAO is removed. Dephosphorylation probably occurs by a reverse phosphorelay, Asp(TorR)→His850→Asp723, since His850 and Asp723 are both essential in this process. By using reverse transcriptase PCR, we also show that TMAO removal results in shutoff of tor operon transcription in less than 2 min. Based on our results and on analogy to other phosphorelay signal transduction systems, we propose that reverse phosphotransfer could be a rapid and efficient mechanism to inactivate response regulators.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

Reference36 articles.

1. Ansaldi M. Régulation multifactorielle du système respiratoire triméthylamine N-oxyde (TMAO) réductase chez Escherichia coli. Ph.D. thesis. 2000 Faculté des Sciences de Luminy Université Aix-Marseille II Marseille France

2. TorC apocytochrome negatively autoregulates the trimethylamine N-oxide (TMAO) reductase operon in Escherichia coli;Ansaldi M.;Mol. Microbiol.,1999

3. Signal transduction via the multi-step phosphorelay: not necessarily a road less traveled;Appleby J. L.;Cell,1996

4. Stabilization of discrete mRNA breakdown products in ams pnp rnb multiple mutants of Escherichia coli K-12

5. The phosphatase activity is the target for Mg2+ regulation of the sensor protein PhoQ in Salmonella;Castelli M. E.;J. Biol. Chem.,2000

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