IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.

Two-component systems and phosphorelays play central roles in the ability of bacteria to rapidly respond to changing environments. In E. coli and related enterobacteria, the complex Rcs phosphorelay is a critical player in the bacterial response to antimicrobial peptides, beta-lactam antibiotics, an...

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Main Authors: Erin A Wall, Nadim Majdalani, Susan Gottesman
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-07-01
Series:PLoS Genetics
Online Access:https://doi.org/10.1371/journal.pgen.1008610
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spelling doaj-8c742297950c44a98fe6d78d3cd1ab592021-04-21T13:55:12ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042020-07-01167e100861010.1371/journal.pgen.1008610IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.Erin A WallNadim MajdalaniSusan GottesmanTwo-component systems and phosphorelays play central roles in the ability of bacteria to rapidly respond to changing environments. In E. coli and related enterobacteria, the complex Rcs phosphorelay is a critical player in the bacterial response to antimicrobial peptides, beta-lactam antibiotics, and other disruptions at the cell surface. The Rcs system is unusual in that an inner membrane protein, IgaA, is essential due to its negative regulation of the RcsC/RcsD/RcsB phosphorelay. While it is known that IgaA transduces signals from the outer membrane lipoprotein RcsF, how it interacts with the phosphorelay has remained unknown. Here we performed in vivo interaction assays and genetic dissection of the critical proteins and found that IgaA interacts with the phosphorelay protein RcsD, and that this interaction is necessary for regulation. Interactions between IgaA and RcsD within their respective periplasmic domains of these two proteins anchor repression of signaling. However, the signaling response depends on a second interaction between cytoplasmic loop 1 of IgaA and a truncated Per-Arndt-Sim (PAS-like) domain in RcsD. A single point mutation in the PAS-like domain increased interactions between the two proteins and blocked induction of the phosphorelay. IgaA may regulate RcsC, the histidine kinase that initiates phosphotransfer through the phosphorelay, indirectly, via its contacts with RcsD. Unlike RcsD, and unlike many other histidine kinases, the periplasmic domain of RcsC is dispensable for the response to signals that induce the Rcs phosphorelay system. The multiple contacts between IgaA and RcsD constitute a poised sensing system, preventing potentially toxic over-activation of this phosphorelay while enabling it to rapidly and quantitatively respond to signals.https://doi.org/10.1371/journal.pgen.1008610
collection DOAJ
language English
format Article
sources DOAJ
author Erin A Wall
Nadim Majdalani
Susan Gottesman
spellingShingle Erin A Wall
Nadim Majdalani
Susan Gottesman
IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
PLoS Genetics
author_facet Erin A Wall
Nadim Majdalani
Susan Gottesman
author_sort Erin A Wall
title IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
title_short IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
title_full IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
title_fullStr IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
title_full_unstemmed IgaA negatively regulates the Rcs Phosphorelay via contact with the RcsD Phosphotransfer Protein.
title_sort igaa negatively regulates the rcs phosphorelay via contact with the rcsd phosphotransfer protein.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2020-07-01
description Two-component systems and phosphorelays play central roles in the ability of bacteria to rapidly respond to changing environments. In E. coli and related enterobacteria, the complex Rcs phosphorelay is a critical player in the bacterial response to antimicrobial peptides, beta-lactam antibiotics, and other disruptions at the cell surface. The Rcs system is unusual in that an inner membrane protein, IgaA, is essential due to its negative regulation of the RcsC/RcsD/RcsB phosphorelay. While it is known that IgaA transduces signals from the outer membrane lipoprotein RcsF, how it interacts with the phosphorelay has remained unknown. Here we performed in vivo interaction assays and genetic dissection of the critical proteins and found that IgaA interacts with the phosphorelay protein RcsD, and that this interaction is necessary for regulation. Interactions between IgaA and RcsD within their respective periplasmic domains of these two proteins anchor repression of signaling. However, the signaling response depends on a second interaction between cytoplasmic loop 1 of IgaA and a truncated Per-Arndt-Sim (PAS-like) domain in RcsD. A single point mutation in the PAS-like domain increased interactions between the two proteins and blocked induction of the phosphorelay. IgaA may regulate RcsC, the histidine kinase that initiates phosphotransfer through the phosphorelay, indirectly, via its contacts with RcsD. Unlike RcsD, and unlike many other histidine kinases, the periplasmic domain of RcsC is dispensable for the response to signals that induce the Rcs phosphorelay system. The multiple contacts between IgaA and RcsD constitute a poised sensing system, preventing potentially toxic over-activation of this phosphorelay while enabling it to rapidly and quantitatively respond to signals.
url https://doi.org/10.1371/journal.pgen.1008610
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AT susangottesman igaanegativelyregulatesthercsphosphorelayviacontactwiththercsdphosphotransferprotein
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