Cargando…

The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria

The α-proteobacterium Wolbachia pipientis infects more than 65% of insect species worldwide and manipulates the host reproductive machinery to enable its own survival. It can live in mutualistic relationships with hosts that cause human disease, including mosquitoes that carry the Dengue virus. Like...

Descripción completa

Detalles Bibliográficos
Autores principales: Walden, Patricia M., Halili, Maria A., Archbold, Julia K., Lindahl, Fredrik, Fairlie, David P., Inaba, Kenji, Martin, Jennifer L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3839904/
https://www.ncbi.nlm.nih.gov/pubmed/24282596
http://dx.doi.org/10.1371/journal.pone.0081440
_version_ 1782478451492519936
author Walden, Patricia M.
Halili, Maria A.
Archbold, Julia K.
Lindahl, Fredrik
Fairlie, David P.
Inaba, Kenji
Martin, Jennifer L.
author_facet Walden, Patricia M.
Halili, Maria A.
Archbold, Julia K.
Lindahl, Fredrik
Fairlie, David P.
Inaba, Kenji
Martin, Jennifer L.
author_sort Walden, Patricia M.
collection PubMed
description The α-proteobacterium Wolbachia pipientis infects more than 65% of insect species worldwide and manipulates the host reproductive machinery to enable its own survival. It can live in mutualistic relationships with hosts that cause human disease, including mosquitoes that carry the Dengue virus. Like many other bacteria, Wolbachia contains disulfide bond forming (Dsb) proteins that introduce disulfide bonds into secreted effector proteins. The genome of the Wolbachia strain wMel encodes two DsbA-like proteins sharing just 21% sequence identity to each other, α-DsbA1 and α-DsbA2, and an integral membrane protein, α-DsbB. α-DsbA1 and α-DsbA2 both have a Cys-X-X-Cys active site that, by analogy with Escherichia coli DsbA, would need to be oxidized to the disulfide form to serve as a disulfide bond donor toward substrate proteins. Here we show that the integral membrane protein α-DsbB oxidizes α-DsbA1, but not α-DsbA2. The interaction between α-DsbA1 and α-DsbB is very specific, involving four essential cysteines located in the two periplasmic loops of α-DsbB. In the electron flow cascade, oxidation of α-DsbA1 by α-DsbB is initiated by an oxidizing quinone cofactor that interacts with the cysteine pair in the first periplasmic loop. Oxidizing power is transferred to the second cysteine pair, which directly interacts with α-DsbA1. This reaction is inhibited by a non-catalytic disulfide present in α-DsbA1, conserved in other α-proteobacterial DsbAs but not in γ-proteobacterial DsbAs. This is the first characterization of the integral membrane protein α-DsbB from Wolbachia and reveals that the non-catalytic cysteines of α-DsbA1 regulate the redox relay system in cooperation with α-DsbB.
format Online
Article
Text
id pubmed-3839904
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-38399042013-11-26 The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria Walden, Patricia M. Halili, Maria A. Archbold, Julia K. Lindahl, Fredrik Fairlie, David P. Inaba, Kenji Martin, Jennifer L. PLoS One Research Article The α-proteobacterium Wolbachia pipientis infects more than 65% of insect species worldwide and manipulates the host reproductive machinery to enable its own survival. It can live in mutualistic relationships with hosts that cause human disease, including mosquitoes that carry the Dengue virus. Like many other bacteria, Wolbachia contains disulfide bond forming (Dsb) proteins that introduce disulfide bonds into secreted effector proteins. The genome of the Wolbachia strain wMel encodes two DsbA-like proteins sharing just 21% sequence identity to each other, α-DsbA1 and α-DsbA2, and an integral membrane protein, α-DsbB. α-DsbA1 and α-DsbA2 both have a Cys-X-X-Cys active site that, by analogy with Escherichia coli DsbA, would need to be oxidized to the disulfide form to serve as a disulfide bond donor toward substrate proteins. Here we show that the integral membrane protein α-DsbB oxidizes α-DsbA1, but not α-DsbA2. The interaction between α-DsbA1 and α-DsbB is very specific, involving four essential cysteines located in the two periplasmic loops of α-DsbB. In the electron flow cascade, oxidation of α-DsbA1 by α-DsbB is initiated by an oxidizing quinone cofactor that interacts with the cysteine pair in the first periplasmic loop. Oxidizing power is transferred to the second cysteine pair, which directly interacts with α-DsbA1. This reaction is inhibited by a non-catalytic disulfide present in α-DsbA1, conserved in other α-proteobacterial DsbAs but not in γ-proteobacterial DsbAs. This is the first characterization of the integral membrane protein α-DsbB from Wolbachia and reveals that the non-catalytic cysteines of α-DsbA1 regulate the redox relay system in cooperation with α-DsbB. Public Library of Science 2013-11-25 /pmc/articles/PMC3839904/ /pubmed/24282596 http://dx.doi.org/10.1371/journal.pone.0081440 Text en © 2013 Walden 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Walden, Patricia M.
Halili, Maria A.
Archbold, Julia K.
Lindahl, Fredrik
Fairlie, David P.
Inaba, Kenji
Martin, Jennifer L.
The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title_full The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title_fullStr The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title_full_unstemmed The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title_short The α-Proteobacteria Wolbachia pipientis Protein Disulfide Machinery Has a Regulatory Mechanism Absent in γ-Proteobacteria
title_sort α-proteobacteria wolbachia pipientis protein disulfide machinery has a regulatory mechanism absent in γ-proteobacteria
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3839904/
https://www.ncbi.nlm.nih.gov/pubmed/24282596
http://dx.doi.org/10.1371/journal.pone.0081440
work_keys_str_mv AT waldenpatriciam theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT halilimariaa theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT archboldjuliak theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT lindahlfredrik theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT fairliedavidp theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT inabakenji theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT martinjenniferl theaproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT waldenpatriciam aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT halilimariaa aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT archboldjuliak aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT lindahlfredrik aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT fairliedavidp aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT inabakenji aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria
AT martinjenniferl aproteobacteriawolbachiapipientisproteindisulfidemachineryhasaregulatorymechanismabsentingproteobacteria