Cargando…

On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL

COOH-terminal (S3) domains are conserved within the MscL family of bacterial mechanosensitive channels, but their function remains unclear. The X-ray structure of MscL from Mycobacterium tuberculosis (TbMscL) revealed cytoplasmic domains forming a pentameric bundle (Chang, G., R.H. Spencer, A.T. Lee...

Descripción completa

Detalles Bibliográficos
Autores principales: Anishkin, Andriy, Gendel, Vyacheslav, Sharifi, Neda A., Chiang, Chien-Sung, Shirinian, Lena, Guy, H. Robert, Sukharev, Sergei
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2003
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2217331/
https://www.ncbi.nlm.nih.gov/pubmed/12601086
http://dx.doi.org/10.1085/jgp.20028768
_version_ 1782149246750818304
author Anishkin, Andriy
Gendel, Vyacheslav
Sharifi, Neda A.
Chiang, Chien-Sung
Shirinian, Lena
Guy, H. Robert
Sukharev, Sergei
author_facet Anishkin, Andriy
Gendel, Vyacheslav
Sharifi, Neda A.
Chiang, Chien-Sung
Shirinian, Lena
Guy, H. Robert
Sukharev, Sergei
author_sort Anishkin, Andriy
collection PubMed
description COOH-terminal (S3) domains are conserved within the MscL family of bacterial mechanosensitive channels, but their function remains unclear. The X-ray structure of MscL from Mycobacterium tuberculosis (TbMscL) revealed cytoplasmic domains forming a pentameric bundle (Chang, G., R.H. Spencer, A.T. Lee, M.T. Barclay, and D.C. Rees. 1998. Science. 282:2220–2226). The helices, however, have an unusual orientation in which hydrophobic sidechains face outside while charged residues face inside, possibly due to specific crystallization conditions. Based on the structure of pentameric cartilage protein , we modeled the COOH-terminal region of E. coli MscL to better satisfy the hydrophobicity criteria, with sidechains of conserved aliphatic residues all inside the bundle. Molecular dynamic simulations predicted higher stability for this conformation compared with one modeled after the crystal structure of TbMscL, and suggested distances for disulfide trapping experiments. The single cysteine mutants L121C and I125C formed dimers under ambient conditions and more so in the presence of an oxidant. The double-cysteine mutants, L121C/L122C and L128C/L129C, often cross-link into tetrameric and pentameric structures, consistent with the new model. Patch-clamp examination of these double mutants under moderately oxidizing or reducing conditions indicated that the bundle cross-linking neither prevents the channel from opening nor changes thermodynamic parameters of gating. Destabilization of the bundle by replacing conservative leucines with small polar residues, or complete removal of COOH-terminal domain (Δ110–136 mutation), increased the occupancy of subconducting states but did not change gating parameters substantially. The Δ110–136 truncation mutant was functional in in vivo osmotic shock assays; however, the amount of ATP released into the shock medium was considerably larger than in controls. The data strongly suggest that in contrast to previous gating models (Sukharev, S., M. Betanzos, C.S. Chiang, and H.R. Guy. 2001a. Nature. 409:720–724.), S3 domains are stably associated in both closed and open conformations. The bundle-like assembly of cytoplasmic helices provides stability to the open conformation, and may function as a size-exclusion filter at the cytoplasmic entrance to the MscL pore, preventing loss of essential metabolites.
format Text
id pubmed-2217331
institution National Center for Biotechnology Information
language English
publishDate 2003
publisher The Rockefeller University Press
record_format MEDLINE/PubMed
spelling pubmed-22173312008-04-16 On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL Anishkin, Andriy Gendel, Vyacheslav Sharifi, Neda A. Chiang, Chien-Sung Shirinian, Lena Guy, H. Robert Sukharev, Sergei J Gen Physiol Article COOH-terminal (S3) domains are conserved within the MscL family of bacterial mechanosensitive channels, but their function remains unclear. The X-ray structure of MscL from Mycobacterium tuberculosis (TbMscL) revealed cytoplasmic domains forming a pentameric bundle (Chang, G., R.H. Spencer, A.T. Lee, M.T. Barclay, and D.C. Rees. 1998. Science. 282:2220–2226). The helices, however, have an unusual orientation in which hydrophobic sidechains face outside while charged residues face inside, possibly due to specific crystallization conditions. Based on the structure of pentameric cartilage protein , we modeled the COOH-terminal region of E. coli MscL to better satisfy the hydrophobicity criteria, with sidechains of conserved aliphatic residues all inside the bundle. Molecular dynamic simulations predicted higher stability for this conformation compared with one modeled after the crystal structure of TbMscL, and suggested distances for disulfide trapping experiments. The single cysteine mutants L121C and I125C formed dimers under ambient conditions and more so in the presence of an oxidant. The double-cysteine mutants, L121C/L122C and L128C/L129C, often cross-link into tetrameric and pentameric structures, consistent with the new model. Patch-clamp examination of these double mutants under moderately oxidizing or reducing conditions indicated that the bundle cross-linking neither prevents the channel from opening nor changes thermodynamic parameters of gating. Destabilization of the bundle by replacing conservative leucines with small polar residues, or complete removal of COOH-terminal domain (Δ110–136 mutation), increased the occupancy of subconducting states but did not change gating parameters substantially. The Δ110–136 truncation mutant was functional in in vivo osmotic shock assays; however, the amount of ATP released into the shock medium was considerably larger than in controls. The data strongly suggest that in contrast to previous gating models (Sukharev, S., M. Betanzos, C.S. Chiang, and H.R. Guy. 2001a. Nature. 409:720–724.), S3 domains are stably associated in both closed and open conformations. The bundle-like assembly of cytoplasmic helices provides stability to the open conformation, and may function as a size-exclusion filter at the cytoplasmic entrance to the MscL pore, preventing loss of essential metabolites. The Rockefeller University Press 2003-03 /pmc/articles/PMC2217331/ /pubmed/12601086 http://dx.doi.org/10.1085/jgp.20028768 Text en Copyright © 2003, The Rockefeller University Press This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Article
Anishkin, Andriy
Gendel, Vyacheslav
Sharifi, Neda A.
Chiang, Chien-Sung
Shirinian, Lena
Guy, H. Robert
Sukharev, Sergei
On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title_full On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title_fullStr On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title_full_unstemmed On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title_short On the Conformation of the COOH-terminal Domain of the Large Mechanosensitive Channel MscL
title_sort on the conformation of the cooh-terminal domain of the large mechanosensitive channel mscl
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2217331/
https://www.ncbi.nlm.nih.gov/pubmed/12601086
http://dx.doi.org/10.1085/jgp.20028768
work_keys_str_mv AT anishkinandriy ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT gendelvyacheslav ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT sharifinedaa ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT chiangchiensung ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT shirinianlena ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT guyhrobert ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl
AT sukharevsergei ontheconformationofthecoohterminaldomainofthelargemechanosensitivechannelmscl