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Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism

The mechanosensitive channel of large conductance (MscL) is a protein that responds to membrane tension by opening a transient pore during osmotic downshock. Due to its large pore size and functional reconstitution into lipid membranes, MscL has been proposed as a promising artificial nanovalve suit...

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Autores principales: Chandramouli, Balasubramanian, Di Maio, Danilo, Mancini, Giordano, Barone, Vincenzo, Brancato, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380313/
https://www.ncbi.nlm.nih.gov/pubmed/25825909
http://dx.doi.org/10.1371/journal.pone.0120196
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author Chandramouli, Balasubramanian
Di Maio, Danilo
Mancini, Giordano
Barone, Vincenzo
Brancato, Giuseppe
author_facet Chandramouli, Balasubramanian
Di Maio, Danilo
Mancini, Giordano
Barone, Vincenzo
Brancato, Giuseppe
author_sort Chandramouli, Balasubramanian
collection PubMed
description The mechanosensitive channel of large conductance (MscL) is a protein that responds to membrane tension by opening a transient pore during osmotic downshock. Due to its large pore size and functional reconstitution into lipid membranes, MscL has been proposed as a promising artificial nanovalve suitable for biotechnological applications. For example, site-specific mutations and tailored chemical modifications have shown how MscL channel gating can be triggered in the absence of tension by introducing charged residues at the hydrophobic pore level. Recently, engineered MscL proteins responsive to stimuli like pH or light have been reported. Inspired by experiments, we present a thorough computational study aiming at describing, with atomistic detail, the artificial gating mechanism and the molecular transport properties of a light-actuated bacterial MscL channel, in which a charge-induced gating mechanism has been enabled through the selective cleavage of photo-sensitive alkylating agents. Properties such as structural transitions, pore dimension, ion flux and selectivity have been carefully analyzed. Besides, the effects of charge on alternative sites of the channel with respect to those already reported have been addressed. Overall, our results provide useful molecular insights into the structural events accompanying the engineered MscL channel gating and the interplay of electrostatic effects, channel opening and permeation properties. In addition, we describe how the experimentally observed ionic current in a single-subunit charged MscL mutant is obtained through a hydrophobicity breaking mechanism involving an asymmetric inter-subunit motion.
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spelling pubmed-43803132015-04-09 Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism Chandramouli, Balasubramanian Di Maio, Danilo Mancini, Giordano Barone, Vincenzo Brancato, Giuseppe PLoS One Research Article The mechanosensitive channel of large conductance (MscL) is a protein that responds to membrane tension by opening a transient pore during osmotic downshock. Due to its large pore size and functional reconstitution into lipid membranes, MscL has been proposed as a promising artificial nanovalve suitable for biotechnological applications. For example, site-specific mutations and tailored chemical modifications have shown how MscL channel gating can be triggered in the absence of tension by introducing charged residues at the hydrophobic pore level. Recently, engineered MscL proteins responsive to stimuli like pH or light have been reported. Inspired by experiments, we present a thorough computational study aiming at describing, with atomistic detail, the artificial gating mechanism and the molecular transport properties of a light-actuated bacterial MscL channel, in which a charge-induced gating mechanism has been enabled through the selective cleavage of photo-sensitive alkylating agents. Properties such as structural transitions, pore dimension, ion flux and selectivity have been carefully analyzed. Besides, the effects of charge on alternative sites of the channel with respect to those already reported have been addressed. Overall, our results provide useful molecular insights into the structural events accompanying the engineered MscL channel gating and the interplay of electrostatic effects, channel opening and permeation properties. In addition, we describe how the experimentally observed ionic current in a single-subunit charged MscL mutant is obtained through a hydrophobicity breaking mechanism involving an asymmetric inter-subunit motion. Public Library of Science 2015-03-31 /pmc/articles/PMC4380313/ /pubmed/25825909 http://dx.doi.org/10.1371/journal.pone.0120196 Text en © 2015 Chandramouli 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
Chandramouli, Balasubramanian
Di Maio, Danilo
Mancini, Giordano
Barone, Vincenzo
Brancato, Giuseppe
Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title_full Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title_fullStr Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title_full_unstemmed Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title_short Breaking the Hydrophobicity of the MscL Pore: Insights into a Charge-Induced Gating Mechanism
title_sort breaking the hydrophobicity of the mscl pore: insights into a charge-induced gating mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380313/
https://www.ncbi.nlm.nih.gov/pubmed/25825909
http://dx.doi.org/10.1371/journal.pone.0120196
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