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Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump

We have performed microsecond molecular dynamics (MD) simulations to characterize the structural dynamics of cation-bound E1 intermediate states of the calcium pump (sarcoendoplasmic reticulum Ca(2+)-ATPase, SERCA) in atomic detail, including a lipid bilayer with aqueous solution on both sides. X-ra...

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Autores principales: Espinoza-Fonseca, L. Michel, Autry, Joseph M., Thomas, David D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3997511/
https://www.ncbi.nlm.nih.gov/pubmed/24760008
http://dx.doi.org/10.1371/journal.pone.0095979
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author Espinoza-Fonseca, L. Michel
Autry, Joseph M.
Thomas, David D.
author_facet Espinoza-Fonseca, L. Michel
Autry, Joseph M.
Thomas, David D.
author_sort Espinoza-Fonseca, L. Michel
collection PubMed
description We have performed microsecond molecular dynamics (MD) simulations to characterize the structural dynamics of cation-bound E1 intermediate states of the calcium pump (sarcoendoplasmic reticulum Ca(2+)-ATPase, SERCA) in atomic detail, including a lipid bilayer with aqueous solution on both sides. X-ray crystallography with 40 mM Mg(2+) in the absence of Ca(2+) has shown that SERCA adopts an E1 structure with transmembrane Ca(2+)-binding sites I and II exposed to the cytosol, stabilized by a single Mg(2+) bound to a hybrid binding site I′. This Mg(2+)-bound E1 intermediate state, designated E1•Mg(2+), is proposed to constitute a functional SERCA intermediate that catalyzes the transition from E2 to E1•2Ca(2+) by facilitating H(+)/Ca(2+) exchange. To test this hypothesis, we performed two independent MD simulations based on the E1•Mg(2+) crystal structure, starting in the presence or absence of initially-bound Mg(2+). Both simulations were performed for 1 µs in a solution containing 100 mM K(+) and 5 mM Mg(2+) in the absence of Ca(2+), mimicking muscle cytosol during relaxation. In the presence of initially-bound Mg(2+), SERCA site I′ maintained Mg(2+) binding during the entire MD trajectory, and the cytosolic headpiece maintained a semi-open structure. In the absence of initially-bound Mg(2+), two K(+) ions rapidly bound to sites I and I′ and stayed loosely bound during most of the simulation, while the cytosolic headpiece shifted gradually to a more open structure. Thus MD simulations predict that both E1•Mg(2+) and E•2K(+) intermediate states of SERCA are populated in solution in the absence of Ca(2+), with the more open 2K(+)-bound state being more abundant at physiological ion concentrations. We propose that the E1•2K(+) state acts as a functional intermediate that facilitates the E2 to E1•2Ca(2+) transition through two mechanisms: by pre-organizing transport sites for Ca(2+) binding, and by partially opening the cytosolic headpiece prior to Ca(2+) activation of nucleotide binding.
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spelling pubmed-39975112014-04-29 Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump Espinoza-Fonseca, L. Michel Autry, Joseph M. Thomas, David D. PLoS One Research Article We have performed microsecond molecular dynamics (MD) simulations to characterize the structural dynamics of cation-bound E1 intermediate states of the calcium pump (sarcoendoplasmic reticulum Ca(2+)-ATPase, SERCA) in atomic detail, including a lipid bilayer with aqueous solution on both sides. X-ray crystallography with 40 mM Mg(2+) in the absence of Ca(2+) has shown that SERCA adopts an E1 structure with transmembrane Ca(2+)-binding sites I and II exposed to the cytosol, stabilized by a single Mg(2+) bound to a hybrid binding site I′. This Mg(2+)-bound E1 intermediate state, designated E1•Mg(2+), is proposed to constitute a functional SERCA intermediate that catalyzes the transition from E2 to E1•2Ca(2+) by facilitating H(+)/Ca(2+) exchange. To test this hypothesis, we performed two independent MD simulations based on the E1•Mg(2+) crystal structure, starting in the presence or absence of initially-bound Mg(2+). Both simulations were performed for 1 µs in a solution containing 100 mM K(+) and 5 mM Mg(2+) in the absence of Ca(2+), mimicking muscle cytosol during relaxation. In the presence of initially-bound Mg(2+), SERCA site I′ maintained Mg(2+) binding during the entire MD trajectory, and the cytosolic headpiece maintained a semi-open structure. In the absence of initially-bound Mg(2+), two K(+) ions rapidly bound to sites I and I′ and stayed loosely bound during most of the simulation, while the cytosolic headpiece shifted gradually to a more open structure. Thus MD simulations predict that both E1•Mg(2+) and E•2K(+) intermediate states of SERCA are populated in solution in the absence of Ca(2+), with the more open 2K(+)-bound state being more abundant at physiological ion concentrations. We propose that the E1•2K(+) state acts as a functional intermediate that facilitates the E2 to E1•2Ca(2+) transition through two mechanisms: by pre-organizing transport sites for Ca(2+) binding, and by partially opening the cytosolic headpiece prior to Ca(2+) activation of nucleotide binding. Public Library of Science 2014-04-23 /pmc/articles/PMC3997511/ /pubmed/24760008 http://dx.doi.org/10.1371/journal.pone.0095979 Text en © 2014 Espinoza-Fonseca 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
Espinoza-Fonseca, L. Michel
Autry, Joseph M.
Thomas, David D.
Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title_full Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title_fullStr Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title_full_unstemmed Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title_short Microsecond Molecular Dynamics Simulations of Mg(2+)- and K(+)- Bound E1 Intermediate States of the Calcium Pump
title_sort microsecond molecular dynamics simulations of mg(2+)- and k(+)- bound e1 intermediate states of the calcium pump
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3997511/
https://www.ncbi.nlm.nih.gov/pubmed/24760008
http://dx.doi.org/10.1371/journal.pone.0095979
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