Cargando…

An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species

[Image: see text] Mammalian metallothioneins (MTs) are a group of cysteine-rich proteins that bind metal ions in two α- and β-domains and represent a major cellular Zn(II)/Cu(I) buffering system in the cell. At cellular free Zn(II) concentrations (10(–11)–10(–9) M), MTs do not exist in fully loaded...

Descripción completa

Detalles Bibliográficos
Autores principales: Peris-Díaz, Manuel David, Guran, Roman, Domene, Carmen, de los Rios, Vivian, Zitka, Ondrej, Adam, Vojtech, Krężel, Artur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8517974/
https://www.ncbi.nlm.nih.gov/pubmed/34477370
http://dx.doi.org/10.1021/jacs.1c05495
_version_ 1784584122487799808
author Peris-Díaz, Manuel David
Guran, Roman
Domene, Carmen
de los Rios, Vivian
Zitka, Ondrej
Adam, Vojtech
Krężel, Artur
author_facet Peris-Díaz, Manuel David
Guran, Roman
Domene, Carmen
de los Rios, Vivian
Zitka, Ondrej
Adam, Vojtech
Krężel, Artur
author_sort Peris-Díaz, Manuel David
collection PubMed
description [Image: see text] Mammalian metallothioneins (MTs) are a group of cysteine-rich proteins that bind metal ions in two α- and β-domains and represent a major cellular Zn(II)/Cu(I) buffering system in the cell. At cellular free Zn(II) concentrations (10(–11)–10(–9) M), MTs do not exist in fully loaded forms with seven Zn(II)-bound ions (Zn(7)MTs). Instead, MTs exist as partially metal-depleted species (Zn(4–6)MT) because their Zn(II) binding affinities are on the nano- to picomolar range comparable to the concentrations of cellular Zn(II). The mode of action of MTs remains poorly understood, and thus, the aim of this study is to characterize the mechanism of Zn(II) (un)binding to MTs, the thermodynamic properties of the Zn(1–6)MT2 species, and their mechanostability properties. To this end, native mass spectrometry (MS) and label-free quantitative bottom-up and top-down MS in combination with steered molecular dynamics simulations, well-tempered metadynamics (WT-MetaD), and parallel-bias WT-MetaD (amounting to 3.5 μs) were integrated to unravel the chemical coordination of Zn(II) in all Zn(1–6)MT2 species and to explain the differences in binding affinities of Zn(II) ions to MTs. Differences are found to be the result of the degree of water participation in MT (un)folding and the hyper-reactive character of Cys21 and Cys29 residues. The thermodynamics properties of Zn(II) (un)binding to MT2 are found to differ from those of Cd(II), justifying their distinctive roles. The potential of this integrated strategy in the investigation of numerous unexplored metalloproteins is attested by the results highlighted in the present study.
format Online
Article
Text
id pubmed-8517974
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-85179742021-10-15 An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species Peris-Díaz, Manuel David Guran, Roman Domene, Carmen de los Rios, Vivian Zitka, Ondrej Adam, Vojtech Krężel, Artur J Am Chem Soc [Image: see text] Mammalian metallothioneins (MTs) are a group of cysteine-rich proteins that bind metal ions in two α- and β-domains and represent a major cellular Zn(II)/Cu(I) buffering system in the cell. At cellular free Zn(II) concentrations (10(–11)–10(–9) M), MTs do not exist in fully loaded forms with seven Zn(II)-bound ions (Zn(7)MTs). Instead, MTs exist as partially metal-depleted species (Zn(4–6)MT) because their Zn(II) binding affinities are on the nano- to picomolar range comparable to the concentrations of cellular Zn(II). The mode of action of MTs remains poorly understood, and thus, the aim of this study is to characterize the mechanism of Zn(II) (un)binding to MTs, the thermodynamic properties of the Zn(1–6)MT2 species, and their mechanostability properties. To this end, native mass spectrometry (MS) and label-free quantitative bottom-up and top-down MS in combination with steered molecular dynamics simulations, well-tempered metadynamics (WT-MetaD), and parallel-bias WT-MetaD (amounting to 3.5 μs) were integrated to unravel the chemical coordination of Zn(II) in all Zn(1–6)MT2 species and to explain the differences in binding affinities of Zn(II) ions to MTs. Differences are found to be the result of the degree of water participation in MT (un)folding and the hyper-reactive character of Cys21 and Cys29 residues. The thermodynamics properties of Zn(II) (un)binding to MT2 are found to differ from those of Cd(II), justifying their distinctive roles. The potential of this integrated strategy in the investigation of numerous unexplored metalloproteins is attested by the results highlighted in the present study. American Chemical Society 2021-09-03 2021-10-13 /pmc/articles/PMC8517974/ /pubmed/34477370 http://dx.doi.org/10.1021/jacs.1c05495 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Peris-Díaz, Manuel David
Guran, Roman
Domene, Carmen
de los Rios, Vivian
Zitka, Ondrej
Adam, Vojtech
Krężel, Artur
An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title_full An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title_fullStr An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title_full_unstemmed An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title_short An Integrated Mass Spectrometry and Molecular Dynamics Simulations Approach Reveals the Spatial Organization Impact of Metal-Binding Sites on the Stability of Metal-Depleted Metallothionein-2 Species
title_sort integrated mass spectrometry and molecular dynamics simulations approach reveals the spatial organization impact of metal-binding sites on the stability of metal-depleted metallothionein-2 species
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8517974/
https://www.ncbi.nlm.nih.gov/pubmed/34477370
http://dx.doi.org/10.1021/jacs.1c05495
work_keys_str_mv AT perisdiazmanueldavid anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT guranroman anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT domenecarmen anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT delosriosvivian anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT zitkaondrej anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT adamvojtech anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT krezelartur anintegratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT perisdiazmanueldavid integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT guranroman integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT domenecarmen integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT delosriosvivian integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT zitkaondrej integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT adamvojtech integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species
AT krezelartur integratedmassspectrometryandmoleculardynamicssimulationsapproachrevealsthespatialorganizationimpactofmetalbindingsitesonthestabilityofmetaldepletedmetallothionein2species