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Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation

Membrane-integral pyrophosphatases (mPPases) couple the hydrolysis of pyrophosphate (PP(i)) to the pumping of Na(+), H(+), or both these ions across a membrane. Recently solved structures of the Na(+)-pumping Thermotoga maritima mPPase (TmPPase) and H(+)-pumping Vigna radiata mPPase revealed the bas...

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Autores principales: Shah, Nita R., Wilkinson, Craig, Harborne, Steven P. D., Turku, Ainoleena, Li, Kun-Mou, Sun, Yuh-Ju, Harris, Sarah, Goldman, Adrian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Crystallographic Association 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5336470/
https://www.ncbi.nlm.nih.gov/pubmed/28345008
http://dx.doi.org/10.1063/1.4978038
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author Shah, Nita R.
Wilkinson, Craig
Harborne, Steven P. D.
Turku, Ainoleena
Li, Kun-Mou
Sun, Yuh-Ju
Harris, Sarah
Goldman, Adrian
author_facet Shah, Nita R.
Wilkinson, Craig
Harborne, Steven P. D.
Turku, Ainoleena
Li, Kun-Mou
Sun, Yuh-Ju
Harris, Sarah
Goldman, Adrian
author_sort Shah, Nita R.
collection PubMed
description Membrane-integral pyrophosphatases (mPPases) couple the hydrolysis of pyrophosphate (PP(i)) to the pumping of Na(+), H(+), or both these ions across a membrane. Recently solved structures of the Na(+)-pumping Thermotoga maritima mPPase (TmPPase) and H(+)-pumping Vigna radiata mPPase revealed the basis of ion selectivity between these enzymes and provided evidence for the mechanisms of substrate hydrolysis and ion-pumping. Our atomistic molecular dynamics (MD) simulations of TmPPase demonstrate that loop 5–6 is mobile in the absence of the substrate or substrate-analogue bound to the active site, explaining the lack of electron density for this loop in resting state structures. Furthermore, creating an apo model of TmPPase by removing ligands from the TmPPase:IDP:Na structure in MD simulations resulted in increased dynamics in loop 5–6, which results in this loop moving to uncover the active site, suggesting that interactions between loop 5–6 and the imidodiphosphate and its associated Mg(2+) are important for holding a loop-closed conformation. We also provide further evidence for the transport-before-hydrolysis mechanism by showing that the non-hydrolyzable substrate analogue, methylene diphosphonate, induces low levels of proton pumping by VrPPase.
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spelling pubmed-53364702017-03-24 Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation Shah, Nita R. Wilkinson, Craig Harborne, Steven P. D. Turku, Ainoleena Li, Kun-Mou Sun, Yuh-Ju Harris, Sarah Goldman, Adrian Struct Dyn Transactions from the 66th Annual Meeting of the American Crystallographic Association (Aca) Membrane-integral pyrophosphatases (mPPases) couple the hydrolysis of pyrophosphate (PP(i)) to the pumping of Na(+), H(+), or both these ions across a membrane. Recently solved structures of the Na(+)-pumping Thermotoga maritima mPPase (TmPPase) and H(+)-pumping Vigna radiata mPPase revealed the basis of ion selectivity between these enzymes and provided evidence for the mechanisms of substrate hydrolysis and ion-pumping. Our atomistic molecular dynamics (MD) simulations of TmPPase demonstrate that loop 5–6 is mobile in the absence of the substrate or substrate-analogue bound to the active site, explaining the lack of electron density for this loop in resting state structures. Furthermore, creating an apo model of TmPPase by removing ligands from the TmPPase:IDP:Na structure in MD simulations resulted in increased dynamics in loop 5–6, which results in this loop moving to uncover the active site, suggesting that interactions between loop 5–6 and the imidodiphosphate and its associated Mg(2+) are important for holding a loop-closed conformation. We also provide further evidence for the transport-before-hydrolysis mechanism by showing that the non-hydrolyzable substrate analogue, methylene diphosphonate, induces low levels of proton pumping by VrPPase. American Crystallographic Association 2017-03-03 /pmc/articles/PMC5336470/ /pubmed/28345008 http://dx.doi.org/10.1063/1.4978038 Text en © 2017 Author(s). 2329-7778/2017/4(3)/032105/12 All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Transactions from the 66th Annual Meeting of the American Crystallographic Association (Aca)
Shah, Nita R.
Wilkinson, Craig
Harborne, Steven P. D.
Turku, Ainoleena
Li, Kun-Mou
Sun, Yuh-Ju
Harris, Sarah
Goldman, Adrian
Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title_full Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title_fullStr Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title_full_unstemmed Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title_short Insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
title_sort insights into the mechanism of membrane pyrophosphatases by combining experiment and computer simulation
topic Transactions from the 66th Annual Meeting of the American Crystallographic Association (Aca)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5336470/
https://www.ncbi.nlm.nih.gov/pubmed/28345008
http://dx.doi.org/10.1063/1.4978038
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