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Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification

Determining the mechanisms of flux through protein channels requires a combination of structural data, permeability measurement, and molecular dynamics (MD) simulations. To further clarify the mechanism of flux through aquaporin 1 (AQP1), osmotic p(f) (cm(3)/s/pore) and diffusion p(d) (cm(3)/s/pore)...

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Autores principales: Mamonov, Artem B., Coalson, Rob D., Zeidel, Mark L., Mathai, John C.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2154366/
https://www.ncbi.nlm.nih.gov/pubmed/17591989
http://dx.doi.org/10.1085/jgp.200709810
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author Mamonov, Artem B.
Coalson, Rob D.
Zeidel, Mark L.
Mathai, John C.
author_facet Mamonov, Artem B.
Coalson, Rob D.
Zeidel, Mark L.
Mathai, John C.
author_sort Mamonov, Artem B.
collection PubMed
description Determining the mechanisms of flux through protein channels requires a combination of structural data, permeability measurement, and molecular dynamics (MD) simulations. To further clarify the mechanism of flux through aquaporin 1 (AQP1), osmotic p(f) (cm(3)/s/pore) and diffusion p(d) (cm(3)/s/pore) permeability coefficients per pore of H(2)O and D(2)O in AQP1 were calculated using MD simulations. We then compared the simulation results with experimental measurements of the osmotic AQP1 permeabilities of H(2)O and D(2)O. In this manner we evaluated the ability of MD simulations to predict actual flux results. For the MD simulations, the force field parameters of the D(2)O model were reparameterized from the TIP3P water model to reproduce the experimentally observed difference in the bulk self diffusion constants of H(2)O vs. D(2)O. Two MD systems (one for each solvent) were constructed, each containing explicit palmitoyl-oleoyl-phosphatidyl-ethanolamine (POPE) phospholipid molecules, solvent, and AQP1. It was found that the calculated value of p(f) for D(2)O is ∼15% smaller than for H(2)O. Bovine AQP1 was reconstituted into palmitoyl-oleoyl-phosphatidylcholine (POPC) liposomes, and it was found that the measured macroscopic osmotic permeability coefficient P(f) (cm/s) of D(2)O is ∼21% lower than for H(2)O. The combined computational and experimental results suggest that deuterium oxide permeability through AQP1 is similar to that of water. The slightly lower observed osmotic permeability of D(2)O compared to H(2)O in AQP1 is most likely due to the lower self diffusion constant of D(2)O.
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spelling pubmed-21543662008-01-17 Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification Mamonov, Artem B. Coalson, Rob D. Zeidel, Mark L. Mathai, John C. J Gen Physiol Articles Determining the mechanisms of flux through protein channels requires a combination of structural data, permeability measurement, and molecular dynamics (MD) simulations. To further clarify the mechanism of flux through aquaporin 1 (AQP1), osmotic p(f) (cm(3)/s/pore) and diffusion p(d) (cm(3)/s/pore) permeability coefficients per pore of H(2)O and D(2)O in AQP1 were calculated using MD simulations. We then compared the simulation results with experimental measurements of the osmotic AQP1 permeabilities of H(2)O and D(2)O. In this manner we evaluated the ability of MD simulations to predict actual flux results. For the MD simulations, the force field parameters of the D(2)O model were reparameterized from the TIP3P water model to reproduce the experimentally observed difference in the bulk self diffusion constants of H(2)O vs. D(2)O. Two MD systems (one for each solvent) were constructed, each containing explicit palmitoyl-oleoyl-phosphatidyl-ethanolamine (POPE) phospholipid molecules, solvent, and AQP1. It was found that the calculated value of p(f) for D(2)O is ∼15% smaller than for H(2)O. Bovine AQP1 was reconstituted into palmitoyl-oleoyl-phosphatidylcholine (POPC) liposomes, and it was found that the measured macroscopic osmotic permeability coefficient P(f) (cm/s) of D(2)O is ∼21% lower than for H(2)O. The combined computational and experimental results suggest that deuterium oxide permeability through AQP1 is similar to that of water. The slightly lower observed osmotic permeability of D(2)O compared to H(2)O in AQP1 is most likely due to the lower self diffusion constant of D(2)O. The Rockefeller University Press 2007-07 /pmc/articles/PMC2154366/ /pubmed/17591989 http://dx.doi.org/10.1085/jgp.200709810 Text en Copyright © 2007, 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 Articles
Mamonov, Artem B.
Coalson, Rob D.
Zeidel, Mark L.
Mathai, John C.
Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title_full Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title_fullStr Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title_full_unstemmed Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title_short Water and Deuterium Oxide Permeability through Aquaporin 1: MD Predictions and Experimental Verification
title_sort water and deuterium oxide permeability through aquaporin 1: md predictions and experimental verification
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2154366/
https://www.ncbi.nlm.nih.gov/pubmed/17591989
http://dx.doi.org/10.1085/jgp.200709810
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