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Water Wires in Atomistic Models of the Hv1 Proton Channel

Overview
Specialties Biochemistry
Biophysics
Date 2011 Aug 17
PMID 21843503
Citations 53
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Abstract

The voltage-gated proton channel (Hv1) is homologous to the voltage-sensing domain (VSD) of voltage-gated potassium (Kv) channels but lacks a separate pore domain. The Hv1 monomer has dual functions: it gates the proton current and also serves as the proton conduction pathway. To gain insight into the structure and dynamics of the yet unresolved proton permeation pathway, we performed all-atom molecular dynamics simulations of two different Hv1 homology models in a lipid bilayer in excess water. The structure of the Kv1.2-Kv2.1 paddle-chimera VSD was used as template to generate both models, but they differ in the sequence alignment of the S4 segment. In both models, we observe a water wire that extends through the membrane, whereas the corresponding region is dry in simulations of the Kv1.2-Kv2.1 paddle-chimera. We find that the kinetic stability of the water wire is dependent upon the identity and location of the residues lining the permeation pathway, in particular, the S4 arginines. A measurement of water transport kinetics indicates that the water wire is a relatively static feature of the permeation pathway. Taken together, our results suggest that proton conduction in Hv1 may occur via Grotthuss hopping along a robust water wire, with exchange of water molecules between inner and outer ends of the permeation pathway minimized by specific water-protein interactions. This article is part of a Special Issue entitled: Membrane protein structure and function.

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References
1.
DeCoursey T . Voltage-gated proton channels and other proton transfer pathways. Physiol Rev. 2003; 83(2):475-579. DOI: 10.1152/physrev.00028.2002. View

2.
Humphrey W, Dalke A, Schulten K . VMD: visual molecular dynamics. J Mol Graph. 1996; 14(1):33-8, 27-8. DOI: 10.1016/0263-7855(96)00018-5. View

3.
Pathak M, Yarov-Yarovoy V, Agarwal G, Roux B, Barth P, Kohout S . Closing in on the resting state of the Shaker K(+) channel. Neuron. 2007; 56(1):124-40. DOI: 10.1016/j.neuron.2007.09.023. View

4.
Kato M, Pisliakov A, Warshel A . The barrier for proton transport in aquaporins as a challenge for electrostatic models: the role of protein relaxation in mutational calculations. Proteins. 2006; 64(4):829-44. DOI: 10.1002/prot.21012. View

5.
Mannuzzu L, Moronne M, Isacoff E . Direct physical measure of conformational rearrangement underlying potassium channel gating. Science. 1996; 271(5246):213-6. DOI: 10.1126/science.271.5246.213. View