Quantum mechanical calculations of charge effects on gating the KcsA channel

被引:17
作者
Kariev, Alisher M. [1 ]
Znamenskiy, Vasiliy S. [1 ]
Green, Michael E. [1 ]
机构
[1] CUNY City Coll, Dept Chem, New York, NY 10031 USA
来源
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES | 2007年 / 1768卷 / 05期
关键词
KcsA K+ channel; gating; proton; ab initio calculation;
D O I
10.1016/j.bbamem.2007.01.021
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A series of ab initio (density functional) calculations were carried out on side chains of a set of amino acids, plus water, from the (intracellular) gating region of the KcsA K+ channel. Their atomic coordinates, except hydrogen, are known from X-ray structures [D.A. Doyle, J.M. Cabral, R.A. Pfuetzner, A. Kuo, J.M. Gulbis, S.L. Cohen, B.T. Chait, R. MacKinnon, The structure of the potassium channel: molecular basis of K+ conduction and selectivity, Science 280 (1998) 69-77; R. MacKinnon, S.L. Cohen, A. Kuo, A. Lee, B.T. Chait, Structural conservation in prokaryotic and eukaryotic potassium channels, Science 280 (1998) 106-109; Y. Jiang, A. Lee, J. Chen, M. Cadene, B.T. Chait, R. MacKinnon, The open pore conformation of potassium channels. Nature 417 (2001) 523-526], as are the coordinates of some water oxygen atoms. The 1k4c structure is used for the starting coordinates. Quantum mechanical optimization, in spite of the starting configuration, places the atoms in positions much closer to the 1j95, more tightly closed, configuration. This state shows four water molecules forming a "basket" under the Q 119 side chains, blocking the channel. When a hydrated K+ approaches this "basket", the optimized system shows a strong set of hydrogen bonds with the K+ at defined positions, preventing further approach of the K+ to the basket. This optimized structure with hydrated K+ added shows an ice-like 12 molecule nanocrystal of water. If the water molecules exchange, unless they do it as a group, the channel will remain blocked. The "basket" itself appears to be very stable, although it is possible that the K+ with its hydrating water molecules may be more mobile, capable of withdrawing from the gate. It is also not surprising that water essentially freezes, or forms a kind of glue, in a nanometer space-, this agrees with experimental results on a rather different, but similarly sized (nm dimensions) system [K.B. Jinesh, JW.M. Frenken, Capillary condensation in atomic scale friction: how water acts like a glue, Phys. Rev. Lett. 96 (2006) 166103/1-4]. It also agrees qualitatively with simulations on channels [A. Anishkin, S. Sukharev, Water dynamics and dewetting transitions in the small mechanosensitive channel MscS, Biophys. J. 86 (2004) 2883-2895; O. Beckstein, M.S.P. Sansom, Liquid-vapor oscillations of water in hydrophobic nanopores, Proc. Natl Acad. Sci. U. S. A. 100 (2003) 7063-7068] and on featureless channel-like systems [J. Lu, M.E. Green, Simulation of water in a pore with charges: application to a gating mechanism for ion channels, Prog. Colloid Polym. Sci. 103 (1997) 121-129], in that it forms a boundary on water that is not obvious from the liquid state. The idea that a structure is stable, even if individual molecules exchange, is well known, for example from the hydration shell of ions. We show that when charges are added in the form of protons to the domains (one proton per domain), the optimized structure is open. No stable water hydrogen bonds hold it together; an opening of 11.0 angstrom appears, measured diagonally between non-neighboring domains as glutamine 119 carbonyl O-O distance. This is comparable to the opening in the MthK potassium channel structure that is generally agreed to be open. The appearance of the opening is in rather good agreement with that found by Perozo and coworkers. In contrast, in the uncharged structure this diagonal distance is 6. 5 angstrom, and the water "basket" constricts the uncharged opening still further, with the ice-like structure that couples the K+ ion to thegating region freezing the entrance to the channel. Comparison with, our earlier model for voltage gated channels suggests that a similar mechanism may apply in those channels. (c) 2007 Elsevier B.V. All rights reserved.
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页码:1218 / 1229
页数:12
相关论文
共 49 条
[1]   Molecular dynamics estimates of ion diffusion in model hydrophobic and KcsA potassium channels [J].
Allen, TW ;
Kuyucak, S ;
Chung, SH .
BIOPHYSICAL CHEMISTRY, 2000, 86 (01) :1-14
[2]   Water dynamics and dewetting transitions in the small mechanosensitive channel MscS [J].
Anishkin, A ;
Sukharev, S .
BIOPHYSICAL JOURNAL, 2004, 86 (05) :2883-2895
[3]   Liquid-vapor oscillations of water in hydrophobic nanopores [J].
Beckstein, O ;
Sansom, MSP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (12) :7063-7068
[4]   Visualization of solvation structures in liquid mixtures [J].
Bergman, DL ;
Laaksonen, L ;
Laaksonen, A .
JOURNAL OF MOLECULAR GRAPHICS & MODELLING, 1997, 15 (05) :301-+
[5]   Electronic effects in biomolecular simulations: Investigation of the KcsA potassium ion channel [J].
Bliznyuk, AA ;
Rendell, AP .
JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (36) :13866-13873
[6]   Biophysical aspects of intra-protein proton transfer [J].
Brandsburg-Zabary, S ;
Fried, G ;
Marantz, Y ;
Nachliel, E ;
Gutman, M .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2000, 1458 (01) :120-134
[7]   Simulations of ion current in realistic models of ion channels:: The KcsA potassium channel [J].
Burykin, A ;
Schutz, CN ;
Villá, J ;
Warshel, A .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2002, 47 (03) :265-280
[8]   Gating charge displacement in voltage-gated ion channels involves limited transmembrane movement [J].
Chanda, B ;
Asamoah, OK ;
Blunck, R ;
Roux, B ;
Bezanilla, F .
NATURE, 2005, 436 (7052) :852-856
[9]   Ab initio investigation of the atomic charges in the KcsA channel selectivity filter [J].
Compoint, M ;
Ramseyer, C ;
Huetz, P .
CHEMICAL PHYSICS LETTERS, 2004, 397 (4-6) :510-515
[10]   Molecular architecture of full-length KcsA -: Role of cytoplasmic domains in ion permeation and activation gating [J].
Cortes, DM ;
Cuello, LG ;
Perozo, E .
JOURNAL OF GENERAL PHYSIOLOGY, 2001, 117 (02) :165-180