The role of small intraprotein cavities in the catalytic cycle of bacteriorhodopsin

被引:16
作者
Friedman, R [1 ]
Nachliel, E [1 ]
Gutman, M [1 ]
机构
[1] Tel Aviv Univ, Dept Biochem, Laser Lab Fast React Biol, IL-69978 Tel Aviv, Israel
关键词
D O I
10.1016/S0006-3495(03)74528-7
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The last phase of the proton transfer cycle of bacteriorhodopsin calls for a passage of a proton from D38 to D96. This reaction utilizes a narrow shaft similar to10-Angstrom long that connects the two carboxylates that cross through a very hydrophobic domain. As the shaft is too narrow to be permanently hydrated, there are two alternatives for the proton propagation into the channel. The proton may propagate through the shaft without solvation at the expense of a high electrostatic barrier; alternatively, the shaft will expand to accommodate some water molecules, thus lowering the Born energy for the insertion of the charge into the protein (B. Schatzler, N.A. Dencher, J. Tittor, D. Oesterhelt, S. Yaniv-Checover, E. Nachliel, and G. Gutman, 2003, Biophys. J. 84: 671-686). A comparative study of nine published crystal-structures of bacteriorhodopsin identified, next to the shaft, microcavities in the protein whose position and surrounding atoms are common to the reported structures. Some of the cavities either shrink or expand during the photocycle. It is argued that the plasticity of the cavities provides a working space needed for the transient solvation of the shaft, thus reducing the activation energy necessary for the solvation of the shaft. This suggestion is corroborated by the recent observations of Klink et al. (B.U. Klink, R. Winter, M. Engelhard, and I. Chizhov, 2002, Biophys. J. 83: 3490-3498) that the late phases of the photocycle (taugreater than or equal to1 ms) are strongly inhibited by external pressure.
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页码:886 / 896
页数:11
相关论文
共 43 条
[1]   EVIDENCE FOR CHROMOPHORE-CHROMOPHORE INTERACTIONS IN PURPLE-MEMBRANE FROM RECONSTITUTION EXPERIMENTS OF CHROMOPHORE-FREE MEMBRANE [J].
BAUER, PJ ;
DENCHER, NA ;
HEYN, MP .
BIOPHYSICS OF STRUCTURE AND MECHANISM, 1976, 2 (01) :79-92
[2]   The Protein Data Bank [J].
Berman, HM ;
Westbrook, J ;
Feng, Z ;
Gilliland, G ;
Bhat, TN ;
Weissig, H ;
Shindyalov, IN ;
Bourne, PE .
NUCLEIC ACIDS RESEARCH, 2000, 28 (01) :235-242
[3]   CHARMM - A PROGRAM FOR MACROMOLECULAR ENERGY, MINIMIZATION, AND DYNAMICS CALCULATIONS [J].
BROOKS, BR ;
BRUCCOLERI, RE ;
OLAFSON, BD ;
STATES, DJ ;
SWAMINATHAN, S ;
KARPLUS, M .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (02) :187-217
[4]   Functional roles of aspartic acid residues at the cytoplasmic surface of bacteriorhodopsin [J].
Brown, LS ;
Needleman, R ;
Lanyi, JK .
BIOCHEMISTRY, 1999, 38 (21) :6855-6861
[5]   Functional significance of a protein conformation change at the cytoplasmic end of helix F during the bacteriorhodopsin photocycle [J].
Brown, LS ;
Varo, G ;
Needleman, R ;
Lanyi, JK .
BIOPHYSICAL JOURNAL, 1995, 69 (05) :2103-2111
[6]   WATER IS REQUIRED FOR PROTON-TRANSFER FROM ASPARTATE-96 TO THE BACTERIORHODOPSIN SCHIFF-BASE [J].
CAO, Y ;
VARO, G ;
CHANG, M ;
NI, BF ;
NEEDLEMAN, R ;
LANYI, JK .
BIOCHEMISTRY, 1991, 30 (45) :10972-10979
[7]   Dynamics of the proton transfer reaction on the cytoplasmic surface of bacteriorhodopsin [J].
Checover, S ;
Marantz, Y ;
Nachliel, E ;
Gutman, M ;
Pfeiffer, M ;
Tittor, J ;
Oesterhelt, D ;
Dencher, NA .
BIOCHEMISTRY, 2001, 40 (14) :4281-4292
[8]  
DENCHER NA, 1992, COLLOQ INSE, V221, P213
[9]   Fourier transform infrared spectra of a late intermediate of the bacteriorhodopsin photocycle suggest transient protonation of Asp-212 [J].
Dioumaev, AK ;
Brown, LS ;
Needleman, R ;
Lanyi, JK .
BIOCHEMISTRY, 1999, 38 (31) :10070-10078
[10]   Coupling of the reisomerization of the retinal, proton uptake, and reprotonation of Asp-96 in the N photointermediate of bacteriorhodopsin [J].
Dioumaev, AK ;
Brown, LS ;
Needleman, R ;
Lanyi, JK .
BIOCHEMISTRY, 2001, 40 (38) :11308-11317