Insights into the Protein Functions and Absorption Wavelengths of Microbial Rhodopsins

被引:18
作者
Tsujimura, Masaki [1 ]
Ishikita, Hiroshi [1 ,2 ]
机构
[1] Univ Tokyo, Dept Appl Chem, Tokyo 1138654, Japan
[2] Univ Tokyo, Res Ctr Adv Sci & Technol, Tokyo 1138654, Japan
关键词
SENSORY RHODOPSIN; CRYSTAL-STRUCTURE; MOLECULAR-DYNAMICS; HISTIDINE-RESIDUES; BINDING POCKET; IMIDAZOLE RING; SPECTRAL SHIFT; ACID-BASE; BACTERIORHODOPSIN; MECHANISM;
D O I
10.1021/acs.jpcb.0c08910
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Using a quantum mechanical/molecular mechanical approach, the absorption wavelength of the retinal Schiff base was calculated based on 13 microbial rhodopsin crystal structures. The results showed that the protein electrostatic environment decreases the absorption wavelength significantly in the cation-conducting rhodopsin but only slightly in the sensory rhodopsin. Among the microbial rhodopsins with different functions, the differences in the absorption wavelengths are caused by differences in the arrangement of the charged residues at the retinal Schiff base binding moiety, namely, one or two counterions at the three common positions. Among the microbial rhodopsins with similar functions, the differences in the polar residues at the retinal Schiff base binding site are responsible for the differences in the absorption wavelengths. Counterions contribute to an absorption wavelength shift of 50-120 nm, whereas polar groups contribute to a shift of up to similar to 10 nm. It seems likely that protein function is directly associated with the absorption wavelength in microbial rhodopsins.
引用
收藏
页码:11819 / 11826
页数:8
相关论文
共 75 条
  • [1] [Anonymous], 2012, QSITE
  • [2] [Anonymous], 2012, Jaguar
  • [3] The Kohn-Sham gap, the fundamental gap and the optical gap: the physical meaning of occupied and virtual Kohn-Sham orbital energies
    Baerends, E. J.
    Gritsenko, O. V.
    van Meer, R.
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2013, 15 (39) : 16408 - 16425
  • [4] THE 2 PK(A) OF ASPARTATE-85 AND CONTROL OF THERMAL-ISOMERIZATION AND PROTON RELEASE IN THE ARGININE-82 TO LYSINE MUTANT OF BACTERIORHODOPSIN
    BALASHOV, SP
    GOVINDJEE, R
    IMASHEVA, ES
    MISRA, S
    EBREY, TG
    FENG, Y
    CROUCH, RK
    MENICK, DR
    [J]. BIOCHEMISTRY, 1995, 34 (27) : 8820 - 8834
  • [5] PKAS OF IONIZABLE GROUPS IN PROTEINS - ATOMIC DETAIL FROM A CONTINUUM ELECTROSTATIC MODEL
    BASHFORD, D
    KARPLUS, M
    [J]. BIOCHEMISTRY, 1990, 29 (44) : 10219 - 10225
  • [6] CHARMM - A PROGRAM FOR MACROMOLECULAR ENERGY, MINIMIZATION, AND DYNAMICS CALCULATIONS
    BROOKS, BR
    BRUCCOLERI, RE
    OLAFSON, BD
    STATES, DJ
    SWAMINATHAN, S
    KARPLUS, M
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (02) : 187 - 217
  • [7] The photophobic receptor from Natronobacterium pharaonis:: Temperature and pH dependencies of the photocycle of sensory rhodopsin II
    Chizhov, I
    Schmies, G
    Seidel, R
    Sydor, JR
    Lüttenberg, B
    Engelhard, M
    [J]. BIOPHYSICAL JOURNAL, 1998, 75 (02) : 999 - 1009
  • [8] Molecular mechanical models for organic and biological systems going beyond the atom centered two body additive approximation: Aqueous solution free energies of methanol and N-methyl acetamide, nucleic acid base, and amide hydrogen bonding and chloroform/water partition coefficients of the nucleic acid bases
    Cieplak, P
    Caldwell, J
    Kollman, P
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 2001, 22 (10) : 1048 - 1057
  • [9] Spectral properties and isomerisation path of retinal in C1C2 channelrhodopsin
    Dokukina, I.
    Weingart, O.
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (38) : 25142 - 25150
  • [10] Microbial and Animal Rhodopsins: Structures, Functions, and Molecular Mechanisms
    Ernst, Oliver P.
    Lodowski, David T.
    Elstner, Marcus
    Hegemann, Peter
    Brown, Leonid S.
    Kandori, Hideki
    [J]. CHEMICAL REVIEWS, 2014, 114 (01) : 126 - 163