MODELING VIBRATIONAL-SPECTRA OF AMINO-ACID SIDE-CHAINS IN PROTEINS - THE CARBONYL STRETCH FREQUENCY OF BURIED CARBOXYLIC RESIDUES

被引:64
作者
DIOUMAEV, AK [1 ]
BRAIMAN, MS [1 ]
机构
[1] UNIV VIRGINIA,HLTH SCI CTR,DEPT BIOCHEM,CHARLOTTESVILLE,VA 22908
关键词
D O I
10.1021/ja00147a020
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
To improve the use of vibrational spectra for modeling Asp and Glu environments buried in proteins, nu(C=0) frequencies of aliphatic carboxylic acids and N-acetylaspartic acid alpha-amide were compared in several different solvents. These data indicate that propionic acid and longer-chain aliphatic carboxylic acids are all quite similar, and serve as better models for Asp and Glu residues buried in proteins than does acetic acid. For propionic acid, nu(C=0) frequencies above 1745 cm(-1) are observed only in non-H-bonding solvents. Furthermore, in such non-H-bonding solvents, the nu(C=0) frequency exhibits a linear correlation with Onsager's parameter, 2(epsilon - 1)/(2 epsilon + 1), which is expected to be proportional to the strength of the solute-induced electrostatic (''reaction'') field of the solvent. We also measured a nu(C=0) frequency of 1742 cm(-1) for the protonated Asp-26 residue of thioredoxin which is known to be surrounded principally by nonpolar groups. These results are used to model the environment of the Asp-85 residue of bacteriorhodopsin, for which the nu(C=0) frequency has been measured previously in several photointermediate states. In the unphotolyzed (bR) state, the Asp-85 residue (nu(C=0) similar or equal to 1730 cm(-1)) is in a relatively polar hydrogen-bonding environment, but this environment is drastically changed upon photoconversion to the M state (nu(C=0) = 1762 cm(-1)). We conclude that in the latter state, the Asp-85 COOH group is in a highly nonpolar environment, characterized by the absence not only of hydrogen bonding but also of other forms of external dielectric stabilization.
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页码:10572 / 10574
页数:3
相关论文
共 20 条
[1]  
BELLAMY LJ, 1975, ADV INFRARED GROUP F, V2, P183
[2]  
BELLAMY LJ, 1968, ADV INFRARED GROUP F, V2, P172
[3]   VIBRATIONAL SPECTROSCOPY OF BACTERIORHODOPSIN MUTANTS - LIGHT-DRIVEN PROTON TRANSPORT INVOLVES PROTONATION CHANGES OF ASPARTIC-ACID RESIDUE-85, RESIDUE-96, AND RESIDUE-212 [J].
BRAIMAN, MS ;
MOGI, T ;
MARTI, T ;
STERN, LJ ;
KHORANA, HG ;
ROTHSCHILD, KJ .
BIOCHEMISTRY, 1988, 27 (23) :8516-8520
[4]  
BRAIMAN MS, 1995, IN PRESS BIOPHYS J
[5]   CARBOXYL GROUP INVOLVEMENT IN THE META-I AND META-II STAGES IN RHODOPSIN BLEACHING - A FOURIER-TRANSFORM INFRARED SPECTROSCOPIC STUDY [J].
DEGRIP, WJ ;
GILLESPIE, J ;
ROTHSCHILD, KJ .
BIOCHIMICA ET BIOPHYSICA ACTA, 1985, 809 (01) :97-106
[6]   LIGHT-DRIVEN PROTONATION CHANGES OF INTERNAL ASPARTIC ACIDS OF BACTERIORHODOPSIN - AN INVESTIGATION BY STATIC AND TIME-RESOLVED INFRARED DIFFERENCE SPECTROSCOPY USING [4-C-13] ASPARTIC ACID LABELED PURPLE MEMBRANE [J].
ENGELHARD, M ;
GERWERT, K ;
HESS, B ;
KREUTZ, W ;
SIEBERT, F .
BIOCHEMISTRY, 1985, 24 (02) :400-407
[7]   ETUDE PAR SPECTROSCOPIE INFRAROUGE ET RAMAN DES COMPLEXES DE LACIDE ACETIQUE AVEC DES ACCEPTEURS DE PROTON [J].
HAURIE, M ;
NOVAK, A .
JOURNAL DE CHIMIE PHYSIQUE ET DE PHYSICO-CHIMIE BIOLOGIQUE, 1967, 64 (04) :679-&
[8]   MODEL FOR THE STRUCTURE OF BACTERIORHODOPSIN BASED ON HIGH-RESOLUTION ELECTRON CRYOMICROSCOPY [J].
HENDERSON, R ;
BALDWIN, JM ;
CESKA, TA ;
ZEMLIN, F ;
BECKMANN, E ;
DOWNING, KH .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 213 (04) :899-929
[9]   CRYSTAL-STRUCTURE OF THIOREDOXIN FROM ESCHERICHIA-COLI AT 1.68A RESOLUTION [J].
KATTI, SK ;
LEMASTER, DM ;
EKLUND, H .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 212 (01) :167-184
[10]   THE CONSERVED, BURIED ASPARTIC-ACID IN OXIDIZED ESCHERICHIA-COLI THIOREDOXIN HAS A PKA OF 7.5 - ITS TITRATION PRODUCES A RELATED SHIFT IN GLOBAL STABILITY [J].
LANGSETMO, K ;
FUCHS, JA ;
WOODWARD, C .
BIOCHEMISTRY, 1991, 30 (30) :7603-7609