FOURIER-TRANSFORM INFRARED DIFFERENCE SPECTROSCOPY OF RHODOPSIN MUTANTS - LIGHT ACTIVATION OF RHODOPSIN CAUSES HYDROGEN-BONDING CHANGE IN RESIDUE ASPARTIC ACID-83 DURING META-II FORMATION

被引:86
作者
RATH, P
DECALUWE, LLJ
BOVEEGEURTS, PHM
DEGRIP, WJ
ROTHSCHILD, KJ
机构
[1] BOSTON UNIV,DEPT PHYS,590 COMMONWEALTH AVE,BOSTON,MA 02215
[2] CATHOLIC UNIV NIJMEGEN,CTR EYE RES,DEPT BIOCHEM,6500 HB NIJMEGEN,NETHERLANDS
[3] BOSTON UNIV,DEPT PHYSIOL,BOSTON,MA 02215
[4] BOSTON UNIV,PROGRAM CELLULAR BIOPHYS,BOSTON,MA 02215
关键词
D O I
10.1021/bi00090a001
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
Fourier transform infrared (FTIR) difference spectroscopy and site-directed mutagenesis have been used to investigate structural changes which occur during rhodopsin photoactivation at the level of individual amino acid residues. The rhodopsin --> bathorhodopsin FTIR difference spectra of the mutants Asp-83 --> Asn (D83N) and Glu-134 --> Asp (E134D) incorporated into membranes are similar to that of native rhodopsin in the photoreceptor membrane, demonstrating that the retinal chromophores of these mutants undergo a normal 11-cis to all-trans photoisomerization. Two bands assigned to the C=O stretching mode of Asp and/or Glu carboxylic acid groups are absent in the D83N rhodopsin --> metarhodopsin II FTIR difference spectrum. Corresponding changes are not observed in the carboxylate C=O stretching region. The most straightforward explanation is that the carboxylic acid group of Asp-83 remains protonated in rhodopsin and its bleaching intermediates but undergoes an increase in its hydrogen bonding during the metarhodopsin I --> metarhodopsin II transition. The mutant E134D produced a normal rhodopsin --> bathorhodopsin and rhodopsin --> metarhodopsin II difference spectrum, but a fraction of misfolded protein was observed, supporting earlier evidence that Glu-134 plays a role in proper protein insertion and/or folding in the membrane.
引用
收藏
页码:10277 / 10282
页数:6
相关论文
共 52 条
[21]  
HARGRAVE PA, 1986, RETINA, V1, P207
[22]   INVITRO EXPRESSION OF BOVINE OPSIN USING RECOMBINANT BACULOVIRUS - THE ROLE OF GLUTAMIC ACID-(134) IN OPSIN BIOSYNTHESIS AND GLYCOSYLATION [J].
JANSEN, JJM ;
MULDER, WR ;
DECALUWE, GLJ ;
VLAK, JM ;
DEGRIP, WJ .
BIOCHIMICA ET BIOPHYSICA ACTA, 1991, 1089 (01) :68-76
[23]   SYNTHESIS OF FUNCTIONAL BOVINE OPSIN IN INSECT CELLS UNDER CONTROL OF THE BACULOVIRUS POLYHEDRIN PROMOTER [J].
JANSSEN, JJM ;
VANDEVEN, WJM ;
VANGRONINGENLUYBEN, WAHM ;
ROOSIEN, J ;
VLAK, JM ;
DEGRIP, WJ .
MOLECULAR BIOLOGY REPORTS, 1988, 13 (02) :65-71
[24]   ASP83, GLU113 AND GLU134 ARE NOT SPECIFICALLY INVOLVED IN SCHIFF-BASE PROTONATION OR WAVELENGTH REGULATION IN BOVINE RHODOPSIN [J].
JANSSEN, JJM ;
DECALUWE, GLJ ;
DEGRIP, WJ .
FEBS LETTERS, 1990, 260 (01) :113-118
[25]  
KAKITANI T, 1988, 21 P YAM C MOL PHYS, P31
[26]  
KARNIK SS, 1990, J BIOL CHEM, V265, P17520
[27]  
KHORANA HG, 1992, J BIOL CHEM, V267, P1
[28]   RESONANCE RAMAN-SPECTRA OF BACTERIORHODOPSIN MUTANTS WITH SUBSTITUTIONS AT ASP-85, ASP-96, AND ARG-82 [J].
LIN, SW ;
FODOR, SPA ;
MIERCKE, LJW ;
SHAND, RF ;
BETLACH, MC ;
STROUD, RM ;
MATHIES, RA .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1991, 53 (03) :341-346
[29]   STRUCTURES OF ASPARTIC ACID-96 IN THE L-INTERMEDIATE AND N-INTERMEDIATE OF BACTERIORHODOPSIN - ANALYSIS BY FOURIER-TRANSFORM INFRARED-SPECTROSCOPY [J].
MAEDA, A ;
SASAKI, J ;
SHICHIDA, Y ;
YOSHIZAWA, T ;
CHANG, M ;
NI, BF ;
NEEDLEMAN, R ;
LANYI, JK .
BIOCHEMISTRY, 1992, 31 (19) :4684-4690
[30]  
NAKAYAMA TA, 1991, J BIOL CHEM, V266, P4269