STRUCTURE OF THE PHOTOSYNTHETIC REACTION-CENTER FROM RHODOBACTER-SPHAEROIDES AT 2.65-ANGSTROM RESOLUTION - COFACTORS AND PROTEIN-COFACTOR INTERACTIONS

被引:802
作者
ERMLER, U [1 ]
FRITZSCH, G [1 ]
BUCHANAN, SK [1 ]
MICHEL, H [1 ]
机构
[1] MAX PLANCK INST BIOPHYS,D-60528 FRANKFURT,GERMANY
关键词
BACTERIOCHLOROPHYLL; ELECTRON TRANSFER; MEMBRANE PROTEIN; PHOTOSYNTHESIS; PROTON TRANSFER;
D O I
10.1016/S0969-2126(94)00094-8
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
Background: Photosynthetic reaction centres (RCs) catalyze light-driven electron transport across photosynthetic membranes. The photosynthetic bacterium Rhodobacter sphaeroides is often used for studies of RCs, and three groups have determined the structure of its reaction centre. There are discrepancies between these structures, however, and to resolve these we have determined the structure to higher resolution than before, using a new crystal form. Results: The new structure provides a more detailed description of the Rb. sphaeroides RC, and allows us to compare it with the structure of the RC from Rhodopseudomonas viridis. We find no evidence to support most of the published differences in cofactor binding between the RCs from Rps. viridis and Rb. sphaeroides. Generally, the mode of cofactor binding is conserved, particularly along the electron transfer pathway. Substantial differences are only found at ring V of one bacteriochlorophyll of the 'special pair' and for the secondary quinone, Q(B). A water chain with a length of about 23 Angstrom including 14 water molecules extends from the Q(B) to the cytoplasmic side of the RC. Conclusions: The cofactor arrangement and the mode of binding to the protein seem to be very similar among the non-sulphur bacterial photosynthetic RCs. The functional role of the displaced Q(B) molecule, which might be present as quinol, rather than quinone, is not yet clear. The newly discovered water chain to the Q(B) binding site suggests a pathway for the protonation of the secondary quinone Q(B).
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页码:925 / 936
页数:12
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