LOW-TEMPERATURE PHOTOOXIDATION OF CYTOCHROME-C IN REACTION CENTER COMPLEXES FROM RHODOPSEUDOMONAS-VIRIDIS

被引:29
作者
KAMINSKAYA, O
KONSTANTINOV, AA
SHUVALOV, VA
机构
[1] AN BELOZERSKY LAB MOLEC BIOL & BIOORGAN CHEM,MOSCOW 119899,USSR
[2] ACAD SCI USSR,INST PHOTOSYNTH & SOIL SCI,PUSHCHINO,USSR
关键词
(Rps. viridis); Cytochrome c; Electron transfer mechanism; Electron tunneling; Low temperature photooxidation; Reaction center;
D O I
10.1016/0005-2728(90)90054-8
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
Low-temperature photooxidation of the high-potential haem c380 (c-559) and low-potential haem c20 (c-552) has been studied in isolated RC complexes from Rps. viridis. At appropriately low redox potential, complete irreversible oxidation of c20 ensues following flash-excitation at 77 K with t 1 2 = 20 μs. Photooxidation of c380, which can be observed at high Eh, is more rapid (t 1 2 < 6 μs) and fully reversible; however, only about 20% of the haem is oxidized at 77-140 K. Full photooxidizability of c380 is attained as the temperature is raised in the range 140-200 K. Studies of the charge recombination kinetics indicate the low temperature-induced decrease of c380 photooxidizability to originate from the effect of freezing on the equilibrium constant of electron distribution between the haem and the pigment: {A figure is presented}Keq decreasing from about 100 at 293 K to about 0.25 below 140 K. A two-step mechanism of c380 photooxidation above 200 K is suggested where initial virtually isopotential temperature-independent electron dislocation from c380 to P is followed by nuclear medium reorganization which stabilizes the final c+380 P state: {A figure is presented} Freezing is likely to prevent reorganization of the medium, thus allowing for observation of the initial electron transfer step at low temperatures. Photooxidation of the low-potential haem(s) may occur via the equilibrium fraction of the c+380 P state with unrelaxed nuclear environment. In sum, the results of low-temperature experiments are fully consistent with the linear sequence of haems {A figure is presented} and there is no need to postulate parallel electron transfer pathways involved in photooxidation of high- and low-potential haems. © 1990.
引用
收藏
页码:153 / 164
页数:12
相关论文
共 68 条
[21]  
DEVAULT D, 1980, Q REV BIOPHYS, V13, P390
[22]  
DRACHEVA SM, 1987, BIOL MEMBRANY, V4, P1269
[23]   ELECTROGENIC STEPS IN THE REDOX REACTIONS CATALYZED BY PHOTOSYNTHETIC REACTION-CENTER COMPLEX FROM RHODOPSEUDOMONAS-VIRIDIS [J].
DRACHEVA, SM ;
DRACHEV, LA ;
KONSTANTINOV, AA ;
SEMENOV, AY ;
SKULACHEV, VP ;
ARUTJUNJAN, AM ;
SHUVALOV, VA ;
ZABEREZHNAYA, SM .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1988, 171 (1-2) :253-264
[24]   SPECTRAL, REDOX AND KINETIC CHARACTERISTICS OF HIGH-POTENTIAL CYTOCHROME-C HEMES IN RHODOPSEUDOMONAS-VIRIDIS REACTION CENTER [J].
DRACHEVA, SM ;
DRACHEV, LA ;
ZABEREZHNAYA, SM ;
KONSTANTINOV, AA ;
SEMENOV, AY ;
SKULACHEV, VP .
FEBS LETTERS, 1986, 205 (01) :41-46
[25]  
Dutton P.L, 1978, PHOTOSYNTHETIC BACTE, P525
[26]   EARLY REACTIONS IN PHOTOSYNTHETIC ENERGY CONSERVATION - PHOTOOXIDATION AT LIQUID NITROGEN TEMPERATURES OF 2 CYTOCHROMES IN CHROMATOPHORES OF RHODOPSEUDOMONAS-GELATINOSA [J].
DUTTON, PL ;
KIHARA, T ;
CHANCE, B .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1970, 139 (01) :236-&
[27]   CYTOCHROME C553 AND BACTERIOCHLOROPHYLL INTERACTION AT 77 DEGREES K IN CHROMATOPHORES AND SUBCHROMATOPHORE PREPARATION FROM CHROMATIUM-D [J].
DUTTON, PL ;
KIHARA, T ;
MCCRAY, JA ;
THORNBER, JP .
BIOCHIMICA ET BIOPHYSICA ACTA, 1971, 226 (01) :81-&
[29]   RATES OF PRIMARY ELECTRON-TRANSFER IN PHOTOSYNTHETIC REACTION CENTERS AND THEIR MECHANISTIC IMPLICATIONS [J].
FLEMING, GR ;
MARTIN, JL ;
BRETON, J .
NATURE, 1988, 333 (6169) :190-192
[30]  
FOK EV, 1988, BIOL MEMBRANY, V5, P263