Kinetics of oxidation of the bound cytochromes in reaction centers fromRhodopseudomonas viridis
โ Scribed by R. J. Shopes; L. M. A. Levine; D. Holten; C. A. Wraight
- Publisher
- Springer
- Year
- 1987
- Tongue
- English
- Weight
- 802 KB
- Volume
- 12
- Category
- Article
- ISSN
- 0166-8595
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โฆ Synopsis
The initial oxidized species in the photochemical charge separation in reaction centers from Rps. viridis is the primary donor, P(+), a bacteriochlorophyll dimer. Bound c-type cytochromes, two high potential (Cyt c 558) and two low potential (Cyt c 553), act as secondary electron donors to P(+). Flash induced absorption changes were measured at moderate redox potential, when the high potential cytochromes were chemically reduced. A fast absorption change was due to the initial oxidation of one of the Cyt c 558 by P(+) with a rate of 3.7ร10(6)s(-1) (ฯ=270nsec). A slower absorption change was attributable to a transfer, or sharing, of the remaining electron from one high potential heme to the other, with a rate of 2.8ร10(5)s(-1) (ฯ=3.5 ฮผsec). The slow change was measured at a number of wavelengths throughout the visible and near infrared and revealed that the two high potential cytochromes have slightly different differential absorption spectra, with ฮฑ-band maxima at 559 nm (Cyt c 559) and 556.5 nm (Cyt c 556), and dissimilar electrochromic effects on nearby pigments. The sequence of electron transfers, following a flash, is: Cyt c 556โCyt c 559โP(+). At lower redox potentials, a low midpoint potential cytochrome, Cyt c 553, is preferentially oxidized by P(+) with a rate of 7ร10(6)s(-1) (ฯ=140 nsec). The assignment of the low and high potential cytochromes to the four, linearly arranged hemes of the reaction center is discussed. It is concluded that the closest heme to P must be the high potential Cyt c 559, and it is suggested that a likely arrangement for the four hemes is: c 553 c 556 c 553 c 559P.
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## Abstract All electron calculations were performed on the photosynthetic reaction center of __Blastochloris viridis__, using the fragment molecular orbital (FMO) method. The protein complex of 20,581 atoms and 77,754 electrons was divided into 1398 fragments, and the twoโbody expansion of FMO/6โ3