THE INFLUENCE OF ELECTROSTATIC INTERACTIONS AND INTRAMOLECULAR DYNAMICS ON ELECTRON-TRANSFER FROM THE CYTOCHROME SUBUNIT TO THE CATION - RADICAL OF THE BACTERIOCHLOROPHYLL DIMER IN REACTION CENTERS FROM RPS VIRIDIS

Citation
En. Frolov et al., THE INFLUENCE OF ELECTROSTATIC INTERACTIONS AND INTRAMOLECULAR DYNAMICS ON ELECTRON-TRANSFER FROM THE CYTOCHROME SUBUNIT TO THE CATION - RADICAL OF THE BACTERIOCHLOROPHYLL DIMER IN REACTION CENTERS FROM RPS VIRIDIS, European biophysics journal, 24(6), 1996, pp. 433-438
Citations number
30
Categorie Soggetti
Biophysics
Journal title
ISSN journal
01757571
Volume
24
Issue
6
Year of publication
1996
Pages
433 - 438
Database
ISI
SICI code
0175-7571(1996)24:6<433:TIOEIA>2.0.ZU;2-4
Abstract
Interheme electrostatic interaction can explain the acceleration of th e electron transfer (ET) rate from the highest potential heme (C-380) to the photooxidized bacteriochlorophyll dimer (P+) which takes place after the reduction of neighbouring heme(s) of the cytochrome subunit in the reaction center of Rps. viridis. The electrostatic interaction energies calculated fur neighbouring hemes, 7.0 Angstrom apart (edge t o-edge), and for two high potential hemes, 21.5 Angstrom apart are fou nd to be 0.110 eV and 0.030 eV respectively. The reorganisation energy of the C-380-P+ transition of about 0.290+/-0.030 eV is calculated us ing the Marcus theory of electron tunneling. An empirical relation for the rate of ET is given. The low temperature restriction of the C-380 -P+ transition is caused by an energetic inhibition which originates f rom an opposite shifting of the energy levels of C-380 and P+ due to t he freezing of protein dynamics and protein-bound water mobility. The freezing of the protein dynamics is revealed by the Mossbauer effect a nd correlates with the efficiency of the ET.