» Articles » PMID: 2550090

Electrostatic and Steric Control of Electron Self-exchange in Cytochromes C, C551, and B5

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 1989 Aug 1
PMID 2550090
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

The ionic strength dependence of the electron self-exchange rate constants of cytochromes c, c551, and b5 has been analyzed in terms of a monopole-dipole formalism (van Leeuwen, J.W. 1983. Biochim. Biophys. Acta. 743:408-421). The dipole moments of the reduced and oxidized forms of Ps. aeruginosa cytochrome c551 are 190 and 210 D, respectively (calculated from the crystal structure). The projections of these on the vector from the center of mass through the exposed heme edge are 120 and 150 D. For cytochrome b5, the dipole moments calculated from the crystal structure are 500 and 460 D for the reduced and oxidized protein; the projections of these dipole moments through the exposed heme edge are -330 and -280 D. A fit of the ionic strength dependence of the electron self-exchange rate constants gives -280 (reduced) and -250 (oxidized) D for the center of mass to heme edge vector. The self-exchange rate constants extrapolated to infinite ionic strength of cytochrome c, c551, and b5 are 5.1 x 10(5), 2 x 10(7), and 3.7 x 10(5) M-1 s-1, respectively. The extension of the monopole-dipole approach to other cytochrome-cytochrome electron transfer reactions is discussed. The control of electron transfer by the size and shape of the protein is investigated using a model which accounts for the distance of the heme from each of the surface atoms of the protein. These calculations indicate that the difference between the electrostatically corrected self-exchange rate constants of cytochromes c and c551 is due only in part to the different sizes and heme exposures of the two proteins.

Citing Articles

Flavoenzyme-mediated reduction reactions and antitumor activity of nitrogen-containing tetracyclic ortho-quinone compounds and their nitrated derivatives.

Peciukaityte-Alksne M, Sarlauskas J, Miseviciene L, Maroziene A, cenas N, Krikstopaitis K EXCLI J. 2017; 16:663-678.

PMID: 28694766 PMC: 5491926. DOI: 10.17179/excli2017-273.


Design and engineering of a man-made diffusive electron-transport protein.

Fry B, Solomon L, Dutton P, Moser C Biochim Biophys Acta. 2015; 1857(5):513-521.

PMID: 26423266 PMC: 4910091. DOI: 10.1016/j.bbabio.2015.09.008.


Electronic connection between the quinone and cytochrome C redox pools and its role in regulation of mitochondrial electron transport and redox signaling.

Sarewicz M, Osyczka A Physiol Rev. 2014; 95(1):219-43.

PMID: 25540143 PMC: 4281590. DOI: 10.1152/physrev.00006.2014.


The proapoptotic G41S mutation to human cytochrome c alters the heme electronic structure and increases the electron self-exchange rate.

Liptak M, Fagerlund R, Ledgerwood E, Wilbanks S, Bren K J Am Chem Soc. 2011; 133(5):1153-5.

PMID: 21192676 PMC: 3034155. DOI: 10.1021/ja106328k.


Electron transfer between horse ferritin and ferrihaemoproteins.

Kadir F, Fatemi S, Singh H, Wilson M, MOORE G Biochem J. 1991; 278 ( Pt 3):817-20.

PMID: 1654893 PMC: 1151419. DOI: 10.1042/bj2780817.

References
1.
Bernstein F, Koetzle T, Williams G, Meyer Jr E, Brice M, Rodgers J . The Protein Data Bank: a computer-based archival file for macromolecular structures. J Mol Biol. 1977; 112(3):535-42. DOI: 10.1016/s0022-2836(77)80200-3. View

2.
Hartshorn R, Mauk A, Mauk M, MOORE G . NMR study of the interaction between cytochrome b5 and cytochrome c. Observation of a ternary complex formed by the two proteins and [Cr(en)3]3+. FEBS Lett. 1987; 213(2):391-5. DOI: 10.1016/0014-5793(87)81528-4. View

3.
McCammon J, Wolynes P, Karplus M . Picosecond dynamics of tyrosine side chains in proteins. Biochemistry. 1979; 18(6):927-42. DOI: 10.1021/bi00573a001. View

4.
Stonehuerner J, Williams J, Millett F . Interaction between cytochrome c and cytochrome b5. Biochemistry. 1979; 18(24):5422-7. DOI: 10.1021/bi00591a026. View

5.
MOORE G, Pettigrew G, Pitt R, Williams R . pH dependence of the redox potential of Pseudomonas aeruginosa cytochrome c-551. Biochim Biophys Acta. 1980; 590(2):261-71. DOI: 10.1016/0005-2728(80)90030-4. View