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A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex

[Image: see text] The cytochrome b(6)f complex, a member of the cytochrome bc family that mediates energy transduction in photosynthetic and respiratory membranes, is a hetero-oligomeric complex that utilizes two pairs of b-hemes in a symmetric dimer to accomplish trans-membrane electron transfer, q...

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Autores principales: Hasan, S. Saif, Zakharov, Stanislav D., Chauvet, Adrien, Stadnytskyi, Valentyn, Savikhin, Sergei, Cramer, William A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4067154/
https://www.ncbi.nlm.nih.gov/pubmed/24867491
http://dx.doi.org/10.1021/jp501165k
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author Hasan, S. Saif
Zakharov, Stanislav D.
Chauvet, Adrien
Stadnytskyi, Valentyn
Savikhin, Sergei
Cramer, William A.
author_facet Hasan, S. Saif
Zakharov, Stanislav D.
Chauvet, Adrien
Stadnytskyi, Valentyn
Savikhin, Sergei
Cramer, William A.
author_sort Hasan, S. Saif
collection PubMed
description [Image: see text] The cytochrome b(6)f complex, a member of the cytochrome bc family that mediates energy transduction in photosynthetic and respiratory membranes, is a hetero-oligomeric complex that utilizes two pairs of b-hemes in a symmetric dimer to accomplish trans-membrane electron transfer, quinone oxidation–reduction, and generation of a proton electrochemical potential. Analysis of electron storage in this pathway, utilizing simultaneous measurement of heme reduction, and of circular dichroism (CD) spectra, to assay heme–heme interactions, implies a heterogeneous distribution of the dielectric constants that mediate electrostatic interactions between the four hemes in the complex. Crystallographic information was used to determine the identity of the interacting hemes. The Soret band CD signal is dominated by excitonic interaction between the intramonomer b-hemes, b(n) and b(p), on the electrochemically negative and positive sides of the complex. Kinetic data imply that the most probable pathway for transfer of the two electrons needed for quinone oxidation–reduction utilizes this intramonomer heme pair, contradicting the expectation based on heme redox potentials and thermodynamics, that the two higher potential hemes b(n) on different monomers would be preferentially reduced. Energetically preferred intramonomer electron storage of electrons on the intramonomer b-hemes is found to require heterogeneity of interheme dielectric constants. Relative to the medium separating the two higher potential hemes b(n), a relatively large dielectric constant must exist between the intramonomer b-hemes, allowing a smaller electrostatic repulsion between the reduced hemes. Heterogeneity of dielectric constants is an additional structure–function parameter of membrane protein complexes.
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spelling pubmed-40671542015-05-27 A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex Hasan, S. Saif Zakharov, Stanislav D. Chauvet, Adrien Stadnytskyi, Valentyn Savikhin, Sergei Cramer, William A. J Phys Chem B [Image: see text] The cytochrome b(6)f complex, a member of the cytochrome bc family that mediates energy transduction in photosynthetic and respiratory membranes, is a hetero-oligomeric complex that utilizes two pairs of b-hemes in a symmetric dimer to accomplish trans-membrane electron transfer, quinone oxidation–reduction, and generation of a proton electrochemical potential. Analysis of electron storage in this pathway, utilizing simultaneous measurement of heme reduction, and of circular dichroism (CD) spectra, to assay heme–heme interactions, implies a heterogeneous distribution of the dielectric constants that mediate electrostatic interactions between the four hemes in the complex. Crystallographic information was used to determine the identity of the interacting hemes. The Soret band CD signal is dominated by excitonic interaction between the intramonomer b-hemes, b(n) and b(p), on the electrochemically negative and positive sides of the complex. Kinetic data imply that the most probable pathway for transfer of the two electrons needed for quinone oxidation–reduction utilizes this intramonomer heme pair, contradicting the expectation based on heme redox potentials and thermodynamics, that the two higher potential hemes b(n) on different monomers would be preferentially reduced. Energetically preferred intramonomer electron storage of electrons on the intramonomer b-hemes is found to require heterogeneity of interheme dielectric constants. Relative to the medium separating the two higher potential hemes b(n), a relatively large dielectric constant must exist between the intramonomer b-hemes, allowing a smaller electrostatic repulsion between the reduced hemes. Heterogeneity of dielectric constants is an additional structure–function parameter of membrane protein complexes. American Chemical Society 2014-05-27 2014-06-19 /pmc/articles/PMC4067154/ /pubmed/24867491 http://dx.doi.org/10.1021/jp501165k Text en Copyright © 2014 American Chemical Society Open Access on 05/27/2015
spellingShingle Hasan, S. Saif
Zakharov, Stanislav D.
Chauvet, Adrien
Stadnytskyi, Valentyn
Savikhin, Sergei
Cramer, William A.
A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title_full A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title_fullStr A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title_full_unstemmed A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title_short A Map of Dielectric Heterogeneity in a Membrane Protein: the Hetero-Oligomeric Cytochrome b(6)f Complex
title_sort map of dielectric heterogeneity in a membrane protein: the hetero-oligomeric cytochrome b(6)f complex
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4067154/
https://www.ncbi.nlm.nih.gov/pubmed/24867491
http://dx.doi.org/10.1021/jp501165k
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