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Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)

[Image: see text] During the operation of cytochrome bc(1), a key enzyme of biological energy conversion, the iron−sulfur head domain of one of the subunits of the catalytic core undergoes a large-scale movement from the catalytic quinone oxidation Q(o) site to cytochrome c(1). This changes a distan...

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Autores principales: Sarewicz, Marcin, Dutka, Małgorzata, Froncisz, Wojciech, Osyczka, Artur
Formato: Texto
Lenguaje:English
Publicado: American Chemical Society 2009
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2697599/
https://www.ncbi.nlm.nih.gov/pubmed/19415898
http://dx.doi.org/10.1021/bi900511b
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author Sarewicz, Marcin
Dutka, Małgorzata
Froncisz, Wojciech
Osyczka, Artur
author_facet Sarewicz, Marcin
Dutka, Małgorzata
Froncisz, Wojciech
Osyczka, Artur
author_sort Sarewicz, Marcin
collection PubMed
description [Image: see text] During the operation of cytochrome bc(1), a key enzyme of biological energy conversion, the iron−sulfur head domain of one of the subunits of the catalytic core undergoes a large-scale movement from the catalytic quinone oxidation Q(o) site to cytochrome c(1). This changes a distance between the two iron−two sulfur (FeS) cluster and other cofactors of the redox chains. Although the role and the mechanism of this movement have been intensely studied, they both remain poorly understood, partly because the movement itself is not easily traceable experimentally. Here, we take advantage of magnetic interactions between the reduced FeS cluster and oxidized heme b(L) to use dipolar enhancement of phase relaxation of the FeS cluster as a spectroscopic parameter which with a unique clarity and specificity senses changes in the distance between those two cofactors. The dipolar relaxation curves measured by EPR at Q-band in a glass state of frozen solution (i.e., under the conditions trapping a dynamic distribution of FeS positions that existed in a liquid phase) of isolated cytochrome bc(1) were compared with the curves calculated for the FeS cluster occupying distinct positions in various crystals of cytochrome bc(1). This comparison revealed the existence of a broad distribution of the FeS positions in noninhibited cytochrome bc(1) and demonstrated that the average equilibrium position is modifiable by inhibitors or mutations. To explain the results, we assume that changes in the equilibrium distribution of the FeS positions are the result of modifications of the orienting potential gradient in which the diffusion of the FeS head domain takes place. The measured changes in the phase relaxation enhancement provide the first direct experimental description of changes in the strength of dipolar coupling between the FeS cluster and heme b(L).
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spelling pubmed-26975992009-06-17 Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1) Sarewicz, Marcin Dutka, Małgorzata Froncisz, Wojciech Osyczka, Artur Biochemistry [Image: see text] During the operation of cytochrome bc(1), a key enzyme of biological energy conversion, the iron−sulfur head domain of one of the subunits of the catalytic core undergoes a large-scale movement from the catalytic quinone oxidation Q(o) site to cytochrome c(1). This changes a distance between the two iron−two sulfur (FeS) cluster and other cofactors of the redox chains. Although the role and the mechanism of this movement have been intensely studied, they both remain poorly understood, partly because the movement itself is not easily traceable experimentally. Here, we take advantage of magnetic interactions between the reduced FeS cluster and oxidized heme b(L) to use dipolar enhancement of phase relaxation of the FeS cluster as a spectroscopic parameter which with a unique clarity and specificity senses changes in the distance between those two cofactors. The dipolar relaxation curves measured by EPR at Q-band in a glass state of frozen solution (i.e., under the conditions trapping a dynamic distribution of FeS positions that existed in a liquid phase) of isolated cytochrome bc(1) were compared with the curves calculated for the FeS cluster occupying distinct positions in various crystals of cytochrome bc(1). This comparison revealed the existence of a broad distribution of the FeS positions in noninhibited cytochrome bc(1) and demonstrated that the average equilibrium position is modifiable by inhibitors or mutations. To explain the results, we assume that changes in the equilibrium distribution of the FeS positions are the result of modifications of the orienting potential gradient in which the diffusion of the FeS head domain takes place. The measured changes in the phase relaxation enhancement provide the first direct experimental description of changes in the strength of dipolar coupling between the FeS cluster and heme b(L). American Chemical Society 2009-05-05 2009-06-23 /pmc/articles/PMC2697599/ /pubmed/19415898 http://dx.doi.org/10.1021/bi900511b Text en Copyright © 2009 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Sarewicz, Marcin
Dutka, Małgorzata
Froncisz, Wojciech
Osyczka, Artur
Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title_full Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title_fullStr Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title_full_unstemmed Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title_short Magnetic Interactions Sense Changes in Distance between Heme b(L) and the Iron−Sulfur Cluster in Cytochrome bc(1)
title_sort magnetic interactions sense changes in distance between heme b(l) and the iron−sulfur cluster in cytochrome bc(1)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2697599/
https://www.ncbi.nlm.nih.gov/pubmed/19415898
http://dx.doi.org/10.1021/bi900511b
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AT fronciszwojciech magneticinteractionssensechangesindistancebetweenhemeblandtheironsulfurclusterincytochromebc1
AT osyczkaartur magneticinteractionssensechangesindistancebetweenhemeblandtheironsulfurclusterincytochromebc1