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Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics

[Image: see text] We report here that photoinitiated electron flow involving a metal-substituted (M = Mg, Zn) myoglobin (Mb) and its physiological partner protein, cytochrome b(5) (cyt b(5)) can be “symmetrized”: the [Mb:cyt b(5)] complex stabilized by three D/E → K mutations on Mb (D44K/D60K/E85K,...

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Autores principales: Co, Nadia Petlakh, Young, Ryan M., Smeigh, Amanda L., Wasielewski, Michael R., Hoffman, Brian M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4160274/
https://www.ncbi.nlm.nih.gov/pubmed/25133915
http://dx.doi.org/10.1021/ja506388c
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author Co, Nadia Petlakh
Young, Ryan M.
Smeigh, Amanda L.
Wasielewski, Michael R.
Hoffman, Brian M.
author_facet Co, Nadia Petlakh
Young, Ryan M.
Smeigh, Amanda L.
Wasielewski, Michael R.
Hoffman, Brian M.
author_sort Co, Nadia Petlakh
collection PubMed
description [Image: see text] We report here that photoinitiated electron flow involving a metal-substituted (M = Mg, Zn) myoglobin (Mb) and its physiological partner protein, cytochrome b(5) (cyt b(5)) can be “symmetrized”: the [Mb:cyt b(5)] complex stabilized by three D/E → K mutations on Mb (D44K/D60K/E85K, denoted MMb) exhibits both oxidative and reductive ET quenching of both the singlet and triplet photoexcited MMb states, the direction of flow being determined by the oxidation state of the cyt b(5) partner. The first-excited singlet state of MMb ((1)MMb) undergoes ns-time scale reductive ET quenching by Fe(2+)cyt b(5) as well as ns-time scale oxidative ET quenching by Fe(3+)cyt b(5), both processes involving an ensemble of structures that do not interconvert on this time scale. Despite a large disparity in driving force favoring photooxidation of (1)MMb relative to photoreduction (δ(−ΔG(0)) ≈ 0.4 eV, M = Mg; ≈ 0.2 eV, M = Zn), for each M the average rate constants for the two reactions are the same within error, (1)k(f) > 10(8) s(–1). This surprising observation is explained by considering the driving-force dependence of the Franck–Condon factor in the Marcus equation. The triplet state of the myoglobin ((3)MMb) created by intersystem crossing from (1)MMb likewise undergoes reductive ET quenching by Fe(2+)cyt b(5) as well as oxidative ET quenching by Fe(3+)cyt b(5). As with singlet ET, the rate constants for oxidative ET quenching and reductive ET quenching on the triplet time scale are the same within error, (3)k(f) ≈ 10(5) s(–1), but here the equivalence is attributable to gating by intracomplex conversion among a conformational ensemble.
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spelling pubmed-41602742015-08-18 Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics Co, Nadia Petlakh Young, Ryan M. Smeigh, Amanda L. Wasielewski, Michael R. Hoffman, Brian M. J Am Chem Soc [Image: see text] We report here that photoinitiated electron flow involving a metal-substituted (M = Mg, Zn) myoglobin (Mb) and its physiological partner protein, cytochrome b(5) (cyt b(5)) can be “symmetrized”: the [Mb:cyt b(5)] complex stabilized by three D/E → K mutations on Mb (D44K/D60K/E85K, denoted MMb) exhibits both oxidative and reductive ET quenching of both the singlet and triplet photoexcited MMb states, the direction of flow being determined by the oxidation state of the cyt b(5) partner. The first-excited singlet state of MMb ((1)MMb) undergoes ns-time scale reductive ET quenching by Fe(2+)cyt b(5) as well as ns-time scale oxidative ET quenching by Fe(3+)cyt b(5), both processes involving an ensemble of structures that do not interconvert on this time scale. Despite a large disparity in driving force favoring photooxidation of (1)MMb relative to photoreduction (δ(−ΔG(0)) ≈ 0.4 eV, M = Mg; ≈ 0.2 eV, M = Zn), for each M the average rate constants for the two reactions are the same within error, (1)k(f) > 10(8) s(–1). This surprising observation is explained by considering the driving-force dependence of the Franck–Condon factor in the Marcus equation. The triplet state of the myoglobin ((3)MMb) created by intersystem crossing from (1)MMb likewise undergoes reductive ET quenching by Fe(2+)cyt b(5) as well as oxidative ET quenching by Fe(3+)cyt b(5). As with singlet ET, the rate constants for oxidative ET quenching and reductive ET quenching on the triplet time scale are the same within error, (3)k(f) ≈ 10(5) s(–1), but here the equivalence is attributable to gating by intracomplex conversion among a conformational ensemble. American Chemical Society 2014-08-18 2014-09-10 /pmc/articles/PMC4160274/ /pubmed/25133915 http://dx.doi.org/10.1021/ja506388c Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Co, Nadia Petlakh
Young, Ryan M.
Smeigh, Amanda L.
Wasielewski, Michael R.
Hoffman, Brian M.
Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title_full Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title_fullStr Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title_full_unstemmed Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title_short Symmetrized Photoinitiated Electron Flow within the [Myoglobin:Cytochrome b(5)] Complex on Singlet and Triplet Time Scales: Energetics vs Dynamics
title_sort symmetrized photoinitiated electron flow within the [myoglobin:cytochrome b(5)] complex on singlet and triplet time scales: energetics vs dynamics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4160274/
https://www.ncbi.nlm.nih.gov/pubmed/25133915
http://dx.doi.org/10.1021/ja506388c
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