Literature DB >> 25629200

Control of cyclic photoinitiated electron transfer between cytochrome c peroxidase (W191F) and cytochrome c by formation of dynamic binary and ternary complexes.

Taylor R Page1, Brian M Hoffman.   

Abstract

Extensive studies of the physiological protein-protein electron-transfer (ET) complex between yeast cytochrome c peroxidase (CcP) and cytochrome c (Cc) have left unresolved questions about how formation and dissociation of binary and ternary complexes influence ET. We probe this issue through a study of the photocycle of ET between Zn-protoporphyrin IX-substituted CcP(W191F) (ZnPCcP) and Cc. Photoexcitation of ZnPCcP in complex with Fe(3+)Cc initiates the photocycle: charge-separation ET, [(3)ZnPCcP, Fe(3+)Cc] → [ZnP(+)CcP, Fe(2+)Cc], followed by charge recombination, [ZnP(+)CcP, Fe(2+)Cc] → [ZnPCcP, Fe(3+)Cc]. The W191F mutation eliminates fast hole hopping through W191, enhancing accumulation of the charge-separated intermediate and extending the time scale for binding and dissociation of the charge-separated complex. Both triplet quenching and the charge-separated intermediate were monitored during titrations of ZnPCcP with Fe(3+)Cc, Fe(2+)Cc, and redox-inert CuCc. The results require a photocycle that includes dissociation and/or recombination of the charge-separated binary complex and a charge-separated ternary complex, [ZnP(+)CcP, Fe(2+)Cc, Fe(3+)Cc]. The expanded kinetic scheme formalizes earlier proposals of "substrate-assisted product dissociation" within the photocycle. The measurements yield the thermodynamic affinity constants for binding the first and second Cc: KI = 10(-7) M(-1), and KII = 10(-4) M(-1). However, two-site analysis of the thermodynamics of formation of the ternary complex reveals that Cc binds at the weaker-binding site with much greater affinity than previously recognized and places upper bounds on the contributions of repulsion between the two Cc's of the ternary complex. In conjunction with recent nuclear magnetic resonance studies, the analysis further suggests a dynamic view of the ternary complex, wherein neither Cc necessarily faithfully adopts the crystal-structure configuration because of Cc-Cc repulsion.

Entities:  

Mesh:

Substances:

Year:  2015        PMID: 25629200      PMCID: PMC4413949          DOI: 10.1021/bi500888y

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  33 in total

1.  Role of the low-affinity binding site in electron transfer from cytochrome C to cytochrome C peroxidase.

Authors:  Hongkang Mei; Lois Geren; Mark A Miller; Bill Durham; Francis Millett
Journal:  Biochemistry       Date:  2002-03-26       Impact factor: 3.162

2.  Characterization of four covalently-linked yeast cytochrome c/cytochrome c peroxidase complexes: Evidence for electrostatic interaction between bound cytochrome c molecules.

Authors:  Siddhartha Nakani; Lidia B Vitello; James E Erman
Journal:  Biochemistry       Date:  2006-12-05       Impact factor: 3.162

3.  Mapping the encounter state of a transient protein complex by PRE NMR spectroscopy.

Authors:  Alexander N Volkov; Marcellus Ubbink; Nico A J van Nuland
Journal:  J Biomol NMR       Date:  2010-11-04       Impact factor: 2.835

4.  Inhibitor-enhanced electron transfer: copper cytochrome c as a redox-inert probe of ternary complexes.

Authors:  J S Zhou; J M Nocek; M L DeVan; B M Hoffman
Journal:  Science       Date:  1995-07-14       Impact factor: 47.728

5.  The peroxide complex of yeast cytochrome c peroxidase contains two distinct radical species, neither of which resides at methionine 172 or tryptophan 51.

Authors:  D B Goodin; A G Mauk; M Smith
Journal:  J Biol Chem       Date:  1987-06-05       Impact factor: 5.157

6.  A proton NMR study of the non-covalent complex of horse cytochrome c and yeast cytochrome-c peroxidase and its comparison with other interacting protein complexes.

Authors:  J D Satterlee; S J Moench; J E Erman
Journal:  Biochim Biophys Acta       Date:  1987-03-18

7.  The binding of porphyrin cytochrome c to yeast cytochrome c peroxidase. A fluorescence study of the number of sites and their sensitivity to salt.

Authors:  J A Kornblatt; A M English
Journal:  Eur J Biochem       Date:  1986-03-17

8.  Role of configurational gating in intracomplex electron transfer from cytochrome c to the radical cation in cytochrome c peroxidase.

Authors:  H Mei; K Wang; N Peffer; G Weatherly; D S Cohen; M Miller; G Pielak; B Durham; F Millett
Journal:  Biochemistry       Date:  1999-05-25       Impact factor: 3.162

9.  X-ray structures of recombinant yeast cytochrome c peroxidase and three heme-cleft mutants prepared by site-directed mutagenesis.

Authors:  J M Wang; M Mauro; S L Edwards; S J Oatley; L A Fishel; V A Ashford; N H Xuong; J Kraut
Journal:  Biochemistry       Date:  1990-08-07       Impact factor: 3.162

10.  Identifying the physiological electron transfer site of cytochrome c peroxidase by structure-based engineering.

Authors:  M A Miller; L Geren; G W Han; A Saunders; J Beasley; G J Pielak; B Durham; F Millett; J Kraut
Journal:  Biochemistry       Date:  1996-01-23       Impact factor: 3.162

View more
  3 in total

1.  Constraints on the Radical Cation Center of Cytochrome c Peroxidase for Electron Transfer from Cytochrome c.

Authors:  Thomas M Payne; Estella F Yee; Boris Dzikovski; Brian R Crane
Journal:  Biochemistry       Date:  2016-08-17       Impact factor: 3.162

2.  Tuning Radical Relay Residues by Proton Management Rescues Protein Electron Hopping.

Authors:  Estella F Yee; Boris Dzikovski; Brian R Crane
Journal:  J Am Chem Soc       Date:  2019-10-28       Impact factor: 15.419

3.  The low-affinity complex of cytochrome c and its peroxidase.

Authors:  Karen Van de Water; Yann G J Sterckx; Alexander N Volkov
Journal:  Nat Commun       Date:  2015-05-06       Impact factor: 14.919

  3 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.