Characterization of the interaction of Rhodobacter capsulatus cytochrome c peroxidase with charge reversal mutants of cytochrome c2

被引:10
|
作者
Koh, M
Meyer, TE
De Smet, L
Van Beeumen, JJ
Cusanovich, MA [1 ]
机构
[1] Univ Arizona, Dept Biochem & Mol Biophys, Tucson, AZ 85721 USA
[2] State Univ Ghent, Lab Prot Biochem, Dept Biochem Physiol & Microbiol, B-9000 Ghent, Belgium
关键词
BCCP; peroxidase; enzyme kinetics; cytochrome c(2); Rhodobacter capsulatus;
D O I
10.1016/S0003-9861(02)00694-X
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Steady-state kinetics for the reaction of Rhodobacter capsulatus bacterial cytochrome c peroxidase (BCCP) with its substrate cytochrome c(2) were investigated. The Rb. capsulatus BCCP is dependent on calcium for activation as previously shown for the Pseudomonas aeruginosa BCCP and Paracoccus denitrificans enzymes. Furthermore, the activity shows a bell-shaped pH dependence with optimum at pH 7.0. Enzyme activity is greatest at low ionic strength and drops off steeply as ionic strength increases, resulting in an apparent interaction domain charge product of -13. All cytochromes c(2) show an asymmetric distribution of surface charge, with a concentration of 14 positive charges near the exposed heme edge of Rb. capsulatus c(2) which potentially may interact with approximately 6 negative charges, localized near the edge of the high-potential heme of the Rb. capsulatus BCCP. To test this proposal, we constructed charge reversal mutants of the 14 positively charged residues located on the front face of Rb. capsulatus cytochrome c(2) and examined their effect on steady-state kinetics with BCCP. Mutated residues in Rb. capsulatus cytochrome c(2) that showed the greatest effects on binding and enzyme activity are K12E, K14E, K54E, K84E, K93E, and K99E, which is consistent with the site of electron transfer being located at the heme edge. We conclude that a combination of long-range, nonspecific electrostatic interactions as well as localized salt bridges between, e.g., cytochrome c(2) K12, K14, K54, and K99 with BCCP D194, D241, and D6, account for the observed kinetics. (C) 2002 Elsevier Science (USA). All rights reserved.
引用
收藏
页码:230 / 237
页数:8
相关论文
共 50 条
  • [21] REGULATION OF A CYTOCHROME C2 ISOFORM IN WILD-TYPE AND CYTOCHROME C2 MUTANT STRAINS OF RHODOBACTER-SPHAEROIDES
    ROTT, MA
    FITCH, J
    MEYER, TE
    DONOHUE, TJ
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1992, 292 (02) : 576 - 582
  • [22] CYTOCHROME C2-INDEPENDENT RESPIRATORY GROWTH OF RHODOBACTER-CAPSULATUS
    DALDAL, F
    JOURNAL OF BACTERIOLOGY, 1988, 170 (05) : 2388 - 2391
  • [23] DOMAIN OF INTERACTION FOR CYTOCHROME-C PEROXIDASE ON CYTOCHROME-C
    KANG, CH
    BRAUTIGAN, DL
    OSHEROFF, N
    FEDERATION PROCEEDINGS, 1978, 37 (06) : 1327 - 1327
  • [24] Characterization of Rhodobacter sphaeroides cytochrome c2 proteins with altered heme attachment sites
    Ríos-Velázquez, C
    Cox, RL
    Donohue, TJ
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2001, 389 (02) : 234 - 244
  • [25] Enzymatic removal of nitric oxide catalyzed by cytochrome c′ in Rhodobacter capsulatus
    Cross, R
    Lloyd, D
    Poole, RK
    Moir, JWB
    JOURNAL OF BACTERIOLOGY, 2001, 183 (10) : 3050 - 3054
  • [26] Local stability of Rhodobacter capsulatus cytochrome c2 probed by solution phase hydrogen/deuterium exchange and mass spectrometry
    Cheng, Guilong
    Wysocki, Vicki H.
    Cusanovich, Michael A.
    JOURNAL OF THE AMERICAN SOCIETY FOR MASS SPECTROMETRY, 2006, 17 (11) : 1518 - 1525
  • [27] Tyrosine triad at the interface between the Rieske iron-sulfur protein, cytochrome c1 and cytochrome c2 in the bc1 complex of Rhodobacter capsulatus
    Kyndt, John A.
    Fitch, John C.
    Berry, Robert E.
    Stewart, Matt C.
    Whitley, Kevin
    Meyer, Terry E.
    Walker, F. Ann
    Cusanovich, Michael A.
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2012, 1817 (05): : 811 - 818
  • [28] The substitution of proline 35 by alanine in Rhodobacter capsulatus cytochrome c2 affects the overall protein stability but not the alkaline transition
    Caffrey, M. S.
    Gooley, P. R.
    Zhao, D.
    Meyer, T. E.
    Protein Engineering, 10 (01):
  • [29] Effect of charge-reversal mutations on the catalytic activity of cytochrome c peroxidase
    Pearl, Naw May
    Vitello, Lidia B.
    Erman, James E.
    FASEB JOURNAL, 2007, 21 (05): : A272 - A272
  • [30] Solution NMR study of the yeast cytochrome c peroxidase: cytochrome c interaction
    Alexander N. Volkov
    Nico A. J. van Nuland
    Journal of Biomolecular NMR, 2013, 56 : 255 - 263