Catalysis in fumarate reductase

被引:42
作者
Reid, GA
Miles, CS
Moysey, RK
Pankhurst, KL
Chapman, SK
机构
[1] Univ Edinburgh, Inst Cell & Mol Biol, Edinburgh EH9 3JR, Midlothian, Scotland
[2] Univ Edinburgh, Dept Chem, Edinburgh EH9 3JJ, Midlothian, Scotland
来源
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS | 2000年 / 1459卷 / 2-3期
基金
英国生物技术与生命科学研究理事会;
关键词
bacterial respiration; fumarate reductase; Shewanella; flavoprotein;
D O I
10.1016/S0005-2728(00)00166-3
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
In the absence of oxygen many bacteria are able to utilise fumarate as a terminal oxidant for respiration. In most known organisms the fumarate reductases are membrane-bound iron-sulfur flavoproteins but Shewanella species produce a soluble, periplasmic flavocytochrome c(3) that catalyses this reaction. The active sites of all fumarate reductases are clearly conserved at the structural level, indicating a common mechanism. The structures of fumarate reductases from two Shewanella species have been determined. Fumarate, succinate and a partially hydrated fumarate ligand are found in equivalent locations in different crystals, tightly bound in the active site and close to N5 of the FAD cofactor, allowing identification of amino acid residues that are involved in substrate binding and catalysis. Conversion of fumarate to succinate requires hydride transfer from FAD and protonation by an active site acid. The identity of the proton donor has been open to question but we have used structural considerations to suggest that this function is provided by an arginine side chain. We have confirmed this experimentally by analysing the effects of site-directed mutations on enzyme activity. Substitutions of Arg402 lead to a dramatic loss of activity whereas neither of the two active site histidine residues is required for catalysis. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:310 / 315
页数:6
相关论文
共 20 条
  • [1] Bamford V, 1999, NAT STRUCT BIOL, V6, P1104
  • [2] Characterization of a flavocytochrome that is induced during the anaerobic respiration of Fe3+ by Shewanella frigidimarina NCIMB400
    Dobbin, PS
    Butt, JN
    Powell, AK
    Reid, GA
    Richardson, DJ
    [J]. BIOCHEMICAL JOURNAL, 1999, 342 : 439 - 448
  • [3] DOHERTY MK, 2000, IN PRESS BIOCHEMISTR
  • [4] Flavoenzymes: diverse catalysts with recurrent features
    Fraaije, MW
    Mattevi, A
    [J]. TRENDS IN BIOCHEMICAL SCIENCES, 2000, 25 (03) : 126 - 132
  • [5] Physiological function and regulation of flavocytochrome c3, the soluble fumarate reductase from Shewanella putrefaciens NCIMB 400
    Gordon, EHJ
    Pealing, SL
    Chapman, SK
    Ward, FB
    Reid, GA
    [J]. MICROBIOLOGY-SGM, 1998, 144 : 937 - 945
  • [6] Structure of the Escherichia coli fumarate reductase respiratory complex
    Iverson, TM
    Luna-Chavez, C
    Cecchini, G
    Rees, DC
    [J]. SCIENCE, 1999, 284 (5422) : 1961 - 1966
  • [7] Structure of fumarate reductase from Wolinella succinogenes at 2.2 Å resolution
    Lancaster, CRD
    Kröger, A
    Auer, M
    Michel, H
    [J]. NATURE, 1999, 402 (6760) : 377 - 385
  • [8] Leys D, 1999, NAT STRUCT BIOL, V6, P1113
  • [9] Structure of L-aspartate oxidase: implications for the succinate dehydrogenase/fumarate reductase oxidoreductase family
    Mattevi, A
    Tedeschi, G
    Bacchella, L
    Coda, A
    Negri, A
    Ronchi, S
    [J]. STRUCTURE, 1999, 7 (07) : 745 - 756
  • [10] MORRIS CJ, 1990, FEMS MICROBIOL LETT, V69, P259