Metal ions in biological catalysis: from enzyme databases to general principles

被引:875
|
作者
Andreini, Claudia [2 ,3 ]
Bertini, Ivano [2 ,3 ]
Cavallaro, Gabriele [2 ,3 ]
Holliday, Gemma L. [1 ]
Thornton, Janet M. [1 ]
机构
[1] European Bioinformat Inst, EMBL Outstn, Cambridge CB10 1SD, England
[2] Univ Florence, CERM, I-50019 Sesto Fiorentino, Italy
[3] Univ Florence, Dept Chem, I-50019 Sesto Fiorentino, Italy
来源
基金
英国惠康基金;
关键词
Metal; Enzyme; Metalloenzyme; Database; Catalysis;
D O I
10.1007/s00775-008-0404-5
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
We analysed the roles and distribution of metal ions in enzymatic catalysis using available public databases and our new resource Metal-MACiE (http://www. ebi. ac. uk/thornton-srv/databases/Metal_MACiE/home.html). In Metal-MACiE, a database of metal-based reaction mechanisms, 116 entries covering 21% of the metal-dependent enzymes and 70% of the types of enzyme-catalysed chemical transformations are annotated according to metal function. We used Metal-MACiE to assess the functions performed by metals in biological catalysis and the relative frequencies of different metals in different roles, which can be related to their individual chemical properties and availability in the environment. The overall picture emerging from the overview of Metal-MACiE is that redox-inert metal ions are used in enzymes to stabilize negative charges and to activate substrates by virtue of their Lewis acid properties, whereas redox-active metal ions can be used both as Lewis acids and as redox centres. Magnesium and zinc are by far the most common ions of the first type, while calcium is relatively less used. Magnesium, however, is most often bound to phosphate groups of substrates and interacts with the enzyme only transiently, whereas the other metals are stably bound to the enzyme. The most common metal of the second type is iron, which is prevalent in the catalysis of redox reactions, followed by manganese, cobalt, molybdenum, copper and nickel. The control of the reactivity of redox-active metal ions may involve their association with organic cofactors to form stable units. This occurs sometimes for iron and nickel, and quite often for cobalt and molybdenum.
引用
收藏
页码:1205 / 1218
页数:14
相关论文
共 50 条
  • [31] HYDROLYSIS OF PYRIDYLMETHYL PHOSPHATES AND CATALYSIS OF METAL IONS
    MURAKAMI, Y
    TAKAGI, M
    BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 1967, 40 (11) : 2724 - +
  • [33] Organocatalysis: Fundamentals and Comparisons to Metal and Enzyme Catalysis
    Vogel, Pierre
    Lam, Yu-hong
    Simon, Adam
    Houk, Kendall N.
    CATALYSTS, 2016, 6 (09):
  • [34] CATALYSIS OF SCHIFF BASE HYDROLYSIS BY METAL IONS
    EICHHORN, GL
    TRACHTENBERG, IM
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1954, 76 (20) : 5183 - 5185
  • [35] Biological Monitoring of Metal Ions Released from Hip Prostheses
    Nicolli, Annamaria
    Trevisan, Andrea
    Bortoletti, Isabella
    Pozzuoli, Assunta
    Ruggieri, Pietro
    Martinelli, Andrea
    Gambalunga, Alberto
    Carrieri, Mariella
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2020, 17 (09)
  • [36] HOMOGENEOUS CATALYSIS OF OXIDATION OF THIOLS BY METAL IONS
    CULLIS, CF
    TRIMM, DL
    DISCUSSIONS OF THE FARADAY SOCIETY, 1968, (46): : 144 - &
  • [37] Quantum processes in biological molecules. Enzyme catalysis
    Kovarskii, VA
    USPEKHI FIZICHESKIKH NAUK, 1999, 169 (08): : 889 - 908
  • [38] ROLE OF METAL IONS IN ENZYME SYSTEMS
    LEHNINGER, AL
    PHYSIOLOGICAL REVIEWS, 1950, 30 (03) : 393 - 429
  • [39] Quantum processes in biological molecules. Enzyme catalysis
    Kovarskii, V.A.
    Uspekhi Fizicheskikh Nauk, 169 (08): : 907 - 908
  • [40] Life as aerobes: are there simple principles for enzyme catalysis of dioxygen activation?
    Klinman, JP
    JOURNAL OF INORGANIC BIOCHEMISTRY, 1999, 74 (1-4) : 4 - 4