Zang T M, Hollman D A, Crawford P A, Crowder M W, Makaroff C A
Department of Chemistry and Biochemistry, Miami University, Oxford, Ohio 45056, USA.
J Biol Chem. 2001 Feb 16;276(7):4788-95. doi: 10.1074/jbc.M005090200. Epub 2000 Nov 20.
Glyoxalase II participates in the cellular detoxification of cytotoxic and mutagenic 2-oxoaldehydes. Because of its role in chemical detoxification, glyoxalase II has been studied as a potential anti-cancer and/or anti-protozoal target; however, very little is known about the active site and reaction mechanism of this important enzyme. To characterize the active site and kinetic mechanism of the enzyme, a detailed mutational study of Arabidopsis glyoxalase II was conducted. Data presented here demonstrate for the first time that the cytoplasmic form of Arabidopsis glyoxalase II contains an iron-zinc binuclear metal center that is essential for activity. Both metals participate in substrate binding, transition state stabilization, and the hydrolysis reaction. Subtle alterations in the geometry and/or electrostatics of the binuclear center have profound effects on the activity of the enzyme. Additional residues important in substrate binding have also been identified. An overall reaction mechanism for glyoxalase II is proposed based on the mutational and kinetic data from this study and crystallographic data on human glyoxalase II. Information presented here provides new insights into the active site and reaction mechanism of glyoxalase II that can be used for the rational design of glyoxalase II inhibitors.
乙二醛酶II参与细胞对具有细胞毒性和致突变性的2-氧代醛的解毒过程。由于其在化学解毒中的作用,乙二醛酶II已作为一种潜在的抗癌和/或抗原生动物靶点进行研究;然而,对于这种重要酶的活性位点和反应机制知之甚少。为了表征该酶的活性位点和动力学机制,对拟南芥乙二醛酶II进行了详细的突变研究。本文提供的数据首次证明,拟南芥乙二醛酶II的细胞质形式含有一个铁-锌双核金属中心,该中心对活性至关重要。两种金属都参与底物结合、过渡态稳定和水解反应。双核中心几何结构和/或静电的细微改变对酶的活性有深远影响。还鉴定出了在底物结合中起重要作用的其他残基。基于本研究的突变和动力学数据以及人乙二醛酶II的晶体学数据,提出了乙二醛酶II的总体反应机制。本文提供的信息为乙二醛酶II的活性位点和反应机制提供了新的见解,可用于合理设计乙二醛酶II抑制剂。