4.5 Article

Crystal structures and kinetic studies of human Kappa class glutathione transferase provide insights into the catalytic mechanism

期刊

BIOCHEMICAL JOURNAL
卷 439, 期 -, 页码 215-225

出版社

PORTLAND PRESS LTD
DOI: 10.1042/BJ20110753

关键词

catalytic mechanism; conformational change; crystal structure; Kappa class glutathione transferase (GSTk); kinetic measurement; substrate-binding pocket

资金

  1. Ministry of Science and Technology of China [2011CB911102, 2011CB966301]
  2. National Natural Science Foundation of China [307300281]
  3. Chinese Academy of Sciences [SIBS2008002]
  4. Science and Technology Commission of Shanghai Municipality [10JC1416500]

向作者/读者索取更多资源

GSTs (glutathione transferases) are a family of enzymes that primarily catalyse nucleophilic addition of the thiol of GSH (reduced glutathione) to a variety of hydrophobic electrophiles in the cellular detoxification of cytotoxic and genotoxic compounds. GSTks (Kappa class GSTs) are a distinct class because of their unique cellular localization, function and structure. In the present paper we report the crystal structures of hGSTk (human GSTk) in apo-form and in complex with GTX (S-hexylglutathione) and steady-state kinetic studies, revealing insights into the catalytic mechanism of hGSTk and other GSTks. Substrate binding induces a conformational change of the active site from an 'open' conformation in the apo-form to a 'closed' conformation in the GTX-bound complex, facilitating formations of the G site (GSH-binding site) and the H site (hydrophobic substrate-binding site). The conserved Ser(16) at the G site functions as the catalytic residue in the deprotonation of the thiol group and the conserved Asp(69), Ser(200), Asp(201) and Arg(202) form a network of interactions with gamma-glutamyl carboxylate to stabilize the thiolate anion. The H site is a large hydrophobic pocket with conformational flexibility to allow the binding of different hydrophobic substrates. The kinetic mechanism of hGSTk conforms to a rapid equilibrium random sequential Bi Bi model.

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