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Characterization of human DHRS4: an inducible short-chain dehydrogenase/reductase enzyme with 3beta-hydroxysteroid dehydrogenase activity
Authors:Matsunaga Toshiyuki  Endo Satoshi  Maeda Satoshi  Ishikura Shuhei  Tajima Kazuo  Tanaka Nobutada  Nakamura Kazuo T  Imamura Yorishige  Hara Akira
Affiliation:aLaboratory of Biochemistry, Gifu Pharmaceutical University, 5-6-1 Mitahora-higashi, Gifu 502-8585, Japan;bFaculty of Pharmaceutical Sciences, Hokuriku University, Kanazawa 920-1181, Japan;cSchool of Pharmaceutical Sciences, Showa University, Tokyo 142-8555, Japan;dGraduate School of Pharmaceutical Sciences, Kumamoto University, Kumamoto 862-0973, Japan
Abstract:Human DHRS4 is a peroxisomal member of the short-chain dehydrogenase/reductase superfamily, but its enzymatic properties, except for displaying NADP(H)-dependent retinol dehydrogenase/reductase activity, are unknown. We show that the human enzyme, a tetramer composed of 27 kDa subunits, is inactivated at low temperature without dissociation into subunits. The cold inactivation was prevented by a mutation of Thr177 with the corresponding residue, Asn, in cold-stable pig DHRS4, where this residue is hydrogen-bonded to Asn165 in a substrate-binding loop of other subunit. Human DHRS4 reduced various aromatic ketones and α-dicarbonyl compounds including cytotoxic 9,10-phenanthrenequinone. The overexpression of the peroxisomal enzyme in cultured cells did not increase the cytotoxicity of 9,10-phenanthrenequinone. While its activity towards all-trans-retinal was low, human DHRS4 efficiently reduced 3-keto-C19/C21-steroids into 3β-hydroxysteroids. The stereospecific conversion to 3β-hydroxysteroids was observed in endothelial cells transfected with vectors expressing the enzyme. The mRNA for the enzyme was ubiquitously expressed in human tissues and several cancer cells, and the enzyme in HepG2 cells was induced by peroxisome-proliferator-activated receptor α ligands. The results suggest a novel mechanism of cold inactivation and role of the inducible human DHRS4 in 3β-hydroxysteroid synthesis and xenobiotic carbonyl metabolism.
Keywords:Short-chain dehydrogenase/reductase superfamily   DHRS4   Carbonyl reductase    -Hydroxysteroid dehydrogenase   Cold inactivation   9,10-Phenanthrenequinone   PPAR   Valproic acid
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