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紫花苜蓿(Medicago sativa L.)中紫铆因还原酶的晶体结构。

Crystal structure of vestitone reductase from alfalfa (Medicago sativa L.).

作者信息

Shao Hui, Dixon Richard A, Wang Xiaoqiang

机构信息

Plant Biology Division, Samuel Roberts Noble Foundation, 2510 Sam Noble Parkway, Ardmore, OK 73401, USA.

出版信息

J Mol Biol. 2007 May 25;369(1):265-76. doi: 10.1016/j.jmb.2007.03.040. Epub 2007 Mar 21.

Abstract

Isoflavonoids are commonly found in leguminous plants, where they play important roles in plant defense and have significant health benefits for animals and humans. Vestitone reductase catalyzes a stereospecific NADPH-dependent reduction of (3R)-vestitone in the biosynthesis of the antimicrobial isoflavonoid phytoalexin medicarpin. The crystal structure of alfalfa (Medicago sativa L.) vestitone reductase has been determined at 1.4 A resolution. The structure contains a classic Rossmann fold domain in the N terminus and a small C-terminal domain. Sequence and structural analysis showed that vestitone reductase is a member of the short-chain dehydrogenase/reductase (SDR) superfamily despite the low levels of sequence identity, and the prominent structural differences from other SDR enzymes with known structures. The putative binding sites for the co-factor NADPH and the substrate (3R)-vestitone were defined and located in a large cleft formed between the N and C-terminal domains of enzyme. Potential key residues for enzyme activity were also identified, including the catalytic triad Ser129-Tyr164-Lys168. A molecular docking study showed that (3R)-vestitone, but not the (3S) isomer, forms favored interactions with the co-factor and catalytic triad, thus providing an explanation for the enzyme's strict substrate stereo-specificity.

摘要

异黄酮类化合物常见于豆科植物中,它们在植物防御中发挥重要作用,对动物和人类也有显著的健康益处。在抗菌异黄酮类植保素苜蓿素的生物合成过程中,维斯替酮还原酶催化(3R)-维斯替酮进行立体特异性的NADPH依赖性还原反应。已确定紫花苜蓿(Medicago sativa L.)维斯替酮还原酶的晶体结构,分辨率为1.4埃。该结构在N端包含一个经典的罗斯曼折叠结构域和一个小的C端结构域。序列和结构分析表明,尽管维斯替酮还原酶的序列同一性水平较低,且与其他已知结构的短链脱氢酶/还原酶(SDR)存在显著的结构差异,但它仍是SDR超家族的一员。确定了辅因子NADPH和底物(3R)-维斯替酮的推定结合位点,它们位于酶的N端和C端结构域之间形成的一个大裂隙中。还鉴定了酶活性的潜在关键残基,包括催化三联体Ser129-Tyr164-Lys168。分子对接研究表明,(3R)-维斯替酮而非(3S)异构体与辅因子和催化三联体形成有利的相互作用,从而为该酶严格的底物立体特异性提供了解释。

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