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氧化葡萄糖酸杆菌中SDR家族蛋白Gox2253对底物和辅酶偏好的结构见解

Structural insights into substrate and coenzyme preference by SDR family protein Gox2253 from Gluconobater oxydans.

作者信息

Yin Bo, Cui Dongbing, Zhang Lujia, Jiang Shuiqin, Machida Satoru, Yuan Y Adam, Wei Dongzhi

机构信息

State Key Laboratory of Bioreactor Engineering, New World Institute of Biotechnology, East China University of Science and Technology, Shanghai, 200237, China; Department of Biological Sciences and Centre for Bioimaging Sciences, National University of Singapore, Singapore, 117543, Singapore.

出版信息

Proteins. 2014 Nov;82(11):2925-35. doi: 10.1002/prot.24603. Epub 2014 May 29.

Abstract

Gox2253 from Gluconobacter oxydans belongs to the short-chain dehydrogenases/reductases family, and catalyzes the reduction of heptanal, octanal, nonanal, and decanal with NADPH. To develop a robust working platform to engineer novel G. oxydans oxidoreductases with designed coenzyme preference, we adopted a structure based rational design strategy using computational predictions that considers the number of hydrogen bonds formed between enzyme and docked coenzyme. We report the crystal structure of Gox2253 at 2.6 Å resolution, ternary models of Gox2253 mutants in complex with NADH/short-chain aldehydes, and propose a structural mechanism of substrate selection. Molecular dynamics simulation shows that hydrogen bonds could form between 2'-hydroxyl group in the adenosine moiety of NADH and the side chain of Gox2253 mutant after arginine at position 42 is replaced with tyrosine or lysine. Consistent with the molecular dynamics prediction, Gox2253-R42Y/K mutants can use both NADH and NADPH as a coenzyme. Hence, the strategies here could provide a practical platform to engineer coenzyme selectivity for any given oxidoreductase and could serve as an additional consideration to engineer substrate-binding pockets.

摘要

来自氧化葡萄糖酸杆菌的Gox2253属于短链脱氢酶/还原酶家族,可利用NADPH催化庚醛、辛醛、壬醛和癸醛的还原反应。为了开发一个强大的工作平台,以设计具有特定辅酶偏好的新型氧化葡萄糖酸杆菌氧化还原酶,我们采用了基于结构的合理设计策略,利用计算预测来考虑酶与对接辅酶之间形成的氢键数量。我们报告了分辨率为2.6 Å的Gox2253晶体结构、与NADH/短链醛复合的Gox2253突变体的三元模型,并提出了底物选择的结构机制。分子动力学模拟表明,在第42位的精氨酸被酪氨酸或赖氨酸取代后,NADH腺苷部分的2'-羟基与Gox2253突变体的侧链之间可以形成氢键。与分子动力学预测一致,Gox2253-R42Y/K突变体可以使用NADH和NADPH作为辅酶。因此,这里的策略可以为设计任何给定氧化还原酶的辅酶选择性提供一个实用平台,并可作为设计底物结合口袋的额外考虑因素。

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