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细菌2-酮-3-脱氧-D-葡萄糖酸脱氢酶KduD中双辅酶特异性的结构决定因素。

Structural determinants in bacterial 2-keto-3-deoxy-D-gluconate dehydrogenase KduD for dual-coenzyme specificity.

作者信息

Takase Ryuichi, Maruyama Yukie, Oiki Sayoko, Mikami Bunzo, Murata Kousaku, Hashimoto Wataru

机构信息

Laboratory of Basic and Applied Molecular Biotechnology Graduate School of Agriculture, Kyoto University, Uji, Kyoto, Japan.

Laboratory of Applied Structural Biology Graduate School of Agriculture, Kyoto University, Uji, Kyoto, Japan.

出版信息

Proteins. 2016 Jul;84(7):934-47. doi: 10.1002/prot.25042. Epub 2016 Apr 21.

Abstract

Short-chain dehydrogenase/reductase (SDR) is distributed in many organisms, from bacteria to humans, and has significant roles in metabolism of carbohydrates, lipids, amino acids, and other biomolecules. An important intermediate in acidic polysaccharide metabolism is 2-keto-3-deoxy-d-gluconate (KDG). Recently, two short and long loops in Sphingomonas KDG-producing SDR enzymes (NADPH-dependent A1-R and NADH-dependent A1-R') involved in alginate metabolism were shown to be crucial for NADPH or NADH coenzyme specificity. Two SDR family enzymes-KduD from Pectobacterium carotovorum (PcaKduD) and DhuD from Streptococcus pyogenes (SpyDhuD)-prefer NADH as coenzyme, although only PcaKduD can utilize both NADPH and NADH. Both enzymes reduce 2,5-diketo-3-deoxy-d-gluconate to produce KDG. Tertiary and quaternary structures of SpyDhuD and PcaKduD and its complex with NADH were determined at high resolution (approximately 1.6 Å) by X-ray crystallography. Both PcaKduD and SpyDhuD consist of a three-layered structure, α/β/α, with a coenzyme-binding site in the Rossmann fold; similar to enzymes A1-R and A1-R', both arrange the two short and long loops close to the coenzyme-binding site. The primary structures of the two loops in PcaKduD and SpyDhuD were similar to those in A1-R' but not A1-R. Charge neutrality and moderate space at the binding site of the nucleoside ribose 2' coenzyme region were determined to be structurally crucial for dual-coenzyme specificity in PcaKduD by structural comparison of the NADH- and NADPH-specific SDR enzymes. The corresponding site in SpyDhuD was negatively charged and spatially shallow. This is the first reported study on structural determinants in SDR family KduD related to dual-coenzyme specificity. Proteins 2016; 84:934-947. © 2016 Wiley Periodicals, Inc.

摘要

短链脱氢酶/还原酶(SDR)分布于从细菌到人类的多种生物体中,在碳水化合物、脂质、氨基酸及其他生物分子的代谢中发挥着重要作用。酸性多糖代谢中的一个重要中间体是2-酮-3-脱氧-D-葡萄糖酸(KDG)。最近研究表明,参与藻酸盐代谢的鞘氨醇单胞菌产KDG的SDR酶(依赖NADPH的A1-R和依赖NADH的A1-R')中的两个短环和长环对于NADPH或NADH辅酶特异性至关重要。两种SDR家族酶——胡萝卜软腐果胶杆菌的KduD(PcaKduD)和化脓性链球菌的DhuD(SpyDhuD)——更倾向于以NADH作为辅酶,尽管只有PcaKduD能够同时利用NADPH和NADH。这两种酶都将2,5-二酮-3-脱氧-D-葡萄糖酸还原以产生KDG。通过X射线晶体学以高分辨率(约1.6 Å)确定了SpyDhuD和PcaKduD及其与NADH复合物的三级和四级结构。PcaKduD和SpyDhuD均由α/β/α三层结构组成,在Rossmann折叠中有一个辅酶结合位点;与酶A1-R和A1-R'类似,二者均将两个短环和长环排列在靠近辅酶结合位点的位置。PcaKduD和SpyDhuD中两个环的一级结构与A1-R'中的相似,但与A1-R中的不同。通过对NADH特异性和NADPH特异性SDR酶的结构比较,确定核苷核糖2'辅酶区域结合位点的电荷中性和适度空间对PcaKduD的双辅酶特异性在结构上至关重要。SpyDhuD中的相应位点带负电荷且空间较浅。这是首次报道的关于SDR家族KduD中与双辅酶特异性相关的结构决定因素的研究。《蛋白质》2016年;84:934 - 947。© 2016威利期刊公司

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