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人乳寡糖代谢途径中双歧杆菌 UDP-葡萄糖 4-差向异构酶广谱底物特异性的结构基础。

Structural basis for broad substrate specificity of UDP-glucose 4-epimerase in the human milk oligosaccharide catabolic pathway of Bifidobacterium longum.

机构信息

Department of Biotechnology, The University of Tokyo, Tokyo, 113-8657, Japan.

Department of Biomedical and Pharmaceutical Sciences & Structural Biology Research Center, Chapman University School of Pharmacy, Irvine, CA 92618, USA.

出版信息

Sci Rep. 2019 Jul 31;9(1):11081. doi: 10.1038/s41598-019-47591-w.

Abstract

Infant gut-associated bifidobacteria has a metabolic pathway that specifically utilizes lacto-N-biose I (Gal-β1,3-GlcNAc) and galacto-N-biose (Gal-β1,3-GalNAc) from human milk and mucin glycans. UDP-glucose 4-epimerase (GalE) from Bifidobacterium longum (bGalE) catalyzes epimerization reactions of UDP-Gal into UDP-Glc and UDP-GalNAc into UDP-GlcNAc with the same level of activity that is required to send galacto-hexoses into glycolysis. Here, we determined the crystal structures of bGalE in three ternary complex forms: NAD/UDP, NAD/UDP-GlcNAc, and NAD/UDP-Glc. The broad specificity of bGalE was explained by structural features of the binding pocket for the N-acetyl or C2 hydroxy group of the substrate. Asn200 is located in a pocket of the C2 group, and its side chain adopts different conformations in the complex structures with UDP-Glc and UDP-GlcNAc. On the other side, Cys299 forms a large pocket for the C5 sugar ring atom. The flexible C2 pocket and the large C5 pocket of bGalE are suitable for accommodating both the hydroxy and N-acetyl groups of the substrate during sugar ring rotation in the catalytic cycle. The substrate specificity and active site structure of bGalE were distinct from those of Esherichia coli GalE but similar to those of human GalE.

摘要

婴儿肠道相关双歧杆菌具有一种代谢途径,可特异性利用人乳和粘蛋白糖链中的乳-N-双糖 I(Gal-β1,3-GlcNAc)和半乳糖-N-双糖(Gal-β1,3-GalNAc)。长双歧杆菌的 UDP-葡萄糖 4-差向异构酶(bGalE)可催化 UDP-Gal 的差向异构反应,生成 UDP-Glc 和 UDP-GalNAc,其活性水平足以将半乳糖六糖送入糖酵解途径。在这里,我们确定了 bGalE 在三种三元复合物形式中的晶体结构:NAD/UDP、NAD/UDP-GlcNAc 和 NAD/UDP-Glc。bGalE 的广泛特异性可通过结合口袋对底物的 N-乙酰基或 C2 羟基的结构特征来解释。Asn200 位于 C2 基团的口袋中,其侧链在与 UDP-Glc 和 UDP-GlcNAc 的复合物结构中采用不同的构象。另一方面,Cys299 形成了一个用于 C5 糖环原子的大口袋。bGalE 的柔性 C2 口袋和大 C5 口袋适合在催化循环中糖环旋转时容纳底物的羟基和 N-乙酰基。bGalE 的底物特异性和活性位点结构与大肠杆菌 GalE 不同,但与人类 GalE 相似。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/510b/6668579/c33ad19c0948/41598_2019_47591_Fig1_HTML.jpg

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