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GH57家族支链淀粉酶的晶体结构揭示了其具有相同催化二元体的双结合口袋。

The crystal structure of GH57 family amylopullulanase reveals its dual binding pockets sharing the same catalytic dyad.

作者信息

Zhu Zhimin, Wang Weiwei, Li Minjun, Xu Qin, Zhou Huan, Huang Liqing, Wang Qisheng, Yu Feng

机构信息

Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

Commun Biol. 2025 May 26;8(1):806. doi: 10.1038/s42003-025-08192-8.

Abstract

Glycoside Hydrolase Family 57 (GH57) amylopullulanase is a thermophilic endoamylase capable of hydrolyzing both α-1,4 and α-1,6-glycosidic bonds, demonstrating significant potential for one-step starch saccharification in industrial applications. However, the mechanisms underlying the dual catalytic activities of GH57 family amylopullulanase remain poorly understood. In this study, we report the first crystal structures of a GH57 amylopullulanase from Aquifex aeolicus (AaApu) in complex with oligosaccharides containing both α-1,4 and α-1,6 glycosidic bonds. Our structural analysis reveals that GH57 amylopullulanase features dual binding pockets arranged in a "Y"-shaped configuration, which accommodates branched-chain starches. The dual binding pockets share a common catalytic dyad composed of Glu256 and Asp352. Notably, unlike the typical retaining mechanism observed in many glycoside hydrolases, the distance between the catalytic residues in GH57 amylopullulanase is significantly larger (approximately 7 Å). This study provides critical insights into the structural basis of GH57 amylopullulanase activity and offers a foundation for the rational engineering of these enzymes for industrial applications.

摘要

糖苷水解酶家族57(GH57)支链淀粉酶是一种嗜热内切淀粉酶,能够水解α-1,4和α-1,6糖苷键,在工业应用的一步法淀粉糖化中显示出巨大潜力。然而,GH57家族支链淀粉酶双重催化活性的潜在机制仍知之甚少。在本研究中,我们报道了来自嗜热栖热菌(AaApu)的GH57支链淀粉酶与含有α-1,4和α-1,6糖苷键的寡糖复合物的首个晶体结构。我们的结构分析表明,GH57支链淀粉酶具有以“Y”形排列的双重结合口袋,可容纳支链淀粉。双重结合口袋共享一个由Glu256和Asp352组成的共同催化二元组。值得注意的是,与许多糖苷水解酶中观察到的典型保留机制不同,GH57支链淀粉酶中催化残基之间的距离明显更大(约7 Å)。本研究为GH57支链淀粉酶活性的结构基础提供了关键见解,并为这些酶在工业应用中的合理工程改造提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1605/12106739/46a2e6d308c3/42003_2025_8192_Fig1_HTML.jpg

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