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直链淀粉分支酶中寡糖和底物的结合。

Oligosaccharide and substrate binding in the starch debranching enzyme barley limit dextrinase.

机构信息

Carlsberg Laboratory, Gamle Carlsberg Vej 10, DK-1799 Copenhagen V, Denmark; Enzyme and Protein Chemistry, Department of Systems Biology, Technical University of Denmark, Søltofts Plads, Building 224, DK-2800 Kongens Lyngby, Denmark.

Carlsberg Laboratory, Gamle Carlsberg Vej 10, DK-1799 Copenhagen V, Denmark.

出版信息

J Mol Biol. 2015 Mar 27;427(6 Pt B):1263-1277. doi: 10.1016/j.jmb.2014.12.019. Epub 2015 Jan 3.

Abstract

Complete hydrolytic degradation of starch requires hydrolysis of both the α-1,4- and α-1,6-glucosidic bonds in amylopectin. Limit dextrinase (LD) is the only endogenous barley enzyme capable of hydrolyzing the α-1,6-glucosidic bond during seed germination, and impaired LD activity inevitably reduces the maltose and glucose yields from starch degradation. Crystal structures of barley LD and active-site mutants with natural substrates, products and substrate analogues were sought to better understand the facets of LD-substrate interactions that confine high activity of LD to branched maltooligosaccharides. For the first time, an intact α-1,6-glucosidically linked substrate spanning the active site of a LD or pullulanase has been trapped and characterized by crystallography. The crystal structure reveals both the branch and main-chain binding sites and is used to suggest a mechanism for nucleophilicity enhancement in the active site. The substrate, product and analogue complexes were further used to outline substrate binding subsites and substrate binding restraints and to suggest a mechanism for avoidance of dual α-1,6- and α-1,4-hydrolytic activity likely to be a biological necessity during starch synthesis.

摘要

完整的淀粉水解需要水解支链淀粉中的α-1,4-和α-1,6-糖苷键。极限糊精酶(LD)是唯一能够在种子萌发过程中水解α-1,6-糖苷键的内源性大麦酶,LD 活性的降低不可避免地降低了淀粉降解产生的麦芽糖和葡萄糖产量。研究了大麦 LD 的晶体结构和活性位点突变体与天然底物、产物和底物类似物,以更好地理解限制 LD 对支链麦芽寡糖高活性的 LD-底物相互作用的各个方面。首次通过晶体学捕获和表征了完整的跨越 LD 或普鲁兰酶活性位点的α-1,6-糖苷键连接的完整底物。晶体结构揭示了分支和主链结合位点,并用于提出活性位点亲核性增强的机制。进一步使用底物、产物和类似物复合物来概述底物结合亚位点和底物结合限制,并提出一种避免双α-1,6-和α-1,4-水解活性的机制,这在淀粉合成过程中可能是一种生物学上的必要性。

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