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无害李斯特菌中参与β-1,2-葡聚糖代谢的β-葡萄糖苷酶的功能与结构分析

Functional and Structural Analysis of a β-Glucosidase Involved in β-1,2-Glucan Metabolism in Listeria innocua.

作者信息

Nakajima Masahiro, Yoshida Ryuta, Miyanaga Akimasa, Abe Koichi, Takahashi Yuta, Sugimoto Naohisa, Toyoizumi Hiroyuki, Nakai Hiroyuki, Kitaoka Motomitsu, Taguchi Hayao

机构信息

Department of Applied Biological Science, Faculty of Science and Technology, Tokyo University of Science, Noda, Chiba, Japan.

Department of Chemistry, Tokyo Institute of Technology, Meguro-ku, Tokyo, Japan.

出版信息

PLoS One. 2016 Feb 17;11(2):e0148870. doi: 10.1371/journal.pone.0148870. eCollection 2016.

Abstract

Despite the presence of β-1,2-glucan in nature, few β-1,2-glucan degrading enzymes have been reported to date. Recently, the Lin1839 protein from Listeria innocua was identified as a 1,2-β-oligoglucan phosphorylase. Since the adjacent lin1840 gene in the gene cluster encodes a putative glycoside hydrolase family 3 β-glucosidase, we hypothesized that Lin1840 is also involved in β-1,2-glucan dissimilation. Here we report the functional and structural analysis of Lin1840. A recombinant Lin1840 protein (Lin1840r) showed the highest hydrolytic activity toward sophorose (Glc-β-1,2-Glc) among β-1,2-glucooligosaccharides, suggesting that Lin1840 is a β-glucosidase involved in sophorose degradation. The enzyme also rapidly hydrolyzed laminaribiose (β-1,3), but not cellobiose (β-1,4) or gentiobiose (β-1,6) among β-linked gluco-disaccharides. We determined the crystal structures of Lin1840r in complexes with sophorose and laminaribiose as productive binding forms. In these structures, Arg572 forms many hydrogen bonds with sophorose and laminaribiose at subsite +1, which seems to be a key factor for substrate selectivity. The opposite side of subsite +1 from Arg572 is connected to a large empty space appearing to be subsite +2 for the binding of sophorotriose (Glc-β-1,2-Glc-β-1,2-Glc) in spite of the higher Km value for sophorotriose than that for sophorose. The conformations of sophorose and laminaribiose are almost the same on the Arg572 side but differ on the subsite +2 side that provides no interaction with a substrate. Therefore, Lin1840r is unable to distinguish between sophorose and laminaribiose as substrates. These results provide the first mechanistic insights into β-1,2-glucooligosaccharide recognition by β-glucosidase.

摘要

尽管自然界中存在β-1,2-葡聚糖,但迄今为止,报道的β-1,2-葡聚糖降解酶却很少。最近,无害李斯特菌的Lin1839蛋白被鉴定为一种1,2-β-寡葡聚糖磷酸化酶。由于基因簇中相邻的lin1840基因编码一种假定的糖苷水解酶家族3β-葡萄糖苷酶,我们推测Lin1840也参与β-1,2-葡聚糖的异化作用。在此,我们报道了Lin1840的功能和结构分析。重组Lin1840蛋白(Lin1840r)在β-1,2-低聚葡聚糖中对槐糖(Glc-β-1,2-Glc)表现出最高的水解活性,这表明Lin1840是一种参与槐糖降解的β-葡萄糖苷酶。该酶还能快速水解层二糖(β-1,3),但在β-连接的葡萄糖二糖中不能水解纤维二糖(β-1,4)或龙胆二糖(β-1,6)。我们确定了Lin1840r与槐糖和层二糖形成的复合物的晶体结构,它们是有效的结合形式。在这些结构中,精氨酸572在亚位点+1与槐糖和层二糖形成许多氢键,这似乎是底物选择性的关键因素。亚位点+1中与精氨酸572相对的一侧连接到一个大的空穴,尽管槐三糖(Glc-β-1,2-Glc-β-1,2-Glc)的Km值高于槐糖,但该空穴似乎是用于结合槐三糖的亚位点+2。槐糖和层二糖在精氨酸572一侧的构象几乎相同,但在不与底物相互作用的亚位点+2一侧不同。因此,Lin1840r无法区分槐糖和层二糖作为底物。这些结果首次为β-葡萄糖苷酶识别β-1,2-低聚葡聚糖提供了机制上的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c814/4757417/bda6db2eb640/pone.0148870.g001.jpg

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