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灰盖鬼伞子实体菌盖中一组1,3-β-葡聚糖水解酶的纯化、表征及其自溶协同作用

Purification, characterization and synergism in autolysis of a group of 1,3-β-glucan hydrolases from the pilei of Coprinopsis cinerea fruiting bodies.

作者信息

Zhou Yajun, Zhang Wenming, Liu Zhonghua, Wang Jun, Yuan Sheng

机构信息

Jiangsu Key Laboratory for Microbes and Microbial Functional Genomics, Jiangsu Engineering and Technology Research Center for Industrialization of Microbial Resources, College of Life Science, Nanjing Normal University, Nanjing 210023, PR China.

出版信息

Microbiology (Reading). 2015 Oct;161(10):1978-1989. doi: 10.1099/mic.0.000143. Epub 2015 Jul 21.

Abstract

Using a combined chromatography method, we simultaneously purified three protein fractions (II-2, II-3 and II-4) with 1,3-β-glucanase activity from extraction of pilei of Coprinopsis cinerea fruiting bodies. MALDI-TOF/TOF amino acid sequencing showed that these three fractions matched a putative exo-1,3-β-glucanase, a putative glucan 1,3-β-glucosidase and a putative glycosyl hydrolase family 16 protein annotated in the C. cinerea genome, respectively; however, they were characterized as a 1,3-β-glucosidase, an exo-1,3-β-glucanase and an endo-1,3-β-glucanase, respectively, by analysis of their substrate specificities and modes of action. This study explored how these three 1,3-β-glucoside hydrolases synergistically acted on laminarin: the endo-1,3-β-glucanase hydrolysed internal glycosidic bonds of laminarin to generate 1,3-β-oligosaccharides of various lengths, the exo-1,3-β-glucanase cleaved the longer-chain laminarioligosaccharides into short-chain disaccharides, laminaribiose and gentiobiose, and the 1,3-β-glucosidase further hydrolysed laminaribiose to glucose. The remaining gentiobiose must be hydrolysed by other 1,6-β-glucosidases. Therefore, the endo-1,3-β-glucanase, exo-1,3-β-glucanase and 1,3-β-glucosidase may act synergistically to completely degrade the 1,3-β-glucan backbone of the C. cinerea cell wall during fruiting body autolysis. These three 1,3-β-glucoside hydrolases share a similar optimum pH and optimum temperature, supporting the speculation that these enzymes work together under the same conditions to degrade 1,3-β-glucan in the C. cinerea cell wall during fruiting body autolysis.

摘要

我们采用一种组合色谱方法,从灰盖鬼伞子实体菌盖提取物中同时纯化出了具有1,3-β-葡聚糖酶活性的三种蛋白质组分(II-2、II-3和II-4)。基质辅助激光解吸电离飞行时间串联质谱(MALDI-TOF/TOF)氨基酸测序表明,这三种组分分别与灰盖鬼伞基因组中注释的一种假定外切1,3-β-葡聚糖酶、一种假定葡聚糖1,3-β-葡萄糖苷酶和一种假定糖基水解酶家族16蛋白相匹配;然而,通过对它们的底物特异性和作用方式进行分析,它们分别被鉴定为一种1,3-β-葡萄糖苷酶、一种外切1,3-β-葡聚糖酶和一种内切1,3-β-葡聚糖酶。本研究探究了这三种1,3-β-葡萄糖苷水解酶如何协同作用于海带多糖:内切1,3-β-葡聚糖酶水解海带多糖的内部糖苷键,生成各种长度的1,3-β-寡糖,外切1,3-β-葡聚糖酶将较长链的海带寡糖切割成短链二糖、昆布二糖和龙胆二糖,1,3-β-葡萄糖苷酶进一步将昆布二糖水解为葡萄糖。剩余的龙胆二糖必须由其他1,6-β-葡萄糖苷酶水解。因此,在子实体自溶过程中,内切1,3-β-葡聚糖酶、外切1,3-β-葡聚糖酶和1,3-β-葡萄糖苷酶可能协同作用,完全降解灰盖鬼伞细胞壁的1,3-β-葡聚糖主链。这三种1,3-β-葡萄糖苷水解酶具有相似的最适pH和最适温度,支持了这样一种推测,即在子实体自溶过程中,这些酶在相同条件下共同作用,降解灰盖鬼伞细胞壁中的1,3-β-葡聚糖。

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