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Molecular cloning and characterization of two intracellular beta-glucosidases belonging to glycoside hydrolase family 1 from the basidiomycete Phanerochaete chrysosporium

机译:属于担子菌Phanerochaete chrysosporium的两个糖苷水解酶家族1的细胞内β-葡萄糖苷酶的分子克隆和表征

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摘要

cDNAs encoding two glycoside hydrolase family 1 beta-glucosidases (BGL1A and BGL1B) were cloned from the basidiomycete Phanerochaete chrysosporium, and the substrate specificities of the recombinant enzymes and the expression patterns of the two genes were investigated in relation to cellobiose metabolism by the fungus. The cDNA sequences contained open reading frames of 1,389 base pairs (bp) (bgl1A) and 1,623 bp (bgl1B), encoding 462 and 530 amino acids, respectively. Although high sequence identity (65%) was observed between the deduced amino acid sequences of the two enzymes, an apparent difference was observed at the C-terminal region: BGL1B has a 63-amino acid extension, which has no similarity with any known protein. Both recombinant enzymes expressed in Escherichia coli showed hydrolytic activity towards several beta-glycosidic compounds. However, the substrate recognition patterns of the two enzymes were quite different from each other. In particular, cellobiose was hydrolyzed more effectively by BGL1B than by BGL1A. The expression of the two genes in the fungus was monitored by reverse transcription-PCR, which showed that bgl1A was expressed constitutively in both glucose- and cellobiose-containing culture, whereas bgl1B was expressed in cellobiose culture but was repressed in glucose culture, possibly because of carbon catabolite repression. We conclude that BGL1B contributes to cellobiose metabolism during cellulose degradation by P. chrysosporium.
机译:从担子菌Phanerochaete chrysosporium克隆了编码两个糖苷水解酶家族1β-葡萄糖苷酶(BGL1A和BGL1B)的cDNA,并研究了重组酶的底物特异性和这两个基因的表达模式与真菌的纤维二糖代谢有关。 cDNA序列包含1389个碱基对(bp)(bgl1A)和1,623 bp(bgl1B)的开放阅读框,分别编码462和530个氨基酸。尽管在两种酶的推导氨基酸序列之间观察到了很高的序列同一性(65%),但在C端区域观察到了明显的差异:BGL1B具有63个氨基酸的延伸,与任何已知的蛋白质都没有相似性。在大肠杆菌中表达的两种重组酶均显示出对几种β-糖苷化合物的水解活性。然而,两种酶的底物识别模式彼此完全不同。特别地,纤维二糖被BGL1B比被BGL1A更有效地水解。通过逆转录PCR监测这两个基因在真菌中的表达,这表明bgl1A在含葡萄糖和纤维二糖的培养物中均组成性表达,而bgl1B在纤维二糖培养中表达但在葡萄糖培养中表达受阻。碳分解代谢抑制。我们得出结论,BGL1B在金黄色葡萄球菌降解纤维素的过程中有助于纤维二糖代谢。

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