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Aspergillus niger β-Glucosidase Has a Cellulase-like Tadpole Molecular Shape

机译:黑曲霉β-葡萄糖苷酶具有类似纤维素酶的Ta分子形状

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摘要

Aspergillus niger is known to secrete large amounts of β-glucosidases, which have a variety of biotechnological and industrial applications. Here, we purified an A. niger β-glucosidase (AnBgl1) and conducted its biochemical and biophysical analyses. Purified enzyme with an apparent molecular mass of 116 kDa forms monomers in solution as judged by native gel electrophoresis and has a pI value of 4.55, as found for most of the fungi of β-glucosidases. Surprisingly, the small angle x-ray experiments reveal that AnBgl1 has a tadpole-like structure, with the N-terminal catalytic domain and C-terminal fibronectin III-like domain (FnIII) connected by the long linker peptide (∼100 amino acid residues) in an extended conformation. This molecular organization resembles the one adopted by other cellulases (such as cellobiohydrolases, for example) that frequently contain a catalytic domain linked to the cellulose-binding module that mediates their binding to insoluble and polymeric cellulose. The reasons why AnBgl1, which acts on the small soluble substrates, has a tadpole molecular shape are not entirely clear. However, our enzyme pulldown assays with different polymeric substrates suggest that AnBgl1 has little or no capacity to bind to and to adsorb cellulose, xylan, and starch, but it has high affinity to lignin. Molecular dynamics simulations suggested that clusters of residues located in the C-terminal FnIII domain interact strongly with lignin fragments. The simulations showed that numerous arginine residues scattered throughout the FnIII surface play an important role in the interaction with lignin by means of cation-π stacking with the lignin aromatic rings. These results indicate that the C-terminal FnIII domain could be operational for immobilization of the enzyme on the cell wall and for the prevention of unproductive binding of cellulase to the biomass lignin.
机译:已知黑曲霉分泌大量的β-葡萄糖苷酶,其具有多种生物技术和工业应用。在这里,我们纯化了黑曲霉β-葡萄糖苷酶(AnBgl1)并进行了其生化和生物物理分析。经天然凝胶电泳判断,表观分子量为116 kDa的纯化酶在溶液中形成单体,其pI值为4.55,这是大多数β-葡萄糖苷酶的真菌所发现的。令人惊讶的是,小角度X射线实验表明AnBgl1具有a样结构,其N端催化结构域和C端纤连蛋白III样结构域(FnIII)通过长接头肽连接(约100个氨基酸残基) )的扩展构型。该分子组织类似于其他纤维素酶(例如,纤维二糖水解酶)所采用的分子组织,该纤维素酶通常包含与纤维素结合模块相连的催化结构域,该催化域介导它们与不溶性和聚合纤维素的结合。作用在小的可溶性底物上的AnBgl1具有a分子形状的原因尚不完全清楚。但是,我们用不同聚合物底物进行的酶下拉试验表明,AnBgl1几乎没有或根本没有结合和吸附纤维素,木聚糖和淀粉的能力,但是对木质素具有很高的亲和力。分子动力学模拟表明,位于C末端FnIII域中的残基簇与木质素片段强烈相互作用。模拟表明,散布在整个FnIII表面的大量精氨酸残基通过与木质素芳香环的阳离子-π堆积在与木质素的相互作用中起重要作用。这些结果表明,C末端的FnIII结构域可用于将酶固定在细胞壁上并用于防止纤维素酶与生物质木质素的非生产性结合。

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