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Molecular structure and catalytic mechanism of fungal family G acidophilic xylanases

机译:真菌家族G嗜酸木聚糖酶的分子结构和催化机理

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摘要

Industrial applications of xylanases have made this enzyme an important subject of applied research work. Function of this particular enzyme is to degrade or hydrolyze the plentiful polysaccharide xylan, an important component of hemicellulose. It mainly cleaves the backbone of xylan that is made up of a number of xylose residues connected with β-1,4-glycosidic linkages. Fungi with mycelia are regarded as the best producer of xylanases. These varied xylanases not only differ in their sizes and shapes but also differ in their physicochemical properties. Depending on the optimum pH in which they work best, they have been classified into (1) acidophilic xylanases active at low pH or acidic pH range, (2) alkaliphilic xylanases that are active at high or alkaline pH range and (3) neutral xylanases having pH optima in the neutral range between pH 5 and 7. Other researchers have classified the xylanases also on the basis of their structural properties, kinetic parameters, etc. This review discusses the molecular structures of some acidophilic xylanases and the molecular basis of low pH optima observed for their activities. It also discusses their unique catalytic mechanism and actual role of the catalytic residues found in them. Apart from these, the review also discusses different applications of these acidophilic xylanases in different industries. The article concludes with brief suggestions about how these acidophilic xylanases can be created employing the techniques of genetic engineering and concepts of synthetic evolution, using the traits of the known acidophilic xylanases discussed in the review.
机译:木聚糖酶的工业应用使该酶成为应用研究工作的重要课题。该特定酶的功能是降解或水解大量的多糖木聚糖,木聚糖是半纤维素的重要成分。它主要裂解木聚糖的骨架,该骨架由与β-1,4-糖苷键连接的许多木糖残基组成。具有菌丝体的真菌被认为是木聚糖酶的最佳生产者。这些变化的木聚糖酶不仅在大小和形状上不同,而且在物理化学性质上也不同。根据最有效的最佳pH值,将其分为(1)在低pH或酸性pH范围内有活性的嗜酸木聚糖酶,(2)在高或碱性pH范围内有活性的嗜碱木聚糖酶和(3)中性木聚糖酶。具有在5到7的中性范围内的最适pH值。其他研究人员也根据其结构性质,动力学参数等对木聚糖酶进行了分类。本文综述了一些嗜酸木聚糖酶的分子结构和低pH值的分子基础。他们活动的最佳状态。它还讨论了它们独特的催化机理以及其中发现的催化残基的实际作用。除此之外,本综述还讨论了这些嗜酸木聚糖酶在不同行业中的不同应用。本文最后给出了简短的建议,内容涉及如何利用基因工程技术和合成进化的概念,利用综述中讨论的已知嗜酸木聚糖酶的特性,来创建这些嗜酸木聚糖酶。

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