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一株具有单一催化结构域的伴放线杆菌 E18 双功能木聚糖酶-葡聚糖酶。

Paenibacillus sp. strain E18 bifunctional xylanase-glucanase with a single catalytic domain.

机构信息

Key Laboratory for Feed Biotechnology of the Ministry of Agriculture, Feed Research Institute, Chinese Academy of Agricultural Sciences, No. 12 Zhongguancun South Street, Beijing, People's Republic of China.

出版信息

Appl Environ Microbiol. 2010 Jun;76(11):3620-4. doi: 10.1128/AEM.00345-10. Epub 2010 Apr 9.

Abstract

Xylanases are utilized in a variety of industries for the breakdown of plant materials. Most native and engineered bifunctional/multifunctional xylanases have separate catalytic domains within the same polypeptide chain. Here we report a new bifunctional xylanase (XynBE18) produced by Paenibacillus sp. E18 with xylanase and beta-1,3-1,4-glucanase activities derived from the same active center by substrate competition assays and site-directed mutagenesis of xylanase catalytic Glu residues (E129A and E236A). The gene consists of 981 bp, encodes 327 amino acids, and comprises only one catalytic domain that is highly homologous to the glycoside hydrolase family 10 xylanase catalytic domain. Recombinant XynBE18 purified from Escherichia coli BL21(DE3) showed specificity toward oat spelt xylan and birchwood xylan and beta-1,3-1,4-glucan (barley beta-glucan and lichenin). Homology modeling and molecular dynamic simulation were used to explore structure differences between XynBE18 and the monofunctional xylanase XynE2, which has enzymatic properties similar to those of XynBE18 but does not hydrolyze beta-1,3-1,4-glucan. The cleft containing the active site of XynBE18 is larger than that of XynE2, suggesting that XynBE18 is able to bind larger substrates such as barley beta-glucan and lichenin. Further molecular docking studies revealed that XynBE18 can accommodate xylan and beta-1,3-1,4-glucan, but XynE2 is only accessible to xylan. These results indicate a previously unidentified structure-function relationship for substrate specificities among family 10 xylanases.

摘要

木聚糖酶在许多行业中用于植物材料的分解。大多数天然和工程化的双功能/多功能木聚糖酶在同一多肽链内具有独立的催化结构域。在这里,我们报道了一种新的双功能木聚糖酶(XynBE18),它由 Paenibacillus sp. E18 产生,具有木聚糖酶和β-1,3-1,4-葡聚糖酶活性,通过底物竞争测定和木聚糖酶催化 Glu 残基(E129A 和 E236A)的定点突变从同一活性中心获得。该基因由 981bp 组成,编码 327 个氨基酸,仅包含一个与糖苷水解酶家族 10 木聚糖酶催化结构域高度同源的催化结构域。从大肠杆菌 BL21(DE3)中纯化的重组 XynBE18 对燕麦 spelt 木聚糖和桦木木聚糖以及β-1,3-1,4-葡聚糖(大麦β-葡聚糖和地衣多糖)具有特异性。同源建模和分子动力学模拟用于探索 XynBE18 与单功能木聚糖酶 XynE2 之间的结构差异,XynE2 具有与 XynBE18 相似的酶学性质,但不能水解β-1,3-1,4-葡聚糖。XynBE18 的活性位点包含的裂缝大于 XynE2 的裂缝,表明 XynBE18 能够结合更大的底物,如大麦β-葡聚糖和地衣多糖。进一步的分子对接研究表明,XynBE18 可以容纳木聚糖和β-1,3-1,4-葡聚糖,但 XynE2 只能容纳木聚糖。这些结果表明,在糖苷水解酶家族 10 中,木聚糖酶的底物特异性存在以前未被识别的结构-功能关系。

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