...
首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >Target Discovery of Novel alpha-l-Rhamnosidases from Human Fecal Metagenome and Application for Biotransformation of Natural Flavonoid Glycosides
【24h】

Target Discovery of Novel alpha-l-Rhamnosidases from Human Fecal Metagenome and Application for Biotransformation of Natural Flavonoid Glycosides

机译:从人粪便酵母组中的新型α-L-酚膦酸酶的靶向发现,以及天然类黄酮糖苷的生物转化应用

获取原文
获取原文并翻译 | 示例

摘要

As a green and powerful tool, biocatalysis has emerged as a perfect alternative to traditional chemistry. The bottleneck during process development is discovery of novel enzymes with desired properties and independent intellectual property. Herein, we have successfully bioprospected three novel bacterial alpha-l-rhamnosidases from human fecal metagenome using a combinatorial strategy by high-throughput de novo sequencing combined with in silico searching for catalytic key motifs. All three novel alpha-l-rhamnosidases shared low sequence identities with reported (< 35%) and putative ones (< 57%) from public database. All three novel alpha-l-rhamnosidases were over-expressed as soluble form in Escherichia coli with high-level production. Furthermore, all three novel alpha-l-rhamnosidases hydrolyzed the synthetic substrate p-nitrophenyl alpha-l-rhamnopyranoside and natural flavonoid glycosides rutin and naringin with some excellent properties, such as high activity in acidic pH, high activity at low or high temperature, and good tolerance for alcohols and DMSO. Our findings would provide a convenient route for target discovery of the promising biocatalysts from the metagenomes for biotransformation and biosynthesis.
机译:作为一种绿色和强大的工具,生物发作已成为传统化学的完美替代品。过程开发期间的瓶颈是发现具有所需特性和独立知识产权的新型酶。在此,我们通过高通量DE Novo测序与硅搜索催化关键基序结合使用组合策略,使用组合策略成功地生成了三种新的细菌α-L- rhamnoisidis酶。所有三种新型alpha-l-rhamnoisidase共享低序列同一性,报告(<35%)和来自公共数据库的推定(<57%)。所有三种新的α-L- rhamnosidis酶被在大肠杆菌中被过度表达为可溶性形式,具有高水平的产生。此外,所有三种新的α-L- rhamnosidase水解了合成底物p-硝基苯甲酰胺和天然黄酮糖苷芦丁和柚皮蛋白,其中具有一些优异的性质,例如酸性pH值的高活性,低温或高温,对醇和DMSO的耐受性很好。我们的研究结果将提供一种方便的途径,用于从MetageNomes用于生物转化和生物合成的前景发现的有前途的生物催化剂。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号