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用于改善宏基因组文库筛选中生物催化剂鉴定的合成生物学方法。

Synthetic biology approaches to improve biocatalyst identification in metagenomic library screening.

作者信息

Guazzaroni María-Eugenia, Silva-Rocha Rafael, Ward Richard John

机构信息

Departamento de Química, FFCLRP, University of São Paulo, Ribeirão Preto, SP, Brazil.

出版信息

Microb Biotechnol. 2015 Jan;8(1):52-64. doi: 10.1111/1751-7915.12146. Epub 2014 Aug 13.

Abstract

There is a growing demand for enzymes with improved catalytic performance or tolerance to process-specific parameters, and biotechnology plays a crucial role in the development of biocatalysts for use in industry, agriculture, medicine and energy generation. Metagenomics takes advantage of the wealth of genetic and biochemical diversity present in the genomes of microorganisms found in environmental samples, and provides a set of new technologies directed towards screening for new catalytic activities from environmental samples with potential biotechnology applications. However, biased and low level of expression of heterologous proteins in Escherichia coli together with the use of non-optimal cloning vectors for the construction of metagenomic libraries generally results in an extremely low success rate for enzyme identification. The bottleneck arising from inefficient screening of enzymatic activities has been addressed from several perspectives; however, the limitations related to biased expression in heterologous hosts cannot be overcome by using a single approach, but rather requires the synergetic implementation of multiple methodologies. Here, we review some of the principal constraints regarding the discovery of new enzymes in metagenomic libraries and discuss how these might be resolved by using synthetic biology methods.

摘要

对于具有改进催化性能或对特定工艺参数具有耐受性的酶的需求日益增长,生物技术在开发用于工业、农业、医学和能源生产的生物催化剂方面发挥着关键作用。宏基因组学利用环境样品中发现的微生物基因组中丰富的遗传和生化多样性,并提供了一套新技术,旨在从具有潜在生物技术应用的环境样品中筛选新的催化活性。然而,大肠杆菌中异源蛋白的表达存在偏差且水平较低,以及在构建宏基因组文库时使用非最佳克隆载体,通常导致酶鉴定的成功率极低。从多个角度解决了酶活性筛选效率低下所产生的瓶颈问题;然而,与异源宿主中偏差表达相关的局限性不能通过单一方法克服,而是需要多种方法的协同实施。在这里,我们回顾了宏基因组文库中发现新酶的一些主要限制,并讨论了如何通过使用合成生物学方法来解决这些问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03f1/4321373/301721e5ba5b/mbt20008-0052-f1.jpg

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