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对影响当前生物修复设计的分子方法的思考:从培养到微生物群落指纹分析再到组学

Reflection on Molecular Approaches Influencing State-of-the-Art Bioremediation Design: Culturing to Microbial Community Fingerprinting to Omics.

作者信息

Czaplicki Lauren M, Gunsch Claudia K

机构信息

Ph.D. Candidate, Department of Civil & Environmental Engineering, Duke University, Durham, NC 27708-0287 USA.

Associate Professor, Department of Civil & Environmental Engineering, Duke University, Durham, NC 27708-0287 USA.

出版信息

J Environ Eng (New York). 2016 Oct;142(10). doi: 10.1061/(ASCE)EE.1943-7870.0001141. Epub 2016 Aug 16.

Abstract

Bioremediation is generally viewed as a cost effective and sustainable technology because it relies on microbes to transform pollutants into benign compounds. Advances in molecular biological analyses allow unprecedented microbial detection and are increasingly incorporated into bioremediation. Throughout history, state-of-the-art techniques have informed bioremediation strategies. However, the insights those techniques provided were not as in depth as those provided by recently developed omics tools. Advances in next generation sequencing (NGS) have now placed metagenomics and metatranscriptomics within reach of environmental engineers. As NGS costs decrease, metagenomics and metatranscriptomics have become increasingly feasible options to rapidly scan sites for specific degradative functions and identify microorganisms important in pollutant degradation. These omic techniques are capable of revolutionizing biological treatment in environmental engineering by allowing highly sensitive characterization of previously uncultured microorganisms. Omics enables the discovery of novel microorganisms for use in bioaugmentation and supports systematic optimization of biostimulation strategies. This review describes the omics journey from roots in biology and medicine to its current status in environmental engineering including potential future directions in commercial application.

摘要

生物修复通常被视为一种具有成本效益且可持续的技术,因为它依靠微生物将污染物转化为无害化合物。分子生物学分析的进展使得前所未有的微生物检测成为可能,并越来越多地被纳入生物修复中。纵观历史,先进技术为生物修复策略提供了依据。然而,这些技术所提供的见解不如最近开发的组学工具所提供的深入。下一代测序(NGS)的进展现在已使宏基因组学和宏转录组学为环境工程师所掌握。随着NGS成本的降低,宏基因组学和宏转录组学已成为越来越可行的选择,可用于快速扫描场地以寻找特定的降解功能,并识别在污染物降解中起重要作用的微生物。这些组学技术能够通过对以前未培养的微生物进行高度敏感的表征,彻底改变环境工程中的生物处理。组学能够发现用于生物强化的新型微生物,并支持生物刺激策略的系统优化。本综述描述了组学从生物学和医学根源到其在环境工程中的当前地位的历程,包括商业应用的潜在未来方向。

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