Shanghai Key Laboratory of Agricultural Genetics and Breeding, Institute of Edible Fungi, Shanghai Academy of Agricultural Sciences, Shanghai, China.
Key Laboratory for Quality Improvement of Agricultural Products of Zhejiang Province, College of Advanced Agricultural Sciences, Zhejiang A&F University, Lin'an Hangzhou, China.
Microb Biotechnol. 2022 Oct;15(10):2521-2532. doi: 10.1111/1751-7915.14126. Epub 2022 Jul 31.
Given their lignocellulose degradability and biocontrol activities, fungi of the ubiquitously distributed genus Trichoderma have multiple industrial and agricultural applications. Genetic manipulation plays a valuable role in tailoring novel engineered strains with enhanced target traits. Nevertheless, as applied to fungi, the classic tools of genetic manipulation tend to be time-consuming and tedious. However, the recent development of the CRISPR-Cas system for gene editing has enabled researchers to achieve genome-wide gene disruptions, gene replacements, and precise editing, and this technology has emerged as a primary focus for novel developments in engineered strains of Trichoderma. Here, we provide a brief overview of the traditional approaches to genetic manipulation, the different strategies employed in establishing CRSIPR-Cas systems, the utilization of these systems to develop engineered strains of Trichoderma for desired applications, and the future trends in biotechnology.
鉴于其木质纤维素的可降解性和生物防治活性,广泛分布的木霉属真菌在工业和农业中有多种应用。遗传操作在定制具有增强目标特性的新型工程菌株方面发挥了宝贵的作用。然而,在应用于真菌时,经典的遗传操作工具往往耗时且繁琐。然而,近年来基因编辑的 CRISPR-Cas 系统的发展使研究人员能够实现全基因组基因敲除、基因替换和精确编辑,该技术已成为工程菌株新型发展的主要焦点。在这里,我们简要概述了传统的遗传操作方法,建立 CRISPR-Cas 系统所采用的不同策略,以及利用这些系统开发用于预期应用的工程菌株的方法,以及生物技术的未来趋势。