Department of Biological Sciences, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea.
Department of Bioengineering, University of California San Diego, La Jolla, CA 92093, USA.
J Ind Microbiol Biotechnol. 2024 Jan 9;51. doi: 10.1093/jimb/kuae009.
The demand for discovering novel microbial secondary metabolites is growing to address the limitations in bioactivities such as antibacterial, antifungal, anticancer, anthelmintic, and immunosuppressive functions. Among microbes, the genus Streptomyces holds particular significance for secondary metabolite discovery. Each Streptomyces species typically encodes approximately 30 secondary metabolite biosynthetic gene clusters (smBGCs) within its genome, which are mostly uncharacterized in terms of their products and bioactivities. The development of next-generation sequencing has enabled the identification of a large number of potent smBGCs for novel secondary metabolites that are imbalanced in number compared with discovered secondary metabolites. The clustered regularly interspaced short palindromic repeat (CRISPR)/CRISPR-associated (Cas) system has revolutionized the translation of enormous genomic potential into the discovery of secondary metabolites as the most efficient genetic engineering tool for Streptomyces. In this review, the current status of CRISPR/Cas applications in Streptomyces is summarized, with particular focus on the identification of secondary metabolite biosynthesis gene clusters and their potential applications.This review summarizes the broad range of CRISPR/Cas applications in Streptomyces for natural product discovery and production.
ONE-SENTENCE SUMMARY: This review summarizes the broad range of CRISPR/Cas applications in Streptomyces for natural product discovery and production.
为了解决抗菌、抗真菌、抗癌、驱虫和免疫抑制功能等生物活性方面的局限性,对发现新型微生物次生代谢产物的需求不断增长。在微生物中,链霉菌属对次生代谢产物的发现具有特殊意义。每个链霉菌种通常在其基因组中编码约 30 个次生代谢物生物合成基因簇(smBGC),这些基因簇在其产物和生物活性方面大多未被描述。下一代测序技术的发展使得大量新型次生代谢物的有效 smBGC 得以鉴定,与已发现的次生代谢物相比,这些 smBGC 的数量是不平衡的。成簇规律间隔短回文重复(CRISPR)/CRISPR 相关(Cas)系统彻底改变了将大量基因组潜力转化为次生代谢产物发现的过程,成为链霉菌最有效的遗传工程工具。在这篇综述中,总结了 CRISPR/Cas 在链霉菌中的应用现状,特别关注次生代谢物生物合成基因簇的鉴定及其潜在应用。
这篇综述总结了 CRISPR/Cas 在链霉菌中用于天然产物发现和生产的广泛应用。