Zeling Xu, Shuzhen Chen, Weiyan Wu, Yongqi Wen, Huiluo Cao
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引用次数: 0
摘要
CRISPR-Cas系统有六种主要类型,可为细菌和古细菌提供适应性免疫,抵御入侵的遗传因子。CRISPR-Cas系统的发现彻底改变了许多生物的遗传学领域。在过去几年中,对最丰富的第一类CRISPR-Cas系统的开发揭示了它们的巨大潜力和独特优势,尽管其结构复杂,却能在多种微生物中实现基因编辑和调控。广泛而多样化的 I 类 CRISPR-Cas 系统对开发新的生物技术工具越来越有吸引力,特别是在遗传上难以克服的微生物菌株中。在这篇综述文章中,我们全面总结了利用 I 型 CRISPR-Cas 系统进行微生物基因编辑和调控的最新进展。重要的是,为了扩大基于 I 型 CRISPR-Cas 的微生物宿主应用范围,这些结构复杂的系统得到了改进,成为可转移的基因编辑工具,具有稳定表达 CRISPR-Cas 元件的高效传递方法,以及通过避免 Cas3 核酸酶的缺失或突变来防止 DNA 切割的便捷基因调控工具。我们预计,I 型 CRISPR-Cas 系统将在很大程度上扩展生物技术工具箱,用于具有医疗、环境和工业重要性的微生物。
Type I CRISPR-Cas-mediated microbial gene editing and regulation.
There are six major types of CRISPR-Cas systems that provide adaptive immunity in bacteria and archaea against invasive genetic elements. The discovery of CRISPR-Cas systems has revolutionized the field of genetics in many organisms. In the past few years, exploitations of the most abundant class 1 type I CRISPR-Cas systems have revealed their great potential and distinct advantages to achieve gene editing and regulation in diverse microorganisms in spite of their complicated structures. The widespread and diversified type I CRISPR-Cas systems are becoming increasingly attractive for the development of new biotechnological tools, especially in genetically recalcitrant microbial strains. In this review article, we comprehensively summarize recent advancements in microbial gene editing and regulation by utilizing type I CRISPR-Cas systems. Importantly, to expand the microbial host range of type I CRISPR-Cas-based applications, these structurally complicated systems have been improved as transferable gene-editing tools with efficient delivery methods for stable expression of CRISPR-Cas elements, as well as convenient gene-regulation tools with the prevention of DNA cleavage by obviating deletion or mutation of the Cas3 nuclease. We envision that type I CRISPR-Cas systems will largely expand the biotechnological toolbox for microbes with medical, environmental and industrial importance.