用于真菌感染的 CRISPR-Cas 系统的进展。

3区 生物学 Q2 Biochemistry, Genetics and Molecular Biology Progress in molecular biology and translational science Pub Date : 2024-01-01 Epub Date: 2024-08-21 DOI:10.1016/bs.pmbts.2024.07.006
Avinash Singh, Monisa Anwer, Juveriya Israr, Ajay Kumar
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引用次数: 0

摘要

真菌含有多种具有生物活性的次生代谢物(SMs),这些次生代谢物在农业、医药、人类健康等各个领域都有广泛的应用。负责生产次生代谢物(SMs)的基因通常会形成生物合成基因簇(BGCs)。近年来,基因组学和遗传学技术的发展极大地促进了对大量未开发基因簇(BGCs)及其相应物质(SMs)的鉴定和分析。然而,具有商业价值的次生代谢物的探索却受到各种挑战的阻碍。现代 CRISPR/Cas 技术的出现带来了真菌基因工程的范式转变,大大简化了发现新生物活性化合物的过程。本研究首先探讨了真菌生物合成基因簇(BGCs)及其与其产生的次级代谢产物(SMs)之间的相互联系。随后,简要介绍了真菌基因工程所采用的传统方法。本研究探讨了基于 CRISPR/Cas 的各种复杂方法及其在研究真菌次生代谢物 (SMs) 合成过程中的应用。本章深入分析了基于 CRISPR/Cas 的系统在应用于真菌基因工程时遇到的限制和障碍。本章还提出了未来研究的可行途径,以优化这些系统的效率。
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Advances in CRISPR-Cas systems for fungal infections.

Fungi contain a wide range of bioactive secondary metabolites (SMs) that have numerous applications in various fields, including agriculture, medicine, human health, and more. It is common for genes responsible for the production of secondary metabolites (SMs) to form biosynthetic gene clusters (BGCs). The identification and analysis of numerous unexplored gene clusters (BGCs) and their corresponding substances (SMs) has been significantly facilitated by the recent advancements in genomic and genetic technologies. Nevertheless, the exploration of secondary metabolites with commercial value is impeded by a variety of challenges. The emergence of modern CRISPR/Cas technologies has brought about a paradigm shift in fungal genetic engineering, significantly streamlining the process of discovering new bioactive compounds. This study begins with an examination of fungal biosynthetic gene clusters (BGCs) and their interconnections with the secondary metabolites (SMs) they generate. Following that, a brief summary of the conventional methods employed in fungal genetic engineering is provided. This study explores various sophisticated CRISPR/Cas-based methodologies and their utilization in examining the synthesis of secondary metabolites (SMs) in fungi. The chapter provides an in-depth analysis of the limitations and obstacles encountered in CRISPR/Cas-based systems when applied to fungal genetic engineering. It also proposes promising avenues for future research to optimize the efficiency of these systems.

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来源期刊
CiteScore
6.90
自引率
0.00%
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0
审稿时长
>12 weeks
期刊介绍: Progress in Molecular Biology and Translational Science (PMBTS) provides in-depth reviews on topics of exceptional scientific importance. If today you read an Article or Letter in Nature or a Research Article or Report in Science reporting findings of exceptional importance, you likely will find comprehensive coverage of that research area in a future PMBTS volume.
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