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解锁真菌潜能:CRISPR-Cas系统作为次生代谢产物发现的一种策略

Unlocking Fungal Potential: The CRISPR-Cas System as a Strategy for Secondary Metabolite Discovery.

作者信息

Leal Karla, Rojas Edwind, Madariaga David, Contreras María José, Nuñez-Montero Kattia, Barrientos Leticia, Goméz-Espinoza Olman, Iturrieta-González Isabel

机构信息

Instituto de Ciencias Aplicadas, Facultad de Ingeniería, Universidad Autónoma de Chile, Temuco 4810101, Chile.

Department of Preclinic Sciences, Medicine Faculty, Laboratory of Infectiology and Clinical Immunology, Center of Excellence in Translational Medicine, Scientific and Technological Nucleus (CEMT-BIOREN), Universidad de La Frontera, Temuco 4810296, Chile.

出版信息

J Fungi (Basel). 2024 Oct 29;10(11):748. doi: 10.3390/jof10110748.

Abstract

Natural products (NPs) are crucial for the development of novel antibiotics, anticancer agents, and immunosuppressants. To highlight the ability of fungi to produce structurally diverse NPs, this article focuses on the impact of genome mining and CRISPR-Cas9 technology in uncovering and manipulating the biosynthetic gene clusters (BGCs) responsible for NP synthesis. The CRISPR-Cas9 system, originally identified as a bacterial adaptive immune mechanism, has been adapted for precise genome editing in fungi, enabling targeted modifications, such as gene deletions, insertions, and transcription modulation, without altering the genomic sequence. This review elaborates on various CRISPR-Cas9 systems used in fungi, notably the type II Cas9 system, and explores advancements in different Cas proteins for fungal genome editing. This review discusses the methodologies employed in CRISPR-Cas9 genome editing of fungi, including guide RNA design, delivery methods, and verification of edited strains. The application of CRISPR-Cas9 has led to enhanced production of secondary metabolites in filamentous fungi, showcasing the potential of this system in biotechnology, medical mycology, and plant pathology. Moreover, this article emphasizes the integration of multi-omics data (genomics, transcriptomics, proteomics, and metabolomics) to validate CRISPR-Cas9 editing effects in fungi. This comprehensive approach aids in understanding molecular changes, identifying off-target effects, and optimizing the editing protocols. Statistical and machine learning techniques are also crucial for analyzing multi-omics data, enabling the development of predictive models and identification of key molecular pathways affected by CRISPR-Cas9 editing. In conclusion, CRISPR-Cas9 technology is a powerful tool for exploring fungal NPs with the potential to accelerate the discovery of novel bioactive compounds. The integration of CRISPR-Cas9 with multi-omics approaches significantly enhances our ability to understand and manipulate fungal genomes for the production of valuable secondary metabolites and for promising new applications in medicine and industry.

摘要

天然产物(NPs)对于新型抗生素、抗癌药物和免疫抑制剂的开发至关重要。为了突出真菌产生结构多样的NPs的能力,本文重点探讨了基因组挖掘和CRISPR-Cas9技术在发现和操纵负责NP合成的生物合成基因簇(BGCs)方面的影响。CRISPR-Cas9系统最初被鉴定为一种细菌适应性免疫机制,现已被应用于真菌的精确基因组编辑,能够进行靶向修饰,如基因缺失、插入和转录调控,而不会改变基因组序列。本综述详细阐述了在真菌中使用的各种CRISPR-Cas9系统,特别是II型Cas9系统,并探讨了不同Cas蛋白在真菌基因组编辑方面的进展。本综述讨论了真菌CRISPR-Cas9基因组编辑中采用的方法,包括向导RNA设计、递送方法和编辑菌株的验证。CRISPR-Cas9的应用提高了丝状真菌中次生代谢产物的产量,展示了该系统在生物技术、医学真菌学和植物病理学中的潜力。此外,本文强调了多组学数据(基因组学、转录组学、蛋白质组学和代谢组学)的整合,以验证真菌中CRISPR-Cas9的编辑效果。这种综合方法有助于理解分子变化、识别脱靶效应并优化编辑方案。统计和机器学习技术对于分析多组学数据也至关重要,能够开发预测模型并识别受CRISPR-Cas9编辑影响的关键分子途径。总之,CRISPR-Cas9技术是探索真菌NPs的有力工具,有可能加速新型生物活性化合物的发现。CRISPR-Cas9与多组学方法的整合显著增强了我们理解和操纵真菌基因组以生产有价值的次生代谢产物以及在医学和工业中实现有前景的新应用的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/caa3/11595728/2749080ccaa9/jof-10-00748-g001.jpg

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