A review: CRISPR/Cas12-mediated genome editing in fungal cells: advancements, mechanisms, and future directions in plant-fungal pathology

Chiti Agarwal
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Abstract

The CRISPR-associated protein system (CRISPR/Cas), characterized by clustered regularly interspaced short palindromic repeats, has revolutionized life science research by providing vast possibilities for altering specific DNA or RNA sequences in various organisms. The present system integrates fragments of exogenous DNA, known as spacers, into CRISPR cassettes. These cassettes are subsequently transcribed into CRISPR arrays, which are further processed to generate guide RNA (gRNA). The CRISPR arrays are genetic loci that are responsible for encoding Cas proteins. The Cas proteins are responsible for supplying the necessary enzymatic machinery to acquire new spacers that are aimed at invading elements. The development of novel genome engineering tools has been made possible by utilizing various Cas proteins, including but not limited to Cas9, Cas12, Cas13, and Cas14, which possess programmable sequence specificity. The emergence of Cas variants has spurred genetic research and advanced the utilization of the CRISPR/Cas tool to manipulate and edit nucleic acid sequences within a wide range of living organisms. This review aims to furnish operational modalities of the Cas12 protein identified thus far. Furthermore, the advantages and disadvantages of Cas12 protein are examined, along with their recent implementations in the plant fungal world.
综述:CRISPR/ cas12介导的真菌细胞基因组编辑:植物真菌病理学的进展、机制和未来方向
CRISPR相关蛋白系统(CRISPR/Cas)的特点是聚集规律间隔的短回文重复序列,通过提供改变各种生物体中特定DNA或RNA序列的巨大可能性,彻底改变了生命科学研究。目前的系统将外源性DNA片段(称为间隔片段)整合到CRISPR磁带中。这些磁带随后被转录成CRISPR阵列,这些阵列被进一步处理以产生引导RNA (gRNA)。CRISPR阵列是负责编码Cas蛋白的遗传位点。Cas蛋白负责提供必要的酶机制,以获得针对入侵元素的新间隔物。利用多种Cas蛋白,包括但不限于具有可编程序列特异性的Cas9、Cas12、Cas13和Cas14,开发新的基因组工程工具成为可能。Cas变体的出现刺激了遗传学研究,并推进了CRISPR/Cas工具在广泛生物体中操纵和编辑核酸序列的应用。这篇综述旨在提供迄今为止鉴定的Cas12蛋白的操作模式。此外,研究了Cas12蛋白的优点和缺点,以及它们最近在植物真菌世界中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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