使用抗CRISPR-Cas12a 系统的多功能植物基因组工程。

IF 8 2区 生物学 Q1 BIOLOGY
Science China Life Sciences Pub Date : 2024-12-01 Epub Date: 2024-08-15 DOI:10.1007/s11427-024-2704-7
Yao He, Shishi Liu, Long Chen, Dongkai Pu, Zhaohui Zhong, Tang Xu, Qiurong Ren, Chuan Dong, Yawei Wang, Danning Wang, Xuelian Zheng, Fengbiao Guo, Tao Zhang, Yiping Qi, Yong Zhang
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引用次数: 0

摘要

CRISPR-Cas12a 基因组工程系统已广泛应用于植物研究和作物育种。迄今为止,抗CRISPR-Cas12a系统在植物中的性能和使用尚未完全确定。在此,我们进行了硅学分析,以确定Cas12a的推定抗CRISPR系统。这些推测的抗CRISPR蛋白与已知的抗CRISPR蛋白一起,被评估其在体内和植物体内抑制Cas12a裂解活性的能力。在所有测试过的抗CRISPR蛋白中,AcrVA1对大肠杆菌中的Mb2Cas12a和LbCas12a有很强的抑制作用。进一步的测试表明,AcrVA1 能抑制水稻原生质体和稳定转基因品系中 LbCas12a 介导的基因组编辑。令人印象深刻的是,全基因组测序显示,共同表达 AcrVA1 可减轻 CRISPR-LbCas12a 的脱靶效应。此外,表达 AcrVA1 的转基因植物对 LbCas12a 介导的基因组编辑表现出不同程度的抑制作用,这是一种微调基因组编辑效率的新方法。通过控制 AcrVA1 的时间和空间表达,我们证明可以在植物中实现诱导性和组织特异性基因组编辑。此外,我们还证明了 AcrVA1 还能抑制基于 LbCas12a 的 CRISPR 激活(CRISPRa),基于这一原理,我们构建了逻辑门来开启和关闭植物细胞中的目标基因。总之,我们在植物中建立了一个高效的抗 CRISPR-Cas12a 系统,并证明了它在减轻脱靶效应、微调基因组编辑效率、实现基因组编辑的时空控制以及生成控制植物细胞中靶基因表达的合成逻辑门等方面的广泛应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Versatile plant genome engineering using anti-CRISPR-Cas12a systems.

CRISPR-Cas12a genome engineering systems have been widely used in plant research and crop breeding. To date, the performance and use of anti-CRISPR-Cas12a systems have not been fully established in plants. Here, we conduct in silico analysis to identify putative anti-CRISPR systems for Cas12a. These putative anti-CRISPR proteins, along with known anti-CRISPR proteins, are assessed for their ability to inhibit Cas12a cleavage activity in vivo and in planta. Among all anti-CRISPR proteins tested, AcrVA1 shows robust inhibition of Mb2Cas12a and LbCas12a in E. coli. Further tests show that AcrVA1 inhibits LbCas12a mediated genome editing in rice protoplasts and stable transgenic lines. Impressively, co-expression of AcrVA1 mitigates off-target effects by CRISPR-LbCas12a, as revealed by whole genome sequencing. In addition, transgenic plants expressing AcrVA1 exhibit different levels of inhibition to LbCas12a mediated genome editing, representing a novel way of fine-tuning genome editing efficiency. By controlling temporal and spatial expression of AcrVA1, we show that inducible and tissue specific genome editing can be achieved in plants. Furthermore, we demonstrate that AcrVA1 also inhibits LbCas12a-based CRISPR activation (CRISPRa) and based on this principle we build logic gates to turn on and off target genes in plant cells. Together, we have established an efficient anti-CRISPR-Cas12a system in plants and demonstrate its versatile applications in mitigating off-target effects, fine-tuning genome editing efficiency, achieving spatial-temporal control of genome editing, and generating synthetic logic gates for controlling target gene expression in plant cells.

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来源期刊
CiteScore
15.10
自引率
8.80%
发文量
2907
审稿时长
3.2 months
期刊介绍: Science China Life Sciences is a scholarly journal co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and it is published by Science China Press. The journal is dedicated to publishing high-quality, original research findings in both basic and applied life science research.
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