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在……中使用腺嘌呤碱基编辑和NG-PAM Cas9产生可遗传的A到G转变

Generation of Inheritable A-to-G Transitions Using Adenine Base Editing and NG-PAM Cas9 in .

作者信息

Tan Yi Yun, Liew Yin Yin, Lee Rachelle R Q, Castel Baptiste, Chan Nga Man, Wan Wei-Lin, Zhang Yizhong, Hu Donghui, Chan Persis, Kim Sang-Tae, Chae Eunyoung

机构信息

Department of Biological Sciences, National University of Singapore, 117558, Singapore.

Department of Medical & Biological Sciences, The Catholic University of Korea, Bucheon 14662, Republic of Korea.

出版信息

Mol Plant Microbe Interact. 2025 Feb;38(1):30-42. doi: 10.1094/MPMI-10-24-0127-TA. Epub 2025 Feb 25.

DOI:10.1094/MPMI-10-24-0127-TA
PMID:39585742
Abstract

Towards precise genome editing, base editors have been developed by fusing catalytically compromised Cas9 with deaminase components, mediating C-to-T (cytosine base editors) or A-to-G (adenine base editors) transition. We developed a set of vectors consisting of a 5'-NG-3' PAM-recognizing variant of SpCas9 with adenosine deaminases TadA7.10 or TadA8e. Using a phenotype-based screen in targeting multiple intron splice sites, we achieved up to 81% somatic A-to-G editing in primary transformants at a splice acceptor site with NGG PAM, while 35% was achieved for the same target adenine with NGA PAM. Among tested vectors, pECNUS4 (Addgene #184887), carrying TadA8e, showed the highest adenine base editor (ABE) efficiency. With pECNUS4, we recreated a naturally occurring allele of () in two generations, transgene-free, for NGC PAM. We also simultaneously base-edited four redundant homologs, encoding nucleotide-binding leucine-rich repeat (NLR) proteins, using a single gRNA with NGA PAM targeting the conserved yet functionally crucial P-loop motif of NLR proteins. We found fixation of A-to-G in three NLR genes for all three possible adenine sites within base-editing window 3-9, as the edited genes segregate in T. Multigene targeting succeeded in rescuing the previously reported autoimmune phenotype in two generations. Mediating desired ABE on seven NLR genes simultaneously was successful as well; above 77% editing was achieved in six of the seven possible targets in a T plant, with the remaining having a moderately high (32%) editing. ABE application to specifically inactivate functional motifs is anticipated to expedite the discovery of novel roles for proteins. [Formula: see text] Copyright © 2025 The Author(s). This is an open access article distributed under the CC BY 4.0 International license.

摘要

为了实现精确的基因组编辑,人们通过将催化失活的Cas9与脱氨酶组件融合,开发出了碱基编辑器,介导C到T(胞嘧啶碱基编辑器)或A到G(腺嘌呤碱基编辑器)的转变。我们开发了一组载体,其包含SpCas9的5'-NG-3' PAM识别变体与腺苷脱氨酶TadA7.10或TadA8e。通过在多个内含子剪接位点进行基于表型的筛选,我们在具有NGG PAM的剪接受体位点的初级转化体中实现了高达81%的体细胞A到G编辑,而对于具有NGA PAM的相同目标腺嘌呤,这一比例为35%。在测试的载体中,携带TadA8e的pECNUS4(Addgene #184887)显示出最高的腺嘌呤碱基编辑器(ABE)效率。使用pECNUS4,我们在两代内无转基因地重建了()的一个天然存在的等位基因,用于NGC PAM。我们还使用具有NGA PAM的单个gRNA靶向NLR蛋白保守但功能关键的P环基序,同时对四个冗余的同源物进行碱基编辑,这些同源物编码核苷酸结合富含亮氨酸重复序列(NLR)蛋白。我们发现,在碱基编辑窗口3 - 9内的所有三个可能的腺嘌呤位点上,三个NLR基因中的A到G固定,因为编辑后的基因在T中分离。多基因靶向成功地在两代内挽救了先前报道的自身免疫表型。同时在七个NLR基因上介导所需的ABE也取得了成功;在一个T植物的七个可能目标中的六个中实现了超过77%的编辑,其余的具有中等高度(32%)的编辑。预计将ABE应用于特异性失活功能基序将加速发现蛋白质的新作用。[公式:见正文] 版权所有© 2025作者。这是一篇根据知识共享署名4.0国际许可协议分发的开放获取文章。

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