Engineering IscB to develop highly efficient miniature editing tools in mammalian cells and embryos

IF 14.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
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引用次数: 0

Abstract

The IscB proteins, as the ancestors of Cas9 endonuclease, hold great promise due to their small size and potential for diverse genome editing. However, their activity in mammalian cells is unsatisfactory. By introducing three residual substitutions in IscB, we observed an average 7.5-fold increase in activity. Through fusing a sequence-non-specific DNA-binding protein domain, the eIscB-D variant achieved higher editing efficiency, with a maximum of 91.3%. Moreover, engineered ωRNA was generated with a 20% reduction in length and slightly increased efficiency. The engineered eIscB-D/eωRNA system showed an average 20.2-fold increase in activity compared with the original IscB. Furthermore, we successfully adapted eIscB-D for highly efficient cytosine and adenine base editing. Notably, eIscB-D is highly active in mouse cell lines and embryos, enabling the efficient generation of disease models through mRNA/ωRNA injection. Our study suggests that these miniature genome-editing tools have great potential for diverse applications.

Abstract Image

利用 IscB 工程开发哺乳动物细胞和胚胎中的高效微型编辑工具
作为 Cas9 内切酶的祖先,IscB 蛋白因其体积小和具有进行多种基因组编辑的潜力而大有可为。然而,它们在哺乳动物细胞中的活性并不令人满意。通过在 IscB 中引入三个残余置换,我们观察到其活性平均提高了 7.5 倍。通过融合一个序列非特异性DNA结合蛋白结构域,eIscB-D变体获得了更高的编辑效率,最高可达91.3%。此外,生成的工程ωRNA长度减少了20%,效率略有提高。与原始 IscB 相比,工程 eIscB-D/eωRNA 系统的活性平均提高了 20.2 倍。此外,我们还成功地将 eIscB-D 用于高效的胞嘧啶和腺嘌呤碱基编辑。值得注意的是,eIscB-D 在小鼠细胞系和胚胎中具有很高的活性,可以通过注射 mRNA/ωRNA 高效地生成疾病模型。我们的研究表明,这些微型基因组编辑工具在多种应用领域具有巨大潜力。
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来源期刊
Molecular Cell
Molecular Cell 生物-生化与分子生物学
CiteScore
26.00
自引率
3.80%
发文量
389
审稿时长
1 months
期刊介绍: Molecular Cell is a companion to Cell, the leading journal of biology and the highest-impact journal in the world. Launched in December 1997 and published monthly. Molecular Cell is dedicated to publishing cutting-edge research in molecular biology, focusing on fundamental cellular processes. The journal encompasses a wide range of topics, including DNA replication, recombination, and repair; Chromatin biology and genome organization; Transcription; RNA processing and decay; Non-coding RNA function; Translation; Protein folding, modification, and quality control; Signal transduction pathways; Cell cycle and checkpoints; Cell death; Autophagy; Metabolism.
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