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利用SMART对内源蛋白进行高效的体内标记,描绘出视网膜的细胞和突触组织。

Efficient in vivo labeling of endogenous proteins with SMART delineates retina cellular and synaptic organization.

作者信息

Zhao Chuanping, Cao Yan, Ibrahim Noor, Wang Yuchen, Martemyanov Kirill A

机构信息

Department of Neuroscience, The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology, University of Florida, Jupiter, FL, USA.

Skaggs Graduate School, The Scripps Research Institute, Jupiter, FL, USA.

出版信息

Nat Commun. 2025 Apr 22;16(1):3768. doi: 10.1038/s41467-025-58945-6.

Abstract

A key application of CRISPR/Cas9-based genomic editing is modification of genes to introduce engineered sequences. However, the editing flexibility is severely constrained by the requirement for targeting sites in proximity to the desired modification site, which makes many modifications intractable. Here, we develop a strategy that overcomes this key limitation to allow CRISPR-based editing at any position with high efficiency. It relies on reconstructing the targeted gene using Silently Mutate And Repair Template (SMART) where we mutate the gap sequence in the repair template to prevent its base pairing with the target DNA while maintaining the same amino acid coding. Using vertebrate retina as a neuronal model system we document the application of SMART editing for labeling endogenous proteins in vivo with high efficiency. We show that SMART editing allows us to access numerous cell types in the retina and address fundamental cell biological questions pertaining to its organization. We propose that this approach will facilitate functional genomic studies in a wide range of systems and increase the precision of corrective gene therapies.

摘要

基于CRISPR/Cas9的基因组编辑的一个关键应用是对基因进行修饰以引入工程序列。然而,编辑的灵活性受到在所需修饰位点附近的靶向位点要求的严重限制,这使得许多修饰难以处理。在这里,我们开发了一种策略,克服了这一关键限制,允许在任何位置进行基于CRISPR的高效编辑。它依赖于使用沉默突变和修复模板(SMART)重建靶向基因,我们在修复模板中突变间隙序列,以防止其与靶DNA碱基配对,同时保持相同的氨基酸编码。使用脊椎动物视网膜作为神经元模型系统,我们记录了SMART编辑在体内高效标记内源性蛋白质的应用。我们表明,SMART编辑使我们能够访问视网膜中的多种细胞类型,并解决与其组织相关的基本细胞生物学问题。我们提出,这种方法将促进广泛系统中的功能基因组研究,并提高纠正性基因治疗的精度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68fa/12015494/18da6a0c0557/41467_2025_58945_Fig1_HTML.jpg

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