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通过 CRISPR-Cas9 靶向整合产生的 zebrafish UFlip 等位基因的 Cre/regulated 条件性拯救和失活。

Cre/ regulated conditional rescue and inactivation with zebrafish UFlip alleles generated by CRISPR-Cas9 targeted integration.

机构信息

Department of Genetics, Development and Cell Biology, Iowa State University, Ames, United States.

Interdepartmental Graduate Program in Genetics and Genomics, Iowa State University, Ames, United States.

出版信息

Elife. 2022 Jun 17;11:e71478. doi: 10.7554/eLife.71478.

Abstract

The ability to regulate gene activity spatially and temporally is essential to investigate cell-type-specific gene function during development and in postembryonic processes and disease models. The Cre/ system has been widely used for performing cell and tissue-specific conditional analysis of gene function in zebrafish. However, simple and efficient methods for isolation of stable, Cre/ regulated zebrafish alleles are lacking. Here, we applied our GeneWeld CRISPR-Cas9 targeted integration strategy to generate floxed alleles that provide robust conditional inactivation and rescue. A universal targeting vector, UFlip, with sites for cloning short homology arms flanking a floxed 2A-mRFP gene trap, was integrated into an intron in and and integration alleles resulted in strong mRFP expression,>99% reduction of endogenous gene expression, and recapitulated known indel loss-of-function phenotypes. Introduction of Cre led to stable inversion of the floxed cassette, loss of mRFP expression, and phenotypic rescue. and integration alleles did not cause phenotypes in combination with a loss-of-function mutation. Addition of Cre led to conditional inactivation by stable inversion of the cassette, gene trapping and mRFP expression, and the expected mutant phenotype. Neural progenitor Cre drivers were used for conditional inactivation and phenotypic rescue to showcase how this approach can be used in specific cell populations. Together these results validate a simplified approach for efficient isolation of Cre/-responsive conditional alleles in zebrafish. Our strategy provides a new toolkit for generating genetic mosaics and represents a significant advance in zebrafish genetics.

摘要

时空调节基因活性对于研究发育过程中和胚胎后过程以及疾病模型中特定细胞类型的基因功能至关重要。Cre/系统已被广泛用于在斑马鱼中进行基因功能的细胞和组织特异性条件分析。然而,缺乏简单有效的方法来分离稳定的、Cre/调节的斑马鱼等位基因。在这里,我们应用我们的 GeneWeld CRISPR-Cas9 靶向整合策略来生成 floxed 等位基因,这些等位基因提供了强大的条件失活和挽救功能。一个通用的靶向载体 UFlip,带有短同源臂克隆位点,侧翼是一个 floxed 2A-mRFP 基因陷阱,被整合到 和 以及 基因的内含子中。 和 整合等位基因导致强烈的 mRFP 表达、内源性基因表达减少>99%,并再现了已知的缺失功能表型。引入 Cre 导致 floxed 盒的稳定反转、mRFP 表达的丧失和表型挽救。 和 整合等位基因与功能丧失突变结合不会引起表型。添加 Cre 导致通过稳定反转盒、基因捕获和 mRFP 表达的条件失活,以及预期的突变表型。神经祖细胞 Cre 驱动子用于条件失活和表型挽救,以展示如何在特定细胞群体中使用这种方法。这些结果共同验证了一种在斑马鱼中高效分离 Cre/-反应性条件等位基因的简化方法。我们的策略为产生遗传嵌合体提供了一个新工具包,并代表了斑马鱼遗传学的重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8abe/9270027/cafb476b9dce/elife-71478-fig1.jpg

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