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Maximizing CRISPR/Cas9 phenotype penetrance applying predictive modeling of editing outcomes in Xenopus and zebrafish embryos

机译:最大化CRISPR / CAS9表型PENETRANCE应用XENOPUS和斑马鱼胚胎编辑结果的预测建模

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摘要

CRISPR/Cas9 genome editing has revolutionized functional genomics in vertebrates. However, CRISPR/Cas9 edited F0 animals too often demonstrate variable phenotypic penetrance due to the mosaic nature of editing outcomes after double strand break (DSB) repair. Even with high efficiency levels of genome editing, phenotypes may be obscured by proportional presence of in-frame mutations that still produce functional protein. Recently, studies in cell culture systems have shown that the nature of CRISPR/Cas9-mediated mutations can be dependent on local sequence context and can be predicted by computational methods. Here, we demonstrate that similar approaches can be used to forecast CRISPR/Cas9 gene editing outcomes in Xenopus tropicalis, Xenopus laevis, and zebrafish. We show that a publicly available neural network previously trained in mouse embryonic stem cell cultures (InDelphi-mESC) is able to accurately predict CRISPR/Cas9 gene editing outcomes in early vertebrate embryos. Our observations can have direct implications for experiment design, allowing the selection of guide RNAs with predicted repair outcome signatures enriched towards frameshift mutations, allowing maximization of CRISPR/Cas9 phenotype penetrance in the F0 generation.
机译:CRISPR / CAS9基因组编辑在脊椎动物中彻底改变了功能基因组学。然而,由于在双链断裂(DSB)修复后编辑结果的马赛克性质,Cr Clpr / Cas9编辑的F0动物通常常常展示可变表型渗透。即使具有高效水平的基因组编辑,表型也可以通过仍然产生官能蛋白的框架内突变的比例存在来模糊。最近,细胞培养系统的研究表明,CRISPR / CAS9介导的突变的性质可以取决于局部序列背景,并且可以通过计算方法预测。在这里,我们证明了类似的方法可用于预测Xenopus Tropicalis,Xenopus Laevis和斑马鱼中的CRISPR / CAS9基因编辑结果。我们表明,先前在小鼠胚胎干细胞培养物(Indelphi-MESC)中培训的公开的神经网络能够准确地预测早期脊椎动物胚胎中的Crispr / Cas9基因编辑结果。我们的观察可能对实验设计具有直接影响,允许选择具有富集帧突变的预测修复结果签名的导向RNA,从而最大化F0代中的CRAP / CAS9表型渗透。

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