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Leapfrogging: primordial germ cell transplantation permits recovery of CRISPR/Cas9-induced mutations in essential genes

机译:跨越式发展:原始生殖细胞移植可恢复CRISPR / Cas9诱导的必需基因突变

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摘要

CRISPR/Cas9 genome editing is revolutionizing genetic loss-of-function analysis but technical limitations remain that slow progress when creating mutant lines. First, in conventional genetic breeding schemes, mosaic founder animals carrying mutant alleles are outcrossed to produce F1 heterozygotes. Phenotypic analysis occurs in the F2 generation following F1 intercrosses. Thus, mutant analyses will require multi-generational studies. Second, when targeting essential genes, efficient mutagenesis of founders is often lethal, preventing the acquisition of mature animals. Reducing mutagenesis levels may improve founder survival, but results in lower, more variable rates of germline transmission. Therefore, an efficient approach to study lethal mutations would be useful. To overcome these shortfalls, we introduce ‘leapfrogging’, a method combining efficient CRISPR mutagenesis with transplantation of mutated primordial germ cells into a wild-type host. Tested using Xenopus tropicalis, we show that founders containing transplants transmit mutant alleles with high efficiency. F1 offspring from intercrosses between F0 animals that carry embryonic lethal alleles recapitulate loss-of-function phenotypes, circumventing an entire generation of breeding. We anticipate that leapfrogging will be transferable to other species.
机译:CRISPR / Cas9基因组编辑正在彻底改变基因功能丧失分析,但在创建突变体品系时,技术局限性仍然阻碍了进展。首先,在常规的遗传育种方案中,携带突变等位基因的镶嵌创始人动物异型杂交以产生F1杂合子。表型分析发生在F1杂交后的F2代中。因此,突变分析将需要多代研究。第二,当靶向必需基因时,创始人的有效诱变通常是致命的,阻止了成熟动物的获得。降低诱变水平可以提高创始人的生存率,但会导致种系传播的速率降低,变化幅度更大。因此,研究致命突变的有效方法将是有用的。为了克服这些不足,我们引入了“ leapfrogging”,一种将有效的CRISPR诱变与突变的原始生殖细胞移植到野生型宿主中相结合的方法。使用热带非洲爪蟾进行测试,我们显示包含移植的创建者可以高效地传播突变等位基因。携带胚胎致死等位基因的F0动物之间的杂交产生的F1后代概括了功能丧失的表型,从而规避了整个一代的繁殖。我们预计,跨越式将可以转移到其他物种。

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