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Mutation discovery in the mouse using genetically guided array capture and resequencing

机译:使用遗传指导的阵列捕获和重测序在小鼠中发现突变

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摘要

Forward genetics (phenotype-driven approaches) remain the primary source for allelic variants in the mouse. Unfortunately, the gap between observable phenotype and causative genotype limits the widespread use of spontaneous and induced mouse mutants. As alternatives to traditional positional cloning and mutation detection approaches, sequence capture and next-generation sequencing technologies can be used to rapidly sequence subsets of the genome. Application of these technologies to mutation detection efforts in the mouse has the potential to significantly reduce the time and resources required for mutation identification by abrogating the need for high-resolution genetic mapping, long-range PCR, and sequencing of individual PCR amplimers. As proof of principle, we used array-based sequence capture and pyrosequencing to sequence an allelic series from the classically defined Kit locus (~200 kb) from each of five noncomplementing Kit mutants (one known allele and four unknown alleles) and have successfully identified and validated a nonsynonymous coding mutation for each allele. These data represent the first documentation and validation that these new technologies can be used to efficiently discover causative mutations. Importantly, these data also provide a specific methodological foundation for the development of large-scale mutation detection efforts in the laboratory mouse.
机译:正向遗传学(表型驱动的方法)仍然是小鼠等位基因变异的主要来源。不幸的是,可观察的表型和致病基因型之间的差距限制了自发和诱导小鼠突变体的广泛使用。作为传统位置克隆和突变检测方法的替代方法,序列捕获和下一代测序技术可用于快速测序基因组的子集。通过取消对高分辨率基因作图,长距离PCR和单个PCR扩增子测序的需求,将这些技术应用于小鼠中的突变检测工作有可能显着减少突变鉴定所需的时间和资源。作为原理上的证明,我们使用了基于阵列的序列捕获和焦磷酸测序对来自五个非互补Kit突变体(一个已知等位基因和四个未知等位基因)中每个的经典定义的Kit位点(〜200 kb)中的等位基因系列进行测序,并成功鉴定出并验证了每个等位基因的非同义编码突变。这些数据代表了首次记录和验证,这些新技术可用于有效发现致病突变。重要的是,这些数据也为实验室小鼠大规模突变检测工作的发展提供了特定的方法学基础。

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