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A Platform for Rapid Exploration of Aging and Diseases in a Naturally Short-Lived Vertebrate

机译:在自然寿命短的脊椎动物中快速探索衰老和疾病的平台

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Aging is a complex process that affects multiple organs. Modeling aging and age-related diseases in the lab is challenging because classical vertebrate models have relatively long lifespans. Here, we develop the first platform for rapid exploration of age-dependent traits and diseases in vertebrates, using the naturally short-lived African turquoise killifish. We provide an integrative genomic and genome-editing toolkit in this organism using our de-novo-assembled genome and the CRISPR/Cas9 technology. We mutate many genes encompassing the hallmarks of aging, and for a subset, we produce stable lines within 2-3 months. As a proof of principle, we show that fish deficient for the protein subunit of telomerase exhibit the fastest onset of telomere-related pathologies among vertebrates. We further demonstrate the feasibility of creating specific genetic variants. This genome-to-phenotype platform represents a unique resource for studying vertebrate aging and disease in a high-throughput manner and for investigating candidates arising from human genome-wide studies.
机译:衰老是影响多个器官的复杂过程。在实验室中模拟衰老和与年龄相关的疾病非常具有挑战性,因为经典的脊椎动物模型的寿命相对较长。在这里,我们开发了第一个平台,该平台使用自然寿命短的非洲绿松石kill鱼来快速探索脊椎动物中与年龄相关的特征和疾病。我们使用我们的新型组装基因组和CRISPR / Cas9技术,为该生物体提供了完整的基因组和基因组编辑工具包。我们突变了许多包含衰老标志的基因,对于一个子集,我们会在2-3个月内产生稳定的品系。作为原理的证明,我们表明缺乏端粒酶蛋白亚基的鱼类在脊椎动物中表现出最快的端粒相关病状发作。我们进一步证明了创建特定遗传变异的可行性。这个基因组到表型平台代表了一种独特的资源,可以以高通量的方式研究脊椎动物的衰老和疾病,并研究人类全基因组研究产生的候选基因。

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