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Updated summary of genome editing technology in human cultured cells linked to human genetics studies

机译:与人类遗传研究相关的人类培养细胞基因组编辑技术的更新概述

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Current deep-sequencing technology provides a mass of nucleotide variations associated with human genetic disorders to accelerate the identification of causative mutations. To understand the etiology of genetic disorders, reverse genetics in human cultured cells is a useful approach for modeling a disease in vitro. However, gene targeting in human cultured cells is difficult because of their low activity of homologous recombination. Engineered endonucleases enable enhancement of the local activation of DNA repair pathways at the human genome target site to rewrite the desired sequence, thereby efficiently generating disease-modeling cultured cell clones. These edited cells can be used to explore the molecular functions of a causative gene product to uncover the etiological mechanisms. The correction of mutations in patient cells using genome editing technology could contribute to the development of unique gene therapies. This technology can also be applied to screening causative mutations. Rare genetic disorders and non-exonic mutation-caused diseases remain frontier in the field of human genetics as it is difficult to validate whether the extracted nucleotide variants are mutation or polymorphism. When isogenic human cultured cells with a candidate variant reproduce the pathogenic phenotypes, it is confirmed that the variant is a causative mutation.
机译:目前的深序技术提供与人类遗传疾病相关的质量核苷酸变化,以加速造成致病性突变的鉴定。为了了解遗传疾病的病因,人类培养细胞中的逆向遗传是一种在体外建模疾病的有用方法。然而,由于它们的同源重组的低活性,因此难以靶向人类培养细胞的基因。工程内切核酸酶使得能够提高人类基因组靶位点的DNA修复途径的局部激活以改写所需的序列,从而有效地产生疾病建模的培养细胞克隆。这些编辑的细胞可用于探讨致病基因产物的分子功能以发现病因机制。使用基因组编辑技术校正患者细胞中的突变可能有助于开发独特的基因疗法。该技术也可以应用于筛选致病性突变。罕见的遗传紊乱和非偏见突变引起的疾病在人类遗传领域中保持前沿,因为难以验证提取的核苷酸变体是否是突变或多态性。当具有候选变体的中源人类培养细胞再现致病表型时,证实变体是一种致病性突变。

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