小鼠胚胎成纤维细胞永生化的高效方法

Srisathya Srinivasan, Hsin-Yi Henry Ho
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引用次数: 0

摘要

源自转基因小鼠的小鼠胚胎成纤维细胞(MEF)是研究基因功能和调控的宝贵资源。MEF 系统还可与拯救研究相结合,用于鉴定突变基因/蛋白(如致病变体)的功能。然而,原代 MEF 在分离和传代后很快就会衰老,因此很难进行长期的遗传操作。以前描述的 MEF 永生化方法往往效率低下或改变细胞的生理特性。在这里,我们介绍了一种通过 CRISPR 介导的 Tp53 基因缺失实现 MEF 永生化的优化方案。这种方法效率很高,能在 14 天内稳定生成永生化的 MEFs 或 iMEFs。重要的是,iMEFs 与亲代细胞群非常相似,而且可以克隆和扩增单个 iMEFs,用于后续的遗传操作和表征。我们设想可以采用这种方案对其他小鼠原代细胞类型进行永生化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient method for immortalizing mouse embryonic fibroblasts
Mouse embryonic fibroblasts (MEFs) derived from genetically modified mice are a valuable resource for studying gene function and regulation. The MEF system can also be combined with rescue studies to characterize the function of mutant genes/proteins, such as disease-causing variants. However, primary MEFs undergo senescence soon after isolation and passaging, making long-term genetic manipulations difficult. Previously described methods for MEF immortalization are often inefficient or alter the physiological properties of the cells. Here, we describe an optimized protocol for immortalizing MEFs via CRISPR-mediated deletion of the Tp53 gene. This method is highly efficient and consistently generates immortalized MEFs, or iMEFs, within 14 days. Importantly, iMEFs closely resemble the parent cell populations, and individual iMEFs can be cloned and expanded for subsequent genetic manipulation and characterization. We envision that this protocol can be adopted to immortalize other mouse primary cell types.
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