Keys Heather R, Knouse Kristin A
Whitehead Institute for Biomedical Research, Cambridge, MA 02142, USA.
These authors contributed equally.
Cell Genom. 2022 Dec 14;2(12). doi: 10.1016/j.xgen.2022.100217. Epub 2022 Nov 15.
A complete understanding of the genetic determinants underlying mammalian physiology and disease is limited by the capacity for high-throughput genetic dissection in the living organism. Genome-wide CRISPR screening is a powerful method for uncovering the genetic regulation of cellular processes, but the need to stably deliver single guide RNAs to millions of cells has largely restricted its implementation to systems. There thus remains a need for accessible high-throughput functional genomics . Here, we establish genome-wide screening in the liver of a single mouse and use this approach to uncover regulation of hepatocyte fitness. We uncover pathways not identified in cell culture screens, underscoring the power of genetic dissection in the organism. The approach we developed is accessible, scalable, and adaptable to diverse phenotypes and applications. We have hereby established a foundation for high-throughput functional genomics in a living mammal, enabling comprehensive investigation of physiology and disease.
对哺乳动物生理学和疾病背后的遗传决定因素的全面理解受到在活生物体中进行高通量基因剖析能力的限制。全基因组CRISPR筛选是揭示细胞过程遗传调控的有力方法,但需要将单导向RNA稳定地递送至数百万个细胞,这在很大程度上限制了其在体外系统中的应用。因此,仍然需要可及的高通量功能基因组学方法。在这里,我们在单只小鼠的肝脏中建立了全基因组筛选,并使用这种方法来揭示肝细胞适应性的调控机制。我们发现了细胞培养筛选中未识别的通路,强调了在生物体中进行基因剖析的能力。我们开发的方法是可及的、可扩展的,并且适用于多种表型和应用。我们在此为活哺乳动物中的高通量功能基因组学奠定了基础,从而能够对生理学和疾病进行全面研究。