Chiou Shin-Heng, Kim-Kiselak Caroline, Risca Viviana I, Heimann Megan K, Chuang Chen-Hua, Burds Aurora A, Greenleaf William J, Jacks Tyler E, Feldser David M, Winslow Monte M
Department of Genetics, Stanford University School of Medicine, Stanford, CA 94305-5120, USA.
David H. Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Cell Rep. 2014 Jun 26;7(6):2078-86. doi: 10.1016/j.celrep.2014.05.031. Epub 2014 Jun 12.
Conditional gene deletion in mice has contributed immensely to our understanding of many biological and biomedical processes. Despite an increasing awareness of nonprotein-coding functional elements within protein-coding transcripts, current gene-targeting approaches typically involve simultaneous ablation of noncoding elements within targeted protein-coding genes. The potential for protein-coding genes to have additional noncoding functions necessitates the development of novel genetic tools capable of precisely interrogating individual functional elements. We present a strategy that couples Cre/loxP-mediated conditional gene disruption with faithful GFP reporter expression in mice in which Cre-mediated stable inversion of a splice acceptor-GFP-splice donor cassette concurrently disrupts protein production and creates a GFP fusion product. Importantly, cassette inversion maintains physiologic transcript structure, thereby ensuring proper microRNA-mediated regulation of the GFP reporter, as well as maintaining expression of nonprotein-coding elements. To test this potentially generalizable strategy, we generated and analyzed mice with this conditional knockin reporter targeted to the Hmga2 locus.
小鼠中的条件性基因缺失极大地促进了我们对许多生物学和生物医学过程的理解。尽管人们越来越意识到蛋白质编码转录本中的非蛋白质编码功能元件,但目前的基因靶向方法通常涉及同时切除靶向蛋白质编码基因内的非编码元件。蛋白质编码基因具有额外非编码功能的可能性,使得开发能够精确探究单个功能元件的新型遗传工具成为必要。我们提出了一种策略,该策略将Cre/loxP介导的条件性基因破坏与小鼠中可靠的GFP报告基因表达相结合,其中Cre介导的剪接受体-GFP-剪接供体盒的稳定倒置同时破坏蛋白质产生并产生GFP融合产物。重要的是,盒式倒置维持生理转录本结构,从而确保microRNA介导的对GFP报告基因的适当调控,并维持非蛋白质编码元件的表达。为了测试这种潜在的通用策略,我们生成并分析了将这种条件性敲入报告基因靶向Hmga2位点的小鼠。