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Modeling sporadic loss of heterozygosity in mice by using mosaic analysis with double markers (MADM)

机译:通过使用带有双标记(MADM)的镶嵌分析对小鼠的杂合性偶发性缺失进行建模

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The initiation and progression of many human cancers involve either somatic activation of protooncogenes or inactivation of tumor-suppressor genes (TSGs) in sporadic cells. Although sporadic gain-of-function of protooncogenes has been successfully modeled in mice [e.g., Johnson L, Mercer K, Greenbaum D, Branson RT, Crowley D, Tuveson DA, Jacks T (2001) Nature 410:1111-1116], generating a similar degree of sparseness of TSG loss-of-function remains a challenge. Here, we use mosaic analysis with double markers (MADM) to achieve TSG inactivation and concurrent labeling in sporadic somatic cells of mice, closely mimicking loss of heterozygosity as occurs in human cancers. As proof of principle, we studied the consequence of sporadic loss of p27kip1, a cyclin-dependent kinase inhibitor. MADM-mediated loss of p27kip1 results in mutant cell expansion markedly greater than that observed in conventional p27kip1 knockouts. Moreover, the direct comparison of WT and mutant cells at single-cell resolution afforded by MADM reveals that p27kip1 regulates organ size in vivo by cell-autonomous control of cell cycle exit timing. These studies establish MADM as a high-resolution method for modeling sporadic loss of heterozygosity in mice, providing insights into TSG function.
机译:许多人类癌症的发生和发展涉及散发细胞中原癌基因的体细胞激活或肿瘤抑制基因(TSG)的失活。尽管已经成功地在小鼠中模拟了原癌基因的零星功能获得[例如,Johnson L,Mercer K,Greenbaum D,Branson RT,Crowley D,Tuveson DA,Jacks T(2001)Nature 410:1111-1116),但是TSG功能丧失的相似程度的稀疏性仍然是一个挑战。在这里,我们使用带有双重标记(MADM)的镶嵌分析来实现TSG灭活并在小鼠散发的体细胞中同时标记,密切模拟人类癌症中发生的杂合性丧失。作为原理证明,我们研究了细胞周期蛋白依赖性激酶抑制剂p27kip1偶发丢失的后果。 MADM介导的p27kip1缺失导致突变细胞扩增明显大于常规p27kip1敲除中观察到的突变。此外,由MADM提供的WT和突变细胞在单细胞分辨率下的直接比较揭示了p27kip1通过细胞周期退出时机的细胞自主控制来调节体内器官大小。这些研究将MADM建立为一种高分辨率方法,用于模拟小鼠中杂合性偶发性缺失,为TSG功能提供了见识。

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