Kurimoto Kazuki, Yabuta Yukihiro, Ohinata Yasuhide, Shigeta Mayo, Yamanaka Kaori, Saitou Mitinori
Laboratory for Mammalian Germ Cell Biology, Center for Developmental Biology, RIKEN Kobe Institute, 2-2-3 Minatojima-Minamimachi, Chuo-ku, Kobe 650-0047, Japan.
Genes Dev. 2008 Jun 15;22(12):1617-35. doi: 10.1101/gad.1649908.
Specification of germ cell fate is fundamental in development. With a highly representative single-cell microarray and rigorous quantitative PCR analysis, we defined the genome-wide transcription dynamics that create primordial germ cells (PGCs) from the epiblast, a process that exclusively segregates them from their somatic neighbors. We also analyzed the effect of the loss of Blimp1, a key transcriptional regulator, on these dynamics. Our analysis revealed that PGC specification involves complex, yet highly ordered regulation of a large number of genes, proceeding under the strong influence of mesoderm induction but specifically avoiding developmental programs such as the epithelial-mesenchymal transition, Hox cluster activation, cell cycle progression, and DNA methyltransferase machinery. Remarkably, Blimp1 is essential for repressing nearly all the genes normally down-regulated in PGCs relative to their somatic neighbors. In contrast, it is dispensable for the activation of approximately half of the genes up-regulated in PGCs, uncovering the Blimp1-independent events for PGC specification. Notably, however, highly PGC-specific genes exhibited distinct correlations to Blimp1 in wild-type embryos, and these correlations faithfully predicted their expression impairments in Blimp1 mutants. Moreover, their expression overlaps within single cells were severely damaged without Blimp1, demonstrating that Blimp1 exerts positive influence on their concerted activation. Thus, Blimp1 is not a single initiator but a dominant coordinator of the transcriptional program for the establishment of the germ cell fate in mice.
生殖细胞命运的特化是发育过程中的基础。通过具有高度代表性的单细胞微阵列和严格的定量PCR分析,我们定义了从外胚层产生原始生殖细胞(PGC)的全基因组转录动态,这一过程将它们与体细胞邻居完全区分开来。我们还分析了关键转录调节因子Blimp1缺失对这些动态的影响。我们的分析表明,PGC特化涉及大量基因的复杂但高度有序的调控,在中胚层诱导的强烈影响下进行,但具体避免了上皮-间质转化、Hox簇激活、细胞周期进程和DNA甲基转移酶机制等发育程序。值得注意的是,Blimp1对于抑制几乎所有相对于其体细胞邻居在PGC中正常下调的基因至关重要。相比之下,它对于激活PGC中上调的大约一半基因是可有可无的,这揭示了PGC特化中不依赖Blimp1的事件。然而,值得注意的是,高度PGC特异性基因在野生型胚胎中与Blimp1表现出不同的相关性,并且这些相关性准确地预测了它们在Blimp1突变体中的表达受损情况。此外,没有Blimp1时,它们在单细胞内的表达重叠严重受损,表明Blimp1对它们的协同激活发挥了积极影响。因此,Blimp1不是单个启动子,而是小鼠生殖细胞命运建立转录程序的主要协调者。