Department of Pathology, Feinberg School of Medicine, Northwestern University, Chicago, IL 60611-3008, USA.
Mech Dev. 2012 Sep-Dec;129(9-12):193-207. doi: 10.1016/j.mod.2012.08.002. Epub 2012 Sep 7.
PIMT (also known as PIPMT/NCOA6IP/Tgs1), first isolated as a transcription coactivator PRIP (NCOA6)-interacting 96-kDa protein with RNA-binding property, possesses RNA methyltransferase activity. As a transcription coactivator binding protein, PIMT enhances the nuclear receptor transcriptional activity and its methyltransferase property is involved in the formation of the 2,2,7-trimethylguanosine cap of non-coding small RNAs, but the in vivo functions of this gene have not been fully explored. To elucidate the biological functions, we used gene targeting to generate mice with a disrupted PIMT/Tgs1 gene. Disruption of PIMT gene results in early embryonic lethality due to impairment of development around the blastocyst and uterine implantation stages. We show that PIMT is expressed in all cells of the E3.5day blastocyst in the mouse. PIMT null mutation abolished PIMT expression in all cells of the blastocyst and caused a reduction in the expression of Oct4 and Nanog transcription factor proteins in the E3.5 blastocyst resulting in the near failure to form inner cell mass (ICM). With conditional deletion of PIMT gene, mouse embryonic fibroblasts (MEFs) exhibit defective wound healing in the scratch assay and a reduction in cell proliferation due to decreased G₀/G₁ transition and G₂/M phase cell cycle arrest. We conclude that PIMT/NCOA6IP, which is expressed in all cells of the 3.5 day stage blastocyst, is indispensable for early embryonic development.
PIMT(也称为 PIPMT/NCOA6IP/Tgs1)最初作为一种转录辅激活因子 PRIP(NCOA6)相互作用的 96kDa 蛋白被分离出来,具有 RNA 甲基转移酶活性。作为一种转录辅激活因子结合蛋白,PIMT 增强了核受体的转录活性,其甲基转移酶特性参与了非编码小 RNA 的 2,2,7-三甲基鸟苷帽的形成,但该基因的体内功能尚未完全探索。为了阐明其生物学功能,我们使用基因靶向技术生成了 PIMT/Tgs1 基因缺失的小鼠。由于囊胚和子宫植入阶段发育受损,PIMT 基因的缺失导致早期胚胎致死。我们表明 PIMT 在小鼠 E3.5 天囊胚的所有细胞中表达。PIMT 缺失突变导致囊胚的所有细胞中 PIMT 表达缺失,并导致 E3.5 天囊胚中 Oct4 和 Nanog 转录因子蛋白的表达减少,导致内细胞团(ICM)几乎无法形成。用 PIMT 基因的条件缺失,小鼠胚胎成纤维细胞(MEFs)在划痕试验中表现出伤口愈合缺陷,由于 G₀/G₁ 转变和 G₂/M 期细胞周期阻滞减少,细胞增殖减少。我们得出结论,在 3.5 天阶段囊胚的所有细胞中表达的 PIMT/NCOA6IP 对于早期胚胎发育是必不可少的。