Kawashima Toshiyuki, Bao Ying Chun, Minoshima Yukinori, Nomura Yasushi, Hatori Tomonori, Hori Tetsuya, Fukagawa Tatsuo, Fukada Toshiyuki, Takahashi Noriko, Nosaka Tetsuya, Inoue Makoto, Sato Tomohiro, Kukimoto-Niino Mutsuko, Shirouzu Mikako, Yokoyama Shigeyuki, Kitamura Toshio
Division of Cellular Therapy, Institute of Medical Science, University of Tokyo, Minato-ku, Tokyo 108-8639, Japan.
Mol Cell Biol. 2009 Apr;29(7):1796-813. doi: 10.1128/MCB.01423-08. Epub 2009 Jan 21.
In addition to their pleiotropic functions under physiological conditions, transcription factors STAT3 and STAT5 also have oncogenic activities, but how activated STATs are transported to the nucleus has not been fully understood. Here we show that an MgcRacGAP mutant lacking its nuclear localizing signal (NLS) blocks nuclear translocation of p-STATs both in vitro and in vivo. Unlike wild-type MgcRacGAP, this mutant did not promote complex formation of phosphorylated STATs (p-STATs) with importin alpha in the presence of GTP-bound Rac1, suggesting that MgcRacGAP functions as an NLS-containing nuclear chaperone. We also demonstrate that mutants of STATs lacking the MgcRacGAP binding site (the strand betab) are hardly tyrosine phosphorylated after cytokine stimulation. Intriguingly, mutants harboring small deletions in the C'-adjacent region (betab-betac loop region) of the strand betab became constitutively active with the enhanced binding to MgcRacGAP. The molecular basis of this phenomenon will be discussed, based on the computer-assisted tertiary structure models of STAT3. Thus, MgcRacGAP functions as both a critical mediator of STAT's tyrosine phosphorylation and an NLS-containing nuclear chaperone of p-STATs.
转录因子STAT3和STAT5除了在生理条件下具有多效性功能外,还具有致癌活性,但激活的信号转导和转录激活因子(STATs)如何转运到细胞核尚未完全了解。在这里,我们表明,一个缺乏核定位信号(NLS)的MgcRacGAP突变体在体外和体内均阻断了磷酸化STATs(p-STATs)的核转位。与野生型MgcRacGAP不同,在存在结合GTP的Rac1的情况下,该突变体不会促进磷酸化STATs(p-STATs)与输入蛋白α形成复合物,这表明MgcRacGAP作为一种含NLS的核伴侣发挥作用。我们还证明,缺乏MgcRacGAP结合位点(β链)的STATs突变体在细胞因子刺激后几乎不会发生酪氨酸磷酸化。有趣的是,在β链的C'相邻区域(β链-β环区域)有小缺失的突变体变得组成性激活,并增强了与MgcRacGAP的结合。将基于STAT3的计算机辅助三级结构模型讨论这种现象的分子基础。因此,MgcRacGAP既是STAT酪氨酸磷酸化的关键介质,也是p-STATs的含NLS的核伴侣。