Angus Steven P, Solomon David A, Kuschel Lioba, Hennigan Robert F, Knudsen Erik S
Department of Cell Biology, Vontz Center for Molecular Studies, University of Cincinnati College of Medicine, Cincinnati, OH 45267-0521, USA.
Mol Cell Biol. 2003 Nov;23(22):8172-88. doi: 10.1128/MCB.23.22.8172-8188.2003.
The retinoblastoma tumor suppressor, RB, assembles multiprotein complexes to mediate cell cycle inhibition. Although many RB binding partners have been suggested to underlie these functions, the validity of these interactions on the behavior of RB complexes in living cells has not been investigated. Here, we studied the dynamic behavior of RB by using green fluorescent protein-RB fusion proteins. Although these proteins were universally nuclear, phosphorylation or oncoprotein binding mediated their active exclusion from the nucleolus. In vivo imaging approaches revealed that RB exists in dynamic equilibrium between a highly mobile and a slower diffusing species, and genetic lesions associated with tumorigenesis increased the fraction of RB in a highly mobile state. The RB complexes dictating cell cycle arrest were surprisingly dynamic and harbored a relatively short residence time on chromatin. In contrast, this rapid exchange was attenuated in cells that are hypersensitive to RB, suggesting that responsiveness may inversely correlate with mobility. The stability of RB dynamics within the cell was additionally modified by the presence and function of critical corepressors. Last, the RB-assembled complexes present in living cells were primarily associated with E2F binding sites in chromatin. In contrast to RB, E2F1 consistently maintained a stable association with E2F sites regardless of cell type. Together, these results elucidate the kinetic framework of RB tumor suppressor action in transcriptional repression and cell cycle regulation.
视网膜母细胞瘤肿瘤抑制因子RB组装多蛋白复合物以介导细胞周期抑制。尽管已提出许多RB结合伴侣是这些功能的基础,但尚未研究这些相互作用对活细胞中RB复合物行为的有效性。在这里,我们通过使用绿色荧光蛋白-RB融合蛋白研究了RB的动态行为。尽管这些蛋白普遍存在于细胞核中,但磷酸化或癌蛋白结合介导它们从核仁中被主动排除。体内成像方法显示,RB存在于高迁移率和低扩散率物种之间的动态平衡中,与肿瘤发生相关的基因损伤增加了处于高迁移率状态的RB比例。决定细胞周期停滞的RB复合物出人意料地具有动态性,并且在染色质上的停留时间相对较短。相比之下,这种快速交换在对RB高度敏感的细胞中减弱,这表明反应性可能与迁移率呈负相关。细胞内RB动态的稳定性还受到关键共抑制因子的存在和功能的影响。最后,活细胞中存在的RB组装复合物主要与染色质中的E2F结合位点相关。与RB不同,无论细胞类型如何,E2F1始终与E2F位点保持稳定的结合。总之,这些结果阐明了RB肿瘤抑制因子在转录抑制和细胞周期调控中的动力学框架。