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Three Observations That Have Changed Our Understanding of Cyclin D1 and p27Kip1 in Cell Cycle Control

机译:改变我们对细胞周期控制中细胞周期蛋白D1和p27Kip1的理解的三个观察

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摘要

Our understanding of cell cycle control has been based largely upon studies of synchronized cultures, often focused upon the early stages of the cell cycle following stimulation of quiescent cultures. These studies showed that cyclin D1 and p27Kip1 (p27) each respond to the growth environment of the cell and together control entry into the cell cycle. In contrast, all cell cycle phases were considered in these studies of actively growing cultures, including events leading to withdrawal from the cell cycle. This approach relies upon the techniques of microinjection, quantitative image analysis, and time-lapse microscopy. The results provide critical new detail to our understanding of the roles of cyclin D1 and p27 in cell cycle regulation. Three critical observations resulting from this work will be described here to demonstrate that 1) cyclin D1 levels oscillate through the normal cell cycle, 2) checkpoint kinases are able to suppress cyclin D1 during S phase, and 3) the level of p27 is determined by a dynamic interaction between cyclin D1 and p27 so as to determine the rate of cell cycle progression. Based upon these observations, a model of cell cycle control is presented in which ras activity stimulates cyclin D1 during G2 phase, resulting in commitment of the cell to continued cell cycle progression. During G1 phase, ras activity suppresses the level of p27 protein, most of which is bound to cyclin D1, resulting in regulation of the rate of proliferation. This model predicted the involvement of checkpoint kinases in regulating cyclin D1 and the role of checkpoint kinases in the protection of neural cells against reactive oxygen. The substantiation of these 2 predictions serves as general validation of the model.
机译:我们对细胞周期控制的理解主要基于同步培养的研究,通常集中在刺激静止培养后细胞周期的早期。这些研究表明,细胞周期蛋白D1和p27 Kip1 (p27)分别对细胞的生长环境有反应,并共同控制细胞周期的进入。相反,在这些关于活跃生长培养物的研究中考虑了所有细胞周期阶段,包括导致退出细胞周期的事件。这种方法依赖于显微注射,定量图像分析和延时显微镜的技术。结果为我们了解细胞周期蛋白D1和p27在细胞周期调控中的作用提供了至关重要的新细节。本文将对这项工作产生的三个重要观察结果进行描述,以证明1)细胞周期蛋白D1的水平在正常细胞周期中振荡; 2)检查点激酶能够在S期抑制细胞周期蛋白D1; 3)p27的水平取决于细胞周期蛋白D1和p27之间的动态相互作用,从而确定细胞周期进程的速率。基于这些观察结果,提出了一种细胞周期控制模型,其中ras活性在G2期刺激了细胞周期蛋白D1,导致细胞致力于持续的细胞周期进程。在G1期,ras活性会抑制p27蛋白的水平,其中大多数蛋白与细胞周期蛋白D1结合,从而调节增殖速率。该模型预测了检查点激酶在调节细胞周期蛋白D1中的作用以及检查点激酶在保护神经细胞抵抗活性氧中的作用。这两个预测的依据可作为模型的一般验证。

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