Lin Cheng-Han, Li Hao-Yi, Lee Yu-Cheng, Calkins Marcus J, Lee Kuen-Haur, Yang Chia-Ning, Lu Pei-Jung
Institute of Clinical Medicine, Medical College, National Cheng Kung University, Tainan 704, Taiwan.
Graduate Institute of Cancer Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei 115, Taiwan.
Exp Biol Med (Maywood). 2015 Mar;240(3):403-8. doi: 10.1177/1535370215570829. Epub 2015 Feb 7.
Pin1 is a peptidyl-prolyl isomerase which plays a critical role in many diseases including cancer and Alzheimer's disease. The essential role of Pin1 is to affect stability, localization or function of phosphoproteins by catalyzing structural changes. Among the collection of Pin1 substrates, many have been shown to be involved in regulating cell cycle progression. The cell cycle disorder caused by dysregulation of these substrates is believed to be a common phenomenon in cancer. A number of recent studies have revealed possible functions of several important Pin1-binding cell cycle regulators. Investigating the involvement of Pin1 in the cell cycle may assist in the development of future cancer therapeutics. In this review, we summarize current knowledge regarding the network of Pin1 substrates and Pin1 regulators in cell cycle progression. In G1/S progression, cyclin D1, RB, p53, p27, and cyclin E are all well-known cell cycle regulators that are modulated by Pin1. During G2/M transition, our lab has shown that Aurora A suppresses Pin1 activity through phosphorylation at Ser16 and cooperates with hBora to modulate G2/M transition. We conclude that Pin1 may be thought of as a molecular timer which modulates cell cycle progression networks.
Pin1是一种肽基脯氨酰异构酶,在包括癌症和阿尔茨海默病在内的许多疾病中发挥关键作用。Pin1的重要作用是通过催化结构变化来影响磷酸化蛋白的稳定性、定位或功能。在Pin1的底物中,许多已被证明参与调节细胞周期进程。这些底物失调导致的细胞周期紊乱被认为是癌症中的常见现象。最近的一些研究揭示了几种重要的Pin1结合细胞周期调节因子的可能功能。研究Pin1在细胞周期中的作用可能有助于未来癌症治疗方法的开发。在这篇综述中,我们总结了目前关于Pin1底物和Pin1调节因子在细胞周期进程中的网络的知识。在G1/S期转换过程中,细胞周期蛋白D1、RB、p53、p27和细胞周期蛋白E都是受Pin1调节的著名细胞周期调节因子。在G2/M期转换过程中,我们实验室发现极光激酶A通过在Ser16位点磷酸化来抑制Pin1活性,并与hBora协同调节G2/M期转换。我们得出结论,Pin1可被视为一种调节细胞周期进程网络的分子定时器。