Zhou Wei, Yang Qiaoyun, Low Choon Bing, Karthik Balakrishna Chandrababu, Wang Yu, Ryo Akihide, Yao Shao Q, Yang Daiwen, Liou Yih-Cherng
Department of Biological Sciences, National University of Singapore, Singapore 117543, Singapore.
J Biol Chem. 2009 Sep 4;284(36):23980-8. doi: 10.1074/jbc.M109.022814. Epub 2009 Jul 7.
The cis-trans peptidylprolyl isomerase Pin1 plays a critical role in regulating a subset of phosphoproteins by catalyzing conformational changes on the phosphorylated Ser/Thr-Pro motifs. The phosphorylation-directed ubiquitination is one of the major mechanisms to regulate the abundance of p27(Kip1). In this study, we demonstrate that Pin1 catalyzes the cis-trans conformational changes of p27(Kip1) and further mediates its stability through the polyubiquitination mechanism. Our results show that the phosphorylated Thr-187-Pro motif in p27(Kip1) is a key Pin1-binding site. In addition, NMR analyses show that this phosphorylated Thr-187-Pro site undergoes conformational change catalyzed by Pin1. Moreover, in Pin1 knock-out mouse embryonic fibroblasts, p27(Kip1) has a shorter lifetime and displays a higher degree of polyubiquitination than in Pin1 wild-type mouse embryonic fibroblasts, suggesting that Pin1 plays a critical role in regulating p27(Kip1) degradation. Additionally, Pin1 dramatically reduces the interaction between p27(Kip1) and Cks1, possibly via isomerizing the cis-trans conformation of p27(Kip1). Our study thus reveals a novel regulatory mechanism for p27(Kip1) stability and sheds new light on the biological function of Pin1 as a general regulator of protein stability.
顺反肽基脯氨酰异构酶Pin1通过催化磷酸化的丝氨酸/苏氨酸-脯氨酸基序的构象变化,在调节一部分磷蛋白中发挥关键作用。磷酸化导向的泛素化是调节p27(Kip1)丰度的主要机制之一。在本研究中,我们证明Pin1催化p27(Kip1)的顺反构象变化,并通过多聚泛素化机制进一步介导其稳定性。我们的结果表明,p27(Kip1)中磷酸化的苏氨酸-187-脯氨酸基序是关键的Pin1结合位点。此外,核磁共振分析表明,这个磷酸化的苏氨酸-187-脯氨酸位点会发生由Pin1催化的构象变化。而且,在Pin1基因敲除的小鼠胚胎成纤维细胞中,p27(Kip1)的半衰期比Pin1野生型小鼠胚胎成纤维细胞中的短,并且显示出更高程度的多聚泛素化,这表明Pin1在调节p27(Kip1)降解中起关键作用。此外,Pin1可能通过使p27(Kip1)的顺反构象异构化,显著降低p27(Kip1)与Cks1之间的相互作用。因此,我们的研究揭示了一种关于p27(Kip1)稳定性的新调控机制,并为Pin1作为蛋白质稳定性的一般调节因子的生物学功能提供了新的线索。