Bedin Monique, Catelli Maria-Grazia, Cabanié Lucien, Gaben Anne-Marie, Mester Jan
INSERM U893, UPMC-Paris 6, Paris, France.
Biochem Pharmacol. 2009 Jan 15;77(2):151-8. doi: 10.1016/j.bcp.2008.09.038. Epub 2008 Oct 14.
Cyclin E is the Cdk2-regulatory subunit required for the initiation of DNA replication at the G1/S transition. It accumulates in late G1 phase and gets rapidly degraded by the ubiquitin/proteasome pathway during S phase. The degradation of cyclin E is a consequence of its phosphorylation and subsequent isomerization by the peptidyl-prolyl isomerase Pin1. We show that in the colon cancer cells HT-29 the inhibition of the chaperone function of Hsp90 by geldanamycin (GA) enhances the ubiquitinylation of cyclin E and triggers active degradation via the proteasome pathway. As Hsp90 forms multiprotein complexes with and regulates the function and cell contents of numerous signaling proteins, this observation suggests a direct interaction between Hsp90 and cyclin E. However, experiments using cell lysate fractionation did not reveal the presence of complexes containing both Hsp90 and cyclin E. Coupled transcription/translation experiments also failed to detect the formation of complexes between newly synthesized cyclin E and Hsp90. We conclude that Hsp90 can regulate the degradation of cellular proteins without binding to them, by an indirect mechanism. This conclusion postulates a new category of proteins that are affected by the inactivation of Hsp90. Our observations do not support the possible involvement of a PPIase in this indirect mechanism. Besides, we did not observe active geldanamycin-dependent degradation of cyclin E in the prostate cancer-derived cell line DU-145, indicating that the Hsp90-dependent stabilization of cyclin E requires specific regulatory mechanism which may be lost in certain types of cancer cells.
细胞周期蛋白E是在G1/S期转换时启动DNA复制所需的Cdk2调节亚基。它在G1期晚期积累,并在S期通过泛素/蛋白酶体途径迅速降解。细胞周期蛋白E的降解是其磷酸化以及随后被肽基脯氨酰异构酶Pin1异构化的结果。我们发现,在结肠癌细胞HT-29中,格尔德霉素(GA)抑制热休克蛋白90(Hsp90)的伴侣功能会增强细胞周期蛋白E的泛素化,并通过蛋白酶体途径触发其活性降解。由于Hsp90与众多信号蛋白形成多蛋白复合物并调节其功能和细胞内含量,这一观察结果表明Hsp90与细胞周期蛋白E之间存在直接相互作用。然而,使用细胞裂解物分级分离的实验并未揭示同时含有Hsp90和细胞周期蛋白E的复合物的存在。偶联转录/翻译实验也未能检测到新合成的细胞周期蛋白E与Hsp90之间复合物的形成。我们得出结论,Hsp90可通过间接机制调节细胞蛋白的降解而无需与它们结合。这一结论假定了一类受Hsp90失活影响的新蛋白质。我们的观察结果不支持肽基脯氨酰异构酶可能参与这一间接机制。此外,我们在前列腺癌衍生细胞系DU-145中未观察到细胞周期蛋白E的依赖格尔德霉素的活性降解,这表明细胞周期蛋白E的Hsp90依赖的稳定需要特定的调节机制,而这一机制在某些类型的癌细胞中可能丧失。