Aguado Alejandra, Fernández-Higuero José Angel, Cabrera Yovana, Moro Fernando, Muga Arturo
*Biophysics Unit, Spanish Science Research Council University of the Basque Country (CSIC-UPV/EHU), and Department of Biochemistry and Molecular Biology, Faculty of Science and Technology, University of the Basque Country (UPV/EHU), P.O. Box 644, E-48080 Bilbao, Spain.
Biochem J. 2015 Mar 15;466(3):561-70. doi: 10.1042/BJ20141390.
The hexameric AAA+ (ATPase associated with various cellular activities) chaperone ClpB reactivates protein aggregates in collaboration with the DnaK system. An intriguing aspect of ClpB function is that the active hexamer is unstable and therefore questions how this chaperone uses multiple rounds of ATP hydrolysis to translocate substrates through its central channel. In the present paper, we report the use of biochemical and fluorescence tools to explore ClpB dynamics under different experimental conditions. The analysis of the chaperone activity and the kinetics of subunit exchange between protein hexamers labelled at different protein domains indicates, in contrast with the current view, that (i) ATP favours assembly and ADP dissociation of the hexameric assembly, (ii) subunit exchange kinetics is at least one order of magnitude slower than the ATP hydrolysis rate, (iii) ClpB dynamics and activity are related processes, and (iv) DnaK and substrate proteins regulate the ATPase activity and dynamics of ClpB. These data suggest that ClpB hexamers remain associated during several ATP hydrolysis events required to partially or completely translocate substrates through the protein central channel, and that ClpB dynamics is tuned by DnaK and substrate proteins.
六聚体AAA+(与多种细胞活动相关的ATP酶)伴侣蛋白ClpB与DnaK系统协同作用,使蛋白质聚集体重新激活。ClpB功能的一个有趣方面是,活性六聚体不稳定,因此引发了关于这种伴侣蛋白如何利用多轮ATP水解通过其中心通道转运底物的疑问。在本文中,我们报告了利用生化和荧光工具来探索不同实验条件下ClpB的动力学。对伴侣蛋白活性以及在不同蛋白结构域标记的蛋白质六聚体之间亚基交换动力学的分析表明,与当前观点相反的是:(i)ATP有利于六聚体组装和ADP解离;(ii)亚基交换动力学至少比ATP水解速率慢一个数量级;(iii)ClpB动力学和活性是相关过程;(iv)DnaK和底物蛋白调节ClpB的ATP酶活性和动力学。这些数据表明,在底物部分或完全通过蛋白质中心通道转运所需的几次ATP水解事件中,ClpB六聚体保持结合状态,并且ClpB动力学受DnaK和底物蛋白调节。