Miyazaki Takuya, Yoshimi Tatsunari, Furutsu Yoshinobu, Hongo Kunihiro, Mizobata Tomohiro, Kanemori Masaaki, Kawata Yasushi
Department of Biotechnology, Faculty of Engineering, Tottori University, Tottori 680-8552, Japan.
J Biol Chem. 2002 Dec 27;277(52):50621-8. doi: 10.1074/jbc.M209183200. Epub 2002 Oct 10.
GroEL C138W is a mutant form of Escherichia coli GroEL, which forms an arrested ternary complex composed of GroEL, the co-chaperonin GroES and the refolding protein molecule rhodanese at 25 degrees C. This state of arrest could be reversed with a simple increase in temperature. In this study, we found that GroEL C138W formed both stable trans- and cis-ternary complexes with a number of refolding proteins in addition to bovine rhodanese. These complexes could be reactivated by a temperature shift to obtain active refolded protein. The simultaneous binding of GroES and substrate to the cis ring suggested that an efficient transfer of substrate protein into the GroEL central cavity was assured by the binding of GroES prior to complete substrate release from the apical domain. Stopped-flow fluorescence spectroscopy of the mutant chaperonin revealed a temperature-dependent conformational change in GroEL C138W that acts as a trigger for complete protein release. The behavior of GroEL C138W was reflected closely in its in vivo characteristics, demonstrating the importance of this conformational change to the overall activity of GroEL.
GroEL C138W是大肠杆菌GroEL的一种突变形式,在25摄氏度时,它会形成一种由GroEL、伴侣蛋白GroES和重折叠蛋白分子硫氰酸酶组成的停滞三元复合物。这种停滞状态可以通过简单地升高温度来逆转。在本研究中,我们发现除了牛硫氰酸酶外,GroEL C138W还能与多种重折叠蛋白形成稳定的反式和顺式三元复合物。这些复合物可以通过温度变化重新激活,从而获得有活性的重折叠蛋白。GroES和底物同时与顺式环结合表明,在底物从顶端结构域完全释放之前,GroES的结合确保了底物蛋白有效地转移到GroEL中央腔中。对突变伴侣蛋白进行的停流荧光光谱分析显示,GroEL C138W中存在温度依赖性构象变化,该变化作为蛋白质完全释放的触发因素。GroEL C138W的行为在其体内特性中得到了密切反映,证明了这种构象变化对GroEL整体活性的重要性。