Ishii Noriyuki, Sato Takao
Biomedical Research Institute, National Institute of Advanced Industrial Science and Technology, Tsukuba Central-6, 1-1-1 Higashi, Ibaraki, 305-8566, Japan.
Biochim Biophys Acta. 2013 Apr;1830(4):2907-16. doi: 10.1016/j.bbagen.2013.01.003. Epub 2013 Jan 11.
The recent morphological studies on chaperonins have revealed that nearly equivalent amount of symmetric GroEL-(GroES)2 (football-shaped) and asymmetric GroEL-GroES (bullet-shaped) complexes coexist during the chaperonin reaction cycle, which prompted us to reexamine the equatorial split observed for chaperonin from Thermus thermophilus by implementing semi-empirical molecular orbital (MO) calculations, since it is now believed that the symmetric formation is a precursor to the equatorial split.
Semi-empirical MO calculations were employed to investigate the intersubunit interactions within the bullet-shaped T. thermophilus chaperonin capturing the substrate of folding intermediates. Interaction energies between each cis-GroEL subunit and closely related remaining subunits in cis-GroEL ring, or in trans-GroEL ring across the equatorial plane, and further, interaction energies between each GroES subunit and adjacent subunits in the same GroES ring and in cis-GroEL ring were simulated.
Anisotropic intensities and energy distribution of the subunits were revealed by the calculations, which are consistent with two conformations of the subunits forming cis-GroEL ring as revealed by X-ray crystal structure, and with an anisotropic critical binding site on cis-GroEL ring for chaperonin functioning.
This is the first application of semi-empirical MO calculations to the macromolecular complex of the native bullet-shaped chaperonin (GroEL-GroES-ADP homolog) from T. thermophilus.
The results also appear to support the occurrence of the equatorial split for T. thermophilus chaperonin observed via electron microscopy, but has not yet been fully observed for Escherichia coli GroEL-GroES system.
最近对伴侣蛋白的形态学研究表明,在伴侣蛋白反应循环中,几乎等量的对称GroEL-(GroES)2(足球形状)和不对称GroEL-GroES(子弹形状)复合物共存,这促使我们通过实施半经验分子轨道(MO)计算来重新审视嗜热栖热菌伴侣蛋白中观察到的赤道分裂,因为现在认为对称结构是赤道分裂的前体。
采用半经验MO计算来研究子弹形状的嗜热栖热菌伴侣蛋白捕获折叠中间体底物时亚基间的相互作用。模拟了每个顺式GroEL亚基与顺式GroEL环中紧密相关的其余亚基之间,或穿过赤道平面的反式GroEL环中的相互作用能,此外,还模拟了每个GroES亚基与同一GroES环和顺式GroEL环中相邻亚基之间的相互作用能。
计算揭示了亚基的各向异性强度和能量分布,这与X射线晶体结构揭示的形成顺式GroEL环的亚基的两种构象一致,也与顺式GroEL环上对于伴侣蛋白功能起作用的各向异性关键结合位点一致。
这是首次将半经验MO计算应用于来自嗜热栖热菌的天然子弹形状伴侣蛋白(GroEL-GroES-ADP同源物)的大分子复合物。
这些结果似乎也支持通过电子显微镜观察到的嗜热栖热菌伴侣蛋白赤道分裂的发生,但在大肠杆菌GroEL-GroES系统中尚未完全观察到。