Cabo-Bilbao Aintzane, Spinelli Silvia, Sot Begoña, Agirre Jon, Mechaly Ariel E, Muga Arturo, Guérin Diego M A
Unidad de Biofísica (CSIC-UPV/EHU), P.O. Box 644, E-48080 Bilbao, Spain.
J Struct Biol. 2006 Sep;155(3):482-92. doi: 10.1016/j.jsb.2006.06.008. Epub 2006 Jul 8.
The chaperonin GroEL adopts a double-ring structure with various modes of allosteric communication. The simultaneous positive intra-ring and negative inter-ring co-operativities alternate the functionality of the folding cavities in both protein rings. Negative inter-ring co-operativity is maintained through different inter-ring interactions, including a salt bridge involving Glu 461. Replacement of this residue by Lys modifies the temperature sensitivity of the substrate-folding activity of this protein, most likely as a result of the loss of inter-ring co-operativity. The crystal structure of the mutant chaperonin GroELE461K has been determined at 3.3A and compared with other structures: the wild-type GroEL, an allosteric defective GroEL double mutant and the GroEL-GroES-(ADP)7 complex. The inter-ring region of the mutant exhibits the following characteristics: (i) no salt-bridge stabilizes the inter-ring interface; (ii) the mutated residue plays a central role in defining the relative ring rotation (of about 22 degrees) around the 7-fold axis; (iii) an increase in the inter-ring distance and solvent accessibility of the inter-ring interface; and (iv) a 2-fold reduction in the stabilization energy of the inter-ring interface, due to the modification of inter-ring interactions. These characteristics explain how the thermal sensitivity of the protein's fundamental properties permits GroEL to distinguish physiological (37 degrees C) from stress (42 degrees C) temperatures.
伴侣蛋白GroEL采用具有多种变构通讯模式的双环结构。同时存在的环内正向协同作用和环间负向协同作用使两个蛋白环中折叠腔的功能交替变化。环间负向协同作用通过不同的环间相互作用得以维持,包括涉及Glu 461的盐桥。用Lys取代该残基会改变该蛋白底物折叠活性的温度敏感性,这很可能是环间协同作用丧失的结果。已确定突变型伴侣蛋白GroELE461K的晶体结构分辨率为3.3埃,并与其他结构进行了比较:野生型GroEL、变构缺陷型GroEL双突变体以及GroEL - GroES - (ADP)7复合物。突变体的环间区域表现出以下特征:(i) 没有盐桥稳定环间界面;(ii) 突变残基在确定围绕七重轴的相对环旋转(约22度)中起核心作用;(iii) 环间界面的环间距离和溶剂可及性增加;(iv) 由于环间相互作用的改变,环间界面的稳定能降低了两倍。这些特征解释了该蛋白基本特性的热敏感性如何使GroEL能够区分生理温度(37摄氏度)和应激温度(42摄氏度)。