Aharoni A, Horovitz A
Department of Structural Biology, Weizmann Institute of Science, Rehovot, Israel.
Proc Natl Acad Sci U S A. 1997 Mar 4;94(5):1698-702. doi: 10.1073/pnas.94.5.1698.
A protein engineering approach for detecting and measuring local conformational changes that accompany allosteric transitions in proteins is described. Using this approach, we can identify interactions that are made or broken during allosteric transitions. The method is applied to probe for changes in pairwise interactions in the chaperonin GroEL during its ATP-induced allosteric transitions. Two pairwise interactions are investigated: one between subunits (Asp-41 with Thr-522) and the other within subunits (Glu-409 with Arg-501). We find that the intraring intersubunit interaction between Asp-41 and Thr-522 changes little during the allosteric transitions of GroEL, indicating that the hydrogen bond between these residues is maintained. In contrast, the intrasubunit salt bridge between Glu-409 and Arg-501 becomes significantly weaker during the ATP-induced allosteric transitions of GroEL. Our results are consistent with the electron microscopy observations of an ATP-induced hinge movement of the apical domains relative to the equatorial domains.
本文描述了一种蛋白质工程方法,用于检测和测量蛋白质变构转变过程中伴随的局部构象变化。使用这种方法,我们可以识别在变构转变过程中形成或断裂的相互作用。该方法用于探测伴侣蛋白GroEL在ATP诱导的变构转变过程中成对相互作用的变化。研究了两种成对相互作用:一种是亚基之间(Asp-41与Thr-522)的相互作用,另一种是亚基内部(Glu-409与Arg-501)的相互作用。我们发现,在GroEL的变构转变过程中,Asp-41和Thr-522之间的环内亚基间相互作用变化很小,这表明这些残基之间的氢键得以维持。相比之下,在GroEL的ATP诱导变构转变过程中,Glu-409和Arg-501之间的亚基内盐桥明显变弱。我们的结果与电子显微镜观察到的顶端结构域相对于赤道结构域的ATP诱导铰链运动一致。