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Conformational changes in tertiary structure near the ligand binding site of an integrin I domain

机译:整联蛋白I结构域的配体结合位点附近的三级结构的构象变化

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摘要

For efficient ligand binding, integrins must be activated. Specifically, a conformational change has been proposed in a ligand binding domain present within some integrins, the inserted (I) domain [Lee, J., Bankston, L., Arnaout, M. & Liddington, R. C. (1995) Structure (London) 3, 1333–1340]. This proposal remains controversial, however, despite extensive crystal structure studies on the I domain [Lee, J., Bankston, L., Arnaout, M. & Liddington, R. C. (1995) Structure (London) 3, 1333–1340; Liddington, R. & Bankston, L. (1998) Structure (London) 6, 937–938; Qu, A. & Leahy, D. J. (1996) Structure (London) 4, 931–942; and Baldwin, E. T., Sarver, R. W., Bryant, G. L., Jr., Curry, K. A., Fairbanks, M. B., Finzel, B. C., Garlick, R. L., Heinrikson, R. L., Horton, N. C. & Kelly, L. L. (1998) Structure (London) 6, 923–935]. By defining the residues present in the epitope of a mAb against the human Mac-1 integrin (αMβ2, CD11b/CD18) that binds only the active receptor, we provide biochemical evidence that the I domain itself undergoes a conformational change with activation. This mAb, CBRM1/5, binds the I domain very close to the ligand binding site in a region that is widely exposed regardless of activation as judged by reactivity with other antibodies. The conformation of the epitope differs in two crystal forms of the I domain, previously suggested to represent active and inactive receptor. Our data suggests that conformational differences in the I domain are physiologically relevant and not merely a consequence of different crystal lattice interactions. We also demonstrate that the transition between the two conformational states depends on species-specific residues at the bottom of the I domain, which are proposed to be in an interface with another integrin domain, and that this transition correlates with functional activity.
机译:为了有效地结合配体,必须激活整联蛋白。具体地,已经提出了在一些整联蛋白内存在的配体结合结构域中的构象变化,即插入的(I)结构域[Lee,J.,Bankston,L.,Arnaout,M。和Liddington,RC(1995),结构(伦敦) 3,1333-1340]。然而,尽管对I结构域进行了广泛的晶体结构研究,但该提案仍存在争议[Lee,J.,Bankston,L.,Arnaout,M.&Liddington,R. C.(1995)Structure(London)3,1333–1340; Liddington,R.&Bankston,L.(1998)Structure(London)6,937–938; Qu,A.&Leahy,D. J.(1996)Structure(London)4,931-942; and Baldwin,ET,Sarver,RW,Bryant,GL,Jr.,Curry,KA,Fairbanks,MB,Finzel,BC,Garlick,RL,Heinrikson,RL,Horton,NC&Kelly,LL(1998)结构(伦敦) 6,923–935]。通过定义仅与活性受体结合的抗人Mac-1整联蛋白(αMβ2,CD11b / CD18)的mAb表位中存在的残基,我们提供了生化证据,表明I结构域本身会随着激活而发生构象变化。此mAb(CBRM1 / 5)结合非常接近配体结合位点的I结构域,而该区域在被广泛暴露的区域中不受激活影响的影响(通过与其他抗体的反应性判断)。表位的构象在I结构域的两种晶体形式方面有所不同,以前建议它们代表活性和非活性受体。我们的数据表明,I结构域中的构象差异与生理相关,而不仅仅是不同晶格相互作用的结果。我们还证明了两个构象状态之间的过渡取决于I域底部的物种特异性残基,这些残基被提议与另一个整联蛋白域处于界面中,并且该过渡与功能活性相关。

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