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基于粗粒化分子动力学模拟揭示白细胞整合素 αLβ2 跨膜缔合动力学。

Leukocyte integrin αLβ2 transmembrane association dynamics revealed by coarse-grained molecular dynamics simulations.

机构信息

Biophysics Group, A*STAR Institute of High Performance Computing, Singapore 138632, Republic of Singapore.

出版信息

Proteins. 2011 Jul;79(7):2203-13. doi: 10.1002/prot.23044. Epub 2011 May 9.

Abstract

Integrins are transmembrane (TM) proteins that mediate bidirectional mechanical signaling between the extracellular matrix and the cellular cytoskeletal network. Each integrin molecule consists of non-covalently associated α- and β-subunits, with each subunit consisting of a large ectodomain, a single-pass TM helix, and a short cytoplasmic tail. Previously we found evidence for a polar interaction (hydrogen bond) in the outer membrane clasp (OMC) of the leukocyte integrin αLβ2 TMs that is absent in the platelet integrin αIIβ3 OMC. Here, we compare the self-assembly dynamics of αLβ2 and αIIβ3 TM helices in a model membrane using coarse-grained molecular dynamics simulations. We found that although αIIβ3 TM helices associate more easily, packing is suboptimal. In contrast, αLβ2 TM helices achieve close-to-optimal packing. This suggests that αLβ2 TM packing is more specific, possibly due to the interhelix hydrogen bond. Theoretical association free energy profiles show a deeper minimum at a smaller helix-helix separation for αLβ2 compared with αIIβ3. The αIIβ3 profile is also more rugged with energetic barriers whereas that of αLβ2 is almost without barriers. Disruption of the interhelix hydrogen bond in αLβ2 via the β2T686G mutation results in poorer association and a similar profile as αIIβ3. The OMC polar interaction in αLβ2 thus plays a significant role in the packing of the TM helices.

摘要

整合素是一种跨膜 (TM) 蛋白,介导细胞外基质和细胞骨架网络之间的双向机械信号传递。每个整合素分子由非共价结合的 α 和 β 亚基组成,每个亚基由一个大的细胞外结构域、一个单次跨膜螺旋和一个短的细胞质尾巴组成。我们之前发现白细胞整合素 αLβ2TM 中的外膜扣 (OMC) 存在极性相互作用(氢键),而血小板整合素 αIIβ3 OMC 中则不存在。在这里,我们使用粗粒度分子动力学模拟比较了 αLβ2 和 αIIβ3 TM 螺旋在模型膜中的自组装动力学。我们发现,尽管 αIIβ3 TM 螺旋更容易结合,但包装并不理想。相比之下,αLβ2 TM 螺旋实现了接近最佳的包装。这表明 αLβ2 TM 包装更具特异性,可能是由于螺旋间氢键的存在。理论关联自由能曲线显示,与 αIIβ3 相比,αLβ2 的较小螺旋-螺旋分离处的最小深度更深。αIIβ3 曲线也更加崎岖,具有能量障碍,而 αLβ2 的曲线几乎没有障碍。通过 β2T686G 突变破坏 αLβ2 中的螺旋间氢键会导致结合不良,并且与 αIIβ3 的曲线相似。因此,αLβ2 中的 OMC 极性相互作用在 TM 螺旋的包装中起着重要作用。

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