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EphA1受体酪氨酸激酶跨膜结构域的二聚化:对受体激活机制的深入了解。

Dimerization of the EphA1 receptor tyrosine kinase transmembrane domain: Insights into the mechanism of receptor activation.

作者信息

Chavent Matthieu, Chetwynd Alan P, Stansfeld Phillip J, Sansom Mark S P

机构信息

Department of Biochemistry, University of Oxford , South Parks Road, Oxford OX1 3QU, United Kingdom.

出版信息

Biochemistry. 2014 Oct 28;53(42):6641-52. doi: 10.1021/bi500800x. Epub 2014 Oct 17.

Abstract

EphA1 is a receptor tyrosine kinase (RTK) that plays a key role in developmental processes, including guidance of the migration of axons and cells in the nervous system. EphA1, in common with other RTKs, contains an N-terminal extracellular domain, a single transmembrane (TM) α-helix, and a C-terminal intracellular kinase domain. The TM helix forms a dimer, as seen in recent NMR studies. We have modeled the EphA1 TM dimer using a multiscale approach combining coarse-grain (CG) and atomistic molecular dynamics (MD) simulations. The one-dimensional potential of mean force (PMF) for this system, based on interhelix separation, has been calculated using CG MD simulations. This provides a view of the free energy landscape for helix-helix interactions of the TM dimer in a lipid bilayer. The resulting PMF profiles suggest two states, consistent with a rotation-coupled activation mechanism. The more stable state corresponds to a right-handed helix dimer interacting via an N-terminal glycine zipper motif, consistent with a recent NMR structure (2K1K). A second metastable state corresponds to a structure in which the glycine zipper motif is not involved. Analysis of unrestrained CG MD simulations based on representative models from the PMF calculations or on the NMR structure reveals possible pathways of interconversion between these two states, involving helix rotations about their long axes. This suggests that the interaction of TM helices in EphA1 dimers may be intrinsically dynamic. This provides a potential mechanism for signaling whereby extracellular events drive a shift in the repopulation of the underlying TM helix dimer energy landscape.

摘要

EphA1是一种受体酪氨酸激酶(RTK),在发育过程中发挥关键作用,包括引导轴突和细胞在神经系统中的迁移。与其他RTK一样,EphA1包含一个N端细胞外结构域、一个单跨膜(TM)α螺旋和一个C端细胞内激酶结构域。如最近的核磁共振研究所示,TM螺旋形成二聚体。我们使用粗粒度(CG)和原子分子动力学(MD)模拟相结合的多尺度方法对EphA1 TM二聚体进行了建模。基于螺旋间距离,使用CG MD模拟计算了该系统的一维平均力势(PMF)。这提供了脂质双分子层中TM二聚体螺旋-螺旋相互作用的自由能景观视图。所得的PMF曲线表明有两种状态,这与旋转耦合激活机制一致。更稳定的状态对应于通过N端甘氨酸拉链基序相互作用的右手螺旋二聚体,这与最近的核磁共振结构(2K1K)一致。第二个亚稳态对应于一个不涉及甘氨酸拉链基序的结构。基于PMF计算中的代表性模型或核磁共振结构对无约束CG MD模拟的分析揭示了这两种状态之间相互转换的可能途径,包括螺旋围绕其长轴的旋转。这表明EphA1二聚体中TM螺旋的相互作用可能本质上是动态的。这提供了一种潜在的信号传导机制,即细胞外事件驱动底层TM螺旋二聚体能量景观再分布的转变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a1a/4298228/3ea1a6b7dd78/bi-2014-00800x_0001.jpg

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