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首页> 外文期刊>Biophysical Journal >An NMDA receptor gating mechanism developed from MD simulations reveals molecular details underlying subunit-specific contributions
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An NMDA receptor gating mechanism developed from MD simulations reveals molecular details underlying subunit-specific contributions

机译:通过MD模拟开发的NMDA受体门控机制揭示了亚基特异性贡献的分子细节

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N-methyl-D-aspartate (NMDA) receptors are obligate heterotetrameric ligand-gated ion channels that play critical roles in learning and memory. Here, using targeted molecular dynamics simulations, we developed an atomistic model for the gating of the GluN1/GluN2A NMDA receptor. Upon agonist binding, lobe closure of the ligand-binding domain produced outward pulling of the M3-D2 linkers, leading to outward movements of the C-termini of the pore-lining M3 helices and opening of the channel. The GluN2A subunits, similar to the distal (B/D) subunits in the homotetrameric GluA2 α-amino-3-hydroxy-5-methyl-4- isoxazoleproprionate receptor, had greater M3 outward movements and thus contributed more to channel gating than the GluN1 subunits. Our gating model is validated by functional studies, including cysteine modification data indicating wider accessibility to the GluN1 M3 helices than to the GluN2A M3 helices from the lumen of the open channel, and reveals why the Lurcher mutation in GluN1 has a stronger ability in maintaining channel opening than the counterpart in GluN2A. The resulting structural model for the open state provides an explanation for the Ca2+ permeability of NMDA receptors, and the structural differences between the closed and open states form the basis for drug design.
机译:N-甲基-D-天冬氨酸(NMDA)受体是专性的异四聚体配体门控离子通道,在学习和记忆中起关键作用。在这里,使用针对性的分子动力学模拟,我们为GluN1 / GluN2A NMDA受体的门控开发了原子模型。激动剂结合后,配体结合域的叶闭合导致M3-D2接头向外拉,导致孔内M3螺旋的C末端向外运动并打开通道。与同型四聚体GluA2α-氨基-3-羟基-5-甲基-4-异恶唑丙酸酸酯受体中的远端(B / D)亚基相似,GluN2A亚基具有更大的M3向外运动,因此比GluN1贡献更多的通道门控亚单位。我们的门控模型已通过功能研究验证,其中包括半胱氨酸修饰数据,表明从开放通道内腔到GluN1 M3螺旋的可及性比GluN2A M3螺旋的可及性更广,并揭示了为什么GluN1中的Lurcher突变具有更强的维持通道能力比GluN2A中的对应物开放。所得的开放状态结构模型为NMDA受体的Ca2 +渗透性提供了解释,封闭状态和开放状态之间的结构差异构成了药物设计的基础。

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