Department of Biophysics and Biophysical Chemistry, Johns Hopkins University School of Medicine, Baltimore, United States.
W.M. Keck Structural Biology Laboratory, Cold Spring Harbor Laboratory, Cold Spring Harbor, United States.
Elife. 2022 Oct 27;11:e77645. doi: 10.7554/eLife.77645.
N-methyl-D-aspartate receptors (NMDARs) uniquely require binding of two different neurotransmitter agonists for synaptic transmission. D-serine and glycine bind to one subunit, GluN1, while glutamate binds to the other, GluN2. These agonists bind to the receptor's bi-lobed ligand-binding domains (LBDs), which close around the agonist during receptor activation. To better understand the unexplored mechanisms by which D-serine contributes to receptor activation, we performed multi-microsecond molecular dynamics simulations of the GluN1/GluN2A LBD dimer with free D-serine and glutamate agonists. Surprisingly, we observed D-serine binding to both GluN1 and GluN2A LBDs, suggesting that D-serine competes with glutamate for binding to GluN2A. This mechanism is confirmed by our electrophysiology experiments, which show that D-serine is indeed inhibitory at high concentrations. Although free energy calculations indicate that D-serine stabilizes the closed GluN2A LBD, its inhibitory behavior suggests that it either does not remain bound long enough or does not generate sufficient force for ion channel gating. We developed a workflow using pathway similarity analysis to identify groups of residues working together to promote binding. These conformation-dependent pathways were not significantly impacted by the presence of N-linked glycans, which act primarily by interacting with the LBD bottom lobe to stabilize the closed LBD.
N-甲基-D-天冬氨酸受体(NMDARs)独特地需要两种不同的神经递质激动剂结合才能进行突触传递。D-丝氨酸和甘氨酸结合到一个亚基上,GluN1,而谷氨酸结合到另一个亚基,GluN2。这些激动剂结合到受体的双叶状配体结合域(LBD),在受体激活过程中,LBD 围绕激动剂关闭。为了更好地理解 D-丝氨酸促进受体激活的未被探索的机制,我们对游离 D-丝氨酸和谷氨酸激动剂的 GluN1/GluN2A LBD 二聚体进行了多微秒分子动力学模拟。令人惊讶的是,我们观察到 D-丝氨酸结合到 GluN1 和 GluN2A LBD 上,表明 D-丝氨酸与谷氨酸竞争结合到 GluN2A。这一机制得到了我们电生理学实验的证实,实验表明 D-丝氨酸在高浓度时确实具有抑制作用。尽管自由能计算表明 D-丝氨酸稳定了封闭的 GluN2A LBD,但它的抑制行为表明它要么没有足够长的时间保持结合,要么没有产生足够的力来打开离子通道。我们开发了一种使用途径相似性分析的工作流程,以识别共同促进结合的一组残基。这些构象依赖的途径不受 N-连接聚糖的显著影响,N-连接聚糖主要通过与 LBD 底部叶相互作用来稳定封闭的 LBD。