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质子触发的 AMPA 受体 N 端结构域重排影响受体动力学和突触定位。

Proton-triggered rearrangement of the AMPA receptor N-terminal domains impacts receptor kinetics and synaptic localization.

机构信息

Neurobiology Division, Medical Research Council (MRC) Laboratory of Molecular Biology, Cambridge, UK.

Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, UK.

出版信息

Nat Struct Mol Biol. 2024 Oct;31(10):1601-1613. doi: 10.1038/s41594-024-01369-5. Epub 2024 Aug 13.

Abstract

AMPA glutamate receptors (AMPARs) are ion channel tetramers that mediate the majority of fast excitatory synaptic transmission. They are composed of four subunits (GluA1-GluA4); the GluA2 subunit dominates AMPAR function throughout the forebrain. Its extracellular N-terminal domain (NTD) determines receptor localization at the synapse, ensuring reliable synaptic transmission and plasticity. This synaptic anchoring function requires a compact NTD tier, stabilized by a GluA2-specific NTD interface. Here we show that low pH conditions, which accompany synaptic activity, rupture this interface. All-atom molecular dynamics simulations reveal that protonation of an interfacial histidine residue (H208) centrally contributes to NTD rearrangement. Moreover, in stark contrast to their canonical compact arrangement at neutral pH, GluA2 cryo-electron microscopy structures exhibit a wide spectrum of NTD conformations under acidic conditions. We show that the consequences of this pH-dependent conformational control are twofold: rupture of the NTD tier slows recovery from desensitized states and increases receptor mobility at mouse hippocampal synapses. Therefore, a proton-triggered NTD switch will shape both AMPAR location and kinetics, thereby impacting synaptic signal transmission.

摘要

AMPA 型谷氨酸受体 (AMPARs) 是离子通道四聚体,介导大多数快速兴奋性突触传递。它们由四个亚基(GluA1-GluA4)组成;GluA2 亚基在大脑前区主导 AMPAR 功能。其细胞外 N 端结构域 (NTD) 决定了受体在突触处的定位,确保了可靠的突触传递和可塑性。这种突触锚定功能需要一个紧凑的 NTD 层,由 GluA2 特异性的 NTD 界面稳定。在这里,我们表明伴随突触活动的低 pH 条件会破坏该界面。全原子分子动力学模拟表明,界面组氨酸残基 (H208) 的质子化对 NTD 重排起核心作用。此外,与中性 pH 下的典型紧凑排列形成鲜明对比的是,酸性条件下 GluA2 低温电子显微镜结构表现出 NTD 构象的广泛谱。我们表明,这种 pH 依赖性构象控制的后果有两个方面:NTD 层的破裂会减缓从脱敏状态的恢复,并增加小鼠海马突触处的受体流动性。因此,质子触发的 NTD 开关将影响 AMPAR 的位置和动力学,从而影响突触信号传递。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/158c/11479944/0aef00b70cff/41594_2024_1369_Fig1_HTML.jpg

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