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Distinct Structural Pathways Coordinate the Activation of AMPA Receptor-Auxiliary Subunit Complexes

机译:不同的结构途径协调AMPA受体-辅助亚基复合物的激活。

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摘要

Neurotransmitter-gated ion channels adopt different gating modes to fine-tune signaling at central synapses. At glutamatergic synapses, high and low activity of AMPA receptors (AMPARs) is observed when pore-forming subunits coassemble with or without auxiliary subunits, respectively. Whether a common structural pathway accounts for these different gating modes is unclear. Here, we identify two structural motifs that determine the time course of AMPAR channel activation. A network of electrostatic interactions at the apex of the AMPAR ligand-binding domain (LBD) is essential for gating by pore-forming subunits, whereas a conserved motif on the lower, D2 lobe of the LBD prolongs channel activity when auxiliary subunits are present. Accordingly, channel activity is almost entirely abolished by elimination of the electrostatic network but restored via auxiliary protein interactions at the D2 lobe. In summary, we propose that activation of native AMPAR complexes is coordinated by distinct structural pathways, favored by the association/dissociation of auxiliary subunits.
机译:神经递质门控离子通道采用不同的门控模式来微调中央突触处的信号传导。在谷氨酸能突触中,当成孔亚基分别与或不与辅助亚基共组装时,会观察到AMPA受体(AMPAR)的高和低活性。尚不清楚通用的结构途径是否解释了这些不同的门控模式。在这里,我们确定了确定AMPAR通道激活的时间过程的两个结构基序。 AMPAR配体结合域(LBD)顶点的静电相互作用网络对于通过成孔亚基进行门控必不可少,而当存在辅助亚基时,LBD下部D2叶上的保守基序可延长通道活性。因此,通道活性几乎通过消除静电网络而被完全消除,但通过D2瓣上的辅助蛋白质相互作用得以恢复。总而言之,我们提出天然AMPAR复合物的激活是由不同的结构途径协调的,辅以辅助亚基的缔合/解离。

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