Gan Quan, Salussolia Catherine L, Wollmuth Lonnie P
Graduate Program in Neuroscience, Stony Brook University, Stony Brook, NY, USA; Center for Nervous System Disorders, Stony Brook University, Stony Brook, NY, USA; Department of Neurobiology and Behaviour, Stony Brook University, Stony Brook, NY, USA.
J Physiol. 2015 Jan 1;593(1):39-48. doi: 10.1113/jphysiol.2014.273755. Epub 2014 Aug 1.
AMPA receptors (AMPARs) play a critical role in excitatory glutamatergic neurotransmission. The number and subunit composition of AMPARs at synapses determines the dynamics of fast glutamatergic signalling. Functional AMPARs on the cell surface are tetramers. Thus tetrameric assembly of AMPARs represents a promising target for modulating AMPAR-mediated signalling in health and disease. Multiple structural domains within the receptor influence AMPAR assembly. In a proposed model for AMPAR assembly, the amino-terminal domain underlies the formation of a dimer pool. The transmembrane domain facilitates the formation and enhances the stability of the tetramer. The ligand-binding domain influences assembly through a process referred to as 'domain swapping'. We propose that this core AMPAR assembly process could be regulated by neuronal signals and speculate on possible mechanisms for such regulation.
α-氨基-3-羟基-5-甲基-4-异恶唑丙酸受体(AMPARs)在兴奋性谷氨酸能神经传递中起关键作用。突触处AMPARs的数量和亚基组成决定了快速谷氨酸能信号传导的动力学。细胞表面的功能性AMPARs是四聚体。因此,AMPARs的四聚体组装是调节健康和疾病中AMPAR介导信号传导的一个有前景的靶点。受体内的多个结构域影响AMPAR组装。在一个提出的AMPAR组装模型中,氨基末端结构域是二聚体池形成的基础。跨膜结构域促进四聚体的形成并增强其稳定性。配体结合结构域通过一个称为“结构域交换”的过程影响组装。我们提出,这个核心的AMPAR组装过程可能受神经元信号调节,并推测了这种调节的可能机制。