AMPA受体
突触可塑性
神经科学
突触后电位
生物
神经传递
细胞生物学
突触标度
动力蛋白
非突触性可塑性
突触后密度
兴奋性突触后电位
突触
肌动蛋白细胞骨架
谷氨酸受体
细胞骨架
变质塑性
受体
抑制性突触后电位
微管
生物化学
细胞
作者
Yiyang Cao,Wu Ling-Ling,Xiaonan Li,Yu-Lian Yuan,Wanwei Zhao,Jingxuan Qi,Xu-Yu Zhao,Natalie J Ward,Jiao Wang
摘要
Synaptic plasticity enhances or reduces connections between neurons, affecting learning and memory. Postsynaptic AMPARs mediate greater than 90% of the rapid excitatory synaptic transmission in glutamatergic neurons. The number and subunit composition of AMPARs are fundamental to synaptic plasticity and the formation of entire neural networks. Accordingly, the insertion and functionalization of AMPARs at the postsynaptic membrane have become a core issue related to neural circuit formation and information processing in the central nervous system. In this review, we summarize current knowledge regarding the related mechanisms of AMPAR expression and trafficking. The proteins related to AMPAR trafficking are discussed in detail, including vesicle-related proteins, cytoskeletal proteins, synaptic proteins, and protein kinases. Furthermore, significant emphasis was placed on the pivotal role of the actin cytoskeleton, which spans throughout the entire transport process in AMPAR transport, indicating that the actin cytoskeleton may serve as a fundamental basis for AMPAR trafficking. Additionally, we summarize the proteases involved in AMPAR post-translational modifications. Moreover, we provide an overview of AMPAR transport and localization to the postsynaptic membrane. Understanding the assembly, trafficking, and dynamic synaptic expression mechanisms of AMPAR may provide valuable insights into the cognitive decline associated with neurodegenerative diseases.
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