突触后电位
突触后密度
突触可塑性
神经传递
神经科学
化学
兴奋性突触后电位
生物物理学
海马结构
细胞生物学
突触标度
非突触性可塑性
突变体
体内
生物
AMPA受体
HEK 293细胞
相(物质)
抑制性突触后电位
长时程增强
可塑性
稳态可塑性
神经可塑性
突触
体外
受体
作者
Guanhua Bai,Ruifeng Huang,Xiao Nan,Mengru Zhuang,Meiling Wu,Yinmiao Lian,Qixu Cai,H Tian,Youming Lu,Hao Li,Mingjie Zhang
标识
DOI:10.1083/jcb.202503076
摘要
IQSEC2, a high-confidence neurodevelopmental disorder risk gene product, is essential for neuronal development and synaptic plasticity. Previous studies established that IQSEC2 dynamically regulates synaptic signaling via Ca2+-dependent release of autoinhibition. In this study, using in vivo mouse models and in vitro biochemistry approaches, we discover that IQSEC2 orchestrates postsynaptic density assembly and dynamics via Ca2+-triggered phase separation. Mechanistically, Ca2+-induced conformational opening leads to phase separation-mediated condensation of IQSEC2 at synapses, a process that requires the N-terminal multimerization domain and intrinsically disordered regions of IQSEC2. We identified a single-point mutation, F367A, in IQSEC2, which exhibits constitutive activity by structurally mimicking the Ca2+-activated state of the WT protein. Mice carrying the Iqsec2_F367A mutation have elevated basal synaptic transmission and impaired activity-dependent plasticity assayed in hippocampal neurons and spatial learning deficits. Thus, IQSEC2 can bidirectionally modulate synaptic strengths via Ca2+-dependent phase separation, and dysregulation of phase separation may be a contributing factor in IQSEC2-related neurodevelopmental disorders.
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