抑制性突触后电位
神经传递
兴奋性突触后电位
葛根素
神经科学
突触
劈理(地质)
树突棘
神经肽
生物
细胞生物学
化学
受体
生物化学
海马结构
氨基酸
古生物学
甘氨酸
断裂(地质)
甘氨酸受体
作者
Na Xu,Ran Cao,Siyu Chen,Xu‐Zhuo Gou,Bin Wang,Hongmei Luo,Feng Gao,Ai‐Hui Tang
标识
DOI:10.1073/pnas.2314541121
摘要
Recent evidence has demonstrated that the transsynaptic nanoscale organization of synaptic proteins plays a crucial role in regulating synaptic strength in excitatory synapses. However, the molecular mechanism underlying this transsynaptic nanostructure in inhibitory synapses still remains unclear and its impact on synapse function in physiological or pathological contexts has not been demonstrated. In this study, we utilized an engineered proteolysis technique to investigate the effects of acute cleavage of neuroligin-2 (NL2) on synaptic transmission. Our results show that the rapid cleavage of NL2 led to impaired synaptic transmission by reducing both neurotransmitter release probability and quantum size. These changes were attributed to the dispersion of RIM1/2 and GABA A receptors and a weakened spatial alignment between them at the subsynaptic scale, as observed through superresolution imaging and model simulations. Importantly, we found that endogenous NL2 undergoes rapid MMP9-dependent cleavage during epileptic activities, which further exacerbates the decrease in inhibitory transmission. Overall, our study demonstrates the significant impact of nanoscale structural reorganization on inhibitory transmission and unveils ongoing modulation of mature GABAergic synapses through active cleavage of NL2 in response to hyperactivity.
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