神经周围网
七氟醚
神经科学
海马结构
树突棘
兴奋性突触后电位
神经可塑性
海马体
突触可塑性
神经保护
MMP9公司
长时程增强
医学
表观遗传学
药理学
中间神经元
生物
认知功能衰退
化学
加巴能
莫里斯水上航行任务
转录组
脑源性神经营养因子
拉莫三嗪
神经传递
运动前神经元活动
作者
Lirong Liang,Jiachen Wang,Taozhi Wang,Yi Li,Youyi Zhao,Guanghui Hao,Peiqin Gong,Ruling Chen,Yilin Fang,Shengxi Wu,Haopeng Zhang,Hui Zhang
摘要
Sevoflurane is one of the most commonly used general anesthetics in pediatric clinical practice worldwide. Although accumulating preclinical evidence indicates that neonatal sevoflurane exposure causes persistent cognitive impairments, the extracellular mechanisms remain unclear. Herein, we focus on perineuronal nets (PNNs), extracellular matrix (ECM) structures that constrain neuronal excitatory plasticity and are highly enriched in the hippocampal CA2, a region critical for social recognition memory. Neonatal mice repeatedly exposed to 3% sevoflurane (2 h/day, P6-P8) exhibited persistent CA2-specific PNN degradation in adulthood. Mechanistically, sevoflurane depleted H3K27me3 at the Mmp9 promoter, elevating matrix metalloproteinase 9 (MMP9) expression. This epigenetic dysregulation impaired BDNF/ TrkB signaling, reduced PSD-95 puncta density and dendritic spine abundance, and suppressed mEPSC frequency, leading to impaired novel object recognition and social discrimination. Spatial transcriptomics validated CA2-specific ECM pathway dysregulation. Notably, CA2-targeted Hapln1 overexpression in the CA2 excitatory neurons of Camk2a-Cre mice effectively restored PNN integrity, rescued synaptic dysfunction, and reversed cognitive deficits. The pharmacological inhibition of MMP9 yielded comparable neuroprotective effects. Collectively, this study identified PNNs as pivotal mediators of anesthetic neurotoxicity, uncovered a previously unrecognized epigenetic-ECM coupling mechanism driving developmental brain injury, and highlighted PNN preservation as a promising translational strategy for preventing pediatric anesthesia-associated cognitive impairment.
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