神经突
糖基化
树突棘
神经科学
细胞生物学
大脑皮层
条件基因敲除
长时程增强
化学
基因剔除小鼠
生物
记忆巩固
功能(生物学)
串扰
信号转导衔接蛋白
N-连接糖基化
生物神经网络
HEK 293细胞
体外
表型
海马体
神经元
胚胎干细胞
中枢神经系统
基因亚型
模式生物
糖蛋白
前额叶皮质
神经可塑性
糖基转移酶
水迷宫
血浆蛋白结合
作者
Yao Deng,Xia Zou,Heng Zhang,Xiaoxi Lu,Xingming Zhao,Wenjuan Jia,Yingjiao Xu,Yan Li,Hisashi Narimatsu,Yan Zhang
标识
DOI:10.1073/pnas.2508476123
摘要
Glycosylation, a key and prevalent modification in brain proteins and lipids, is essential for brain development and function. O-GalNAc glycosylation, initiated by the family of polypeptide N-acetylgalactosaminyltransferases (GalNAc-Ts, GALNT s), is the most abundant type of O-glycosylation in the brain. Despite growing evidence linking GALNT variations to neuropsychiatric disorders, the molecular roles and underlying mechanisms by which O-GalNAc glycosylation contributes to brain functions remain poorly characterized. Here, we focus on GalNAc-T13, a member of the GalNAc-T family that is highly expressed in the brain. We established a brain-specific Galnt13 conditional knockout mouse model and found that these mice exhibited reduced neurite length, simplified dendritic branching, and decreased dendritic spine density in the cerebral cortex across embryonic and adult stages. Behavioral analyses further revealed impaired spatial memory consolidation following Galnt13 knockout. Mechanistically, we identified seizure protein 6 (SEZ6), a neurodevelopment-related protein, as a key substrate of GalNAc-T13 using a lectin-based mass spectrometry glycoproteomic approach. Our results demonstrated that GalNAc-T13 regulates the O-GalNAc glycosylation levels of SEZ6 with high catalytic efficiency in vitro and in vivo, improving protein stability and its interaction with PRSS12 at the cell surface to promote neurite outgrowth. Collectively, these findings suggest a critical role for GalNAc-T13 in maintaining cortical neurite architecture and memory retention, providing a mechanistic example for understanding the function of O-GalNAc glycosylation in the brain.
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