星形胶质细胞
重编程
神经科学
生物
心理学
智力残疾
中枢神经系统
医学
精神科
遗传学
细胞
作者
Haibin Zhang,Qiuyang Zheng,Tiantian Guo,Shijun Zhang,Shuang Zheng,Ruimin Wang,Qing‐Fang Deng,Guowei Yang,Shuo Zhang,Linxin Tang,Qiuping Qi,Lin Zhu,Xiu-Fang Zhang,Hong Luo,Xian Zhang,Hao Sun,Yue Gao,Hongfeng Zhang,Ying Zhou,Aidong Han,Chen‐Song Zhang,Huaxi Xu,Xin Wang
标识
DOI:10.1038/s41380-022-01521-x
摘要
Astrocyte aerobic glycolysis provides vital trophic support for central nervous system neurons. However, whether and how astrocytic metabolic dysregulation contributes to neuronal dysfunction in intellectual disability (ID) remain unclear. Here, we demonstrate a causal role for an ID-associated SNX27 mutation (R198W) in cognitive deficits involving reshaping astrocytic metabolism. We generated SNX27R196W (equivalent to human R198W) knock-in mice and found that they displayed deficits in synaptic function and learning behaviors. SNX27R196W resulted in attenuated astrocytic glucose uptake via GLUT1, leading to reduced lactate production and a switch from homeostatic to reactive astrocytes. Importantly, lactate supplementation or a ketogenic diet restored neuronal oxidative phosphorylation and reversed cognitive deficits in SNX27R196W mice. In summary, we illustrate a key role for astrocytic SNX27 in maintaining glucose supply and glycolysis and reveal that altered astrocytic metabolism disrupts the astrocyte-neuron interaction, which contributes to ID. Our work also suggests a feasible strategy for treating ID by restoring astrocytic metabolic function.
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