Astrocytic metabolic reprogramming is an adaptation of metabolic patterns to meet increased energy demands, although the role after spinal cord injury (SCI) remains unclear. Analysis of single-cell RNA sequencing (scRNA-seq) data identified an increase in astrocytic glycolysis, while PFKFB3, a key regulator of glycolytic flux, was significantly upregulated following SCI. Loss of PFKFB3 in astrocytes prohibited neuronal energy supply and enhanced neuronal ferroptosis in vitro and expanded infiltration of CD68(+) macrophages/microglia, exacerbated neuronal loss, and hindered functional recovery in vivo after SCI. Mechanistically, deubiquitinase UCHL1 plays a crucial role in stabilizing and enhancing PFKFB3 expression by cleaving K48-linked ubiquitin chains. Genetic deletion of Uchl1 inhibited locomotor recovery after SCI by suppression of PFKFB3-induced glycolytic reprogramming in astrocytes. Furthermore, the UCHL1/PFKFB3 axis increased lactate production, leading to enhanced histone lactylation and subsequent transcription of Uchl1 and several genes related to glycolysis, suggesting a glycolysis/H4K8la/UCHL1 positive feedback loop. These findings help to clarify the role of the UCHL1/PFKFB3/H4K8la loop in modulation of astrocytic metabolic reprogramming and reveal a potential target for treatment of SCI.
Metabolic reprogramming in astrocytes prevents neuronal death through a UCHL1/PFKFB3/H4K8la positive feedback loop.
星形胶质细胞的代谢重编程通过 UCHL1/PFKFB3/H4K8la 正反馈回路防止神经元死亡
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作者:Xiong Junjun, Ge Xuhui, Pan Dishui, Zhu Yufeng, Zhou Yitong, Gao Yu, Wang Haofan, Wang Xiaokun, Gu Yao, Ye Wu, Teng Honglin, Zhou Xuhui, Wang Zheng, Liu Wei, Cai Weihua
| 期刊: | Cell Death and Differentiation | 影响因子: | 15.400 |
| 时间: | 2025 | 起止号: | 2025 Jul;32(7):1214-1230 |
| doi: | 10.1038/s41418-025-01467-x | 研究方向: | 代谢、神经科学、细胞生物学 |
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