Cai Jiale, Zheng Xinya, Luo Xiongbo, Cui Wenli, Ma Xinrui, Xu Shuyi, Fu Lanya, Zhang Jiaqi, Xu Yizhou, Li Yunlun, He Ye, Wang Xianghai, Guo Jiasong
Department of Histology and Embryology, Guangdong Provincial Key Laboratory of Construction and Detection in Tissue Engineering, National Demonstration Center for Experimental Education, School of Basic Medical Sciences, Department of Neurosurgery, Institute of Brain Diseases, Nanfang Hospital, Southern Medical University, Guangzhou, Guangdong Province, China.
Key Laboratory of Mental Health of the Ministry of Education, Guangdong-Hong Kong-Macao Greater Bay Area Center for Brain Science and Brain-Inspired Intelligence, Guangdong Province Key Laboratory of Psychiatric Disorders, Guangzhou, Guangdong Province, China.
Cell Death Dis. 2025 Aug 22;16(1):636. doi: 10.1038/s41419-025-07947-9.
RhoA, a small GTPase, plays a pivotal role in various diseases, including spinal cord injury (SCI). Although RhoA inhibition has been traditionally viewed as beneficial for SCI repair, recent clinical trials of RhoA inhibitors in SCI have failed to show significant therapeutic efficacy, suggesting functional heterogeneity across different cell types. The role of RhoA in microglia, the key immune cells involve in SCI, remains poorly understood. Using microglial RhoA conditional knockout mice, this study demonstrated that RhoA deficiency in microglia attenuates the morphological and functional repair of the SCI mice, and impairs the microglial biofunctions of proliferation, phagocytosis, and migration. Single-cell RNA sequencing, bulk RNA sequencing, and metabolomics revealed that RhoA deficiency can attenuate the microglial glycolytic enzyme expression, ATP production, ECAR and OCR levels through the Arhgap25/HIF-1α pathway. Overall, this is the first study to demonstrate that microglial RhoA is essential for SCI repair, the Arhgap25/HIF-1α pathway mediated glucose metabolism might enlighten a novel insight to enrich the understanding on the complex roles of RhoA and microglia in SCI repair. Moreover, this study highlights the importance of considering cell-specific roles of RhoA in SCI repair and provides a foundation for developing targeted therapies aimed at microglial metabolic reprogramming. Schematic representation of the proposed mechanism by which microglial RhoA regulates glycolytic adaptation and spinal cord repair. (Created by Figdraw.com with permission of # wgq=r7c74c).
小GTP酶RhoA在包括脊髓损伤(SCI)在内的各种疾病中起关键作用。尽管传统上认为抑制RhoA对脊髓损伤修复有益,但最近RhoA抑制剂在脊髓损伤中的临床试验未能显示出显著的治疗效果,这表明不同细胞类型存在功能异质性。RhoA在小胶质细胞(脊髓损伤中关键的免疫细胞)中的作用仍知之甚少。本研究使用小胶质细胞RhoA条件性敲除小鼠,证明小胶质细胞中RhoA的缺乏会减弱脊髓损伤小鼠的形态和功能修复,并损害小胶质细胞的增殖、吞噬和迁移等生物功能。单细胞RNA测序、大量RNA测序和代谢组学分析表明,RhoA缺乏可通过Arhgap25/HIF-1α途径减弱小胶质细胞糖酵解酶的表达、ATP生成、细胞外酸化率(ECAR)和氧消耗率(OCR)水平。总体而言,这是第一项证明小胶质细胞RhoA对脊髓损伤修复至关重要的研究,Arhgap/HIF-1α途径介导的葡萄糖代谢可能为深入理解RhoA和小胶质细胞在脊髓损伤修复中的复杂作用提供新的见解。此外,本研究强调了考虑RhoA在脊髓损伤修复中细胞特异性作用的重要性,并为开发针对小胶质细胞代谢重编程的靶向治疗提供了基础。小胶质细胞RhoA调节糖酵解适应和脊髓修复的机制示意图。(由Figdraw.com创建并获许可#wgq=r7c74c)