中国神经再生研究(英文版) ›› 2026, Vol. 21 ›› Issue (10): 4854-4864.doi: 10.4103/NRR.NRR-D-25-00554

• 综述:神经损伤修复保护与再生 • 上一篇    下一篇

星形胶质细胞转分化神经元的治疗潜力

  

  • 出版日期:2026-10-15 发布日期:2026-06-12
  • 基金资助:
    国家自然科学基金(82271371, 82260367),广西医疗卫生适宜技术开发与应用项目(S2021107),广西医科大学第一附属医院临床研究"攀登"计划(YYZS2021002),广西医科大学先进创新团队和兴湖/星湖学者计划,广西壮族自治区科技创新重点基地项目

Therapeutic potential of astrocyte transdifferentiated neurons

Xiaojun Liang1, #, Rongxing Qin1, #, Qingchun Qin1, 2, Wei Xu1, 2, Hongyu Xu1, Xinyu Lai1, Lingduo Shao1, Caiqi Li1, Minshan Xie1, Xiaoyuan Xiong1, Qi Tang1, Li Chen1, 2, *   

  1. 1Department of Neurology, The First Affiliated Hospital of Guangxi Medical University, Nanning, Guangxi Zhuang Autonomous Region, China; 
    2National Center for International Research of Biological Targeting Diagnosis and Therapy (Guangxi Key Laboratory of Biological Targeting Diagnosis and Therapy Research), Guangxi Medical University, Nanning, Guangxi Zhuang Autonomous Region, China
  • Online:2026-10-15 Published:2026-06-12
  • Contact: Li Chen, PhD, chenli@gxmu.edu.cn.
  • Supported by:
    This work was supported by the National Natural Science Foundation of China, Nos. 82271371, 82260367; the Guangxi Medical and Health Appropriate Technology Development and Application Project, No. S2021107; the Clinical Research “Climbing” Program of The First Affiliated Hospital of Guangxi Medical University, No. YYZS2021002; the Advanced Innovation Team and Xinghu Scholar Program of Guangxi Medical University; Medical and Health Appropriate Technology Development and Promotion Application Project of Guangxi Zhuang Autonomous Region, No. S2021107 (all to LC).

摘要:

成年哺乳动物中枢神经系统神经元在损伤后无法再生导致的永久性功能缺损,构成了重大的临床挑战。传统干细胞移植策略持续面临伦理顾虑与免疫排斥的双重障碍,这一困境促使再生医学研究转向靶向内源性星形胶质细胞。凭借其固有可塑性、中枢神经系统广泛分布特性及神经发育谱系亲和性,星形胶质细胞成为原位神经元再生的独特靶点。文章阐释了调控星形胶质细胞转分化的核心调控网络,识别出Wnt信号通路等十条关键信号通路,共同构成级联调控系统。通过定向过表达NeuroD1、Ascl1或Neurog2等转录因子可直接诱导神经元表型转化。同时,丙戊酸与CHIR99021等小分子化合物通过抑制骨形态发生蛋白信号轴激活内源性神经发生程序。值得注意的是,通过抑制微RNA 124/REST(miR-124/REST)反馈回路,聚嘧啶序列结合蛋白1(PTB)基因沉默显著提升了转分化效率。从转化医学角度看,基于形态学、分子标记物和电生理特性的多维评估体系已展现出显著的治疗潜力。在脑卒中模型中,NeuroD1介导的转分化恢复了约30%的皮质神经元缺失,并改善运动协调能力——通过食物颗粒取食、网格行走及圆柱测试表现优于对照组得到验证。脊髓损伤研究显示,SOX2诱导的谷氨酸能神经元使胶质瘢痕密度降低约25%,在维持瘢痕支撑结构的同时允许再生轴突穿行。在神经退行性疾病领域,PTB抑制技术在帕金森病模型中成功培育出功能成熟的多巴胺能神经元,并重建黑质纹状体通路。阿尔茨海默病模型中,腺相关病毒递送的NeuroD1诱导全脑神经回路重塑,在皮质和海马区广泛生成50万个新神经元,同时伴随认知功能改善。当前技术限制包括腺相关病毒载体的脱靶效应,其引发非特异性基因表达,需通过Cre-loxP谱系追踪进行严格验证。转分化效率亦受区域微环境显著影响:灰质星形胶质细胞转化率高于白质区域,氧化应激会增加新生神经元凋亡率。临床转化还受制于递送系统安全性及衰老组织微环境(其中转化生长因子β1水平常升高)。值得期待的是,铁死亡抑制剂可使转化细胞存活率近乎翻倍,为缓解氧化损伤提供了新策略。现有证据表明,星形胶质细胞转分化可通过内源性修复机制实现多种疾病模型中的神经功能恢复。未来研究应聚焦于:开发具有时空精度的光遗传诱导载体;采用非病毒递送系统降低载体相关风险;结合非人灵长类动物的长期安全性验证与单细胞多组学技术,推动个性化再生疗法的临床转化。


https://orcid.org/0000-0002-9478-6432 (Li Chen)

关键词: 阿尔茨海默病, 肌萎缩侧索硬化症, 细胞转分化, 亨廷顿病, 缺血性卒中, 神经系统疾病, 帕金森病, ptbp1蛋白, 小分子药物, 脊髓损伤, 转录因子

Abstract: The permanent functional deficits resulting from the inability of adult mammalian central nervous system neurons to regenerate after injury present a significant clinical challenge. While traditional stem cell transplantation strategies continue to encounter ethical concerns and the risk of immune rejection, this impasse has shifted regenerative medicine research toward targeting endogenous astrocytes. Due to their intrinsic plasticity, widespread distribution throughout the central nervous system, and affinity for neurodevelopmental lineage, astrocytes are a unique target for in situ neuronal regeneration. This review systematically elucidates the core regulatory network governing astrocyte transdifferentiation, identifying 10 key signaling pathways, such as Wnt signaling pathway, that form a cascade regulatory system. Directed overexpression of transcription factors such as NeuroD1, Ascl1, or Neurog2 can directly initiate neuronal phenotypic conversion. Meanwhile, small molecule compounds such as valproic acid combined with CHIR99021 activate endogenous neurogenic programs by inhibiting the bone morphogenetic protein signaling axis. Notably, polypyrimidine tract binding protein 1 (PTB) gene silencing significantly enhances transdifferentiation efficiency by suppressing the microRNA 124/re1 silencing transcription factor (miR-124/REST) feedback loop. From a translational perspective, a multidimensional evaluation system based on morphological, molecular marker, and electrophysiological properties has demonstrated considerable therapeutic potential. In stroke models, NeuroD1-mediated transdifferentiation replenished approximately 30% of lost cortical neurons and improved motor coordination, evidenced by enhanced performance in food pellet retrieval, grid walking, and cylinder tests compared with controls. In spinal cord injury studies, SOX2-induced glutamatergic neurons moderately reduced glial scar density by about 25%, permitting regenerating axons to pass through while preserving the supportive structure of scar. In neurodegenerative contexts, PTB inhibition yielded functionally mature dopaminergic neurons and reconstructed nigrostriatal pathways in Parkinson’s disease models. In Alzheimer’s disease models, adeno-associated virus-delivered NeuroD1 induced whole-brain neural circuit remodeling, generating 500,000 new neurons widely distributed across the cortex and hippocampus, accompanied by improved cognitive performance. Current technical limitations include off-target effects of adeno-associated virus vectors, which cause nonspecific gene expression and require rigorous validation via Cre-loxP lineage tracing. Transdifferentiation efficiency is also highly influenced by regional microenvironments: gray matter astrocytes show higher conversion rates than those in white matter, and oxidative stress increases apoptosis among newly generated neurons. Clinical translation is further constrained by the safety of delivery systems and the aging tissue microenvironment, where transforming growth factor beta 1 is often elevated. Ferroptosis inhibitors have been shown to nearly double the survival rate of transdifferentiated cells, offering a novel strategy to mitigate oxidative damage. Based on current evidence, astrocyte transdifferentiation enables neural functional recovery across multiple disease models through endogenous repair mechanisms. Future advances should focus on optogenetically inducible vectors for spatiotemporal precision, non-viral delivery systems to mitigate vector-related risks, and integration of long-term safety validation in non-human primates with single-cell multi-omics technologies to facilitate the clinical translation of personalized regenerative therapies.

Key words: Alzheimer’s disease, amyotrophic lateral sclerosis, cell transdifferentiation, Huntington’s disease, ischemic stroke, nervous system diseases, Parkinson’s disease, ptbp1 protein, small molecule, spinal cord injury, transcription factors