中国神经再生研究(英文版) ›› 2026, Vol. 21 ›› Issue (10): 4758-4768.doi: 10.4103/NRR.NRR-D-25-01091

• 综述:退行性病与再生 • 上一篇    下一篇

高迁移率族盒蛋白1及其翻译后修饰:神经退行性疾病发病机制中的分子调控

  

  • 出版日期:2026-10-15 发布日期:2026-06-12
  • 基金资助:
    湖北省自然科学基金杰出青年项目(2022CFA104),武汉市重点研发计划(2024020802030159),武汉市卫生健康委员会科学研究项目(WX23Q16),武汉市肺病医院基金(YNZZ202202)

High mobility group box 1 and its post-translational modifications: Molecular mechanisms underlying neurodegenerative disease pathogenesis

Jun Li1, #, Naming Wu2, #, Yifan Xiao3, 4, 5, Yiyuan Xia3, 4, 5, *   

  1. 1Wuhan Pulmonary Hospital, Wuhan Institute for Tuberculosis Control, Wuhan, Hubei Province, China; 
    2Department of Dermatology, Renmin Hospital of Wuhan University, Wuhan, Hubei Province, China; 
    3Hubei Key Laboratory of Cognitive and Affective Disorders, Jianghan University, Wuhan, Hubei Province, China; 
    4Department of Pathology and Pathophysiology, School of Medicine, Jianghan University, Wuhan, Hubei Province, China; 
    5Institute of Biomedical Sciences, School of Medicine, Jianghan University, Wuhan, Hubei Province, China
  • Online:2026-10-15 Published:2026-06-12
  • Contact: Yiyuan Xia, PhD, xyy@jhun.edu.cn.
  • Supported by:
    This work was supported by the Natural Science Foundation of Hubei Province for Distinguished Young Scholars, No. 2022CFA104 (to YiyuanX); the Key Research and Development Program of Wuhan, No. 2024020802030159 (to YiyuanX); the Scientific Research Projects of Wuhan Municipal Health Commission, No. WX23Q16 (to JL) and the Foundation of Wuhan Pulmonary Hospital, No. YNZZ202202 (to JL).

摘要:

高迁移率族盒1是一种动态核蛋白,当其从细胞释放时可作为损伤相关分子模式发挥作用,并在神经退行性疾病中具有关键作用。文章综述了影响高迁移率族盒蛋白1在神经炎症与神经元存活双重功能的相关翻译后修饰,包括乙酰化、磷酸化、氧化、S-亚硝基化、乳酸化及泛素化。这些修饰对调控高迁移率族盒蛋白1的亚细胞定位、释放过程及受体结合特异性具有关键作用。在阿尔茨海默病中,高迁移率族盒蛋白1通过Toll样受体4/核转录因子κB信号通路加剧病程。抑制高迁移率族盒蛋白1乙酰化可缓解神经炎症。帕金森病模型表明,Cys106位点的S-亚硝基化对高迁移率族盒蛋白1分泌至关重要,其通过激活小胶质细胞促进多巴胺能神经元退化。在多发性硬化症中,高迁移率族盒1通过抑制少突胶质细胞成熟及激活促炎通路阻碍髓鞘再生。相反,该蛋白能维持自噬与DNA修复功能,提示其具有保护作用。针对高迁移率族盒1的治疗策略展现出潜在疗效。甘草酸可抑制二硫键连接的高迁移率族盒1蛋白,SIRT激活剂能抑制乙酰化,抗高迁移率族盒1抗体则能中和细胞外同工型,从而改善临床前研究结果。然而,高迁移率族盒1的多功能性及缺乏特异性翻译后修饰生物标志物,为临床转化带来挑战。未来研究应致力于开发能穿透血脑屏障的选择性抑制剂,精准靶向有害形式的高迁移率族盒1,并建立基于翻译后修饰的早期检测生物标志物。因此,在神经退行性疾病中精确靶向高迁移率族盒1的翻译后修饰,可成为阻断神经炎症级联反应的同时维持神经保护功能的新策略。


https://orcid.org/0000-0001-7833-0497 (Yiyuan Xia)

关键词: 乙酰化, 阿尔茨海默病, α-突触核蛋白, 血脑屏障, 高迁移率族盒1蛋白, 多发性硬化症, 神经炎症性疾病, 帕金森病, RAGE, Toll样受体

Abstract:

High mobility group box 1 is a dynamic nuclear protein that acts as a damage-associated molecular pattern when released from cells and plays key roles in neurodegenerative diseases. This review comprehensively analyzes the related post-translational modifications that affect the dual functions of high mobility group box 1 in neuroinflammation and neuronal survival, including acetylation, phosphorylation, oxidation, S-nitrosylation, lactylation, and ubiquitination. Post-translational modifications play critical regulatory roles in high mobility group box 1 subcellular localization, release processes and the specificity of receptor binding. In Alzheimer’s disease, high mobility group box 1 exacerbates the disease through the Toll-like receptor 4/nuclear factor kappa B signaling pathway. Inhibition of high mobility group box 1 acetylation can alleviate neuroinflammation. Parkinson’s disease models indicate that the S-nitrosylation of Cys106 is essential for the secretion of high mobility group box 1, which contributes to dopaminergic degeneration through the activation of microglia. In multiple sclerosis, high mobility group box 1 obstructs remyelination by inhibiting the maturation of oligodendrocytes and activating pro-inflammatory pathways. In contrast, high mobility group box 1 can maintain autophagy and DNA repair functions, suggesting its protective role. Therapeutic strategies targeting high mobility group box 1 show potential benefits. Glycyrrhizic acid inhibits disulfide-linked high mobility group box 1, SIRT activators suppress acetylation, and anti-high mobility group box 1 antibodies neutralize extracellular isoforms, thereby improving the results of preclinical studies. However, the diverse functions of high mobility group box 1 and the lack of post-translational modification-specific biomarkers present challenges for clinical translation. Future research should aim to create selective inhibitors that can cross the blood-brain barrier to target harmful forms of high mobility group box 1, and establish post-translational modification-based biomarkers for early detection. This review emphasizes that accurately targeting of high mobility group box 1 post-translational modifications in neurodegenerative diseases could be a new approach that can interrupt neuroinflammatory cascades while maintaining neuroprotective functions.

Key words: acetylation, Alzheimer’s disease, alpha-synuclein, blood–brain barrier, high mobility group box 1 protein, multiple sclerosis, neuroinflammatory diseases, Parkinson’s disease, RAGE, Toll-like receptors