中国神经再生研究(英文版) ›› 2026, Vol. 21 ›› Issue (10): 5020-5034.doi: 10.4103/NRR.NRR-D-25-00234

• 原著:退行性病与再生 • 上一篇    下一篇

 靶向纳米囊泡递送右美托咪定调节小胶质细胞溶酶体功能以改善神经退行性病理

  

  • 出版日期:2026-10-15 发布日期:2026-06-15

Targeted nanovesicular delivery of dexmedetomidine modulates microglial lysosomal function via Sirt3 signaling to ameliorate neurodegenerative pathology

Yuan Zhang, Hui Jiang, Fuqing Zhang, Jinghua Liao*   

  1. Department of Anesthesiology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, Fujian Province, China
  • Online:2026-10-15 Published:2026-06-15
  • Contact: Jinghua Liao, MD, fjzlyyliaojinghua@163.com.
  • Supported by:
    This study was supported by the Natural Science Foundation of Fujian Province, No. 2023J011234 (to JL).

摘要:

小胶质细胞中的神经炎症和溶酶体功能障碍日益被认为是阿尔茨海默病的关键病理驱动因素,但现有抗炎或神经保护剂在脑递送效率和细胞特异性方面存在局限。为应对这些挑战,实验提出基于细胞外囊泡的新型纳米治疗方案,实现对小胶质细胞功能的靶向调控;探索了基于功能化适配体并包封右美托咪定的细胞外囊泡新型纳米治疗平台在缓解阿尔茨海默病小胶质细胞相关神经炎症中的潜力。通过阿尔茨海默病小鼠模型评估了该平台对小胶质细胞溶酶体功能、神经炎症及认知表现的影响。采用胆固醇偶联PEG 2000适配体修饰小胶质细胞来源的细胞外纳米囊泡。通过超声辅助法将右美托咪定载入纳米囊泡(ZH-1c-ENVs)。利用动态光散射和透射电子显微镜表征颗粒尺寸、形态及药物释放动力学。体外实验评估了小胶质细胞摄取与细胞毒性,体内生物分布则通过小鼠模型进行验证。通过蛋白质组学、Western印迹、定量PCR及免疫荧光技术,分析了ZH-1c-ENVs@Dex对小胶质细胞炎症反应、溶酶体活性及淀粉样β蛋白清除的影响。采用莫里斯水迷宫评估认知功能改善情况。ZH-1c-ENVs@Dex实现高效药物包封,成功穿越血脑屏障,将地塞米松选择性递送至小胶质细胞。蛋白质组学分析揭示Sirtuin 3Sirt3)信号通路被激活,该通路可减轻小胶质细胞炎症并增强溶酶体功能。这些变化促进了体外淀粉样β蛋白清除并缓解了体内神经炎症。治疗显著改善了阿尔茨海默病小鼠的认知表现。该系统通过调节Sirt3活性、恢复小胶质细胞功能及改善认知结局,为阿尔茨海默病治疗提供了极具前景的纳米药物策略。本研究为适配体修饰的细胞外囊泡作为神经退行性疾病精准纳米药物实现临床转化奠定了基础。ZH-1c-ENVs@Dex系统整合临床安全组分,高效穿越血脑屏障并选择性靶向小胶质细胞,展现出治疗阿尔茨海默病及相关神经退行性疾病的卓越潜力。该可扩展且高度生物相容的纳米囊泡平台,为神经炎症与神经退行性疾病提供了具有重大治疗前景的临床转化策略。


https://orcid.org/0009-0004-0102-7288 (Jinghua Liao)

关键词: 阿尔茨海默病, β淀粉样蛋白, 适配体, 认知障碍, 右美托咪定, 药物递送, 细胞外纳米囊泡, 溶酶体, 小胶质细胞, 神经炎症, Sirtuin 3

Abstract: Neuroinflammation and lysosomal dysfunction in microglia are increasingly recognized as critical pathological drivers of Alzheimer’s disease, yet current anti-inflammatory or neuroprotective agents have limited brain delivery efficiency and cellular specificity. To address these challenges, this study proposes a novel nanotherapeutic paradigm based on extracellular nanovesicles (ENVs) for targeted modulation of microglial function. This research explored the potential of a novel nanotherapeutic platform involving ENVs functionalized with aptamers and encapsulating dexmedetomidine (Dex) to alleviate microglia-associated neuroinflammation in Alzheimer’s disease. The effects on microglial lysosomal function, neuroinflammation, and cognitive performance were evaluated in an Alzheimer’s disease mouse model. Cholesterol-conjugated PEG 2000 aptamers were used to modify extracellular nanovesicles derived from microglial cells. The nanovesicles (ZH-1c-ENVs) were loaded with Dex using ultrasound-assisted methods. Particle size, morphology, and drug release kinetics were characterized using dynamic light scattering and transmission electron microscopy. In vitro assays assessed microglial cell uptake and cytotoxicity, while in vivo biodistribution was evaluated in a mouse model. Proteomics, western blotting, quantitative reverse transcription-polymerase chain reaction, and immunofluorescence were employed to analyze the effects of ZH-1c-ENVs@Dex on microglial inflammation, lysosomal activity, and amyloid-beta clearance. Cognitive function improvements were assessed using the Morris water maze. ZH-1c-ENVs@Dex achieved efficient drug encapsulation and crossed the blood–brain barrier, delivering Dex selectively to microglial cells. Proteomic analysis revealed activation of the Sirtuin 3 signaling pathway, which reduced microglial inflammation and enhanced lysosomal function. These changes promoted amyloid-beta clearance in vitro and alleviated neuroinflammation in vivo. Treatment significantly improved cognitive performance in Alzheimer’s disease mice. The ZH-1c-ENVs@Dex system represents a promising nanomedicine strategy for Alzheimer’s disease therapy by modulating Sirtuin 3 activity, restoring microglial function, and improving cognitive outcomes. This study lays the groundwork for clinical translation of aptamer-modified ENVs as precision nanomedicines for neurodegenerative diseases. The ZH-1c-ENVs@Dex system integrates clinically safe components, efficiently traverses the blood–brain barrier, and selectively targets microglia, exhibiting remarkable potential for the treatment of Alzheimer’s disease and related neurodegenerative disorders. This scalable and highly biocompatible nanovesicular platform offers a clinically translatable strategy with substantial therapeutic promise for neuroinflammatory and neurodegenerative diseases.

Key words: Alzheimer’s disease, amyloid-beta, aptamer, cognitive impairment, dexmedetomidine, drug delivery, extracellular nanovesicles, lysosome, microglia, neuroinflammation, Sirtuin 3