负载聚多巴胺纳米颗粒的活性氧类响应型水凝胶调节炎症微环境保护神经元的体外研究
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军事科学院军事医学研究院,北京 100850

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中国科技创新2030-重大项目(2021ZD0201600,2021ZD0201604)资助。


In Vitro Study of ROS-responsive Hydrogel Loaded With Polydopamine Nanoparticles for Neuronal Protection by Regulating Inflammatory Microenvironment
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Academy of Military Medical Sciences , Academy of Military Sciences, Beijing 100850, China

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This work was supported by grants from the STI 2030-Major Projects (2021ZD0201600, 2021ZD0201604).

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    摘要:

    目的 脑缺血损伤后病灶微环境活性氧类(reactive oxygen species,ROS)过度蓄积引发氧化应激,进而加剧神经炎症级联反应与神经元凋亡。针对这一病理过程,本研究旨在构建负载聚多巴胺纳米颗粒(polydopamine nanoparticles, PDA NPs)的ROS响应型水凝胶,解决脑缺血损伤微环境下抗氧化与抗炎协同调控、药物时空精准递送的核心问题,通过体外模型系统评估该水凝胶的ROS响应释药特性及抗氧化、抗炎与神经保护作用,为脑缺血损伤的原位注射靶向治疗奠定基础。方法 采用氧化自聚合的方法制备PDA NPs,随后将其负载于由N1-(4-硼苄基)-N3-(4-硼苯基1,N1,N3,N3-四甲基丙烷-1,3-二铵(N1-(4-boronobenzyl)-N3-(4-boronophenyl)-N1,N1,N3,N3-tetramethylpropane-1,3-diaminium,TSPBA)和聚乙烯醇(polyvinyl alcohol,PVA)交联而成的ROS响应型水凝胶中。通过粒径分析、Zeta电位分析、扫描电子显微镜、透射电子显微镜及流变仪等表征聚多巴胺纳米颗粒及水凝胶的形貌、力学性能与ROS响应释药特性。在体外以HT22神经元为模型,借助CCK-8、活/死细胞染色(live/dead cell staining)实验验证生物相容性,构建氧葡萄糖剥夺/复氧模型(oxygen-glucose deprivation/reoxygenation,OGD/R)评估水凝胶ROS清除及抗神经元凋亡作用,结合免疫荧光染色、逆转录实时荧光定量聚合酶链反应(reverse transcription quantitative real-time polymerase chain reaction,RT-qPCR)及Transwell共培养,探究其对BV-2小胶质细胞极化的调控及间接神经保护效能。结果 制备的PDA NPs为粒径均一且带负电的球形纳米颗粒,兼具良好的生物相容性与抗氧化性能。制备的负载PDA NPs的ROS响应型水凝胶,可在ROS富集的微环境中响应ROS并释放PDA NPs,且表现出优异的抗氧化性能。体外细胞实验结果表明,该水凝胶可有效清除神经元OGD/R模型中过量产生的ROS,显著抑制神经元凋亡,同时能有效促进小胶质细胞向抗炎M2表型极化,进而显著降低共培养体系中受损神经元的凋亡水平。结论 本研究成功制备出可注射的负载PDA NPs的ROS响应型水凝胶,该材料可在ROS富集微环境中响应释放PDA NPs,兼具优异的抗氧化性能,并可以调控小胶质细胞极化、抑制炎症反应,通过抗氧化-抗炎协同策略实现了显著的体外神经保护效果。该水凝胶为聚多巴胺等生物活性材料的靶向递送提供了新策略,也为脑缺血损伤的原位注射治疗奠定了重要实验基础。

    Abstract:

    Objective Cerebral ischemic injury triggers a complex pathological cascade characterized by excessive reactive oxygen species (ROS) accumulation, persistent oxidative stress, and sustained neuroinflammation in the injured brain microenvironment. These events collectively drive mitochondrial dysfunction, microglial overactivation, pro-inflammatory cytokine release, and progressive neuronal apoptosis, ultimately leading to severe and irreversible neurological deficits. However, conventional therapeutic strategies face critical limitations, including poor blood-brain barrier penetration, insufficient local drug concentration, uncontrolled drug release, and off-target systemic side effects. To address this pathological process, we rationally designed and fabricated an injectable ROS-responsive hydrogel loaded with polydopamine nanoparticles (PDA NPs) for spatiotemporally controlled antioxidation, anti-inflammation, and neuroprotection in the ischemic injury microenvironment. The present study aimed to systematically characterize the physicochemical properties, ROS-responsive drug release behavior, biocompatibility, and neuroprotective efficacy of this composite hydrogel system in vitro.Methods PDA NPs were fabricated via oxidative self-polymerization. The ROS-responsive hydrogel was cross-linked using N1-(4-boronobenzyl)-N3-(4-boronophenyl)-N1,N1,N3,N3-tetramethylpropane-1, 3-diaminium (TSPBA) and polyvinyl alcohol (PVA). Morphology, particle size, Zeta potential, and structure of PDA NPs were characterized by dynamic light scattering (DLS), Zeta potential analysis, scanning electron microscopy (SEM), and transmission electron microscopy (TEM). Microstructure, rheological properties, shear-thinning behavior, and ROS-triggered release profiles of the hydrogel were examined by SEM and rheometry. Biocompatibility was evaluated using HT22 mouse hippocampal neurons with CCK-8 and live/dead staining. An oxygen-glucose deprivation/reoxygenation (OGD/R) model was established to simulate ischemic injury in vitro. ROS levels and neuronal apoptosis were detected by DHE staining and TUNEL assay. Microglial polarization and pro-inflammatory cytokine expression were analyzed using immunofluorescence and RT-qPCR in BV-2 microglia. Transwell co-culture was used to verify the indirect neuroprotection mediated by modulated microglia.Results Characterization results confirmed that the as-prepared PDA NPs were monodispersed spherical nanoparticles with uniform diameter and negative surface potential, demonstrating favorable dispersibility and robust ROS-scavenging activity. The TSPBA-PVA hydrogel exhibited a highly porous interconnected network, suitable mechanical strength, and obvious shear-thinning behavior, supporting its application as an injectable implant. More importantly, the hydrogel displayed typical ROS-responsive degradation and on-demand PDA NP release in a ROS-concentration-dependent manner. In vitro cellular experiments demonstrated that the PDA NP-loaded hydrogel possessed excellent biocompatibility with HT22 cells. In the OGD/R model, the hydrogel significantly reduced intracellular ROS accumulation and markedly suppressed neuronal apoptosis. Furthermore, the composite hydrogel effectively redirected BV-2 microglia from the pro-inflammatory M1 toward the anti-inflammatory M2 phenotypes, downregulated the expression of pro-inflammatory cytokines including TNF-α, IL-1β, and IL-6, and reduced inflammatory damage. Transwell co-culture assays further validated that M2-polarized microglia mediated by the hydrogel significantly enhanced the survival of OGD/R-injured HT22 neurons and attenuated apoptosis.Conclusion In this study, we successfully developed a novel injectable ROS-responsive hydrogel loaded with PDA NPs for synergistic antioxidative and anti-inflammatory neuroprotection. This intelligent hydrogel system enables ROS-triggered on-demand release of PDA NPs, efficiently scavenges excessive ROS, inhibits oxidative stress injury, modulates microglial polarization, and suppresses neuroinflammation, thereby exerting robust neuroprotective effects in vitro. This biomaterial platform provides a promising strategy for the targeted and controlled delivery of bioactive nanomaterials in the central nervous system diseases and establishes a solid experimental foundation for the development of in situ injectable therapies for ischemic brain injury.

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肖洋,刘伟,孙天一,沙川路,王春兰,王常勇.负载聚多巴胺纳米颗粒的活性氧类响应型水凝胶调节炎症微环境保护神经元的体外研究[J].生物化学与生物物理进展,2026,53(6):1699-1711 XIAO Yang, LIU Wei, SUN Tian-Yi, SHA Chuan-Lu, WANG Chun-Lan, WANG Chang-Yong.In Vitro Study of ROS-responsive Hydrogel Loaded With Polydopamine Nanoparticles for Neuronal Protection by Regulating Inflammatory Microenvironment[J]. Progress in Biochemistry and Biophysics,2026,53(6):1699-1711

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  • 收稿日期:2026-02-26
  • 最后修改日期:2026-05-30
  • 录用日期:2026-05-14
  • 在线发布日期: 2026-05-14
  • 出版日期: 2026-06-28
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