黑素体
白癜风
微泡
化学
黑素细胞
细胞生物学
透明质酸
氧化应激
黑色素
炎症
毛囊
再生(生物学)
药物输送
生物相容性材料
角质形成细胞
糖基化
纳米医学
皮肤老化
再生医学
活性氧
抗氧化剂
细胞保护
外体
发病机制
癌症研究
趋化因子
疤痕
药理学
丝素
纳米技术
作者
Luyue Chang,Junqi Xiang,Ting Zhang,Yanna Ban,Lihua Kang,Yujuan Wu,Li Du,Shasha Zhu,Yao Gong,Xi Zhang,Li Wang,Jin Chen,Wei Cheng,Jie Xu
标识
DOI:10.1186/s12951-026-04168-w
摘要
Vitiligo pathogenesis involves progressive melanocyte loss and keratinocyte dysfunction, which are driven primarily by oxidative stress resulting from excessive ROS accumulation. We engineered a temporally controlled hydrogel microneedle system that integrates ginseng-derived exosomes (G-Exos) with biomimetic polydopamine nanoparticles (PDA@PEGs) to concurrently target the pathogenic triad of vitiligo, including oxidative stress, inflammation, and melanocyte deficiency. This system employs methacrylated hyaluronic acid (HAMA) hydrogel microneedles for rapid PDA@PEG release while utilizing glyceryl monostearate micelles to achieve matrix metalloproteinase-9 (MMP-9)-responsive G-Exo release at inflammatory foci, enabling intelligent spatiotemporal control. Functionally, G-Exos help restore redox homeostasis and suppress inflammation through bioactive constituents, thereby protecting melanocytes and enhancing keratinocyte proliferation. Moreover, PDA@PEG promotes repigmentation through the dual mechanisms of exogenous melanin deposition and endogenous melanogenesis stimulation. In murine models, this strategy achieves significant repigmentation within 3 weeks by activating follicular stem cells, upregulating melanogenic markers (Tyr/Mc1r), increasing antioxidant defense (ApoE), and suppressing inflammatory signaling (IL-17). This natural-biomimetic hybrid design leverages biocompatible materials to co-target multiple pathological axes, offering a novel self-adaptive approach for microenvironmental rehabilitation in vitiligo.
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