上睑下垂
透皮
特应性皮炎
下调和上调
纳米载体
医学
串扰
程序性细胞死亡
化学
药理学
癌症研究
细胞
炎症
基因沉默
免疫系统
治疗效果
表皮(动物学)
作者
Pian Yu,Chi Fang,Zhisheng Luo,Lu Hao,Kaixuan Li,Rongxuan Yan,Sihui Ma,Guanming Wang,Qiaozhi Cao,Jie Dong,Xiang Chen,Jie Li,P T Liu,Shuo Hu,Cong Peng
标识
DOI:10.1186/s12951-026-04533-9
摘要
BACKGROUND: Atopic dermatitis (AD) is a common chronic inflammatory skin disorder characterized by epidermal barrier dysfunction and immune dysregulation, yet effective long-term therapies are limited. Although regulated cell death has been linked to AD, the involvement of copper-dependent cell death (cuproptosis) and its therapeutic relevance in AD have not been explored. RESULTS: Herein, we identify aberrant epidermal upregulation of the copper transporter SLC31A1 as a driver of copper overload and cuproptosis in keratinocytes, which in turn promotes GSDMA-dependent pyroptosis through an α-ketoglutarate (α-KG)/H3K9me3 epigenetic mechanism. To target this pathway, we developed a dual-functional microneedle system composed of calcium phosphate nanoparticles delivering Slc31a1 siRNA and embedded within Bletilla striata polysaccharide microneedles (CaP-siSlc31a1@BSP). This platform enables efficient transdermal gene silencing while BSP simultaneously suppresses STAT3/GSDMA signaling and inflammation. In MC903-induced AD-like mice, CaP-siSlc31a1@BSP markedly alleviated skin inflammation, epidermal hyperplasia and pruritus, accompanied by reduced Th2/Th17 responses. CONCLUSIONS: Our study reveals a previously unrecognized cuproptosis-pyroptosis axis in AD and establishes SLC31A1 as a promising therapeutic target. The CaP-siSlc31a1@BSP microneedle offers a synergistic drug-gene transdermal strategy with strong potential for AD treatment.
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