Jin Qiling, Wang Ying, Lei Wenwen, Zhou Shuyao, Zhang Tingting, Lu Keqiang, Zhao Lingzhi, Zhong Wenying, Xu Keming
Department of Chemistry, China Pharmaceutical University, Nanjing 210009, China.
State Key Laboratory of Natural Medicine, The School of Basic Medical Sciences and Clinical Pharmacy, China Pharmaceutical University, Nanjing 211198, China.
Biomater Sci. 2025 Jun 25;13(13):3662-3677. doi: 10.1039/d5bm00371g.
Achieving optimal therapeutic outcomes with microneedle (MN) technology requires a high drug payload, tunable mechanical strength, and robust drug stability-key attributes in demand for transdermal drug delivery. This work introduces a core-shell structured biphasic MN system designed to combat melanoma with "three-in-one" therapeutic power. The MN base, made of water-insoluble poly(methyl methacrylate), forms a biphasic interface with the needle body. Acting as a "shield", the base effectively prevents drug migration and enhances the drug-loading capacity of the needle body. The needle body features a core-shell design, with a shell composed of photo-cross-linked hydrogel. This shell serves as a "spear" to optimize mechanical properties of MNs, efficiently piercing the skin barrier. Meanwhile, the core section of MN, constructed from hyaluronic acid, acts as a "bow and arrow" to preserve the bioactivity of chlorin e6 nanoparticles for launching an effective "attack" on melanoma cells through photodynamic therapy. The MN system demonstrates exceptional mechanical performance and enhanced anticancer efficacy against melanoma cells both and . In summary, this study introduces a new "elite squad" strategy that integrates three critical functionalities into a single MN platform, offering significant potential for treating melanoma and other malignant skin conditions.
利用微针(MN)技术实现最佳治疗效果需要高药物负载量、可调节的机械强度和强大的药物稳定性,这些都是透皮给药所需要的关键属性。这项工作引入了一种核壳结构的双相微针系统,旨在以“三合一”治疗能力对抗黑色素瘤。由水不溶性聚甲基丙烯酸甲酯制成的微针基部与针体形成双相界面。基部作为“盾牌”,有效地防止药物迁移并提高针体的载药能力。针体采用核壳设计,外壳由光交联水凝胶组成。该外壳作为“矛头”,优化微针的机械性能,有效穿透皮肤屏障。同时,微针的核心部分由透明质酸构成,充当“弓箭”,保留氯e6纳米颗粒的生物活性,通过光动力疗法对黑色素瘤细胞发动有效“攻击”。该微针系统在体内和体外均表现出卓越的机械性能和增强的抗黑色素瘤细胞抗癌功效。总之,本研究引入了一种新的“精英团队”策略,将三种关键功能整合到单个微针平台中,为治疗黑色素瘤和其他恶性皮肤疾病提供了巨大潜力。