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Updated: Sep 24, 2026

Polymeric Microneedle Array Fabrication by Photolithography
Published on: November 17, 2015
Self-Oxygenating Microneedle Patches Enabled by Black Phosphorus Nanocomposites for Sequential
Lin He1, Yan Zhou1, Mingjian Chen1
1State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering, College of Biology, Key Laboratory for Bio-Nanotechnology and Molecule Engineering of Hunan Province, Hunan University, Changsha410082, China.
Abstract:
Melanoma is a highly aggressive skin cancer with limited therapeutic efficacy under conventional monotherapy. Synergistic photothermal/photodynamic therapy (PTT/PDT) offers a promising therapeutic strategy, yet its sequential application remains challenging due to inadequate transdermal drug delivery, tumor hypoxia, and insufficient spatiotemporal control. Herein, we proposed a self-oxygenating microneedle (MN) patch for sequential PTT/PDT of melanoma by loading multifunctional black phosphorus (BP) nanocomposites into a hyaluronic acid (HA) matrix. Specifically, the multifunctional BP nanocomposites, denoted as CaO2/BP@PDA, were rationally engineered on photothermally and photodynamically active BP nanosheets via the integration of oxygen-generating calcium peroxide (CaO2) and a protective layer of polydopamine (PDA). Under sequential near-infrared (NIR) irradiation at 808 nm and 660 nm, the CaO2/BP@PDA provided sustained oxygen generation and exhibited synergistic PTT/PDT effects, achieving a high photothermal conversion efficiency (η = 42.26%) and a ∼2-fold enhancement in PDT efficacy compared with bare BP. Furthermore, the MN platform could enable efficient transdermal delivery and intratumoral accumulation. In vivo evaluation in a mouse melanoma model demonstrated that the CaO2/BP@PDA MN patches, combined with self-oxygenation and controllable light irradiation, could induce mild photothermia and enhanced reactive oxygen species (ROS) generation, achieving ∼97% melanoma inhibition without evident systemic toxicity. Mechanistically, the programmable PTT/PDT mediated by the CaO2/BP@PDA MN patches could amplify stress signaling, and drive metabolic disruption and apoptotic activation, ultimately leading to melanoma cell death. With these features, the proposed MN patches demonstrated effective sequential PTT/PDT against melanoma, highlighting their potential for clinical translation.
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