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Published on: May 22, 2020
Morphology-tailored polydopamine@PtMn nanomaterials for laser-assisted tumor therapy
Guoyu Wu1, Sirun Duo2,3, Huina Zhu1
1Jiangxi Province Key Laboratory of Surface Engineering, School of Materials and Energy, Jiangxi Science and Technology Normal University, Nanchang, 330013, People's Republic of China. wmgao@163.com.
Abstract:
Laser-assisted tumor therapy can be complemented by redox-active nanomaterials, but the influence of carrier morphology on metal loading and light-to-heat conversion remains insufficiently understood. Herein, spherical PDA@PtMn and hollow FPDA@PtMn nanocomposites were constructed to evaluate how nanoscale PDA morphology regulates PtMn loading, interfacial structure, photothermal conversion, and laser-assisted antitumor activity. Compared with spherical PDA, hollow FPDA possessed a higher specific surface area and more accessible binding sites, resulting in increased Pt/Mn loading and improved exposure of PtMn components. Consequently, FPDA@PtMn displayed enhanced H2O2/TMB oxidation response, a larger GSH-related optical response, and higher photothermal conversion efficiency under 808 nm laser irradiation. Cellular experiments further confirmed that FPDA@PtMn promoted nanomaterial uptake and laser-assisted 4T1 cell killing. In 4T1 tumor-bearing mice, FPDA@PtMn with 808 nm irradiation effectively inhibited tumor growth without obvious pathological damage in major organs. These results indicate that nanoscale morphology engineering of PDA-based carriers can regulate PtMn loading, accessible interfacial characteristics, photothermal behavior, and laser-assisted antitumor performance.

