近红外光动力疗法与掺杂 S 或 N 碳点的银金属有机框架协同促进靶向伤口愈合

Maja D. Nešić, Iva A. Popović, Jelena Žakula, Lela Korićanac, Jelena Filipović Tričković, Ana Valenta Šobot, Maria Victoria Jiménez, Manuel Algarra, Tanja Dučić, Milutin Stepić
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摘要

文献数据强调,纳米粒子可能会改善近红外线(NIR)对伤口愈合的有利影响。本研究通过成纤维细胞活力测试、划痕实验、生化分析以及同步辐射傅立叶变换红外光谱(SR-FTIR)细胞光谱和成像,探讨了近红外光与银金属有机框架及掺氮和掺硫碳点(分别为 AgMOFsN-CDs 和 AgMOFsS-CDs)协同促进伤口愈合的机制。我们的研究结果表明,AgMOFsN-CDs 和近红外光的联合处理可显著提高细胞活力,使细胞活力提高近 150%,并促进细胞增殖,同时降低白细胞介素-1 水平,这表明存在抗炎反应。SR-FTIR 光谱显示,这种联合处理会导致独特的蛋白质改变,包括增加 α 螺旋结构和减少交叉β。此外,联合处理还能促进蛋白质合成。所观察到的变化背后的机制可能是 AgMOFsN-CDs 中的 N-CD 与蛋白质之间的电荷特异性相互作用,由于纳米复合材料的光学特性,这种相互作用在近红外光下得到了增强。值得注意的是,体外划痕试验中的伤口完全闭合完全是通过近红外和 AgMOFsN-CDs 的联合治疗实现的,这表明 AgMOFsN-CDs 与近红外光动力疗法的联合应用在再生纳米医学和组织工程中大有可为。
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Synergistic Enhancement of Targeted Wound Healing by Near-Infrared Photodynamic Therapy and Silver Metal–Organic Frameworks Combined with S- or N-Doped Carbon Dots
The literature data emphasize that nanoparticles might improve the beneficial effects of near-infrared light (NIR) on wound healing. This study investigates the mechanisms of the synergistic wound healing potential of NIR light and silver metal–organic frameworks combined with nitrogen- and sulfur-doped carbon dots (AgMOFsN-CDs and AgMOFsS-CDs, respectively), which was conducted by testing the fibroblasts viability, scratch assays, biochemical analysis, and synchrotron-based Fourier transform infrared (SR-FTIR) cell spectroscopy and imaging. Our findings reveal that the combined treatment of AgMOFsN-CDs and NIR light significantly increases cell viability to nearly 150% and promotes cell proliferation, with reduced interleukin-1 levels, suggesting an anti-inflammatory response. SR-FTIR spectroscopy shows this combined treatment results in unique protein alterations, including increased α-helix structures and reduced cross-β. Additionally, protein synthesis was enhanced upon the combined treatment. The likely mechanism behind the observed changes is the charge-specific interaction of N-CDs from the AgMOFsN-CDs with proteins, enhanced by NIR light due to the nanocomposite’s optical characteristics. Remarkably, the complete wound closure in the in vitro scratch assay was achieved exclusively with the combined NIR and AgMOFsN-CDs treatment, demonstrating the promising application of combined AgMOFsN-CDs with NIR light photodynamic therapy in regenerative nanomedicine and tissue engineering.
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