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介孔多巴胺中配位驱动原位生长的过氧化铜具有自供应的 HO,用于协同增强 PTT/CDT 抗菌治疗和伤口愈合。

Coordination-Driven in Situ Grown Copper Peroxide in Mesoporous Dopamine with Self-Supplied HO for Synergistic Enhanced PTT/CDT Antibacterial Treatment and Wound Healing.

机构信息

School of Chemistry, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China.

School of Pharmacy, Health Science Center, Xi'an Jiaotong University, Xi'an, Shaanxi 710061, China.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 27;16(47):64579-64591. doi: 10.1021/acsami.4c15187. Epub 2024 Nov 12.

Abstract

As antibiotic resistance increases, alternative antimicrobial methods become essential. Chemical dynamics therapy (CDT) utilizing copper peroxide (CuO) nanodots shows significant potential in antibacterial applications due to its ability to self-supply hydrogen peroxide (HO) on its own. This characteristic effectively addresses the challenges of low HO levels and high glutathione (GSH) expression in the bacterial infection microenvironment. However, its tendency to aggregate and instability greatly affect its effectiveness. Therefore, this study developed a coordination-driven strategy to prepare copper peroxide-loaded mesoporous polydopamine nanomaterials (CuO@MPDA) through in situ growth of CuO in mesoporous polydopamine utilizing the chelating interaction between amino and catechol structures of MPDA with copper ions. This strategy not only ensures that copper peroxide is evenly distributed within the pores of mesoporous polydopamine but also protects it through the shielding effect of pores, greatly enhancing its dispersibility and stability. More notably, the loading of CuO enhances the photothermal performance of MPDA by broadening its light absorption range, and MPDA-mediated photothermal therapy (PTT) can accelerate CuO to produce more hydroxyl radicals by speeding up chemical reactions, resulting in a combined boost in PTT and CDT. The developed CuO@MPDA nanomaterials at very low concentrations exhibit improved antibacterial efficiency both in vitro and in vivo. Overall, this study provides an innovative strategy to construct an antibacterial nanoplatform for synergistically enhanced PTT/CDT dual-mode antibacterial treatment, exhibiting great potential for future biomedical applications.

摘要

随着抗生素耐药性的增加,替代抗菌方法变得至关重要。利用过氧化铜(CuO)纳米点的化学动力学疗法(CDT)因其能够自行供应过氧化氢(HO)而在抗菌应用中显示出巨大的潜力。这种特性有效地解决了细菌感染微环境中 HO 水平低和谷胱甘肽(GSH)表达高的挑战。然而,其团聚倾向和不稳定性极大地影响了其效果。因此,本研究开发了一种配位驱动策略,通过在介孔聚多巴胺中原位生长 CuO 来制备负载过氧化铜的介孔聚多巴胺纳米材料(CuO@MPDA),利用 MPDA 中氨基和儿茶酚结构与铜离子的螯合相互作用。该策略不仅确保了过氧化铜均匀分布在介孔聚多巴胺的孔内,而且通过孔的屏蔽作用对其进行保护,极大地提高了其分散性和稳定性。更值得注意的是,CuO 的负载通过拓宽其光吸收范围增强了 MPDA 的光热性能,并且 MPDA 介导的光热治疗(PTT)可以通过加速化学反应来加速 CuO 产生更多的羟基自由基,从而在 PTT 和 CDT 方面产生协同增强。在非常低的浓度下开发的 CuO@MPDA 纳米材料在体外和体内都表现出了提高的抗菌效率。总的来说,本研究提供了一种构建协同增强 PTT/CDT 双模式抗菌治疗的抗菌纳米平台的创新策略,为未来的生物医学应用展示了巨大的潜力。

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