State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, Tianjin, 300457, P. R. China.
Tianjin Key Laboratory of Food Science and Health, School of Medicine, Nankai University, Tianjin, 300071, P. R. China.
Small. 2021 Dec;17(51):e2103303. doi: 10.1002/smll.202103303. Epub 2021 Oct 13.
Pathogenic infections seriously threaten public health and have been considered as one of the most critical challenges in clinical therapy. Construction of a safe and efficient photothermal antibacterial platform is a promising strategy for treatment of bacterial infections. Considering that high temperature does harm to the normal tissues and cells, herein, a bacteria-triggered multifunctional hydrogel is constructed for low-temperature photothermal sterilization with high efficiency by integrating localized chemodynamic therapy (L-CDT). The hydrogel is constructed by incorporating copper sulfide nanoparticles (CuS ) with photothermal profile into the network of hyaluronic acid (HA) and Fe -EDTA complexes, named as CHFH (CuS -HA-Fe -EDTA hydrogel). Bacteria can be accumulated on the surface of CHFH, which secretes hyaluronidase to decompose the HA and release Fe . The Fe is reduced into Fe in microenvironment of bacteria to trigger Fenton reaction. The generated hydroxyl radicals result in sterilization based on L-CDT within short range. By integrating with photothermal property of CuS , low-temperature photothermal therapy (LT-PTT) for sterilization is realized, which improves the antibacterial efficiency while minimizes damage to normal tissues. The CHFH is further used to prepare Band aid which effectively promotes the Staphylococcus aureus-infected wound healing process in vivo, confirming the great potential for clinical application.
致病感染严重威胁着公众健康,被认为是临床治疗中最关键的挑战之一。构建安全高效的光热抗菌平台是治疗细菌感染的一种很有前途的策略。考虑到高温会对正常组织和细胞造成伤害,本文通过整合局部化学动力学治疗(L-CDT),构建了一种具有多功能的细菌触发水凝胶,可实现高效的低温光热杀菌。该水凝胶是通过将具有光热特性的硫化铜纳米粒子(CuS)掺入透明质酸(HA)和 Fe-EDTA 络合物的网络中构建的,命名为 CHFH(CuS-HA-Fe-EDTA 水凝胶)。细菌可以在 CHFH 的表面聚集,细菌分泌透明质酸酶分解 HA 并释放 Fe。Fe 在细菌的微环境中被还原为 Fe,引发芬顿反应。生成的羟基自由基基于短程 L-CDT 实现杀菌。通过与 CuS 的光热特性相结合,实现了低温光热治疗(LT-PTT)杀菌,提高了抗菌效率,同时最大限度地减少了对正常组织的损伤。CHFH 进一步被用于制备创可贴,有效地促进了体内金黄色葡萄球菌感染伤口的愈合过程,证实了其在临床应用中的巨大潜力。
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