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具有生理依赖光热转换和纳米催化药物能力的智能水凝胶,用于综合抑制细菌和炎症以按需治疗感染伤口。

Intelligent Hydrogel with Physiologically Dependent Capacities of Photothermal Conversion and Nanocatalytic Medicine to Integratively Inhibit Bacteria and Inflammation for On-Demand Treatment of Infected Wound.

作者信息

Mu Wenyun, Liu Jie, Zhang Handan, Weng Lin, Liu Tao, Chen Xin

机构信息

Department of Chemical Engineering, Shaanxi Key Laboratory of Energy Chemical Process Intensification, Institution of Polymer Science in Chemical Engineering, School of Chemical Engineering and Technology, Xi'an Jiao Tong University, Xi'an, 710049, China.

出版信息

Small. 2024 Dec;20(51):e2405464. doi: 10.1002/smll.202405464. Epub 2024 Oct 6.

Abstract

Although chemodynamic therapy (CDT) and photothermal therapy (PTT) based on a variety of nanoparticles have been developed to achieve effective anti-bacterial therapy, the limited therapeutic efficiency of CDT alone, as well as the undifferentiated damage of PTT to both bacteria and surrounding healthy tissue are still challenges for their clinical application of infected wounds treatments. In addition, during the CDT and PTT-mediated antimicrobial processes, the endogenous macrophages would be easily converted to pro-inflammatory macrophages (M1 phenotype) under local ROS and hyperthermia to promote inflammation, resulting in unexpected suppression of tissue regeneration and possible wound deterioration. To address these problems, a biodegradable sodium alginate/hyaluronic acid hydrogel loaded with functional CeO-Au nano-alloy (AO@AC) is fabricated to not only achieve precise and efficient antibacterial activity through infection-environment dependent photothermal-chemodynamic therapy but also rapidly eliminate the excess reactive oxygens (ROS) in the M1 type macrophage at the infected area to induce their polarization to M2 type for significant inhibition of inflammation and remarkable enhancement of tissue regeneration, hopefully developing an effective strategy to treat infected wound.

摘要

尽管基于多种纳米颗粒的化学动力疗法(CDT)和光热疗法(PTT)已被开发用于实现有效的抗菌治疗,但单独的CDT治疗效率有限,以及PTT对细菌和周围健康组织的无差别损伤,仍然是其在感染伤口治疗临床应用中的挑战。此外,在CDT和PTT介导的抗菌过程中,内源性巨噬细胞在局部活性氧和热疗作用下容易转化为促炎巨噬细胞(M1表型),从而促进炎症反应,导致组织再生意外受到抑制,并可能使伤口恶化。为了解决这些问题,制备了一种负载功能性CeO-Au纳米合金(AO@AC)的可生物降解海藻酸钠/透明质酸水凝胶,不仅通过感染环境依赖的光热化学动力疗法实现精确高效的抗菌活性,还能迅速清除感染区域M1型巨噬细胞中的过量活性氧(ROS),诱导其极化为M2型,从而显著抑制炎症反应并显著增强组织再生,有望开发出一种治疗感染伤口的有效策略。

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