Dual-functional bioinspired nanospray for accelerated wound healing: Visible light-activated bismuth composites.

IF 9.6
Yingwen Wang, Xuelei Xu, Yubing Jiao, Lili Shen, Ying Li, Min Mao, Wei Zhang, Jinguang Yang
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引用次数: 0

Abstract

Infectious wound healing has garnered significant attention due to the increasing prevalence of drug-resistant bacteria, with photodynamic therapy (PDT) emerging as a promising non-invasive approach. Among PDT techniques, visible-light-activated therapies hold great potential. Nevertheless, current applications face critical challenges, such as non-specific targeting of bacteria, limited photodynamic efficacy, and insufficient oxygen supply. To resolve these limitations, the study introduces an innovative dual-functional bioinspired nanoparticle system. The aptamer-modified macrophage membranes enable high specificity and selectivity of the hybrid BiVO4/BiOI toward S. aureus. Simultaneously, the heterojunction formed between BiVO4 and BiOI quantum dots not only expands the photocatalytic active surface area but also significantly accelerates the separation of photogenerated charge carriers, thereby enhancing PDT activity. By utilizing visible-light irradiation to catalyze H2O molecules, the system generates reactive oxygen species (ROS) independent of ambient oxygen levels, overcoming the limitation of oxygen content availability in traditional PDT approaches. Computational simulations further confirm that the generated ROS effectively disrupt bacterial phospholipid bilayers, enhancing bactericidal efficacy. A series of biological evaluations, including in vitro and in vivo antibacterial assays and cell migration studies, validate the dual-functional of the bioinspired nanoparticles in accelerating wound healing. Overall, this multifunctional bioinspired nanocomposite, with its targeted delivery, visible-light responsiveness, and potent antibacterial properties, demonstrates substantial promise for applications in treating infectious wounds. STATEMENT OF SIGNIFICANCE: Infectious wound healing has garnered significant attention due to the increasing prevalence of drug-resistant bacteria, with photodynamic therapy emerging as a promising non-invasive approach. The heterostructure formed between BiVO4 and BiOI QDs exhibits highly efficient photocatalytic activity, which maximizes ROS production, leading to more effective bacterial eradication. To date, this specific heterostructure has not been extensively studied. Moreover, the aptamer-modified macrophage cell membranes achieve high specificity and selectivity of the hybrid BiVO4/BiOI toward S. aureus. This multifunctional bioinspired nanocomposite, with its targeted delivery, visible-light responsiveness, and potent antibacterial properties, demonstrates substantial promise in medical field.

双功能生物激发纳米喷雾加速伤口愈合:可见光活化铋复合材料。
由于耐药细菌的日益流行,感染性伤口愈合引起了极大的关注,光动力疗法(PDT)成为一种有前途的非侵入性方法。在PDT技术中,可见光激活疗法具有很大的潜力。然而,目前的应用面临着严峻的挑战,例如细菌的非特异性靶向,有限的光动力功效和氧气供应不足。为了解决这些限制,该研究引入了一种创新的双功能生物启发纳米颗粒系统。适配体修饰的巨噬细胞膜使杂种BiVO4/BiOI对金黄色葡萄球菌具有较高的特异性和选择性。同时,BiVO4和BiOI量子点之间形成的异质结不仅扩大了光催化活性表面积,而且显著加速了光生载流子的分离,从而增强了PDT活性。通过可见光照射催化H2O分子,该系统产生不依赖于环境氧水平的活性氧(ROS),克服了传统PDT方法中氧含量可用性的限制。计算模拟进一步证实,生成的活性氧有效地破坏了细菌的磷脂双层,增强了杀菌效果。一系列的生物学评估,包括体外和体内抗菌试验和细胞迁移研究,证实了生物激发纳米颗粒在加速伤口愈合方面的双重功能。总的来说,这种多功能的生物启发纳米复合材料具有靶向递送、可见光响应性和有效的抗菌特性,在治疗感染性伤口方面有很大的应用前景。重要意义:由于耐药细菌的日益流行,感染性伤口愈合引起了极大的关注,光动力疗法作为一种有前途的非侵入性方法出现。BiVO4和BiOI量子点之间形成的异质结构表现出高效的光催化活性,从而最大化ROS的产生,从而更有效地清除细菌。迄今为止,这种特殊的异质结构还没有得到广泛的研究。适配体修饰的巨噬细胞膜对金黄色葡萄球菌具有较高的特异性和选择性。这种多功能的生物启发纳米复合材料具有靶向递送、可见光响应性和有效的抗菌特性,在医学领域显示出巨大的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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