College of Chemistry & Pharmacy, Northwest A&F University, Yangling 712100, Shaanxi, China.
College of Animal Science and Technology, Northwest A&F University, Yangling 712100, Shaanxi, China.
ACS Nano. 2023 Aug 22;17(16):15568-15589. doi: 10.1021/acsnano.3c02304. Epub 2023 Aug 2.
Due to the increasing antibiotic resistance and the lack of broad-spectrum antibiotics, there is an urgent requirement to develop fresh strategies to combat multidrug-resistant pathogens. Herein, defect-rich bismuth molybdate heterojunctions [zero-dimensional (0D) BiMoO/two-dimensional (2D) BiMoO, MBO] were designed for rapid capture of bacteria and synergistic photocatalytic sterilization. The as-prepared MBO was experimentally and theoretically demonstrated to possess defects, heterojunctions, and irradiation triple-enhanced photocatalytic activity for efficient generation of reactive oxygen species (ROS) due to the exposure of more active sites and separation of effective electron-hole pairs. Meanwhile, dopamine-modified MBO (pMBO) achieved a positively charged and rough surface, which conferred strong bacterial adhesion and physical penetration to the nanosheets, effectively trapping bacteria within the damage range and enhancing ROS damage. Based on this potent antibacterial ability of pMBO, a multifunctional hydrogel consisting of poly(vinyl alcohol) cross-linked tannic acid-coated cellulose nanocrystals (CPTB) and pMBO, namely CPTB@pMBO, is developed and convincingly effective against in a mouse skin infection model. In addition, the strategy of combining a failed beta-lactam antibiotic with CPTB@pMBO to photoinactivation with no resistance observed was developed, which presented an idea to address the issue of antibiotic resistance in bacteria and to explore facile anti-infection methods. In addition, CPTB@pMBO can reduce excessive proteolysis of tissue and inflammatory response by regulating the expression of genes and pro-inflammatory factors , holding great potential for the effective treatment of wound infections caused by drug-resistant bacteria.
由于抗生素耐药性的不断增加和广谱抗生素的缺乏,迫切需要开发新的策略来对抗多药耐药病原体。在此,设计了富缺陷的钼酸铋异质结 [零维 (0D) BiMoO/二维 (2D) BiMoO,MBO] 以快速捕获细菌并协同光催化杀菌。实验和理论证明,所制备的 MBO 具有缺陷、异质结和辐照三重增强的光催化活性,由于暴露了更多的活性位点和有效电子-空穴对的分离,能够高效地产生活性氧物质 (ROS)。同时,多巴胺修饰的 MBO (pMBO) 具有正电荷和粗糙表面,赋予纳米片强烈的细菌粘附和物理穿透能力,有效地将细菌困在损伤范围内并增强 ROS 损伤。基于 pMBO 的这种强大的抗菌能力,开发了一种由聚乙烯醇交联单宁酸涂层纤维素纳米晶 (CPTB) 和 pMBO 组成的多功能水凝胶,即 CPTB@pMBO,并在小鼠皮肤感染模型中令人信服地有效。此外,还开发了将失败的β-内酰胺抗生素与 CPTB@pMBO 结合以进行光灭活而不观察到耐药性的策略,为解决细菌中的抗生素耐药问题以及探索简便的抗感染方法提供了思路。此外,CPTB@pMBO 通过调节基因和促炎因子的表达来减少组织过度蛋白水解和炎症反应,在有效治疗耐药菌引起的伤口感染方面具有很大的潜力。