Naskar Atanu, Lee Sohee, Kim Kwang-Sun
Department of Chemistry and Chemistry Institute for Functional Materials, Pusan National University, Busan 46241, Korea.
Pharmaceutics. 2021 Jan 2;13(1):52. doi: 10.3390/pharmaceutics13010052.
Antibiotic therapy is the gold standard for bacterial infections treatment. However, the rapid increase in multidrug-resistant (MDR) bacterial infections and its recent use for secondary bacterial infections in many COVID-19 patients has considerably weakened its treatment efficacy. These shortcomings motivated researchers to develop new antibacterial materials, such as nanoparticle-based antibacterial platform with the ability to increase the chances of killing MDR strains and prevent their drug resistance. Herein, we report a new black phosphorus (BP)-based non-damaging near-infrared light-responsive platform conjugated with ZnO and Au nanoparticles as a synergistic antibacterial agent against species. First, BP nanosheets containing Au nanoparticles were assembled in situ with the ZnO nanoparticles prepared by a low-temperature solution synthesis method. Subsequently, the antibacterial activities of the resulting Au-ZnO-BP nanocomposite against the non-resistant, methicillin-resistant, and erythromycin-resistant species were determined, after its photothermal efficacy was assessed. The synthesized nanocomposite exhibited excellent anti- activity and good photothermal characteristics. The non-resistant species did not produce drug-resistant bacteria after the treatment of multiple consecutive passages under the pressure of the proposed nanoantibiotic, but rapidly developed resistance to erythromycin. This work clearly demonstrates the excellent photothermal antibacterial properties of Au-ZnO-BP nanocomposite against the MDR species.
抗生素疗法是治疗细菌感染的金标准。然而,多重耐药(MDR)细菌感染的迅速增加以及其近期在许多新冠肺炎患者中用于治疗继发性细菌感染,已大大削弱了其治疗效果。这些缺点促使研究人员开发新的抗菌材料,例如基于纳米颗粒的抗菌平台,该平台能够增加杀死多重耐药菌株的几率并防止其产生耐药性。在此,我们报道了一种新的基于黑磷(BP)的无损近红外光响应平台,该平台与ZnO和Au纳米颗粒共轭,作为一种针对[具体物种]的协同抗菌剂。首先,通过低温溶液合成法制备的ZnO纳米颗粒与含有Au纳米颗粒的BP纳米片原位组装。随后,在评估了所得Au-ZnO-BP纳米复合材料的光热效果后,测定了其对非耐药、耐甲氧西林和耐红霉素的[具体物种]的抗菌活性。合成的纳米复合材料表现出优异的抗菌活性和良好的光热特性。在所提出的纳米抗生素的压力下,经过多次连续传代处理后,非耐药的[具体物种]没有产生耐药菌,但对红霉素迅速产生了耐药性。这项工作清楚地证明了Au-ZnO-BP纳米复合材料对多重耐药[具体物种]具有优异的光热抗菌性能。