State Key Laboratory of Radiation Medicine and Protection, School for Radiological and Interdisciplinary Sciences (RAD-X), Collaborative Innovation Center of Radiation Medicine of Jiangsu Higher Education Institutions , Soochow University , Suzhou 215123 , China.
School for Life Science , Shanxi University , Taiyuan 030006 , China.
ACS Appl Mater Interfaces. 2019 Feb 6;11(5):4858-4866. doi: 10.1021/acsami.8b19958. Epub 2019 Jan 24.
Molybdenum disulfide (MoS) nanosheets have received considerable interest due to their superior physicochemical performances to graphene nanosheets. As the lateral size and layer thickness decrease, the formed MoS quantum dots (QDs) show more promise as photocatalysts, endowing them with potential antimicrobial properties under environmental conditions. However, studies on the antibacterial photodynamic therapy of MoS QDs have rarely been reported. Here, we show that MoS QDs more effectively promote the creation and separation of electron-hole pair than MoS nanosheets, resulting in the formation of multiple reactive oxygen species (ROS) under simulated solar light irradiation. As a result, photoexcited MoS QDs show remarkably enhanced antibacterial activity, and the ROS-mediated oxidative stress plays a dominant role in the antibacterial mechanism. The in vivo experiments showed that MoS QDs are efficacious in wound healing under simulated solar light irradiation and exert protective effects on normal tissues, suggesting good biocompatibility properties. Our findings provide a full description of the photochemical behavior of MoS QDs and the resulting antibacterial activity, which might advance the development of MoS-based nanomaterials as photodynamic antibacterial agents under environmental conditions.
二硫化钼(MoS)纳米片因其优异的物理化学性能优于石墨烯纳米片而受到广泛关注。随着横向尺寸和层厚度的减小,形成的 MoS 量子点(QD)作为光催化剂表现出更大的潜力,使它们在环境条件下具有潜在的抗菌性能。然而,关于 MoS QD 的抗菌光动力疗法的研究很少有报道。在这里,我们表明 MoS QD 比 MoS 纳米片更有效地促进电子-空穴对的产生和分离,从而在模拟太阳光照射下形成多种活性氧(ROS)。结果表明,光激发的 MoS QD 表现出显著增强的抗菌活性,ROS 介导的氧化应激在抗菌机制中起主导作用。体内实验表明,MoS QD 在模拟太阳光照射下对伤口愈合有效,并对正常组织发挥保护作用,表明其具有良好的生物相容性。我们的研究结果全面描述了 MoS QD 的光化学行为及其产生的抗菌活性,这可能会推动基于 MoS 的纳米材料作为环境条件下的光动力抗菌剂的发展。