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Synergistic interactions of cadmium-free quantum dots embedded in a photosensitised polymer surface: efficient killing of multidrug-resistant strains at low ambient light levels

DOI:10.1039/C9NR10421F 期刊:Nanoscale 出版年份:2020 更新时间:2025-09-23 15:21:01
摘要: Cadmium-free quantum dots (QD) were combined with crystal violet photosensitising dye and incorporated into medical grade polyurethane via a non-covalent dipping process known as ‘swell-encapsulation-shrink’. The antibacterial efficacy of the prepared quantum dot-crystal violet polyurethane substrates (QD + CV PU) was investigated under low power visible light illumination at similar intensities (500 lux) to those present in clinical settings. The antibacterial performance of QD + CV PU was superior to the constituent polymer substrates, eliminating ~99.9% of an environmental P. aeruginosa strain, a clinical P. aeruginosa strain from a cystic fibrosis patient and a clinical E. coli strain. The nature of the reactive oxygen species (ROS) involved in antibacterial activity of the QD + CV PU surface was investigated using ROS inhibitors and time-resolved optical spectroscopy. The photo-physical interaction of the green-emitting QDs with CV lead to a combination of Type I and II electron transfer and energy transfer processes, with the highly potent ROS singlet oxygen playing a dominant role. This study is the first to demonstrate highly efficient synergistic killing of clinical and environmental strains of intrinsically resistant and multi-drug resistant Gram-negative bacteria using light-activated surfaces containing biocompatible cadmium-free QDs and crystal violet dye at ambient light levels.
作者: Ethel G. A. Owusu,Elnaz Yaghini,Imad Naasani,Ivan P. Parkin,Elaine Allan,Alexander J. MacRobert
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The study addresses the development of antimicrobial resistance (AMR) by exploring new antimicrobial therapies that can effectively treat multi-drug resistant (MDR) bacterial infections and prevent and control infections. It focuses on the use of cadmium-free quantum dots (QDs) combined with crystal violet (CV) photosensitising dye incorporated into medical grade polyurethane to create light-activated surfaces for killing multidrug-resistant strains at low ambient light levels.

The study demonstrates that cadmium-free QDs combined with CV in polyurethane substrates can efficiently kill multidrug-resistant and intrinsically resistant clinical strains of bacteria under ambient light levels. The synergistic interaction between QDs and CV enhances the photo-antimicrobial activity through Type I and II mechanisms, with singlet oxygen playing a dominant role. This approach offers a promising strategy for developing self-disinfecting surfaces in clinical environments.

The study does not address the long-term stability and potential leaching of QDs and CV from the polymer substrates under clinical conditions. Additionally, the effectiveness of the substrates against a broader range of bacterial strains and under varying environmental conditions was not explored.

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