Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, CO, USA.
Renewable and Sustainable Energy Institute, University of Colorado Boulder, Boulder, CO, USA.
Angew Chem Int Ed Engl. 2019 Aug 12;58(33):11414-11418. doi: 10.1002/anie.201906501. Epub 2019 Jul 4.
The emergence of multidrug-resistant (MDR) pathogens represents one of the most urgent global public health crises. Light-activated quantum dots (QDs) are alternative antimicrobials, with efficient transport, low cost, and therapeutic efficacy, and they can act as antibiotic potentiators, with a mechanism of action orthogonal to small-molecule drugs. Furthermore, light-activation enhances control over the spatiotemporal release and dose of the therapeutic superoxide radicals from QDs. However, the limited deep-tissue penetration of visible light needed for QD activation, and concern over trace heavy metals, have prevented further translation. Herein, we report two indium phosphide (InP) QDs that operate in the near-infrared and deep-red light window, enabling deeper tissue penetration. These heavy-metal-free QDs eliminate MDR pathogenic bacteria, while remaining non-toxic to host human cells. This work provides a pathway for advancing QD nanotherapeutics to combat MDR superbugs.
多药耐药(MDR)病原体的出现是全球最紧迫的公共卫生危机之一。光激活量子点(QD)是一种替代抗菌药物,具有高效传输、低成本和治疗效果,并且可以作为抗生素增效剂,其作用机制与小分子药物正交。此外,光激活增强了对 QD 中治疗性超氧自由基的时空释放和剂量的控制。然而,可见光需要穿透深层组织以激活 QD,这一点受到限制,并且人们还担心痕量重金属的问题,这阻碍了进一步的转化。在此,我们报告了两种在近红外和深红色光窗口下工作的磷化铟(InP)QD,它们能够实现更深的组织穿透。这些不含重金属的 QD 可以消除 MDR 致病菌,同时对宿主人类细胞保持无毒。这项工作为推进 QD 纳米治疗学以对抗 MDR 超级细菌提供了一条途径。