光毒性
荧光
细胞毒性
配对
化学
光化学
反离子
纳米颗粒
活性氧
光动力疗法
生物物理学
组合化学
纳米技术
材料科学
离子
有机化学
生物化学
体外
生物
光学
物理
量子力学
超导电性
作者
Deanna Broadwater,Matthew Bates,Mayank Jayaram,Margaret Young,Jianzhou He,Austin L. Raithel,Thomas W. Hamann,Wei Zhang,Babak Borhan,Richard R. Lunt,Sophia Y. Lunt
标识
DOI:10.1038/s41598-019-51593-z
摘要
Abstract Light-activated theranostics offer promising opportunities for disease diagnosis, image-guided surgery, and site-specific personalized therapy. However, current fluorescent dyes are limited by low brightness, high cytotoxicity, poor tissue penetration, and unwanted side effects. To overcome these limitations, we demonstrate a platform for optoelectronic tuning, which allows independent control of the optical properties from the electronic properties of fluorescent organic salts. This is achieved through cation-anion pairing of organic salts that can modulate the frontier molecular orbital without impacting the bandgap. Optoelectronic tuning enables decoupled control over the cytotoxicity and phototoxicity of fluorescent organic salts by selective generation of mitochondrial reactive oxygen species that control cell viability. We show that through counterion pairing, organic salt nanoparticles can be tuned to be either nontoxic for enhanced imaging, or phototoxic for improved photodynamic therapy.
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