Hierarchical Multiplexing Nanodroplets for Imaging-Guided Cancer Radiotherapy via DNA Damage Enhancement and Concomitant DNA Repair Prevention.
Wei JiangQuan LiLiang XiaoJiaxiang DouYi LiuWenhao YuYinchu MaXiaoqiu LiYa-Qi ZhuZhuting TongHang LiuHui LiangLigong LuXiaoding XuYandan YaoGuoqing ZhangYu-Cai WangJun WangPublished in: ACS nano (2018)
Clinical success of cancer radiotherapy is usually impeded by a combination of two factors, i.e., insufficient DNA damage and rapid DNA repair during and after treatment, respectively. Existing strategies for optimizing the radiotherapeutic efficacy often focus on only one facet of the issue, which may fail to function in the long term trials. Herein, we report a DNA-dual-targeting approach for enhanced cancer radiotherapy using a hierarchical multiplexing nanodroplet, which can simultaneously promote DNA lesion formation and prevent subsequent DNA damage repair. Specifically, the ultrasmall gold nanoparticles encapsulated in the liquid nanodroplets can concentrate the radiation energy and induce dramatic DNA damage as evidenced by the enhanced formation of γ-H2AX foci as well as in vivo tumor growth inhibition. Additionally, the ultrasound-triggered burst release of oxygen may relieve tumor hypoxia and fix the DNA radical intermediates produced by ionizing radiation, prevent DNA repair, and eventually result in cancer death. Finally, the nanodroplet platform is compatible with fluorescence, ultrasound, and magnetic resonance imaging techniques, allowing for real-time in vivo imaging-guided precision radiotherapy in an EMT-6 tumor model with significantly enhanced treatment efficacy. Our DNA-dual-targeting design of simultaneously enhancing DNA damage and preventing DNA repair presents an innovative strategy to effective cancer radiotherapy.
Keyphrases
- dna repair
- dna damage
- papillary thyroid
- magnetic resonance imaging
- oxidative stress
- dna damage response
- early stage
- gold nanoparticles
- squamous cell
- radiation therapy
- radiation induced
- locally advanced
- single molecule
- high resolution
- circulating tumor
- computed tomography
- squamous cell carcinoma
- lymph node metastasis
- cell free
- high throughput
- magnetic resonance
- endothelial cells
- high frequency
- photodynamic therapy
- young adults
- cancer therapy
- fluorescence imaging
- ionic liquid
- quantum dots
- single cell