Wang Yuguang, Wang Ning, Du Yingying, Jiang Xu, Liu Yanhui, Wang Yingpu, Feng Yaqing, Wang Ping, Meng Shuxian
School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, PR China.
API R&D Center, Tianjin Institute of Pharmaceutical Research Co., Ltd., Huiren Road 306, Tianjin 300462, PR China; Technology R & D center of Tianjin Taipu Pharmaceutical Co., Ltd., Huiren Road 306, Tianjin 300462, PR China.
J Photochem Photobiol B. 2023 May;242:112701. doi: 10.1016/j.jphotobiol.2023.112701. Epub 2023 Mar 25.
Phototherapy is a new method to treat tumor, including photodynamic therapy (PDT) and photothermal therapy (PTT). However, the GSH in tumor cells could deplete ROS produced by photosensitizers, resulting in inadequate PDT. Isothiocyanate not only is a new type of anti-tumor drug, but also may combine with GSH, increasing the content of intracellular ROS and improving PDT effect. Here we synthesized a kind of water-soluble nanoparticles (BN NPs) parceling BODIPY-I-35 up with mPEG-ITC and lecithin. mPEG-ITC can react with GSH in tumor cells to reduce the consumption of ROS. BN NPs can be used as vectors to deliver drugs to tumor sites. Under 808 nm laser irradiation, BN NPs solution increased 13 °C within 10 min, indicating that BN NPs had superb photothermal performance. In vitro experiments, low dose BN NPs showed satisfactory PDT and PTT effects, and the cell viability of MCF-7 cell was only 13%. In vivo, BN NPs with excellent biocompatibility showed favorable phototherapy effect and tumor was effectively inhibited. Fluorescence imaging could present the long retention effect of BN NPs in tumor locations. In conclusion, the BN NPs showed the effect of enhancing phototherapy and provided a remarkable application prospect in the phototherapy of tumor cells.
光疗是一种治疗肿瘤的新方法,包括光动力疗法(PDT)和光热疗法(PTT)。然而,肿瘤细胞中的谷胱甘肽(GSH)会消耗光敏剂产生的活性氧(ROS),导致PDT效果不佳。异硫氰酸盐不仅是一种新型抗肿瘤药物,还可能与GSH结合,增加细胞内ROS含量,提高PDT效果。在此,我们合成了一种水溶性纳米颗粒(BN NPs),它由mPEG-ITC和卵磷脂包裹BODIPY-I-35而成。mPEG-ITC可与肿瘤细胞中的GSH反应,减少ROS的消耗。BN NPs可作为载体将药物输送到肿瘤部位。在808 nm激光照射下,BN NPs溶液在10分钟内温度升高了13°C,表明BN NPs具有优异的光热性能。体外实验中,低剂量的BN NPs表现出令人满意的PDT和PTT效果,MCF-7细胞的细胞活力仅为13%。在体内,具有优异生物相容性的BN NPs表现出良好的光疗效果,肿瘤得到有效抑制。荧光成像可显示BN NPs在肿瘤部位的长时间滞留效果。总之,BN NPs显示出增强光疗的效果,在肿瘤细胞光疗方面具有显著的应用前景。