Key Laboratory of Drug-Targeting and Drug Delivery System of the Ministry of Education, West China School of Pharmacy, Sichuan University, Chengdu, 610041, China.
J Mater Chem B. 2020 Dec 14;8(46):10650-10661. doi: 10.1039/d0tb02101f. Epub 2020 Nov 5.
Black phosphorus quantum dots (BPQDs) with excellent biocompatibility, outstanding photothermal and photodynamic efficacies have attracted significant attention in cancer therapy. However, the low environmental stability and poor dispersity of BPQDs limit their practical applications. In the present work, biocompatible anionic waterborne polyurethane (WPU) nanoparticles were synthesized from castor oil to encapsulate the BPQDs. The WPU-BPQDs with a BPQDs loading capacity of about 13.8% (w/w) exhibited significantly improved dispersion and environmental stability without affecting the photothermal efficiency of BPQDs. Intriguingly, it was found that WPU encapsulation led to significant enhancement in the reactive oxygen species (ROS) generation of BPQDs, which indicated the enhanced photodynamic efficacy of the encapsulated BPQDs as compared to the bare BPQDs. The effect of solution pH on the ROS generation efficiency of BPQDs and the pH variation caused by BPQDs degradation was then investigated to explore the possible mechanism. In acidic solution, ROS generation was suppressed, while BPQDs degradation led to the acidification of the solution. Fortunately, after being encapsulated inside the WPU nanoparticles, the degradation rate of BPQDs became slower, while the acidic environment around BPQDs was favorably regulated by WPU nanoparticles having a special electrochemical double layer consisting of interior COO and exterior NH(Et), thus endowing the WPU-BPQDs-boosted production of ROS as compared to the bare BPQDs. Considering the undesired acidic tumor environment, this unique pH regulation effect of WPU-BPQDs would be beneficial for in vivo photodynamic efficacy. Both in vitro and in vivo experiments showed that WPU-BPQDs could effectively improve photodynamic therapy (PDT) and maintain outstanding photothermal therapy (PTT) effects. Together with the excellent dispersity, biocompatibility, and easy biodegradability, WPU-BPQDs can be a promising agent for PDT/PTT cancer treatments.
具有优异生物相容性、突出的光热和光动力疗效的黑磷量子点(BPQDs)在癌症治疗中引起了广泛关注。然而,BPQDs 的低环境稳定性和差分散性限制了它们的实际应用。在本工作中,从蓖麻油合成了生物相容性阴离子水性聚氨酯(WPU)纳米粒子来封装 BPQDs。WPU-BPQDs 的 BPQDs 负载量约为 13.8%(w/w),表现出明显改善的分散性和环境稳定性,而不会影响 BPQDs 的光热效率。有趣的是,发现 WPU 封装导致 BPQDs 产生的活性氧物种(ROS)显著增加,表明与裸 BPQDs 相比,封装的 BPQDs 的光动力疗效增强。然后研究了溶液 pH 值对 BPQDs 产生 ROS 效率的影响以及 BPQDs 降解引起的 pH 值变化,以探讨可能的机制。在酸性溶液中,ROS 的产生受到抑制,而 BPQDs 的降解导致溶液酸化。幸运的是,BPQDs 被封装在 WPU 纳米粒子内后,其降解速率变慢,而 WPU 纳米粒子的特殊电化学双层结构(由内部 COO 和外部 NH(Et) 组成)有利于调节 BPQDs 周围的酸性环境,从而使 WPU-BPQDs 产生的 ROS 产量高于裸 BPQDs。考虑到不理想的酸性肿瘤环境,WPU-BPQDs 的这种独特的 pH 调节效应将有利于体内光动力疗效。体外和体内实验均表明,WPU-BPQDs 可有效提高光动力治疗(PDT)并保持出色的光热治疗(PTT)效果。结合优异的分散性、生物相容性和易于生物降解性,WPU-BPQDs 有望成为 PDT/PTT 癌症治疗的一种有前途的药物。