Department of Pharmaceutics, School of Pharmacy, Shenyang Pharmaceutical University, 103 Wenhua Road, Shenyang, Liaoning Province, 110016, PR China.
Department of Pharmaceutics, School of Pharmacy, Shenyang Pharmaceutical University, 103 Wenhua Road, Shenyang, Liaoning Province, 110016, PR China.
Colloids Surf B Biointerfaces. 2020 Jun;190:110941. doi: 10.1016/j.colsurfb.2020.110941. Epub 2020 Mar 4.
In this work, a traceable dual-porous mesoporous silica-coated mesoporous carbon nanocomposite (MCN@Si) with high drug loading capacity and high photothermal conversion efficiency (30.5 %) was successfully prepared. Based on the nanocomposite, a pH/redox/near infrared (NIR) multi-stimuli responsive drug delivery system was constructed to realize the accurate drug delivery, drug controlled release and chemo-photothermal synergistic antitumor therapy. MCN@Si was used as a vehicle to load doxorubicin (DOX) with a high drug loading efficacy of 48.2 % and a NIR absorbance agent for photothermal therapy and NIR thermal imaging. Carbon dots (CDs) with proper size were covalently attached to the surface of MCN@Si via disulfide bonds to block the mesopores, preventing DOX premature release from DOX/MCN@Si-CDs. Besides, CDs were served as fluorescent probe to prove the visualization potential of the drug delivery system. DOX was rapidly released at the condition of low pH and high GSH concentration due to the breakage of disulfide bonds and protonation of DOX. Moreover, the local hyperthermia generated by MCN@Si-CDs under NIR irradiation could not only directly kill cells, but also accelerate DOX release and enhance cells sensitivity and permeability. Two-dimensional cells and three-dimensional tumor spheroids assays illustrated that DOX/MCN@Si-CDs + NIR group exhibited a superior thermochemotherapy synergistic treatment effect and the combination index (CI) was 0.378. Biodistribution study showed the biosecurity of preparations and its prolonged detention time in tumor sites. Besides, antitumor experiment in vivo also performed the excellent synergistic inhibition effect. All the results demonstrated that DOX/MCN@Si-CDs is a traceable multi-stimuli responsive nanodelivery system and can achieve efficient chemo-photothermal synergistic antitumor therapy.
在这项工作中,成功制备了一种具有高载药能力和高光热转换效率(30.5%)的可追踪双孔介孔硅包覆介孔碳纳米复合材料(MCN@Si)。基于该纳米复合材料,构建了 pH/还原/近红外(NIR)多刺激响应药物输送系统,以实现精确的药物输送、药物控制释放和化学-光热协同抗肿瘤治疗。MCN@Si 被用作载体制备载药效率为 48.2%的多柔比星(DOX)和光热治疗和 NIR 热成像的 NIR 吸收剂。通过二硫键将合适尺寸的碳点(CDs)共价连接到 MCN@Si 的表面,以阻塞介孔,防止 DOX/MCN@Si-CDs 中 DOX 的过早释放。此外,CDs 可用作荧光探针,以证明药物输送系统的可视化潜力。由于二硫键的断裂和 DOX 的质子化,在低 pH 和高 GSH 浓度条件下,DOX 迅速释放。此外,MCN@Si-CDs 在 NIR 照射下产生的局部热疗不仅可以直接杀死细胞,还可以加速 DOX 释放并增强细胞敏感性和通透性。二维细胞和三维肿瘤球体实验表明,DOX/MCN@Si-CDs + NIR 组表现出优越的热化疗协同治疗效果,组合指数(CI)为 0.378。生物分布研究表明了制剂的生物安全性及其在肿瘤部位的延长滞留时间。此外,体内抗肿瘤实验也表现出了优异的协同抑制效果。所有结果表明,DOX/MCN@Si-CDs 是一种可追踪的多刺激响应纳米递药系统,可以实现高效的化学-光热协同抗肿瘤治疗。