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基于硫酸软骨素的纳米颗粒用于增强化疗-光动力疗法,以克服乳腺癌的多药耐药性和肺转移。

Chondroitin sulfate-based nanoparticles for enhanced chemo-photodynamic therapy overcoming multidrug resistance and lung metastasis of breast cancer.

机构信息

Department of Pharmaceutics, Key Laboratory of Chemical Biology (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan, 250012, PR China.

Department of Pharmaceutics, Key Laboratory of Chemical Biology (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan, 250012, PR China.

出版信息

Carbohydr Polym. 2021 Feb 15;254:117459. doi: 10.1016/j.carbpol.2020.117459. Epub 2020 Dec 1.

Abstract

As a major therapeutic approach for cancer treatment, the effectiveness of chemotherapy is challenged by multidrug resistance (MDR). Herein, we fabricated novel redox-responsive, chondroitin sulfate-based nanoparticles that could simultaneously deliver quercetin (chemosensitizer), chlorin e6 (photosensitizer) and paclitaxel (chemotherapeutic agent) to exert enhanced chemo-photodynamic therapy for overcoming MDR and lung metastasis of breast cancer. In vitro cell study showed that nanoparticles down-regulated the expression of P-glycolprotein (P-gp) on MCF-7/ADR cells and thereby improved the anticancer efficacy of PTX against MCF-7/ADR cells. Moreover, NIR laser irradiation could induce nanoparticles to generate cellular reactive oxygen species (ROS), leading to mitochondrial membrane potential loss, and meanwhile facilitating lysosomal escape of drugs. Importantly, the novel nanoplatform exhibited effective in vivo MDR inhibition and anti-metastasis efficacy through enhanced chemo-photodynamic therapy. Thus, the study suggested that the multifunctional nanoplatform had good application prospect for effective breast cancer therapy.

摘要

作为癌症治疗的主要治疗方法,化疗的有效性受到多药耐药性(MDR)的挑战。在此,我们构建了新型的氧化还原响应性、硫酸软骨素基纳米粒子,可同时递送槲皮素(化疗增敏剂)、氯乙酮(光敏剂)和紫杉醇(化疗药物),以发挥增强的化疗-光动力疗法,克服乳腺癌的多药耐药性和肺转移。体外细胞研究表明,纳米粒子下调了 MCF-7/ADR 细胞上 P 糖蛋白(P-gp)的表达,从而提高了 PTX 对 MCF-7/ADR 细胞的抗癌功效。此外,近红外激光照射可诱导纳米粒子产生细胞内活性氧(ROS),导致线粒体膜电位丧失,同时促进药物的溶酶体逃逸。重要的是,新型纳米平台通过增强的化疗-光动力疗法,有效抑制体内多药耐药性并具有抗转移作用。因此,该研究表明,该多功能纳米平台在有效的乳腺癌治疗方面具有良好的应用前景。

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