Institute of Biomedical and Pharmaceutical Technology, Fuzhou University, Fuzhou 350002, China.
State Key Lab of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.
Nanoscale. 2019 Mar 7;11(9):3814-3826. doi: 10.1039/c8nr06218h. Epub 2019 Jan 2.
In cancer therapy, chemotherapeutic drugs frequently encounter multidrug resistance (MDR) induced by the overexpression of drug transporters such as P-glycoprotein (P-gp). Herein, in order to overcome MDR and improve the effectiveness of chemotherapy, we developed a novel pH-sensitive charge-reversal and NO generation liposomal system by modifying a pH-sensitive polymer (PEG-PLL-DMA) on the surface of cationic liposomes for delivering a NO donor (DETA NONOate) and a chemotherapy drug (paclitaxel, PTX) into MDR cells. The proposed liposomal system (PTX/NO/DMA-L) exhibited a distinctive charge-reversal capacity, which was negatively charged under physiological conditions (pH 7.4) but could reverse to positive charge in a tumor microenvironment (pH 6.5) due to the cleavable amide linkages formed between PEG-PLL and DMA, leading to the improvement of cell uptake. Once arrived in the endosomes and lysosomes (pH 5.0), DETA NONOate was triggered to decompose and release NO, which further promoted the quick release of PTX and inhibited the P-gp mediated efflux. The charge-reversal, NO generation and NO-triggered rapid release of drugs could significantly increase the accumulation of PTX in tumors and eventually improve the antitumor efficacy. These results indicate that this dual pH-sensitive liposomal system is a highly promising approach for chemotherapy and may pave a new avenue for overcoming MDR in cancer.
在癌症治疗中,化疗药物经常遇到多药耐药(MDR),这是由药物转运蛋白如 P-糖蛋白(P-gp)的过度表达引起的。在此,为了克服 MDR 并提高化疗的效果,我们通过在阳离子脂质体表面修饰一种 pH 敏感聚合物(PEG-PLL-DMA)来开发了一种新型的 pH 敏感电荷反转和 NO 生成脂质体系统,用于将 NO 供体(DETA NONOate)和化疗药物(紫杉醇,PTX)递送到 MDR 细胞中。所提出的脂质体系统(PTX/NO/DMA-L)表现出独特的电荷反转能力,在生理条件下(pH 7.4)带负电荷,但由于 PEG-PLL 和 DMA 之间形成的可裂解酰胺键,在肿瘤微环境(pH 6.5)下可以反转成正电荷,从而提高细胞摄取能力。一旦到达内体和溶酶体(pH 5.0),DETA NONOate 被触发分解并释放 NO,这进一步促进了 PTX 的快速释放,并抑制了 P-gp 介导的外排。电荷反转、NO 生成和 NO 触发的药物快速释放可以显著增加肿瘤中 PTX 的积累,最终提高抗肿瘤疗效。这些结果表明,这种双重 pH 敏感脂质体系统是一种很有前途的化疗方法,可能为克服癌症中的 MDR 开辟新途径。