School of Pharmaceutical Sciences, and Fujian Provincial Key Laboratory of Innovative Drug Target Research, Xiamen University, Xiang'an South Road, Xiamen, Fujian 361102, China.
School of Pharmaceutical Sciences, and Fujian Provincial Key Laboratory of Innovative Drug Target Research, Xiamen University, Xiang'an South Road, Xiamen, Fujian 361102, China.
Int J Pharm. 2018 Dec 20;553(1-2):349-362. doi: 10.1016/j.ijpharm.2018.10.056. Epub 2018 Oct 25.
Multidrug resistance (MDR), as a major obstacle in cancer therapy, has resulted in over 90% of cancer chemotherapeutic failure. Mesoporous silica nanospheres (MSNs) have been demonstrated to be tuned with large pore sizes, mediating the MDR-reversal effects. However, the study that surface functionality of the large pore sized-MSNs affects the MDR-overcoming effects hasn't been extensively studied. In this study, we developed a new dendrimer-like MSNs delivery system based on a rational synthesis strategy and further modified MSNs with various surface functionalities to evaluate their roles in overcoming cancer MDR. Our results showed that the small particle sized-MSNs could be fabricated with dendrimer-like internal structure, resulting in the large pore size of 9 nm. Surface functionality of MSNs, especially hydroxylation and carboxylation, largely improved the intra-nuclear delivery and therapeutic efficiency of DOX for MCF7/ADR cells, which was not up to inhibiting P-gp expression but significantly increasing the intracellular drug accumulation of over 90% even under the strong drug efflux. This study indicates that surface functionality design strategy may display the potential of the large pore sized-MSNs as the efficient chemotherapeutic carriers to combat MDR.
多药耐药性(MDR)是癌症治疗中的主要障碍,导致超过 90%的癌症化疗失败。介孔硅纳米球(MSNs)已被证明可以通过调节较大的孔径来介导 MDR 逆转作用。然而,关于大孔径 MSNs 的表面功能对克服 MDR 影响的研究尚未得到广泛研究。在本研究中,我们开发了一种基于合理合成策略的新型树枝状 MSNs 递药系统,并进一步用各种表面功能化修饰 MSNs,以评估它们在克服癌症 MDR 中的作用。我们的结果表明,可以用树枝状的内部结构来制备小粒径 MSNs,从而得到 9nm 的大孔径。MSNs 的表面功能,特别是羟化和羧化,极大地提高了 DOX 对 MCF7/ADR 细胞的核内递送和治疗效率,这并不是通过抑制 P-糖蛋白表达,而是通过显著增加超过 90%的细胞内药物积累来实现的,即使在强药物外排的情况下也是如此。本研究表明,表面功能化设计策略可能显示出大孔径 MSNs 作为有效化疗载体来对抗 MDR 的潜力。