4.7 Article

pH-triggered surface charge-switchable polymer micelles for the co-delivery of paclitaxel/disulfiram and overcoming multidrug resistance in cancer

Journal

INTERNATIONAL JOURNAL OF NANOMEDICINE
Volume 12, Issue -, Pages 8631-8647

Publisher

DOVE MEDICAL PRESS LTD
DOI: 10.2147/IJN.S144452

Keywords

pH response; charge reversal; multidrug resistance; paclitaxel; disulfiram

Funding

  1. Nature Science Foundation of Jiangsu Province, People's Republic of China [BK20160704]
  2. National Natural Science Foundation of China [81341134]
  3. Cooperation Foundation of Southeast University, People's Republic of China [2242017K3DN40]
  4. Nanjing Medical University, People's Republic of China [2242017K3DN40]
  5. Key Project of Natural Science Research for Colleges and Universities of the Anhui Province of China [KJ2015A274]
  6. Scientific Research Projects of the Bengbu Medical College of Anhui Province [Byycx1638]
  7. Jiangsu Pharmaceutical Association-Shire Biopharmaceutical Foundation [S201601]

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Multidrug resistance (MDR) remains a major challenge for providing effective chemotherapy for many cancer patients. To address this issue, we report an intelligent polymer-based drug co-delivery system which could enhance and accelerate cellular uptake and reverse MDR. The nanodrug delivery systems were constructed by encapsulating disulfiram (DSF), a P-glycoprotein (P-gp) inhibitor, into the hydrophobic core of poly(ethylene glycol)-block-poly(l-lysine) (PEG-b-PLL) block copolymer micelles, as well as 2,3-dimethylmaleic anhydride (DMA) and paclitaxel (PTX) were grafted on the side chain of l-lysine simultaneously. The surface charge of the drug-loaded micelles represents as negative in plasma (pH 7.4), which is helpful to prolong the circulation time, and in a weak acid environment of tumor tissue (pH 6.5-6.8) it can be reversed to positive, which is in favor of their entering into the cancer cells. In addition, the carrier could release DSF and PTX successively inside cells. The results of in vitro studies show that, compared to the control group, the DSF and PTX co-loaded micelles with charge reversal exhibits more effective cellular uptake and significantly increased cytotoxicity of PTX to MCF-7/ADR cells which may be due to the inhibitory effect of DSF on the efflux function of P-gp. Accordingly, such a smart pH-sensitive nanosystem, in our opinion, possesses significant potential to achieve combinational drug delivery and overcome drug resistance in cancer therapy.

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