4.6 Article

Dual-responsive TPGS crosslinked nanocarriers to overcome multidrug resistance

期刊

JOURNAL OF MATERIALS CHEMISTRY B
卷 8, 期 36, 页码 8383-8394

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0tb01140a

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资金

  1. National Natural Science Foundation of China [81573000]
  2. National Science Foundation of Guangdong Province [2019A1515011678, 2018A030313084]
  3. Traditional Chinese Medicine of Guangdong Province [20201186]
  4. Public Service Platform Open Project Fund of South China Sea for R&D Marine Biomedicine Resources [2HC18010, 2HC18014]
  5. Group-type Special Support Project for Education Talents in Universities [4SG19045G]
  6. Talent Introduction Fund of Guangdong Provincial People's Hospital [Y012018142]
  7. Engineering Research Center of Clinical Functional Materials and Diagnosis & Treatment Devices of Zhejiang Province [WIBEK181008]

向作者/读者索取更多资源

Efficient delivery of chemotherapeutic agents into tumor cells and reversal of chemoresistance are crucially important to enhance cancer therapy. We fabricated pH/redox dual responsive nanocarriers based on cell penetrating peptides (TAT) functionalized TPGS (cTAT-TPGS) and polypeptide (PEG-b-poly(aspartic-lipoic acid), PPAL) to reduce the permanent drug release and overcome multidrug resistance. TAT was used to functionalize TPGS and shielded by pH-responsive fatty acids, and polypeptides with lipoic acid side chains (PPAL) were synthesized. Reversibly crosslinked hybrid micelles (RCMs) were fabricated based on cTAT-TPGS and PPAL. RCMs nanocarriers exhibited acid-responsive charge reversal and redox-responsive drug release. Thein vitroresults showed that the RCMs could be efficiently internalized by the MCF-7/ADR cells in an acidic microenvironment and inhibited the DOX efflux, causing a higher cytotoxicity than non-crosslinked nanocarriers. Furthermore, the dual-responsive structure effectively prolonged the circulation time of RCM nanocarriers and achieved a high level of accumulation in cancer cellsin vivo, leading to much more effective inhibition of tumor growth. The DOX-loaded RCMs also showed excellent biosafety, especially for the myocardium tissue. This novel strategy provided an effective platform for drug target delivery and reversal of MDR.

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