4.8 Article

Probing the Role of Connecting Bonds and Modifying Chains in the Rational Design of Prodrug Nanoassemblies

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 45, 页码 51200-51211

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c14523

关键词

disulfide bond; thioether bond; fatty alcohol; redox-responsive; prodrug

资金

  1. National Key R&D Program of China
  2. National Natural Science Foundation of China
  3. Doctoral Scientific Research Staring Foundation of Liaoning Province
  4. General Program of Department of Education of Liaoning Province
  5. [2022YFE0111600]
  6. [82272151]
  7. [82204318]
  8. [82073777]
  9. [2021-BS-130]
  10. [LJKZ0953]

向作者/读者索取更多资源

The connecting bonds and modifying chains play a vital role in the rational design of prodrug nanoassemblies and have significant impact on their characteristics and anticancer effects.
Prodrug-based self-assembled nanoparticles combined with the merits of nanotechnology and prodrugs strategies have gradually become a research trending topic in the field of drug delivery. These prodrugs usually consist of parent drugs, connecting bonds, and modifying chains. The influences of the connecting bonds and modifying chains on the pharmaceutical characteristics, in vivo delivery fate, and antitumor activity of prodrug nanoassemblies remain elusive. Herein, three docetaxel (DTX) prodrugs were designed using sulfur bonds (thioether bond or disulfide bond) as connecting bonds and fatty alcohols (straight chain or branched chain) as modifying chains. Interestingly, the difference between connecting bonds and modifying chains deeply influenced the colloidal stability, redox responsive drug release, cytotoxicity, pharmacokinetic properties, tumor accumulation, and antitumor effect of prodrug nanoassemblies. DTX conjugated with branched chain fatty alcohols via disulfide bonds (HUA-SS-DTX) significantly improved the antitumor efficiency of DTX and reduced the systematic toxicity. Our study elaborates on the vital role of connecting bonds and modifying chains in the rational design of prodrug nanoassemblies.

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