Polymer nanomedicines with enzymatically triggered activation: A comparative study of in vitro and in vivo anti-cancer efficacy related to the spacer structure

  • Michal Pechar
  • , Robert Pola
  • , Martin Studenovský
  • , Markéta Bláhová
  • , Eliška Grosmanová
  • , Aneta Dydowiczová
  • , Marcela Filipová
  • , Rayhanul Islam
  • , Shanghui Gao
  • , Jun Fang
  • , Tomáš Etrych

Research output: Contribution to journalArticlepeer-review

11 Citations (Scopus)

Abstract

Polymer nanomedicines with anti-tumor activity should exhibit sufficient stability during systemic circulation to the target tissue; however, they should release the active drug selectively in the tumor. Thus, choice of a tumor-specific stimuli-sensitive spacer between the drug and the carrier is critical. Here, a series of polymer conjugates of anti-cancer drugs doxorubicin and pirarubicin covalently bound to copolymers based on N-(2-hydroxypropyl)methacrylamide via various enzymatically cleavable oligopeptide spacers were prepared and characterized. The highest rate of the drug release from the polymer carriers in presence of the lysosomal protease cathepsin B was determined for the copolymers with Val-Cit-Aba spacer. Copolymers containing pirarubicin were more cytotoxic and showed higher internalization rate than the corresponding doxorubicin counterparts. The conjugates containing GFLG and Val-Cit-Aba spacers exhibited the highest anti-tumor efficacy in vivo against murine sarcoma S-180, the highest rate of the enzymatically catalyzed drug release, and the highest cytotoxicity in vitro.
Original languageEnglish
Article number102597
JournalNanomedicine: Nanotechnology, Biology and Medicine
Volume46
Early online date08 Sept 2022
DOIs
Publication statusPublished - Nov 2022

Keywords

  • Polymer cancerostatics
  • Drug delivery
  • Enzymatic release

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