Published January 1, 2024 | Version v1
Journal article Open

Doxorubicin-loaded liposome-like particles embedded in chitosan/ hyaluronic acid-based hydrogels as a controlled drug release model for local treatment of glioblastoma

  • 1. Univ Hlth Sci Turkey, Inst Hlth Sci, Dept Hlth Informat Syst, TR-34668 Istanbul, Turkiye
  • 2. Univ Hlth Sci Turkey, Gulhane Fac Pharm, Dept Analyt Chem, TR-06018 Ankara, Turkiye
  • 3. Koc Univ, Fac Sci, Dept Mech Engn, Istanbul, Turkiye
  • 4. Univ Hlth Sci Turkey, Gulhane Fac Pharm, Dept Pharmaceut Toxicol, TR-06018 Ankara, Turkiye

Description

Glioblastoma (GBM) resection and medication treatment are limited, and local drug therapies are required. This study aims to create a hybrid system comprising liposome-like particles (LLP-DOX) encapsulated in chitosan/ hyaluronic acid/polyethyleneimine (CHI/HA/PEI) hydrogels, enabling controlled local delivery of doxorubicin (DOX) into the resection cavity for treating GBM. CHI/HA/PEI hydrogels were characterized morphologically, physically, chemically, mechanically, and thermally. Findings revealed a high network and compact micro- network structure, along with enhanced physical and thermal stability compared to CHI/HA hydrogels. Simultaneously, drug release from CHI/HA/PEI/LLP-DOX hydrogels was assessed, revealing continuous and controlled release up to the 148th hour, with no significant burst release. Cell studies showed that CHI/HA/PEI hydrogels are biocompatible with low genotoxicity. Additionally, LLP-DOX-loaded CHI/HA/PEI hydrogels significantly decreased cell viability and gene expression levels compared to LLP-DOX alone. It was also observed that the viability of GBM spheroids decreased over time when interacting with CHI/HA/PEI/LLP-DOX hydrogels, accompanied by a reduction in total surface area and an increase in apoptotic tendencies. In this study, we hypothesized that creating a hybrid drug delivery system by encapsulating DOX-loaded LLPs within a CHI/HA/ PEI hydrogel matrix could achieve sustained drug release, improve anticancer efficacy via localized treatment, and effectively mitigate GBM progression for 3D microtissues.

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