4.7 Article

RGDS-Modified Superporous Poly(2-Hydroxyethyl Methacrylate)-Based Scaffolds as 3D In Vitro Leukemia Model

期刊

出版社

MDPI
DOI: 10.3390/ijms22052376

关键词

poly(2-hydroxyethyl methacrylate); 3D scaffold; RGDS; chronic lymphocytic leukemia; B cell survival

资金

  1. Ministry of Education, Youth and Sports of the Czech Republic (MEYS CR) under the projects CEITEC 2020 [LQ1601, MUNI/A/1595/2020]
  2. Czech Science Foundation [20-07015S, 18-05510S]
  3. Ministry of Health of the Czech Republic under the research grant DRO (FNBr) [65269705]
  4. Brno city municipality

向作者/读者索取更多资源

A superporous hydrogel scaffold designed for 3D culturing of leukemic B cells shows improved cell vitality and is particularly suitable for primary chronic lymphocytic leukemia cells. This scaffold serves as a long-term platform for 3D culture and allows direct cell lysis for efficient DNA isolation, as well as molecular and metabolic assays and imaging of cell morphology, interactions, and migration.
Superporous poly(2-hydroxyethyl methacrylate-co-2-aminoethyl methacrylate) (P(HEMA-AEMA)) hydrogel scaffolds are designed for in vitro 3D culturing of leukemic B cells. Hydrogel porosity, which influences cell functions and growth, is introduced by adding ammonium oxalate needle-like crystals in the polymerization mixture. To improve cell vitality, cell-adhesive Arg-Gly-Asp-Ser (RGDS) peptide is immobilized on the N-(gamma-maleimidobutyryloxy)succinimide-activated P(HEMA-AEMA) hydrogels via reaction of SH with maleimide groups. This modification is especially suitable for the survival of primary chronic lymphocytic leukemia cells (B-CLLs) in 3D cell culture. No other tested stimuli (interleukin-4, CD40 ligand, or shaking) can further improve B-CLL survival or metabolic activity. Both unmodified and RGDS-modified P(HEMA-AEMA) scaffolds serve as a long-term (70 days) 3D culture platforms for HS-5 and M2-10B4 bone marrow stromal cell lines and MEC-1 and HG-3 B-CLL cell lines, although the adherent cells retain their physiological morphologies, preferably on RGDS-modified hydrogels. Moreover, the porosity of hydrogels allows direct cell lysis, followed by efficient DNA isolation from the 3D-cultured cells. P(HEMA-AEMA)-RGDS thus serves as a suitable 3D in vitro leukemia model that enables molecular and metabolic assays and allows imaging of cell morphology, interactions, and migration by confocal microscopy. Such applications can prospectively assist in testing of drugs to treat this frequently recurring or refractory cancer.

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