4.7 Article

Dexamethasone and Doxycycline Doped Nanoparticles Increase the Differentiation Potential of Human Bone Marrow Stem Cells

期刊

PHARMACEUTICS
卷 14, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/pharmaceutics14091865

关键词

cell proliferation; dexamethasone; doxycycline; nanoparticles; osteogenic differentiation; stem cells; zinc

资金

  1. Ministry of Economy and Competitiveness
  2. European Regional Development Fund [PID2020-114694RB-I00, PID2020-115887GB-I00]
  3. Ministry of Universities [FPU20/00450]
  4. European Social Fund (ESF)
  5. Generalitat Valenciana

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This study evaluated the effect of different prototypes of bioactive nanoparticles on human bone marrow stem cells. They found that Dex-NPs and Dox-NPs exhibited excellent osteogenic potential and promoted cell differentiation.
Non-resorbable polymeric nanoparticles (NPs) are proposed as an adjunctive treatment for bone regenerative strategies. The present in vitro investigation aimed to evaluate the effect of the different prototypes of bioactive NPs loaded with zinc (Zn-NPs), doxycycline (Dox-NPs) or dexamethasone (Dex-NPs) on the viability, morphology, migration, adhesion, osteoblastic differentiation, and mineralization potential of human bone marrow stem cells (hBMMSCs). Cell viability, proliferation, and differentiation were assessed using a resaruzin-based assay, cell cycle analysis, cell migration evaluation, cell cytoskeleton staining analysis, Alizarin Red S staining, and expression of the osteogenic-related genes by a real-time quantitative polymerase chain reaction (RT-qPCR). One-Way ANOVA and Tukey's test were employed. The resazurin assay showed adequate cell viability considering all concentrations and types of NPs at 24, 48, and 72 h of culture. The cell cycle analysis revealed a regular cell cycle profile at 0.1, 1, and 10 mu g/mL, whereas 100 mu g/mL produced an arrest of cells in the S phase. Cells cultured with 0.1 and 1 mu g/mL NP concentrations showed a similar migration capacity to the untreated group. After 21 days, mineralization was increased by all the NPs prototypes. Dox-NPs and Dex-NPs produced a generalized up-regulation of the osteogenic-related genes. Dex-NPs and Dox-NPs exhibited excellent osteogenic potential and promoted hBMMSC differentiation. Future investigations, both in vitro and in vivo, are required to confirm the suitability of these NPs for their clinical application.

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