Efficient Single-Dose Induction of Osteogenic Differentiation of Stem Cells Using Multi-Bioactive Hybrid Nanocarriers.
Márcia T TavaresMariana B OliveiraVítor M GasparJoão F ManoJosé Paulo Sequeira FarinhaCarlos BaleizãoPublished in: Advanced biosystems (2020)
Bone regeneration requires the presence of specific factors to induce the differentiation of stem cells into osteoblasts. These factors induce osteogenesis by stimulating the expression of bone-related proteins, bone cell proliferation and differentiation. Herein, bioactive mesoporous silica nanoparticles are doped with calcium and phosphate ions while the porous network is loaded with dexamethasone (MSN-CaPDex). The bioactive MSN-CaPDex nanocarriers are prepared without affecting the narrow size distribution, pore structure, and morphology of the MSNs, while incorporating multi-stimuli, complementary ionic/biochemical bioactive mediators. The bioactive nanocarriers induce osteogenic differentiation of human bone marrow mesenchymal stem cells (hBM-MSCs) after a single-dose administration, and without the need for further soluble osteogenic factors, in contrast to the standard continuous stimulation provided by osteogenic medium. The hBM-MSCs exhibit several biomarkers of osteogenic differentiation, including alkaline phosphatase peaking at early time points, secretion of osteopontin and osteocalcin, and deposition of a calcium-rich matrix. Overall, by inducing the osteogenic differentiation of stem cells with a single-dose administration and without requiring repeated osteogenic supplementation, the newly synthesized multi-bioactive hybrid nanocarrier shows great potential for bone tissue engineering applications.
Keyphrases
- stem cells
- mesenchymal stem cells
- tissue engineering
- bone regeneration
- drug delivery
- bone marrow
- cell proliferation
- umbilical cord
- cancer therapy
- bone mineral density
- cell therapy
- endothelial cells
- drug release
- quantum dots
- low dose
- soft tissue
- poor prognosis
- postmenopausal women
- climate change
- highly efficient
- long non coding rna
- human health
- binding protein
- body composition
- solid state
- network analysis