3D Human Periodontal Stem Cells and Endothelial Cells Promote Bone Development in Bovine Pericardium-Based Tissue Biomaterial.
Jacopo PizzicannellaSante Donato PierdomenicoAdriano PiattelliGiuseppe VarvaraLuigia FonticoliOriana TrubianiFrancesca DiomedePublished in: Materials (Basel, Switzerland) (2019)
Bone defects repair represents a public and urgent problem in clinical practice, in fact, every year, more than two million patients required new treatments for bone injuries. Today a complete vascularization is strategic in bone formation, representing a new frontier for clinical application. Aim of this research has been developed a three-dimensional (3D) coculture platform using a bovine pericardium collagen membrane (BioR) loaded with human periodontal ligament stem cells (hPDLSCs) and endothelial differentiated cells from hPDLSCs (E-hPDLSCs) able to undergo toward osteoangiogenesis differentiation process. First, we have characterized at confocal laser scanning microscopy (CLSM) level the E-hPDLSCs phenotype profile, through CD31 and CD34 markers expression and the ability to tube vessel formation. Real Time-Polimerase Chain Reaction (RT-PCR) and western blotting analyses revealed the upregulation of Runt-related transcription factor 2 (RUNX2), Collagen 1A1 (COL1A1), Vascular Endothelial Growth Factor-A (VEGF-A) genes and proteins in the living construct composed by hPDLSCs + E-hPDSCs/BioR. Human PDLSCs + E-hPDLSCs/BioR construct showed also an enhacement of de novo synthesis of osteocalcin. Given that, the extracellular-signal-regulated kinase (ERK)/mitogen activated protein kinase (MAPK) transduction signaling was involved in the osteogenesis and angiogenesis process, the ERK1/2 protein level at biochemical level, in our experimental model, has been investigated. Our results evidenced an upregulation of ERK1/2 proteins level born in the living construct. In conclusion, we believe that the use of the hPDLSCs and E-hPDLSCs coculture togheter with BioR as substrate, could represent an efficient model able to activate through ERK1/2 signaling pathway the osteoangiogenesis process, and then representing a new potential engineered platform for surgeons during the repair and the healing of bone defects.
Keyphrases
- endothelial cells
- signaling pathway
- vascular endothelial growth factor
- pi k akt
- transcription factor
- stem cells
- high glucose
- cell proliferation
- bone mineral density
- poor prognosis
- induced apoptosis
- epithelial mesenchymal transition
- soft tissue
- healthcare
- clinical practice
- end stage renal disease
- bone loss
- drug delivery
- mental health
- high throughput
- high resolution
- optical coherence tomography
- chronic kidney disease
- mass spectrometry
- south africa
- induced pluripotent stem cells
- small molecule
- newly diagnosed
- tissue engineering
- preterm infants
- tyrosine kinase
- body composition
- cell therapy
- atomic force microscopy
- dna binding
- emergency department
- protein kinase
- prognostic factors
- high speed
- preterm birth
- wound healing
- binding protein
- dna methylation
- genome wide analysis