Synergistic Effect of PVDF-Coated PCL-TCP Scaffolds and Pulsed Electromagnetic Field on Osteogenesis.
Yibing DongLuvita SuryaniXinran ZhouPadmalosini MuthukumaranMoumita RakshitFengrui YangFeng WenAmmar Mansoor HassanbhaiKaushik ParidaDaniel T SimonDonata IandoloPooi See LeeKee Woei NgSwee Hin TeohPublished in: International journal of molecular sciences (2021)
Bone exhibits piezoelectric properties. Thus, electrical stimulations such as pulsed electromagnetic fields (PEMFs) and stimuli-responsive piezoelectric properties of scaffolds have been investigated separately to evaluate their efficacy in supporting osteogenesis. However, current understanding of cells responding under the combined influence of PEMF and piezoelectric properties in scaffolds is still lacking. Therefore, in this study, we fabricated piezoelectric scaffolds by functionalization of polycaprolactone-tricalcium phosphate (PCL-TCP) films with a polyvinylidene fluoride (PVDF) coating that is self-polarized by a modified breath-figure technique. The osteoinductive properties of these PVDF-coated PCL-TCP films on MC3T3-E1 cells were studied under the stimulation of PEMF. Piezoelectric and ferroelectric characterization demonstrated that scaffolds with piezoelectric coefficient d33 = -1.2 pC/N were obtained at a powder dissolution temperature of 100 °C and coating relative humidity (RH) of 56%. DNA quantification showed that cell proliferation was significantly enhanced by PEMF as low as 0.6 mT and 50 Hz. Hydroxyapatite staining showed that cell mineralization was significantly enhanced by incorporation of PVDF coating. Gene expression study showed that the combination of PEMF and PVDF coating promoted late osteogenic gene expression marker most significantly. Collectively, our results suggest that the synergistic effects of PEMF and piezoelectric scaffolds on osteogenesis provide a promising alternative strategy for electrically augmented osteoinduction. The piezoelectric response of PVDF by PEMF, which could provide mechanical strain, is particularly interesting as it could deliver local mechanical stimulation to osteogenic cells using PEMF.
Keyphrases
- tissue engineering
- gene expression
- induced apoptosis
- bone regeneration
- cell cycle arrest
- cell proliferation
- mesenchymal stem cells
- bone marrow
- dna methylation
- high frequency
- oxidative stress
- stem cells
- magnetic resonance imaging
- signaling pathway
- cancer therapy
- cell death
- magnetic resonance
- high resolution
- single cell
- drinking water
- single molecule
- body composition
- mass spectrometry
- bone mineral density
- diffusion weighted imaging
- atomic force microscopy
- soft tissue