Periostin inhibits mechanical stretch-induced apoptosis in osteoblast-like MG-63 cells

J Formos Med Assoc. 2018 Apr;117(4):292-300. doi: 10.1016/j.jfma.2017.12.008. Epub 2018 Jan 3.

Abstract

Background/purpose: Appropriate mechanical stress plays an important role in regulating the proliferation and differentiation of osteoblasts, whereas high-level mechanical stress may be harmful and compromise cell survival. Periostin, a matricellular protein, is essential in maintaining functional integrity of bone and collagen-rich connective tissue in response to mechanical stress. This study investigated whether or not high-level mechanical stretch induces cell apoptosis and the regulatory role of periostin in mechanical stretch-induced apoptosis in osteoblastic cells.

Methods: Osteoblast-like MG-63 cells were seeded onto Bio-Flex I culture plates and subjected to cyclic mechanical stretching (15% elongation, 0.1 Hz) in a Flexercell tension plus system-5000. The same process was applied to cells pre-treated with exogenous human recombinant periostin before mechanical stretching. We used a chromatin condensation and membrane permeability dead cell apoptosis kit to evaluate the stretch-induced cell responses. Expression of caspase-3 and cPARP was examined by immunofluorescent stain and flow cytometry.

Results: The expression of periostin in MG-63 cells is involved in the TGF-β signaling pathway. High-level cyclic mechanical stretch induced apoptotic responses in MG-63 osteoblastic cells. The percentages of apoptotic cells and cells expressing cPARP protein increased in the groups of cells subjected to mechanical stretch, but these responses were absent in the presence of exogenous periostin.

Conclusion: Our study revealed that high-level mechanical stretch induces apoptotic cell death, and that periostin plays a protective role against mechanical stretch-induced apoptosis in osteoblastic cells.

Keywords: Apoptosis; Cyclic mechanical stretch; Flow cytometry; Osteoblastic cells; Periostin.

MeSH terms

  • Apoptosis*
  • Cell Adhesion Molecules / physiology*
  • Cells, Cultured
  • Humans
  • Osteoblasts / physiology*
  • Stress, Mechanical
  • Transforming Growth Factor beta / physiology

Substances

  • Cell Adhesion Molecules
  • POSTN protein, human
  • Transforming Growth Factor beta