Recombinant irisin prevents the reduction of osteoblast differentiation induced by stimulated microgravity through increasing β-catenin expression

  • Zhihao Chen
  • , Yan Zhang
  • , Fan Zhao
  • , Chong Yin
  • , Chaofei Yang
  • , Xue Wang
  • , Zixiang Wu
  • , Shujing Liang
  • , Dijie Li
  • , Xiao Lin
  • , Ye Tian
  • , Lifang Hu
  • , Yu Li
  • , Airong Qian

Research output: Contribution to journalArticlepeer-review

58 Scopus citations

Abstract

Background: Irisin, a novel exercise-induced myokine, was shown to mediate beneficial effects of exercise in osteoporosis. Microgravity is a major threat to bone homeostasis of astronauts during long-term spaceflight, which results in decreased bone formation. Methods: The hind-limb unloading mice model and a random position machine are respectively used to simulate microgravity in vivo and in vitro. Results: We demonstrate that not only are bone formation and osteoblast differentiation decreased, but the expression of fibronectin type III domain-containing 5 (Fdnc5; irisin precursor) is also downregulated under simulated microgravity. Moreover, a lower dose of recombinant irisin (r-irisin) (1 nM) promotes osteogenic marker gene (alkaline phosphatase (Alp), collagen type 1 alpha-1(ColIα1)) expressions, ALP activity, and calcium deposition in primary osteoblasts, with no significant effect on osteoblast proliferation. Furthermore, r-irisin could recover the decrease in osteoblast differentiation induced by simulated microgravity. We also find that r- irisin increases β-catenin expression and partly neutralizes the decrease in β-catenin expression induced by simulated microgravity. In addition, β-catenin overexpression could also in part attenuate osteoblast differentiation reduction induced by simulated microgravity. Conclusions: The present study is the first to show that r-irisin positively regulates osteoblast differentiation under simulated microgravity through increasing β-catenin expression, which may reveal a novel mechanism, and it provides a prevention strategy for bone loss and muscle atrophy induced by microgravity.

Original languageEnglish
Article number1259
JournalInternational Journal of Molecular Sciences
Volume21
Issue number4
DOIs
StatePublished - Feb 2020

Keywords

  • Bone loss
  • Irisin
  • Osteoblast differentiation
  • Simulated microgravity
  • β-catenin

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