AQP9: A novel target for bone loss induced by microgravity

► Femur AQP9 expression was enhanced after exposure to simulated microgravity. ► AQP9 knockout attenuated microgravity-induced bone loss and osteoclastogenesis. ► Exposure to hypergravity or exercise training suppressed femur AQP9 expression. ► Aging or ovariectomy had no significant effect on femur...

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Veröffentlicht in:Biochemical and biophysical research communications 2012-03, Vol.419 (4), p.774-778
Hauptverfasser: Bu, Guoyun, Shuang, Feng, Wu, Ye, Ren, Dongfeng, Hou, Shuxun
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Sprache:eng
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Zusammenfassung:► Femur AQP9 expression was enhanced after exposure to simulated microgravity. ► AQP9 knockout attenuated microgravity-induced bone loss and osteoclastogenesis. ► Exposure to hypergravity or exercise training suppressed femur AQP9 expression. ► Aging or ovariectomy had no significant effect on femur AQP9 expression. The aim of current study was to elucidate whether aquaporin-9 (AQP9) expression was involved in the progression of bone loss induced by microgravity. We used the hind-limb suspension (HLS) mice model to simulate microgravity and induce bone loss. It was found that HLS exposure decreased femur bone mineral density (BMD), and enhanced femur AQP9 mRNA and protein levels. Then, the relationship between AQP9 mRNA expression and BMD was studied and it was showed that femur AQP9 mRNA level was negatively related to femur BMD in mice exposed to HLS. We sought to exam the function of AQP9 in the femur using the AQP9-null mice. It was found that AQP9 knockout attenuated bone loss and inhibited osteoclastogenesis under the condition of HLS exposure, but had no similar effect on bone under normal physiological conditions. In addition, it was found that exposure to simulated hypergravity or exercise training, main countermeasures against microgravity, reduced AQP9 mRNA and protein levels in femur of mice. Moreover, it was found that both aging and estrogen deprivation, another two risk factors of bone loss, had no significant effect on femur AQP9 expression. In conclusion, AQP9 plays an important role in the development of microgravity-induced bone loss, and may be a potential target for the prevention or management of microgravity-induced bone loss.
ISSN:0006-291X
1090-2104
DOI:10.1016/j.bbrc.2012.02.100