Flunarizine inhibits osteoclastogenesis by regulating calcium signaling and promotes osteogenesis

破骨细胞 氟桂利嗪 细胞生物学 化学 钙信号传导 信号转导 药理学 生物 受体 医学 生物化学 有机化学
作者
Hyun Jin Kim,Jun‐Ho Lee,Gong‐Rak Lee,Narae Kim,Hye In Lee,Minjeong Kwon,Nam‐Young Kim,Jin Ha Park,Ye Hee Kang,Hyeong Ju Song,Tae Soo Kim,Dong Min Shin,Woojin Jeong
出处
期刊:Journal of Cellular Physiology [Wiley]
卷期号:236 (12): 8239-8252 被引量:13
标识
DOI:10.1002/jcp.30496
摘要

Abstract Many bone diseases such as osteoporosis and periodontitis are caused by hyperactivation of osteoclasts. Calcium (Ca 2+ ) signals are crucial for osteoclast differentiation and function. Thus, the blockade of Ca 2+ signaling may be a strategy for regulating osteoclast activity and has clinical implications. Flunarizine (FN) is a Ca 2+ channel antagonist that has been used for reducing migraines. However, the role of FN in osteoclast differentiation and function remains unknown. Here, we investigated whether FN regulates osteoclastogenesis and elucidated the molecular mechanism. FN inhibited osteoclast differentiation along with decreased expression of nuclear factor of activated T cells, cytoplasmic 1 (NFATc1), and attenuated osteoclast maturation and bone resorption. FN inhibition of osteoclast differentiation was restored by ectopic expression of constitutively active NFATc1. FN reduced calcium oscillations and its inhibition of osteoclast differentiation and resorption function was reversed by ionomycin, an ionophore that binds Ca 2+ . FN also inhibited Ca 2+ /calmodulin‐dependent protein kinase IV (CaMKIV) and calcineurin leading to a decrease in the cAMP‐responsive element‐binding protein‐dependent cFos and peroxisome proliferator‐activated receptor‐γ coactivator 1β expression, and NFATc1 nuclear translocation. These results indicate that FN inhibits osteoclastogenesis via regulating CaMKIV and calcineurin as a Ca 2+ channel blocker. In addition, FN‐induced apoptosis in osteoclasts and promoted osteogenesis. Furthermore, FN protected lipopolysaccharide‐ and ovariectomy‐induced bone destruction in mouse models, suggesting that it has therapeutic potential for treating inflammatory bone diseases and postmenopausal osteoporosis.
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