Lim Soomin, Ihn Hye Jung, Kim Ju Ang, Bae Jong-Sup, Kim Jung-Eun, Bae Yong Chul, Shin Hong-In, Kim Tae Hoon, Park Eui Kyun
Department of Oral Pathology and Regenerative Medicine, School of Dentistry, IHBR, Kyungpook National University, Daegu, Republic of Korea.
Cell and Matrix Research Institute (CMRI), Kyungpook National University, Daegu, Republic of Korea.
Anim Cells Syst (Seoul). 2023 Jan 12;27(1):1-9. doi: 10.1080/19768354.2023.2166107. eCollection 2023.
Regulation of osteoclastogenesis and bone-resorbing activity can be an efficacious strategy for treating bone loss diseases because excessive osteoclastic bone resorption leads to the development of such diseases. Here, we investigated the role of (-)-tubaic acid, a thermal degradation product of rotenone, in osteoclast formation and function in an attempt to identify alternative natural compounds. (-)-Tubaic acid significantly inhibited receptor activator of nuclear factor-κB ligand (RANKL)-mediated osteoclast differentiation at both the early and late stages, suggesting that (-)-tubaic acid affects the commitment and differentiation of osteoclast progenitors as well as the cell-cell fusion of mononuclear osteoclasts. (-)-Tubaic acid attenuated the activation of extracellular signal-regulated kinase (ERK) and expression of nuclear factor of activated T-cells cytoplasmic 1 (NFATc1) and its target genes in response to RANKL. Furthermore, a pit-formation assay revealed that (-)-tubaic acid significantly impaired the bone-resorbing activity of osteoclasts. Our results demonstrated that (-)-tubaic acid exhibits anti-osteoclastogenic and anti-resorptive effects, indicating its therapeutic potential in the management of osteoclast-related bone diseases.
破骨细胞生成和骨吸收活性的调节可能是治疗骨质流失疾病的有效策略,因为破骨细胞过度的骨吸收会导致此类疾病的发生。在此,我们研究了鱼藤酮的热降解产物(-)-土荆酸在破骨细胞形成和功能中的作用,试图鉴定其他天然化合物。(-)-土荆酸在早期和晚期均显著抑制核因子κB受体激活剂配体(RANKL)介导的破骨细胞分化,这表明(-)-土荆酸会影响破骨细胞前体细胞的定向分化以及单核破骨细胞的细胞间融合。(-)-土荆酸减弱了细胞外信号调节激酶(ERK)的激活以及活化T细胞核因子细胞质1(NFATc1)及其靶基因对RANKL反应的表达。此外,蚀斑形成试验表明(-)-土荆酸显著损害破骨细胞的骨吸收活性。我们的结果表明,(-)-土荆酸具有抗破骨细胞生成和抗吸收作用,表明其在治疗破骨细胞相关骨疾病方面具有潜在的治疗价值。
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