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Sulforaphene suppresses RANKL-induced osteoclastogenesis and LPS-induced bone erosion by activating Nrf2 signaling pathway

兰克尔 破骨细胞 蛋白激酶B 骨吸收 化学 细胞生物学 骨溶解 氧化应激 体内 下调和上调 癌症研究 信号转导 内分泌学 激活剂(遗传学) 医学 体外 生物 生物化学 受体 牙科 生物技术 基因
作者
Hantao Yao,Yangge Du,Bulin Jiang,Yi-Lin Liao,Yaoyu Zhao,Mengjie Yin,Ting Li,Yue Sheng,Yaoting Ji,Minquan Du
出处
期刊:Free Radical Biology and Medicine [Elsevier]
卷期号:207: 48-62 被引量:5
标识
DOI:10.1016/j.freeradbiomed.2023.07.009
摘要

Inflammatory disorders have been found to induce bone loss through sustained and persistent activation of osteoclast differentiation, leading to heightened bone resorption. The current pharmacological interventions for combating bone loss to harbor adverse effects or contraindications. There is a pressing need to identify drugs with fewer side effects. The effect and underlying mechanism of sulforaphene (LFS) on osteoclast differentiation were illustrated in vitro and in vivo with RANKL-induced Raw264.7 cell line osteoclastogenesis and lipopolysaccharide (LPS)-induced bone erosion model. In this study, LFS has been shown to effectively impede the formation of mature osteoclasts induced from both Raw264.7 cell line and bone marrow macrophages (BMMs), mainly at the early stage. Further mechanistic investigations uncovered that LFS suppressed AKT phosphorylation. SC-79, a potent AKT activator, was found to reverse the inhibitory impact of LFS on osteoclast differentiation. Moreover, transcriptome sequencing analysis revealed that treatment with LFS led to a significant upregulation in the expression of nuclear factor erythroid 2-related factor 2 (Nrf2) and antioxidant-related genes. Then it's validated that LFS could promote NRF2 expression and nuclear translocation, as well as effectively resist oxidative stress. NRF2 knockdown reversed the suppression effect of LFS on osteoclast differentiation. In vivo experiments provide convincing evidence that LFS is protective against LPS-induced inflammatory osteolysis. These well-grounded and promising findings suggest LFS as a promising agent to addressing oxidative-stress related diseases and bone loss disorders.

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