REV-ERBα Inhibits Osteoclastogenesis and Protects against Alveolar Bone Loss.

Journal of dental research Pub Date : 2025-02-01 Epub Date: 2024-12-04 DOI:10.1177/00220345241290444
C Zhang, L Tan, J Li, Z Shen, J Yao, Y Huang, L Wu, C Yu, L Gao, C Zhao
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Abstract

Circadian rhythm disruption is thought to be associated with periodontitis, and molecular clock genes play critical roles in regulating bone homeostasis. However, the specific contribution of molecular clock genes to alveolar bone resorption caused by periodontitis is poorly understood. In this study, we introduced a novel Periodontitis Circadian Rhythm Score (PeriCRS) model that was established through machine learning using periodontal transcriptomic data from periodontitis clinical cohorts in the Gene Expression Omnibus (GEO) database. This approach revealed the potential regulatory role of circadian rhythm disruption in periodontitis and identified key molecular clock genes associated with alveolar bone destruction. Moreover, we established an experimental periodontitis model with circadian rhythm disturbance via periodontal ligation in mice exposed to a 6-h advanced LD12:12 cycle every 2 d. Our bioinformatics analysis revealed that NR1D1, which encodes REV-ERBα, is a pivotal factor in the impact of circadian rhythm disruption on periodontitis in periodontal tissues. Next, we confirmed the abnormal expression of the molecular clock gene Rev-erbα in inflammatory periodontal tissue in mice and confirmed that circadian rhythm disruption altered REV-ERBα expression. Furthermore, the activation of REV-ERBα with the agonist SR9009 notably decreased RANKL-induced osteoclast differentiation and suppressed the expression of osteoclast-related factors. Subsequent in vivo experiments demonstrated that SR9009 mitigated alveolar bone loss caused by periodontitis. Mechanistically, we found that the IL-22-STAT3 pathway inhibited REV-ERBα expression and modulated RANKL-induced osteoclast differentiation in vitro. Our results elucidate the role of REV-ERBα in osteoclastogenesis and suggest a potential new therapeutic avenue for addressing alveolar bone resorption associated with periodontitis.

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REV-ERBα抑制破骨细胞生成并保护牙槽骨丢失。
昼夜节律紊乱被认为与牙周炎有关,分子钟基因在调节骨稳态中起着关键作用。然而,分子钟基因在牙周炎引起的牙槽骨吸收中的具体作用尚不清楚。在这项研究中,我们引入了一种新的牙周炎昼夜节律评分(PeriCRS)模型,该模型是通过机器学习建立的,使用来自基因表达综合数据库(GEO)中牙周炎临床队列的牙周转录组数据。该方法揭示了昼夜节律紊乱在牙周炎中的潜在调节作用,并确定了与牙槽骨破坏相关的关键分子钟基因。此外,我们通过每2天暴露于LD12:12周期6小时的小鼠,通过牙周结扎建立了具有昼夜节律紊乱的实验性牙周炎模型。我们的生物信息学分析显示,编码REV-ERBα的NR1D1是影响牙周组织中昼夜节律紊乱对牙周炎的关键因素。接下来,我们证实了分子钟基因Rev-erbα在小鼠炎症性牙周组织中的异常表达,并证实昼夜节律紊乱改变了Rev-erbα的表达。此外,受体激动剂SR9009激活rev - erba可显著降低rankl诱导的破骨细胞分化,抑制破骨细胞相关因子的表达。随后的体内实验表明,SR9009可减轻牙周炎引起的牙槽骨丢失。在体外实验中,我们发现IL-22-STAT3通路抑制rev - erba的表达并调节rankl诱导的破骨细胞分化。我们的研究结果阐明了rev - erba在破骨细胞发生中的作用,并为解决牙周炎相关的牙槽骨吸收提供了一种潜在的新治疗途径。
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