牙周炎的骨细胞失调:病理机制和治疗潜力。

IF 3.7 2区 生物学 Q2 CELL BIOLOGY
Luyao Si , Xinxin Tian , Longfei Tian , Kai Yang
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引用次数: 0

摘要

牙周炎是一种导致牙槽骨破坏的慢性炎症性疾病,是由骨细胞失调介导的。这篇综述综合了目前的证据表明,骨细胞来源的RANKL和sclerostin在抑制成骨细胞活性的同时积极促进破骨细胞的发生,直接加速骨吸收。骨细胞凋亡、铁下垂和衰老通过细胞因子级联反应(如IL-6、TNF-α)进一步加剧炎症,损害再生能力。在治疗上,在临床前模型中,用抗rankl(例如,denosumab)或抗sclerostin抗体(例如,romosozumab)靶向骨细胞可显著降低破骨细胞活化和骨丢失,而Notch信号通路的激活可增强骨细胞存活并促进骨形成。总的来说,这些发现强调了骨细胞中心信号作为恢复骨稳态的有希望的治疗途径,并强调了进一步研究将这些机制转化为牙周炎的临床干预措施的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Osteocyte dysregulation in periodontitis: Pathological mechanisms and therapeutic potential
Periodontitis, a chronic inflammatory disease driving alveolar bone destruction, is critically mediated by osteocyte dysregulation. This review synthesizes current evidence revealing that osteocyte-derived RANKL and sclerostin actively promote osteoclastogenesis while suppressing osteoblast activity, directly accelerating bone resorption. Osteocyte apoptosis, ferroptosis, and senescence further exacerbate inflammation through cytokine cascades (e.g., IL-6, TNF-α) and impair regenerative capacity. Therapeutically, targeting osteocytes with anti-RANKL (e.g., denosumab) or anti-sclerostin antibodies (e.g., romosozumab) significantly reduces osteoclast activation and bone loss in preclinical models, while activation of the Notch signaling pathway enhances osteocyte survival and promotes bone formation. Collectively, these findings highlight osteocyte-centered signaling as a promising therapeutic avenue for restoring bone homeostasis and underscore the need for further research to translate these mechanisms into clinical interventions for periodontitis.
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来源期刊
Cellular signalling
Cellular signalling 生物-细胞生物学
CiteScore
8.40
自引率
0.00%
发文量
250
审稿时长
27 days
期刊介绍: Cellular Signalling publishes original research describing fundamental and clinical findings on the mechanisms, actions and structural components of cellular signalling systems in vitro and in vivo. Cellular Signalling aims at full length research papers defining signalling systems ranging from microorganisms to cells, tissues and higher organisms.
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