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成骨细胞中的信号转导和转录激活因子3对正畸力驱动的牙槽骨重塑和牙齿移动至关重要。

Osteoblastic STAT3 Is Crucial for Orthodontic Force Driving Alveolar Bone Remodeling and Tooth Movement.

作者信息

Gong Xinyi, Sun Siyuan, Yang Yiling, Huang Xiangru, Gao Xin, Jin Anting, Xu Hongyuan, Wang Xijun, Liu Yuanqi, Liu Jingyi, Dai Qinggang, Jiang Lingyong

机构信息

Center of Craniofacial Orthodontics, Department of Oral & Cranio-Maxillofacial Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, College of Stomatology, Shanghai Jiao Tong University; National Center for Stomatology; National Clinical Research Center for Oral Disease; Shanghai Key Laboratory of Stomatology, Shanghai Research Institute of Stomatology, Shanghai, China.

The 2nd Dental Center, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.

出版信息

J Bone Miner Res. 2023 Jan;38(1):214-227. doi: 10.1002/jbmr.4744. Epub 2022 Dec 13.

Abstract

Mechanical force is essential to shape the internal architecture and external form of the skeleton by regulating the bone remodeling process. However, the underlying mechanism of how the bone responds to mechanical force remains elusive. Here, we generated both orthodontic tooth movement (OTM) model in vivo and a cyclic stretch-loading model in vitro to investigate biomechanical regulation of the alveolar bone. In this study, signal transducer and activator of transcription 3 (STAT3) was screened as one of the mechanosensitive proteins by protein array analysis of cyclic stretch-loaded bone mesenchymal stem cells (BMSCs) and was also proven to be activated in osteoblasts in response to the mechanical force during OTM. With an inducible osteoblast linage-specific Stat3 knockout model, we found that Stat3 deletion decelerated the OTM rate and reduced orthodontic force-induced bone remodeling, as indicated by both decreased bone resorption and formation. Both genetic deletion and pharmacological inhibition of STAT3 in BMSCs directly inhibited mechanical force-induced osteoblast differentiation and impaired osteoclast formation via osteoblast-osteoclast cross-talk under mechanical force loading. According to RNA-seq analysis of Stat3-deleted BMSCs under mechanical force, matrix metalloproteinase 3 (Mmp3) was screened and predicted to be a downstream target of STAT3. The luciferase and ChIP assays identified that Stat3 could bind to the Mmp3 promotor and upregulate its transcription activity. Furthermore, STAT3-inhibitor decelerated tooth movement through inhibition of the bone resorption activity, as well as MMP3 expression. In summary, our study identified the mechanosensitive characteristics of STAT3 in osteoblasts and highlighted its critical role in force-induced bone remodeling during orthodontic tooth movement via osteoblast-osteoclast cross-talk. © 2022 American Society for Bone and Mineral Research (ASBMR).

摘要

机械力对于通过调节骨重塑过程来塑造骨骼的内部结构和外部形态至关重要。然而,骨骼如何响应机械力的潜在机制仍不清楚。在这里,我们建立了体内正畸牙齿移动(OTM)模型和体外循环拉伸加载模型,以研究牙槽骨的生物力学调节。在本研究中,通过对循环拉伸加载的骨间充质干细胞(BMSC)进行蛋白质阵列分析,筛选出信号转导和转录激活因子3(STAT3)作为机械敏感蛋白之一,并且还证明在OTM过程中,成骨细胞会响应机械力而激活STAT3。利用诱导性成骨细胞谱系特异性Stat3基因敲除模型,我们发现Stat3缺失会减缓OTM速率,并减少正畸力诱导的骨重塑,这表现为骨吸收和形成均减少。BMSC中STAT3的基因缺失和药物抑制均直接抑制了机械力诱导的成骨细胞分化,并通过机械力加载下的成骨细胞-破骨细胞相互作用损害了破骨细胞的形成。根据对机械力作用下Stat3缺失的BMSC进行的RNA测序分析,筛选并预测基质金属蛋白酶3(Mmp3)是STAT3的下游靶点。荧光素酶和染色质免疫沉淀试验确定Stat3可以结合到Mmp3启动子上并上调其转录活性。此外,STAT3抑制剂通过抑制骨吸收活性以及MMP3表达来减缓牙齿移动。总之,我们的研究确定了成骨细胞中STAT3的机械敏感特性,并强调了其在正畸牙齿移动过程中通过成骨细胞-破骨细胞相互作用在力诱导的骨重塑中的关键作用。© 2022美国骨与矿物质研究学会(ASBMR)

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