中国组织工程研究 ›› 2026, Vol. 30 ›› Issue (33): 8669-8675.doi: 10.12307/2026.493

• 组织工程口腔材料 tissue-engineered oral materials • 上一篇    下一篇

利塞膦酸钠对正畸牙移动大鼠牙周炎症与破骨细胞的影响

王安然,张溪红,赵怡君   

  1. 安徽省淮北市中医医院,安徽省淮北市  235000
  • 收稿日期:2025-11-18 修回日期:2026-03-19 出版日期:2026-11-28 发布日期:2026-06-13
  • 通讯作者: 张溪红,硕士,主治医师,安徽省淮北市中医医院口腔科,安徽省淮北市 235000
  • 作者简介:王安然,女,1991年生,安徽省淮北市人,汉族,硕士,主治医师,主要从事口腔全科、牙周病、口腔正畸方面的研究。
  • 基金资助:
    国家自然科学基金资助项目(82104792),项目负责人:王安然

Effects of risedronate sodium on periodontal inflammation and osteoclasts in rats with orthodontic tooth movement

Wang Anran, Zhang Xihong, Zhao Yijun   

  1. Huaibei Hospital of Traditional Chinese Medicine, Huaibei 235000, Anhui Province, China
  • Received:2025-11-18 Revised:2026-03-19 Online:2026-11-28 Published:2026-06-13
  • Contact: Zhang Xihong, MS, Attending physician, Huaibei Hospital of Traditional Chinese Medicine, Huaibei 235000, Anhui Province, China
  • About author:Wang Anran, MS, Attending physician, Huaibei Hospital of Traditional Chinese Medicine, Huaibei 235000, Anhui Province, China
  • Supported by:
    National Natural Science Foundation of China, No. 82104792 (to WAR) 

摘要:



文题释义:
利塞膦酸钠:是第三代含氮双膦酸盐类药物的代表,分子结构中的含氮侧链与嘧啶环赋予其独特的药理特性。在骨代谢调控中,利塞膦酸钠通过干扰破骨细胞功能降低其分化与存活率,从而抑制骨吸收。近年研究发现,利塞膦酸钠在局部适宜浓度下可激活相关信号通路促进成骨细胞分化与矿化,表现为碱性磷酸酶活性增强及钙结节形成增多。
正畸牙移动:是在机械力作用下牙周组织发生的适应性改建过程,核心是“压力侧骨吸收-张力侧骨形成”的动态平衡。机械力诱导牙周组织产生早期炎症反应,促炎因子表达显著上升后激活破骨细胞前体分化为成熟破骨细胞,介导牙槽骨吸收。理想的正畸牙移动依赖于骨改建效率与炎症水平的协调,而过度或异常改建可能导致牙根吸收等并发症。

背景:研究发现,利塞膦酸钠可通过调节破骨细胞和成骨细胞活性影响骨改建,加速正畸牙移动,但作用机制尚未完全阐明。
目的:探究利塞膦酸钠对正畸牙移动大鼠牙周炎症、破骨细胞及骨形态发生蛋白2/Smad1信号通路的影响。
方法:取30只SD大鼠建立正畸牙移动模型,造模后24 h随机分为模型组和高、低剂量利塞膦酸钠组,每组10只,另将10只SD大鼠设为对照组,高、低剂量利塞膦酸钠组分别灌胃给予1,0.5 mg/kg利塞膦酸钠组,模型组与对照组灌胃给予生理盐水,每天1次,连续给药21 d。末次给药结束后24 h,测定正畸牙移动距离,ELISA法检测血清肿瘤坏死因子α、白细胞介素1β、白细胞介素6水平,抗酒石酸酸性磷酸酶染色检测牙周组织破骨细胞数量,苏木精-伊红染色观察上颌组织形态,Western blotting检测牙槽骨组织中骨形态发生蛋白2、Smad1蛋白表达。
结果与结论:①与对照组比较,模型组白细胞介素1β、肿瘤坏死因子α、白细胞介素6水平与破骨细胞数量升高(P < 0.05),骨形态发生蛋白2、Smad1蛋白表达降低(P < 0.05);与模型组比较,低剂量利塞膦酸钠组白细胞介素1β、肿瘤坏死因子α、白细胞介素6水平与破骨细胞数量降低(P < 0.05),正畸牙移动距离与骨形态发生蛋白2、Smad1蛋白表达升高(P < 0.05);与低剂量利塞膦酸钠组比较,高剂量利塞膦酸钠组白细胞介素1β、肿瘤坏死因子α、白细胞介素6水平与破骨细胞数量降低(P < 0.05),正畸牙移动距离与骨形态发生蛋白2、Smad1蛋白表达(P < 0.05)。②苏木精-伊红染色显示,对照组上颌骨结构正常,模型组压力侧牙周间隙缩窄,张力侧牙周韧带增宽,牙骨质吸收陷窝增多,骨改建活跃;低、高剂量利塞膦酸钠组压力侧间隙减小,张力侧新骨沉积增强,骨吸收减少。③结果表明,利塞膦酸钠抑制正畸力诱导的牙周组织炎症反应与破骨细胞活性,通过上调骨形态发生蛋白2/Smad1信号通路促进骨形成,加速正畸牙移动进程。

https://orcid.org/0009-0005-5378-2725 (王安然) 


中国组织工程研究杂志出版内容重点:干细胞;骨髓干细胞;造血干细胞;脂肪干细胞;肿瘤干细胞;胚胎干细胞;脐带脐血干细胞;干细胞诱导;干细胞分化;组织工程

关键词: 利塞膦酸钠, 正畸牙移动, 牙周炎症, 破骨细胞, 骨形态发生蛋白2, Smad1

Abstract: BACKGROUND: Studies have found that risedronate sodium can influence bone remodeling by regulating osteoclast and osteoblast activity, thereby accelerating orthodontic tooth movement. However, its mechanism of action has not been fully elucidated.
OBJECTIVE: To investigate the effects of risedronate sodium on periodontal inflammation, osteoclasts, and the bone morphogenetic protein 2/Smad1 signaling pathway in rats with orthodontic tooth movement.
METHODS: Thirty Sprague-Dawley rats were used to establish orthodontic tooth movement models. At 24 hours after modeling, the rats were randomly divided into model group, high-dose risedronate sodium group, and low-dose risedronate sodium group, with 10 rats in each group. Another 10 Sprague-Dawely rats were set as the control group. The high- and low-dose risedronate sodium groups received intragastric administration of 1 and 0.5 mg/kg risedronate sodium, respectively, while the model group and control group received intragastric administration of normal saline, once daily for 21 consecutive days. At 24 hours after the final administration, the orthodontic tooth movement distance was measured. Serum levels of tumor necrosis factor α, interleukin 1β, and interleukin 6 were detected by ELISA. The number of osteoclasts in periodontal tissue was detected by tartrate-resistant acid phosphatase staining. Maxillary tissue morphology was observed by hematoxylin-eosin staining. Protein expression of bone morphogenetic protein 2 and Smad1 in alveolar bone tissue was detected by western blot.
RESULTS AND CONCLUSION: (1) Compared with the control group, the model group showed significantly increased levels of interleukin 1β, tumor necrosis factor α, and interleukin 6, and a significantly increased number of osteoclasts (P < 0.05), while protein expression of bone morphogenetic protein 2 and Smad1 was significantly decreased (P < 0.05). Compared with the model group, the low-dose risedronate sodium group showed significantly decreased levels of interleukin 1β, tumor necrosis factor α, and interleukin 6, and a significantly decreased number of osteoclasts (P < 0.05), while orthodontic tooth movement distance and protein expression of bone morphogenetic protein 2 and Smad1 were significantly increased (P < 0.05). Compared with the low-dose risedronate sodium group, the high-dose risedronate sodium group showed significantly decreased levels of interleukin 1β, tumor necrosis factor α, and interleukin 6, and a significantly decreased number of osteoclasts (P < 0.05), while orthodontic tooth movement distance and protein expression of bone morphogenetic protein 2 and Smad1 were significantly increased (P < 0.05). (2) Hematoxylin-eosin staining showed normal maxillary bone structure in the control group. In the model group, the periodontal space on the pressure side was narrowed, the periodontal ligament on the tension side was widened, cementum resorption lacunae were increased, and bone remodeling was active. In the low- and high-dose risedronate sodium groups, the pressure side space was reduced, new bone deposition on the tension side was enhanced, and bone resorption was decreased. To conclude, these findings indicate that risedronate sodium inhibits inflammatory response and osteoclast activity in the periodontal tissue induced by orthodontic force, promotes bone formation by upregulating the bone morphogenetic protein 2/Smad1 signaling pathway, and accelerates the process of orthodontic tooth movement.


Key words: risedronate sodium, orthodontic tooth movement, periodontal inflammation, osteoclasts, bone morphogenetic protein 2, Smad1

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