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微骨开窗加速牙齿移动,而不会加重大鼠的牙根吸收进展。

Micro-Osteoperforations Accelerate Tooth Movement without Exacerbating the Progression of Root Resorption in Rats.

机构信息

Department of Orthodontics, School of Dentistry at Matsudo, Nihon University, 2-870-1 Sakaecho-Nishi, Matsudo 271-8587, Japan.

出版信息

Biomolecules. 2024 Mar 2;14(3):300. doi: 10.3390/biom14030300.

Abstract

A recent study reported that micro-osteoperforations (MOPs) accelerated tooth movement by activating alveolar bone remodeling. However, very little is known about the relationship between MOPs and external apical root resorption during orthodontic treatment. In this study, in order to investigate the mechanism through which MOPs accelerate tooth movement without exacerbating the progression of root resorption, we measured the volume of the resorbed root, and performed the terminal deoxynucleotidyl transferase (TdT)-mediated dUTP-biotin nick-end labeling (TUNEL) method on exposed MOPs during experimental tooth movements in rats. Male Wistar rats (11 weeks old) were divided into three groups: 10 g orthodontic force (optimal force) applied to the maxillary first molar (optimal force: OF group), 50 g orthodontic force application (heavy force: HF group), and 10 g force application plus three small perforations of the cortical plate (OF + MOPs group). On days 1, 4, 7, 10, and 14 after force application, the tooth movement and root volume were investigated by micro-computed tomography. Furthermore, the number of apoptotic cells in the pressured sides of the periodontal ligament (PDL) and surrounding hard tissues were determined by TUNEL staining. The OF + MOPs group exhibited a 1.8-fold increase in tooth movement on days 7, 10, and 14 compared with the OF group. On days 14, the HF group had a higher volume of root loss than the OF and OF + MOPs groups. On the same day, the number of TUNEL-positive cells in the HF group increased at the root (cementum) site whereas that in the OF group increased at the alveolar bone site. Furthermore, the number of TUNEL-positive cells in the OF + MOPs group increased at the alveolar bone site compared with the OF group. These results suggest that MOPs accelerate orthodontic tooth movement without exacerbating the progression of root resorption.

摘要

最近的一项研究报道称,微骨穿孔(MOPs)通过激活牙槽骨重塑加速牙齿移动。然而,在正畸治疗过程中,关于 MOPs 与根尖外吸收的关系知之甚少。在这项研究中,为了研究 MOPs 在加速牙齿移动而不加剧根吸收进展的机制,我们测量了吸收根的体积,并在大鼠实验性牙齿移动过程中对暴露的 MOPs 进行了末端脱氧核苷酸转移酶(TdT)介导的 dUTP-生物素缺口末端标记(TUNEL)法。雄性 Wistar 大鼠(11 周龄)分为三组:上颌第一磨牙施加 10g 正畸力(最佳力)(最佳力:OF 组)、施加 50g 正畸力(大力:HF 组)和施加 10g 力外加皮质板三个小穿孔(OF + MOPs 组)。在力施加后第 1、4、7、10 和 14 天,通过微计算机断层扫描研究牙齿移动和根体积。此外,通过 TUNEL 染色测定牙周膜(PDL)受压侧和周围硬组织中凋亡细胞的数量。与 OF 组相比,OF + MOPs 组在第 7、10 和 14 天牙齿移动增加了 1.8 倍。第 14 天,HF 组的根损失体积高于 OF 和 OF + MOPs 组。同日,HF 组 TUNEL 阳性细胞数量在牙根(牙骨质)部位增加,而 OF 组在牙槽骨部位增加。此外,与 OF 组相比,OF + MOPs 组在牙槽骨部位的 TUNEL 阳性细胞数量增加。这些结果表明,MOPs 加速正畸牙齿移动而不加剧根吸收的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f08/10967735/95fc810e032a/biomolecules-14-00300-g001.jpg

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