Abstract
Abstract
Background
Orthodontic tooth movement (OTM) in a region containing alveolar bone defects with insufficient height and width is hard to achieve. Bovine bone mineral (Bio-Oss) is available to restore the alveolar defect; however, whether the region augmented with a bovine bone mineral graft (BG) is feasible for OTM, and the mechanisms by which macrophages remodel the BG material, is uncertain under the mechanical force induced by OTM.
Material and methods
Rats were divided into three groups: OTM (O), OTM + BG material (O + B), and Control (C). First molars were extracted to create bone defects in the O and O + B groups with bovine bone mineral grafting in the latter. Second molars received OTM towards the bone defects in both groups. After 28 days, maxillae were analyzed using microfocus-computed tomography (μCT) and scanning-electron-microscopy (SEM); and macrophages (M1/M2) were stained using immunofluorescence. THP-1 cell-induced macrophages were cultured under mechanical force (F), BG material (B), or both (F + B). Phagocytosis-related signaling molecules (cAMP/PKA/RAC1) were analyzed, and conditioned media was analyzed for MMP-9 and cytokines (IL-1β, IL-4).
Results
Our study demonstrated that alveolar defects grafted with BG materials are feasible for OTM, with significantly increased OTM distance, bone volume, and trabecular thickness in this region. SEM observation revealed that the grafts served as a scaffold for cells to migrate and remodel the BG materials in the defect during OTM. Moreover, the population of M2 macrophages increased markedly both in vivo and in cell culture, with enhanced phagocytosis via the cAMP/PKA/RAC1 pathway in response to mechanical force in combination with BG particles. By contrast, M1 macrophage populations were decreased under the same circumstances. In addition, M2 macrophage polarization was also indicated by elevated IL-4 levels, reduced IL-1β levels, and less active MMP-9 in cell culture.
Conclusion
This study explored the mechanisms of mechanical force-induced alveolar bone remodeling with bovine bone mineral grafts during OTM. The results might provide molecular insights into the related clinical problems of whether we can move teeth into the grafted materials; and how these materials become biologically remodeled and degraded under mechanical force.
Funder
National Natural Science Foundation of China
National Key Clinical Specialty Construction Project
Beijing Municipal Science Technology Commission
National Clinical Key Discipline Construction Project
Publisher
Springer Science and Business Media LLC
Reference37 articles.
1. Ru N, Liu SS, Bai Y, Li S, Liu Y, Wei X. BoneCeramic graft regenerates alveolar defects but slows orthodontic tooth movement with less root resorption. Am J Orthod Dentofacial Orthop. 2016;149(4):523–32.
2. Aludden HC, Mordenfeld A, Hallman M, Dahlin C, Jensen T. Lateral ridge augmentation with Bio-Oss alone or Bio-Oss mixed with particulate autogenous bone graft: a systematic review. Int J Oral Maxillofac Surg. 2017;46(8):1030–8.
3. Sodek J, McKee MD. Molecular and cellular biology of alveolar bone. Periodontol. 2000;2000(24):99–126.
4. Yu L, Zhang XR, Deng J. Quantitative histology of response of sutures under retractive force with zygomatic implant anchorage to the maxilla of rhesus monkey. Acta Med Univ Sci Technol Huazhong. 2014;43(1):39–44.
5. Deng J, Beroukhim J, Parizadeh P, Shembesh FA. Response of Mid-Palatal Suture to Compressive Stress. In: 91st European orthodontic society (EOS), Venice; 2015.
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