Literature DB >> 27456852

Wnt5a mediated canonical Wnt signaling pathway activation in orthodontic tooth movement: possible role in the tension force-induced bone formation.

Hai-Di Fu1,2, Bei-Ke Wang1,2, Zi-Qiu Wan1,2, Heng Lin1,2, Mao-Lin Chang1,2, Guang-Li Han3,4.   

Abstract

Orthodontic tooth movement (OTM) is associated with bone remodeling mediated by orthodontic mechanical loading. Increasing studies reported that Wnt signaling played crucial roles in mechanical stimuli induced bone remodeling. However, little is known about the involvement of Wnt signaling in orthodontic force-induced bone formation during OTM. In virtue of the OTM mice model as we previously reported, where new bone formation was determined by micro-CT and immunoreactivity of osteocalcin and osterix, we explored the activation of Wnt signaling pathway during OTM. Our results proved the nuclei translocation of β-catenin, suggesting the activation of canonical Wnt signaling pathway in the periodontal ligament cells (PDLCs) near the alveolar bone at the tension site (TS). Moreover, the immunoreactivity of Wnt5a, but not Wnt3a in PDLCs indicated the activation of canonical Wnt pathway might be mediated by Wnt5a, but not Wnt3a as in most cases. The co-location of Wnt5a and β-catenin that was evidenced by double labeling immunofluorescence staining further supported the hypothesis. In addition, the high expression of FZD4 and LRP5 in PDLCs at TS of periodontium suggested that the activation of Wnt signaling pathway was mediated by these receptors. The negligible expression of ROR2 also indicated that canonical but not non-canonical Wnt signaling pathway was activated by Wnt5a, since previous studies demonstrated that the activation of canonical/non-canonical Wnt signaling pathway was largely dependent on the receptors. In summary, we here reported that Wnt5a mediated activation of canonical Wnt signaling pathway might contribute to the orthodontic force induced bone remodeling.

Entities:  

Keywords:  Bone remodeling; Orthodontic tooth movement; Wnt5a; β-Catenin

Mesh:

Substances:

Year:  2016        PMID: 27456852     DOI: 10.1007/s10735-016-9687-y

Source DB:  PubMed          Journal:  J Mol Histol        ISSN: 1567-2379            Impact factor:   2.611


  61 in total

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8.  Orthodontic tooth movement: bone formation and its stability over time.

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9.  Cytokine expression pattern in compression and tension sides of the periodontal ligament during orthodontic tooth movement in humans.

Authors:  Thiago P Garlet; Ulisses Coelho; João S Silva; Gustavo P Garlet
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Journal:  Sci Rep       Date:  2014-03-27       Impact factor: 4.379

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1.  Effect of corticision on orthodontic tooth movement in a rat model as assessed by RNA sequencing.

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2.  Histological evidence that metformin reverses the adverse effects of diabetes on orthodontic tooth movement in rats.

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3.  Expression pattern of YAP and TAZ during orthodontic tooth movement in rats.

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Review 6.  Exploiting the WNT Signaling Pathway for Clinical Purposes.

Authors:  Mark L Johnson; Robert R Recker
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7.  Mechanical stress promotes matrix synthesis of mandibular condylar cartilage via the RKIP-ERK pathway.

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Review 10.  Biomechanical and biological responses of periodontium in orthodontic tooth movement: up-date in a new decade.

Authors:  Yuan Li; Qi Zhan; Minyue Bao; Jianru Yi; Yu Li
Journal:  Int J Oral Sci       Date:  2021-06-28       Impact factor: 6.344

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