Literature DB >> 35262654

Effects of compressive stress combined with mechanical vibration on osteoclastogenesis in RAW 264.7 cells.

Boontida Changkhaokham, Sumit Suamphan, Prasit Pavasant, Suwanna Jitpukdeebodintra, Chidchanok Leethanakul.   

Abstract

OBJECTIVES: To investigate the effects of compressive force and/or mechanical vibration on NFATc1, DCSTAMP, and CTSK (cathepsin K) gene expression and the number of tartrate-resistant acid phosphatase (TRAP)-positive multinucleated cells in RAW 264.7 cells, a murine osteoclastic-like cell line.
MATERIALS AND METHODS: RAW 264.7 cells were subjected to mechanical vibration, compressive force, or compressive force combined with vibration. Cell viability and the numbers of TRAP-positive multinucleated cells were evaluated. NFATc1, DCSTAMP, and CTSK gene expressions were analyzed using real-time quantitative reverse transcription polymerase chain reaction.
RESULTS: Compressive force combined with mechanical vibration significantly increased the numbers of TRAP-positive multinucleated cells but did not significantly affect cell viability. In addition, compressive force combined with mechanical vibration significantly increased NFATc1, DCSTAMP, and CTSK mRNA expression compared with compressive force or vibration alone.
CONCLUSIONS: Compressive force combined with mechanical vibration induces osteoclastogenesis and upregulates NFATc1, DCSTAMP, and CTSK gene expression in RAW 264.7 cells. These results provide more insight into the mechanisms by which vibratory force accelerates orthodontic tooth movement.
© 2022 by The EH Angle Education and Research Foundation, Inc.

Entities:  

Keywords:  zzm321990 Cathepsin Kzzm321990 ; zzm321990 DC-STAMPzzm321990 ; zzm321990 NFATc1zzm321990 ; Compressive force; Osteoclastogenesis; Vibration

Mesh:

Substances:

Year:  2022        PMID: 35262654      PMCID: PMC9235393          DOI: 10.2319/090321-682.1

Source DB:  PubMed          Journal:  Angle Orthod        ISSN: 0003-3219            Impact factor:   2.684


  28 in total

1.  Induction and activation of the transcription factor NFATc1 (NFAT2) integrate RANKL signaling in terminal differentiation of osteoclasts.

Authors:  Hiroshi Takayanagi; Sunhwa Kim; Takako Koga; Hiroshi Nishina; Masashi Isshiki; Hiroki Yoshida; Akio Saiura; Miho Isobe; Taeko Yokochi; Jun-ichiro Inoue; Erwin F Wagner; Tak W Mak; Tatsuhiko Kodama; Tadatsugu Taniguchi
Journal:  Dev Cell       Date:  2002-12       Impact factor: 12.270

2.  Short-term mechanical stress inhibits osteoclastogenesis via suppression of DC-STAMP in RAW264.7 cells.

Authors:  Sumika Kameyama; Yoshitaka Yoshimura; Takeshi Kameyama; Takashi Kikuiri; Mino Matsuno; Yoshiaki Deyama; Kuniaki Suzuki; Junichiro Iida
Journal:  Int J Mol Med       Date:  2012-12-21       Impact factor: 4.101

3.  Vibration enhances osteoclastogenesis by inducing RANKL expression via NF-κB signaling in osteocytes.

Authors:  Mayuri Sakamoto; Tomohiro Fukunaga; Kiyo Sasaki; Masahiro Seiryu; Mitsuhiro Yoshizawa; Nobuo Takeshita; Teruko Takano-Yamamoto
Journal:  Bone       Date:  2019-03-20       Impact factor: 4.398

4.  Periodontal tissue activation by vibration: intermittent stimulation by resonance vibration accelerates experimental tooth movement in rats.

Authors:  Makoto Nishimura; Mirei Chiba; Toshiro Ohashi; Masaaki Sato; Yoshiyuki Shimizu; Kaoru Igarashi; Hideo Mitani
Journal:  Am J Orthod Dentofacial Orthop       Date:  2008-04       Impact factor: 2.650

5.  The effect of compressive force combined with mechanical vibration on human alveolar bone osteoblasts.

Authors:  Chatchai Chatmahamongkol; Anute Pravitharangul; Srisurang Suttapreyasri; Chidchanok Leethanakul
Journal:  J Oral Biol Craniofac Res       Date:  2018-10-16

6.  Micro-vibrations at 30 Hz on bone cells cultivated in vitro produce soluble factors for osteoclast inhibition and osteoblast activity.

Authors:  Salvador García-López; Rosina E Villanueva; Felipe Massó-Rojas; Araceli Páez-Arenas; Murray C Meikle
Journal:  Arch Oral Biol       Date:  2019-11-09       Impact factor: 2.633

7.  Effectiveness of electric toothbrush as vibration method on orthodontic tooth movement: a split-mouth study.

Authors:  Muhammad Azeem; Ambreen Afzal; Saqib Ali Jawa; Arfan Ul Haq; Mahwish Khan; Husnain Akram
Journal:  Dental Press J Orthod       Date:  2019-05-20

8.  Continuous Compressive Force Induces Differentiation of Osteoclasts with High Levels of Inorganic Dissolution.

Authors:  Rieko Matsuike; Kumiko Nakai; Hideki Tanaka; Manami Ozaki; Mai Kanda; Maki Nagasaki; Chika Shibata; Kotoe Mayahara; Natsuko Tanabe; Ryosuke Koshi; Akira Nakajima; Takayuki Kawato; Masao Maeno; Noriyoshi Shimizu; Mitsuru Motoyoshi
Journal:  Med Sci Monit       Date:  2019-05-26

9.  Low-magnitude high-frequency vibration inhibits RANKL-induced osteoclast differentiation of RAW264.7 cells.

Authors:  Song-Hui Wu; Zhao-Ming Zhong; Jian-Ting Chen
Journal:  Int J Med Sci       Date:  2012-10-26       Impact factor: 3.738

10.  Synergistic acceleration of experimental tooth movement by supplementary high-frequency vibration applied with a static force in rats.

Authors:  Teruko Takano-Yamamoto; Kiyo Sasaki; Goudarzi Fatemeh; Tomohiro Fukunaga; Masahiro Seiryu; Takayoshi Daimaruya; Nobuo Takeshita; Hiroshi Kamioka; Taiji Adachi; Hiroto Ida; Atsushi Mayama
Journal:  Sci Rep       Date:  2017-10-25       Impact factor: 4.379

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