Effect of the release from mechanical stress on osteoclastogenesis in RAW264.7 cells

被引:32
作者
Shibata, Kenjiro [1 ,2 ]
Yoshimura, Yoshitaka [1 ]
Kikuiri, Takashi [3 ]
Hasegawa, Tomokazu [4 ]
Taniguchi, Yumi [3 ]
Deyama, Yoshiaki [1 ]
Suzuki, Kuniaki [1 ]
Iida, Junichiro [2 ]
机构
[1] Hokkaido Univ, Grad Sch Dent Med, Dept Mol Cell Pharmacol, Kita Ku, Sapporo, Hokkaido 0608586, Japan
[2] Hokkaido Univ, Grad Sch Dent Med, Dept Orthodont, Kita Ku, Sapporo, Hokkaido 0608586, Japan
[3] Hokkaido Univ, Grad Sch Dent Med, Dept Pediat Dent, Kita Ku, Sapporo, Hokkaido 0608586, Japan
[4] Iwate Med Univ, Sch Dent, Dept Pediat, Morioka, Iwate 0208505, Japan
基金
日本学术振兴会;
关键词
mechanical stress; osteoclast; nitric oxide; COLONY-STIMULATING FACTOR; NITRIC-OXIDE PRODUCTION; BONE STROMAL CELLS; RANKL EXPRESSION; KAPPA-B; LIGAND; DIFFERENTIATION; OSTEOBLAST; STRAIN; INDUCTION;
D O I
10.3892/ijmm.2011.675
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
100103 [病原生物学]; 100218 [急诊医学];
摘要
The effects of mechanical stress release on osteoclastogenesis may be as Important as those of mechanical stress application. However, the direct effects of mechanical stress on the behavior of osteoclasts has not been thoroughly investigated and there is limited information on the results of the release from mechanical stress. In this study, the effects of mechanical stress application and its release on osteoclast differentiation were examined. The number of tartrate-resistant acid phosphatase (TRAP)-positive multinucleated osteoclasts derived from RAW264.7 cells were measured and the expression of osteoclast differentiation genes, which was altered in response to the release from mechanical stress according to the Flexercell tension system was evaluated by real-time PCR. Osteoclast differentiation and fusion were suppressed by mechanical stress application and were rapidly induced after mechanical stress release. The mRNA expression of the osteoclast specific genes, TRAP, matrix metalloproteinase-9 (MMP-9), cathepsin-K (cath-k), calcitonin receptor (CTR), ATPase H+ transporting vacuolar proton pump member I (ATP6i), chloride channel-7 (ClC7) and dendritic cell-specific transmembrane protein (DC-STAMP) was decreased with mechanical stress application, and increased up to 48 h after the release from it. These alterations in gene mRNA expression were associated with the number of osteoclasts and large osteoclasts. Inducible nitric oxide synthetase (iNOS) mRNA was increased with mechanical stress and decreased after its release. Nitric oxide (NO) production was increased with mechanical stress. Nuclear factor of activated T cells cytoplasmic (NFATc) family mRNAs were not altered with mechanical stress, but were up-regulated up to 48 h after the release from it. These findings indicate that the suppression of osteoclast differentiation and fusion induced by mechanical stress is the result of NO increase via iNOS, and that the promotion of osteoclast differentiation and fusion after the release from mechanical stress is related to the NFATc family genes, whose expression remained constant during mechanical stress but was up-regulated after the release from mechanical stress.
引用
收藏
页码:73 / 79
页数:7
相关论文
共 46 条
[1]
A novel ligand-independent function of the estrogen receptor is essential for osteocyte and osteoblast mechanotransduction [J].
Aguirre, J. Ignacio ;
Plotkin, Lilian I. ;
Gortazar, Arancha R. ;
Millan, Marta Martin ;
O'Brien, Charles A. ;
Manolagas, Stavros C. ;
Bellido, Teresita .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (35) :25501-25508
[2]
Autoamplification of NFATc1 expression determines its essential role in bone homeostasis [J].
Asagiri, M ;
Sato, K ;
Usami, T ;
Ochi, S ;
Nishina, H ;
Yoshida, H ;
Morita, I ;
Wagner, EF ;
Mak, TW ;
Serfling, E ;
Takayanagi, H .
JOURNAL OF EXPERIMENTAL MEDICINE, 2005, 202 (09) :1261-1269
[3]
Nitric oxide production by bone cells is fluid shear stress rate dependent [J].
Bacabac, RG ;
Smit, TH ;
Mullender, MG ;
Dijcks, SJ ;
Van Loon, JJWA ;
Klein-Nulend, J .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2004, 315 (04) :823-829
[4]
Mechanical strain and bone cell function: A review [J].
Ehrlich, PJ ;
Lanyon, LE .
OSTEOPOROSIS INTERNATIONAL, 2002, 13 (09) :688-700
[5]
Osteocytes and WNT: the Mechanical Control of Bone Formation [J].
Galli, C. ;
Passeri, G. ;
Macaluso, G. M. .
JOURNAL OF DENTAL RESEARCH, 2010, 89 (04) :331-343
[6]
Compressive mechanical stress promotes osteoclast formation through RANKL expression on synovial cells [J].
Ichimiya, Hisashi ;
Takahashi, Tetsu ;
Ariyoshi, Wataru ;
Takano, Hiroshi ;
Matayoshi, Takaaki ;
Nishihara, Tatsuji .
ORAL SURGERY ORAL MEDICINE ORAL PATHOLOGY ORAL RADIOLOGY AND ENDODONTOLOGY, 2007, 103 (03) :334-341
[7]
Transcriptional induction of FosB/ΔFosB gene by mechanical stress in osteoblasts [J].
Inoue, D ;
Kido, S ;
Matsumoto, T .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (48) :49795-49803
[8]
Involvement of FcRγ in signal transduction of osteoclast-associated receptor (OSCAR) [J].
Ishikawa, S ;
Arase, N ;
Suenaga, T ;
Saita, Y ;
Noda, M ;
Kuriyama, T ;
Arase, H ;
Saito, T .
INTERNATIONAL IMMUNOLOGY, 2004, 16 (07) :1019-1025
[9]
Receptor activator of nuclear factor-kappa B ligand induces osteoclast formation in RAW 264.7 macrophage cells via augmented production of macrophage-colony-stimulating factor [J].
Islam, Shamima ;
Hassan, Ferdaus ;
Tumurkhuu, Gantsetseg ;
Dagvadorj, Jargalsaikhan ;
Koide, Naoki ;
Naiki, Yoshikazu ;
Yoshida, Tomoaki ;
Yokochi, Takashi .
MICROBIOLOGY AND IMMUNOLOGY, 2008, 52 (12) :585-590
[10]
Regulation of mechanical signals in bone [J].
Judex, S. ;
Gupta, S. ;
Rubin, C. .
ORTHODONTICS & CRANIOFACIAL RESEARCH, 2009, 12 (02) :94-104