Osteopontin is required for mechanical stress-dependent signals to bone marrow cells

被引:41
作者
Ishijima, Muneaki
Tsuji, Kunikazu
Rittling, Susan R.
Yamashita, Teruhito
Kurosawa, Hisashi
Denhardt, David T.
Nifuji, Akira
Ezura, Yoichi
Noda, Masaki
机构
[1] Tokyo Med & Dent Univ, Med Res Inst, Dept Mol Pharmacol, Chiyoda Ku, Tokyo 1010062, Japan
[2] Rutgers State Univ, Dept Cell Biol & Neurosci, Piscataway, NJ 08854 USA
[3] Juntendo Univ, Sch Med, Dept Orthopaed, Tokyo 1138421, Japan
关键词
COLONY-STIMULATING-FACTOR; UNLOADING INDUCES RESISTANCE; PARATHYROID-HORMONE; ALPHA(V)BETA(3) INTEGRIN; C-SRC; IGF-I; EXPRESSION; RESORPTION; STRAIN; DEFICIENCY;
D O I
10.1677/joe.1.06704
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Mechanical stress to bone plays a crucial role in the maintenance of bone homeostasis. It causes the deformation of bone matrix and generates strain force, which could initiate the mechanotransduction pathway. The presence of osteopontin (OPN), which is one of the abundant proteins in bone matrix, is required for the effects of mechanical stress on bone, as we have reported that OPN-null (OPN-/-) mice showed resistance to unloading-induced bone loss. However, cellular mechanisms underlying the phenomenon have not been completely elucidated. To obtain further insight into the role of OPN in mediating mechanical stress effect on bone, we examined in vitro mineralization and osteoclast-like cell formation in bone marrow cells obtained front hind limb bones of OPN-/- mice after tail suspension. The levels of mineralized nodule formation of bone marrow cells derived from the femora subjected to unloading were decreased compared with that from loaded control in wild-type mice. However, these were not decreased in cells from OPN-/- mice after tail suspension compared with that from loaded OPN-/- mice. Moreover, while spreading of osteoclast-like cells derived from bone marrow cells of the femora subjected to unloading was enhanced compared with that from loaded control in wild-type mice, this enhancement of spreading of these cells derived from the femora subjected to unloading was not recognized compared with those from loaded control in OPN-/- mice. These data provided cellular bases for the effect of the OPN deficiency on in vitro reduced mineralized nodule formation by osteoblasts and on enhancement of osteoclast spreading in vitro induced by the absence of mechanical stress. These in vitro results correlate well with the resistance to unloading-induced bone loss in OPN-/- mice in vivo, suggesting that OPN has an important role in the effects of unloading-induced alterations of differentiation of bone marrow into osteoblasts and osteoclasts.
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页码:235 / 243
页数:9
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