Molecular mechanism of action of fluoride on bone cells

被引:109
作者
Lau, KHW
Baylink, DJ
机构
[1] Jerry L Pettis Mem Vet Adm Med Ctr, Musculoskeletal Dis Ctr 151, Loma Linda, CA 92357 USA
[2] Loma Linda Univ, Dept Med, Loma Linda, CA 92350 USA
[3] Loma Linda Univ, Dept Biochem, Loma Linda, CA 92350 USA
关键词
D O I
10.1359/jbmr.1998.13.11.1660
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Fluoride is an effective anabolic agent to increase spinal bone density by increasing bone formation, and at therapeutically relevant (i.e., micromolar) concentrations, it stimulates bone cell proliferation and activities in vitro and in vivo. However, the fluoride therapy of osteoporosis has been controversial, in large part because of a lack of consistent antifracture efficacy. However, information regarding the molecules mechanism of action of fluoride may improve its optimum and correct usage and may disclose potential targets for the development of new second generation drugs that might have a better efficacy and safety profile. Accordingly, this review will address the molecular mechanisms of the osteogenic action of fluoride. In this regard, we and other workers have proposed two competing models, both of which involve the mitogen activated protein kinase (MAPK) mitogenic signal transduction pathway. Our model involves a fluoride inhibition of a unique fluoride-sensitive phosphotyrosine phosphatase (PTP) in osteoblasts, which results in a sustained increase in the tyrosine phosphorylation level of the key signaling proteins of the MAPK mitogenic transduction pathway, leading to the potentiation of the bone cell proliferation initiated by growth factors. The competing model proposes that fluoride acts in coordination with aluminum to form fluoroaluminate, which activates a pertussis toxin-sensitive Gi/o protein on bone cell membrane, leading to an activation of cellular protein tyrosine kinases (PTKs), which in turn leads to increases in the tyrosine phosphorylation of signaling proteins of the MAPK mitogenic signal transduction pathway, ultimately leading to a stimulation of cell proliferation. A benefit of our model, but not the other model, is that it accounts for all the unique properties of the osteogenic action of fluoride. These include the low effective fluoride dose, the skeletal tissue specificity, the requirement of PTK-activating growth factors, the sensitivity to changes in medium phosphate concentration, the preference for undifferentiated osteoblasts, and the involvement of the MAPK. Unlike fluoride, the mitogenic action of fluoroaluminate is not specific for skeletal cells. Moreover, the mitogenic action of fluoroaluminate shows several important, different characteristics than that of fluoride. Thus, it is likely that our model of a fluoride-sensitive PTP represents the actual molecular mechanism of the osteogenic action of fluoride.
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页码:1660 / 1667
页数:8
相关论文
共 67 条
[1]   A NOVEL MAGNESIUM-DEPENDENT MECHANISM FOR THE ACTIVATION OF TRANSDUCIN BY FLUORIDE [J].
ANTONNY, B ;
BIGAY, J ;
CHABRE, M .
FEBS LETTERS, 1990, 268 (01) :277-280
[2]   EVIDENCE THAT GENISTEIN, A PROTEIN-TYROSINE KINASE INHIBITOR, INHIBITS CD28 MONOCLONAL-ANTIBODY-STIMULATED HUMAN T-CELL PROLIFERATION [J].
ATLURU, S ;
ATLURU, D .
TRANSPLANTATION, 1991, 51 (02) :448-450
[3]  
Baylink David J., 1993, P262
[4]  
BELLOWS C G, 1990, Journal of Bone and Mineral Research, V5, pS101
[5]  
BELLOWS CG, 1993, J BONE MINER RES, V8, P1357
[6]   Role of protein kinase C alpha, Arf, and cytoplasmic calcium transients in phospholipase D activation by sodium fluoride in osteoblast-like cells [J].
Bourgoin, SG ;
Harbour, D ;
Poubelle, PE .
JOURNAL OF BONE AND MINERAL RESEARCH, 1996, 11 (11) :1655-1665
[7]  
BRIANCON D, 1981, ORTHOP CLIN N AM, V12, P629
[8]  
BURGENER D, 1995, J BONE MINER RES, V10, P164
[9]  
Caverzasio J, 1996, J BONE MINER RES, V11, P46
[10]   Mechanism of the mitogenic effect of fluoride on osteoblast-like cells: Evidences for a G protein-dependent tyrosine phosphorylation process [J].
Caverzasio, J ;
Palmer, G ;
Suzuki, A ;
Bonjour, JP .
JOURNAL OF BONE AND MINERAL RESEARCH, 1997, 12 (12) :1975-1983