Transforming growth factor$ (TGFP) serves an important role in extracellular matrix formation by stimulating the production of numerous extracellular matrix proteins by connective tissue cells and by osteoblasts or bone-forming cells. TGFP has been shown to stimulate alkaline phosphatase (ALPase) ac
Mechanical loading stimulates the release of transforming growth factor-β activity by cultured mouse calvariae and periosteal cells
✍ Scribed by Jenneke Klein-Nulend; Jan Roelofsen; Jozien G. H. Sterck; Cornelis M. Semeins; Elisabeth H. Burger
- Publisher
- John Wiley and Sons
- Year
- 1995
- Tongue
- English
- Weight
- 576 KB
- Volume
- 163
- Category
- Article
- ISSN
- 0021-9541
No coin nor oath required. For personal study only.
✦ Synopsis
We have shown earlier that mechanical stimulation by intermittent hydrostatic compression (IHC) inhibits bone resorption and stimulates bone formation in cultured fetal mouse calvariae (Klein-Nulend et al., 1986, Arthritis Rheum., 29; 1002-1009). The production of soluble bone factors by such calvariae is also modified (Klein-Nulend et al., 1993, Cell Tissue Res., 271 :513-517). Transforming growth factor-P (TGF-P) is an important local regulator of bone metabolism and is produced by osteoblasts. In this study, the release of TGF-P activity as a result of mechanical stress was examined in organ cultures of neonatal mouse calvariae, in primary cultures of calvariae-derived osteoprogenitor (OPR) cells, and in more differentiated osteoblastic (OB) cells. Whole calvariae and calvariaederived cells were cultured in the presence or absence of IHC for 1-7 days and medium concentrations of active as well as total TGF-P were measured using a bioassay. IHC (maximum 13 kPa, maximal pressure rate 32.5 kPa/sec) was generated by intermittently (0.3 Hz) compressing the gas phase above the cultures. We found that mechanicai loading by IHC stimulated the release of TGF-P activity from cultured calvariae by twofold after 1 day. IHC also stimulated the release of TGF-P activity from calvariae-derived cells after 1 and 3 days. The absolute amounts of TGF-P activity released were lower in OPR cells than in OB cells, but the stimulatory effect of IHC was greater in OPR cells. Total TGF-P (active and bound) released into the medium was not affected by IHC. IHC did not change the dry weight of the organ cultures, nor the DNA or protein content of the cell cultures. These data show that mechanical perturbation of bone cells, particularly OPR cells, enhances the activation of released TGF-P. We conclude that modulation of TGF-P metabolism may be part of the response of bone tissue to mechanical Stress.
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