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Research Article Free access | 10.1172/JCI117258

Induction of vascular endothelial growth factor expression by prostaglandin E2 and E1 in osteoblasts.

S Harada, J A Nagy, K A Sullivan, K A Thomas, N Endo, G A Rodan, and S B Rodan

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Harada, S. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Nagy, J. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Sullivan, K. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Thomas, K. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Endo, N. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Rodan, G. in: PubMed | Google Scholar

Department of Bone Biology and Osteoporosis Research, Merck Research Laboratories, West Point, Pennsylvania 19486.

Find articles by Rodan, S. in: PubMed | Google Scholar

Published June 1, 1994 - More info

Published in Volume 93, Issue 6 on June 1, 1994
J Clin Invest. 1994;93(6):2490–2496. https://doi.org/10.1172/JCI117258.
© 1994 The American Society for Clinical Investigation
Published June 1, 1994 - Version history
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Abstract

PGE1 and PGE2 are potent stimulators of bone formation. Osteogenesis is strongly dependent on angiogenesis. Vascular endothelial growth factor (VEFG), a secreted endothelial cell-specific mitogen, has been implicated in physiological and pathological angiogenesis. The aim of this study was to examine the possible role of VEGF in PG stimulation of bone formation. We found that in rat calvaria-derived osteoblast-enriched cells and in the osteoblastic RCT-3 cell line PGE2 and E1 increased VEGF mRNA and protein levels. The increased expression of VEGF mRNA produced by PGE2 was rapid (maximal at 1 h), transient (declined by 3 h), potentiated by cycloheximide, and abolished by actinomycin D. PGE2 had no effect on VEGF mRNA stability, suggesting transcriptional regulation of VEGF expression by PGF2. Rp-cAMP, a cAMP antagonist, suppressed VEGF mRNA induced by PGE2, indicating cAMP mediation. The upregulation of VEGF expression by PGE2 in the preosteoblastic RCT-1 cells was potentiated by treatment with retinoic acid, which induces the differentiation of these cells. The upregulation of VEGF mRNA by PGE2 was inhibited by dexamethasone treatment. In addition, Northern blot analysis showed that VEGF mRNA is expressed in adult rat tibia. In summary, we documented, for the first time, the expression of VEGF in osteoblasts and in bone tissue. Stimulation of VEGF expression by PGs and its suppression by glucocorticoids, which, respectively, stimulate and suppress bone formation, strongly implicate the involvement of VEGF in bone metabolism.

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