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Published in: Osteoporosis International 8/2005

01-08-2005 | Original Article

Additive effects of estrogen and mechanical stress on nitric oxide and prostaglandin E2 production by bone cells from osteoporotic donors

Authors: A. D. Bakker, J. Klein-Nulend, E. Tanck, G. H. Albers, P. Lips, E. H. Burger

Published in: Osteoporosis International | Issue 8/2005

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Abstract

Mechanical loading is thought to provoke a cellular response via loading-induced flow of interstitial fluid through the lacuno-canalicular network of osteocytes. This response supposedly leads to an adaptation of local bone mass and architecture. It has been suggested that loss of estrogen during menopause alters the sensitivity of bone tissue to mechanical load, thereby contributing to the rapid loss of bone. The present study aimed to determine whether estrogen modulates the mechanoresponsiveness of bone cells from osteoporotic women. Bone cell cultures from nine osteoporotic women (aged 62–90 years) were pre-cultured for 24 h with 10−11 mol/l 17β-estradiol (E2) or vehicle, and subjected to 1 h of pulsating fluid flow (PFF) or static culture. E2 alone enhanced prostaglandin E2 (PGE2) and nitric oxide (NO) production by 2.8-fold and 2.0-fold, respectively, and stimulated endothelial nitric oxide synthase protein expression by 2.5-fold. PFF, in the absence of E2, stimulated PGE2 production by 3.1-fold and NO production by 3.9-fold. Combined treatment with E2 and PFF increased PGE2 and NO production in an additive manner. When expressed as PFF-treatment-over-control ratio, the response to fluid shear stress was similar in the absence or presence of E2. These results suggest that E2 does not affect the early response to stress in bone cells. Rather, E2 and shear stress both promote the production of paracrine factors such as NO and PGE2 in an additive manner.
Literature
1.
go back to reference Parfitt AM (1976) The actions of parathyroid hormone on bone: relation to bone remodeling and turnover, calcium homeostasis, and metabolic bone diseases II. PTH and bone cells: bone turnover and plasma calcium regulation. Metabolism 25:909–955CrossRefPubMed Parfitt AM (1976) The actions of parathyroid hormone on bone: relation to bone remodeling and turnover, calcium homeostasis, and metabolic bone diseases II. PTH and bone cells: bone turnover and plasma calcium regulation. Metabolism 25:909–955CrossRefPubMed
2.
go back to reference Pondel M (2000) Calcitonin and calcitonin receptors: bone and beyond. Int J Exp Pathol 81:405–422CrossRefPubMed Pondel M (2000) Calcitonin and calcitonin receptors: bone and beyond. Int J Exp Pathol 81:405–422CrossRefPubMed
3.
go back to reference Lips P (2001) Vitamin D deficiency and secondary hyperparathyroidism in the elderly: consequences for bone loss and fractures and therapeutic implications. Endocr Rev 22:477–501CrossRefPubMed Lips P (2001) Vitamin D deficiency and secondary hyperparathyroidism in the elderly: consequences for bone loss and fractures and therapeutic implications. Endocr Rev 22:477–501CrossRefPubMed
4.
go back to reference Rubin CT, Lanyon LE (1984) Regulation of bone formation by applied dynamic loads. J Bone Joint Surg Am 66:397–402PubMed Rubin CT, Lanyon LE (1984) Regulation of bone formation by applied dynamic loads. J Bone Joint Surg Am 66:397–402PubMed
5.
go back to reference Mosley JR, Lanyon LE (1998) Strain rate as a controlling influence on adaptive modeling in response to dynamic loading of the ulna in growing male rats. Bone 23:313–318CrossRefPubMed Mosley JR, Lanyon LE (1998) Strain rate as a controlling influence on adaptive modeling in response to dynamic loading of the ulna in growing male rats. Bone 23:313–318CrossRefPubMed
6.
go back to reference Turner CH, Forwood MR, Otter MW (1994) Mechanotransduction in bone: do bone cells act as sensors of fluid flow? FASEB J 8:875–878 Turner CH, Forwood MR, Otter MW (1994) Mechanotransduction in bone: do bone cells act as sensors of fluid flow? FASEB J 8:875–878
7.
go back to reference Piekarski K, Munro M (1977) Transport mechanism operating between blood supply and osteocytes in long bones. Nature 269:80–82PubMed Piekarski K, Munro M (1977) Transport mechanism operating between blood supply and osteocytes in long bones. Nature 269:80–82PubMed
8.
go back to reference Cowin SC, Weinbaum S (1998) Strain amplification in the bone mechanosensory system. Am J Med Sci 316:184–188CrossRefPubMed Cowin SC, Weinbaum S (1998) Strain amplification in the bone mechanosensory system. Am J Med Sci 316:184–188CrossRefPubMed
9.
go back to reference Knothe Tate ML, Knothe U (2000) An ex vivo model to study transport processes and fluid flow in loaded bone. J Biomech 33:247–254CrossRefPubMed Knothe Tate ML, Knothe U (2000) An ex vivo model to study transport processes and fluid flow in loaded bone. J Biomech 33:247–254CrossRefPubMed
10.
go back to reference Luo G, Cowin SC, Sadegh AM, Arramon YP (1995) Implementation of strain rate as a bone remodeling stimulus. J Biomech Eng 117:329–338PubMed Luo G, Cowin SC, Sadegh AM, Arramon YP (1995) Implementation of strain rate as a bone remodeling stimulus. J Biomech Eng 117:329–338PubMed
11.
go back to reference Lanyon LE, Rubin CT (1984) Static versus dynamic loads as an influence on bone remodelling. J Biomech 17:897–905CrossRefPubMed Lanyon LE, Rubin CT (1984) Static versus dynamic loads as an influence on bone remodelling. J Biomech 17:897–905CrossRefPubMed
12.
go back to reference Turner CH, Owan I, Takano Y (1995) Mechanotransduction in bone: role of strain rate. Am J Physiol 269:E438–E442PubMed Turner CH, Owan I, Takano Y (1995) Mechanotransduction in bone: role of strain rate. Am J Physiol 269:E438–E442PubMed
13.
go back to reference Klein-Nulend J, van der Plas A, Semeins CM, Ajubi NE, Frangos JA, Nijweide PJ, Burger EH (1995) Sensitivity of osteocytes to biomechanical stress in vitro. FASEB J 9:441–445 Klein-Nulend J, van der Plas A, Semeins CM, Ajubi NE, Frangos JA, Nijweide PJ, Burger EH (1995) Sensitivity of osteocytes to biomechanical stress in vitro. FASEB J 9:441–445
14.
go back to reference Bakker AD, Soejima K, Klein-Nulend J, Burger EH (2001) The production of nitric oxide and prostaglandin E2 by primary bone cells is shear stress dependent. J Biomech 34:671–677CrossRefPubMed Bakker AD, Soejima K, Klein-Nulend J, Burger EH (2001) The production of nitric oxide and prostaglandin E2 by primary bone cells is shear stress dependent. J Biomech 34:671–677CrossRefPubMed
15.
go back to reference Burger EH, Klein-Nulend J (1999) Mechanotransduction in bone—role of the lacunocanalicular network. FASEB J 13:S101–S112 Burger EH, Klein-Nulend J (1999) Mechanotransduction in bone—role of the lacunocanalicular network. FASEB J 13:S101–S112
16.
17.
go back to reference Cheng S, Sipila S, Taaffe DR, Puolakka J, Suominen H (2002) Change in bone mass distribution induced by hormone replacement therapy and high-impact physical exercise in post-menopausal women. Bone 31:126–135CrossRefPubMed Cheng S, Sipila S, Taaffe DR, Puolakka J, Suominen H (2002) Change in bone mass distribution induced by hormone replacement therapy and high-impact physical exercise in post-menopausal women. Bone 31:126–135CrossRefPubMed
18.
go back to reference Kohrt WM, Snead DB, Slatopolsky E, Birge SJ Jr (1995) Additive effects of weight-bearing exercise and estrogen on bone mineral density in older women. J Bone Miner Res 10:1303–1311PubMed Kohrt WM, Snead DB, Slatopolsky E, Birge SJ Jr (1995) Additive effects of weight-bearing exercise and estrogen on bone mineral density in older women. J Bone Miner Res 10:1303–1311PubMed
19.
go back to reference Samuels A, Perry MJ, Tobias JH (1999) High-dose estrogen induces de novo medullary bone formation in female mice. J Bone Miner Res 14:178–186PubMed Samuels A, Perry MJ, Tobias JH (1999) High-dose estrogen induces de novo medullary bone formation in female mice. J Bone Miner Res 14:178–186PubMed
20.
go back to reference Samuels A, Perry MJ, Gibson RL, Colley S, Tobias JH (2001) Role of endothelial nitric oxide synthase in estrogen-induced osteogenesis. Bone 29:24–29CrossRefPubMed Samuels A, Perry MJ, Gibson RL, Colley S, Tobias JH (2001) Role of endothelial nitric oxide synthase in estrogen-induced osteogenesis. Bone 29:24–29CrossRefPubMed
21.
go back to reference Chow J, Tobias JH, Colston KW, Chambers TJ (1992) Estrogen maintains trabecular bone volume in rats not only by suppression of bone resorption but also by stimulation of bone formation. J Clin Invest 89:74–78PubMed Chow J, Tobias JH, Colston KW, Chambers TJ (1992) Estrogen maintains trabecular bone volume in rats not only by suppression of bone resorption but also by stimulation of bone formation. J Clin Invest 89:74–78PubMed
22.
go back to reference Frost HM (1987) The mechanostat: A proposed pathogenic mechanism of osteoporoses and the bone mass effects of mechanical and nonmechanical agents. Bone Miner 2:73–85PubMed Frost HM (1987) The mechanostat: A proposed pathogenic mechanism of osteoporoses and the bone mass effects of mechanical and nonmechanical agents. Bone Miner 2:73–85PubMed
23.
go back to reference Cheng MZ, Zaman G, Rawlinson SC, Suswillo RF, Lanyon LE (1996) Mechanical loading and sex hormone interactions in organ cultures of rat ulna. J Bone Miner Res 11:502–511PubMed Cheng MZ, Zaman G, Rawlinson SC, Suswillo RF, Lanyon LE (1996) Mechanical loading and sex hormone interactions in organ cultures of rat ulna. J Bone Miner Res 11:502–511PubMed
24.
go back to reference Jagger CJ, Chow JW, Chambers TJ (1996) Estrogen suppresses activation but enhances formation phase of osteogenic response to mechanical stimulation in rat bone. J Clin Invest 98:2351–2357PubMed Jagger CJ, Chow JW, Chambers TJ (1996) Estrogen suppresses activation but enhances formation phase of osteogenic response to mechanical stimulation in rat bone. J Clin Invest 98:2351–2357PubMed
25.
go back to reference Tromp AM, Bravenboer N, Tanck E, Kostense PJ, Lips P (2002) The effects of additional weight bearing during exercise and estrogen on bone mass and structure in female rats. Acta Bioeng Biomech 4 [Suppl 1]:399 Tromp AM, Bravenboer N, Tanck E, Kostense PJ, Lips P (2002) The effects of additional weight bearing during exercise and estrogen on bone mass and structure in female rats. Acta Bioeng Biomech 4 [Suppl 1]:399
26.
go back to reference Järvinen TLN, Kannus P, Pajamäki I, Vuohelainen T, Tuukkanen J, Järvinen M, Sievänen H (2003) Estrogen deposits extra mineral into bones of female rats in puberty, but simultaneously seems to suppress the responsiveness of female skeleton to mechanical loading. Bone 32:642–651CrossRefPubMed Järvinen TLN, Kannus P, Pajamäki I, Vuohelainen T, Tuukkanen J, Järvinen M, Sievänen H (2003) Estrogen deposits extra mineral into bones of female rats in puberty, but simultaneously seems to suppress the responsiveness of female skeleton to mechanical loading. Bone 32:642–651CrossRefPubMed
27.
go back to reference Forwood MR (1996) Inducible cyclo-oxygenase (COX-2) mediates the induction of bone formation by mechanical loading in vivo. J Bone Miner Res 11:1688–1693 Forwood MR (1996) Inducible cyclo-oxygenase (COX-2) mediates the induction of bone formation by mechanical loading in vivo. J Bone Miner Res 11:1688–1693
28.
go back to reference Turner CH, Takano Y, Owan I, Murrell GA (1996) Nitric oxide inhibitor L-NAME suppresses mechanically induced bone formation in rats. Am J Physiol 270:E634–E639PubMed Turner CH, Takano Y, Owan I, Murrell GA (1996) Nitric oxide inhibitor L-NAME suppresses mechanically induced bone formation in rats. Am J Physiol 270:E634–E639PubMed
29.
go back to reference Lowry OH (1955) Micromethods for the assay of enzyme. II Specific procedure. Alkaline phosphatase. Methods Enzymol 4:371 Lowry OH (1955) Micromethods for the assay of enzyme. II Specific procedure. Alkaline phosphatase. Methods Enzymol 4:371
30.
go back to reference Klein-Nulend J, Semeins CM, Ajubi NE, Nijweide PJ, Burger EH (1995) Pulsating fluid flow increases nitric oxide (NO) synthesis by osteocytes but not periosteal fibroblasts: correlation with prostaglandin upregulation. Biochem Biophys Res Commun 217:640–648CrossRefPubMed Klein-Nulend J, Semeins CM, Ajubi NE, Nijweide PJ, Burger EH (1995) Pulsating fluid flow increases nitric oxide (NO) synthesis by osteocytes but not periosteal fibroblasts: correlation with prostaglandin upregulation. Biochem Biophys Res Commun 217:640–648CrossRefPubMed
31.
go back to reference Nijweide PJ, Van der Plas A, Scherft JP (1981) Biochemical and histological studies on various bone cell preparations. Calcif Tissue Int 33:529–540PubMed Nijweide PJ, Van der Plas A, Scherft JP (1981) Biochemical and histological studies on various bone cell preparations. Calcif Tissue Int 33:529–540PubMed
32.
go back to reference Sterck JG, Klein-Nulend J, Lips P, Burger EH (1998) Response of normal and osteoporotic human bone cells to mechanical stress in vitro. Am J Physiol 274:E1113–E1120PubMed Sterck JG, Klein-Nulend J, Lips P, Burger EH (1998) Response of normal and osteoporotic human bone cells to mechanical stress in vitro. Am J Physiol 274:E1113–E1120PubMed
33.
go back to reference Klein-Nulend J, Helfrich MH, Sterck JG, MacPherson H, Joldersma M, Ralston SH, Semeins CM, Burger EH (1998) Nitric oxide response to shear stress by human bone cell cultures is endothelial nitric oxide synthase dependent. Biochem Biophys Res Commun 250:108–114CrossRefPubMed Klein-Nulend J, Helfrich MH, Sterck JG, MacPherson H, Joldersma M, Ralston SH, Semeins CM, Burger EH (1998) Nitric oxide response to shear stress by human bone cell cultures is endothelial nitric oxide synthase dependent. Biochem Biophys Res Commun 250:108–114CrossRefPubMed
34.
go back to reference Samuels A, Perry MJ, Tobias JH (1999) High-dose estrogen-induced osteogenesis in the mouse is partially suppressed by indomethacin. Bone 25:675–680CrossRefPubMed Samuels A, Perry MJ, Tobias JH (1999) High-dose estrogen-induced osteogenesis in the mouse is partially suppressed by indomethacin. Bone 25:675–680CrossRefPubMed
35.
go back to reference Armour KE, Ralston SH (1998) Estrogen upregulates endothelial constitutive nitric oxide synthase expression in human osteoblast-like cells. Endocrinology 139:799–802CrossRefPubMed Armour KE, Ralston SH (1998) Estrogen upregulates endothelial constitutive nitric oxide synthase expression in human osteoblast-like cells. Endocrinology 139:799–802CrossRefPubMed
36.
go back to reference Riancho JA, Zarrabeitia MT, Fernandez-Luna J, Gonzales-Macias J (1995) Mechanisms controlling nitric oxide synthesis in osteoblasts. Mol Cell Endocrinol 107:87–92CrossRefPubMed Riancho JA, Zarrabeitia MT, Fernandez-Luna J, Gonzales-Macias J (1995) Mechanisms controlling nitric oxide synthesis in osteoblasts. Mol Cell Endocrinol 107:87–92CrossRefPubMed
37.
go back to reference Chambliss KL, Shaul PW (2002) Estrogen modulation of endothelial nitric oxide synthase. Endocr Rev 23:665–686CrossRefPubMed Chambliss KL, Shaul PW (2002) Estrogen modulation of endothelial nitric oxide synthase. Endocr Rev 23:665–686CrossRefPubMed
38.
go back to reference Armour KE, Armour KJ, Gallagher ME, Godecke A, Helfrich MH, Ralston SH (2001) Defective bone formation and anabolic response to exogenous estrogen in mice with targeted disruption of endothelial nitric oxide synthase. Endocrinology 142:760–766CrossRefPubMed Armour KE, Armour KJ, Gallagher ME, Godecke A, Helfrich MH, Ralston SH (2001) Defective bone formation and anabolic response to exogenous estrogen in mice with targeted disruption of endothelial nitric oxide synthase. Endocrinology 142:760–766CrossRefPubMed
39.
go back to reference Stewart KG, Zhang Y, Davidge ST (1999) Estrogen decreases prostaglandin H synthase products from endothelial cells. J Soc Gynecol Investig 6:322–327CrossRefPubMed Stewart KG, Zhang Y, Davidge ST (1999) Estrogen decreases prostaglandin H synthase products from endothelial cells. J Soc Gynecol Investig 6:322–327CrossRefPubMed
40.
go back to reference Joldersma M, Klein-Nulend J, Oleksik AM, Heyligers IC, Burger EH (2001) Estrogen enhances mechanical stress-induced prostaglandin production by bone cells from elderly women. Am J Physiol 280:E436–E442PubMed Joldersma M, Klein-Nulend J, Oleksik AM, Heyligers IC, Burger EH (2001) Estrogen enhances mechanical stress-induced prostaglandin production by bone cells from elderly women. Am J Physiol 280:E436–E442PubMed
41.
go back to reference Damien E, Price JS, Lanyon LE (1998) The estrogen receptor’s involvement in osteoblasts’ adaptive response to mechanical strain. J Bone Miner Res 13:1275–1282PubMed Damien E, Price JS, Lanyon LE (1998) The estrogen receptor’s involvement in osteoblasts’ adaptive response to mechanical strain. J Bone Miner Res 13:1275–1282PubMed
42.
go back to reference Jessop HL, Sjoberg M, Cheng MZ, Zaman G, Wheeler-Jones CP, Lanyon LE (2001) Mechanical strain and estrogen activate estrogen receptor alpha in bone cells. J Bone Miner Res 16:1045–1055PubMed Jessop HL, Sjoberg M, Cheng MZ, Zaman G, Wheeler-Jones CP, Lanyon LE (2001) Mechanical strain and estrogen activate estrogen receptor alpha in bone cells. J Bone Miner Res 16:1045–1055PubMed
43.
go back to reference Zaman G, Cheng MZ, Jessop HL, White R, Lanyon LE (2000) Mechanical strain activates estrogen response elements in bone cells. Bone 27:233–239CrossRefPubMed Zaman G, Cheng MZ, Jessop HL, White R, Lanyon LE (2000) Mechanical strain activates estrogen response elements in bone cells. Bone 27:233–239CrossRefPubMed
44.
go back to reference Cheng MZ, Rawlinson SCF, Pitsillides AA, Zaman G, Mohan S, Baylink DJ, Lanyon LE (2002) Human osteoblasts’ proliferative responses to strain and 17β-estradiol are mediated by the estrogen receptor and the receptor for insulin-like growth factor I. J Bone Miner Res 17:593–602PubMed Cheng MZ, Rawlinson SCF, Pitsillides AA, Zaman G, Mohan S, Baylink DJ, Lanyon LE (2002) Human osteoblasts’ proliferative responses to strain and 17β-estradiol are mediated by the estrogen receptor and the receptor for insulin-like growth factor I. J Bone Miner Res 17:593–602PubMed
45.
go back to reference Jessop HL, Suswillo RFL, Rawlinson SCF, Zaman G, Lee K, Das-Gupta V, Pitsillides AA, Lanyon LE (2004) Osteoblast-like cells from estrogen receptor α knockout mice have deficient responses to mechanical strain. J Bone Miner Res 19:938–946PubMed Jessop HL, Suswillo RFL, Rawlinson SCF, Zaman G, Lee K, Das-Gupta V, Pitsillides AA, Lanyon LE (2004) Osteoblast-like cells from estrogen receptor α knockout mice have deficient responses to mechanical strain. J Bone Miner Res 19:938–946PubMed
46.
go back to reference Lee K, Jessop HL, Suswillo RFL, Zaman G, Lanyon LE (2003) Bone adaptation requires estrogen receptor-α. Nature 424:389CrossRef Lee K, Jessop HL, Suswillo RFL, Zaman G, Lanyon LE (2003) Bone adaptation requires estrogen receptor-α. Nature 424:389CrossRef
Metadata
Title
Additive effects of estrogen and mechanical stress on nitric oxide and prostaglandin E2 production by bone cells from osteoporotic donors
Authors
A. D. Bakker
J. Klein-Nulend
E. Tanck
G. H. Albers
P. Lips
E. H. Burger
Publication date
01-08-2005
Publisher
Springer-Verlag
Published in
Osteoporosis International / Issue 8/2005
Print ISSN: 0937-941X
Electronic ISSN: 1433-2965
DOI
https://doi.org/10.1007/s00198-004-1785-0

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