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Insulin increases histomorphometric indices of bone formation In vivo

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Abstract

Recent clinical studies have established that bone density is related to both fat mass and circulating insulin levels. A direct action of insulin on the osteoblast may contribute to these relationships. Osteoblast-like cells have insulin receptors, and insulin has been shown to stimulate proliferation of these cells in vitro. However, it has not been possible to study the effects of insulin administration on bone in vivo because of the metabolic effects of insulin, particularly hypoglycemia. A model involving the local injection of insulin over one hemicalvaria of an adult mouse overcomes these difficulties and permits the histomorphometric study of insulin's action on bone. Insulin or vehicle was injected daily for 5 days over the right hemicalvariae of adult mice, and the animals were sacrificed 1 week later. All indices of bone formation were significantly increased in imsulin-treated hemicalvariae compared with the noninjected hemicalvariae. There was a 2.73±0.50-fold increase in osteoid area (P=0.0005), a 2.20±0.37-fold increase in osteoblast surface (P=0.021) and a 2.04±0.29-fold increase in osteoblast number (P=0.021). Indices of bone resorption tended to decline and mineralized bone area tended to increase in insulin-treated animals. The direct action of insulin on bone may contribute to the increased bone density seen in obesity and to the osteopenia of type I diabets, conditions associated with insulin excess and deficiency, respectively.

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References

  1. Pun KK, Lau P, Ho PW (1989) The characterization, regulation, and function of insulin receptors on osteoblast-like clonal osteosarcoma cell line. J Bone Miner Res 4:853–862

    Google Scholar 

  2. Hickman J, McElduff A (1989) Insulin promotes growth of the cultured rat osteosarcoma cell line UMR-106-01: an osteoblast-like cell. Endocrinology 124:701–706

    Google Scholar 

  3. Wettenhall REH, Schwartz PL, Bornstein J (1969) Actions of insulin and growth hormone on collagen and chondroitin sulfate synthesis in bone organ culture. Diabetes 18:280–284

    Google Scholar 

  4. Kream BE, Smith MD, Canalis E, Raisz LG (1985) Characterization of the effect of insulin on collagen synthesis in fetal rat bone. Endocrinology 116:296–302

    Google Scholar 

  5. Hough S, Avioli LV, Bergfeld MA, Fallon MD, Slatopolsky E, Teitelbaum SL (1981) Correction of abnormal bone and mineral metabolism in chronic streptozotocin-induced diabetes mellitus in the rat by insulin therapy. Endocrinology 108: 2228–2234

    Google Scholar 

  6. Goodman WG, Hori MT (1984) Diminished bone formation in experimental diabetes. Relationship to osteoid maturation and mineralization. Diabetes 33:825–831

    Google Scholar 

  7. Verhaeghe J, Suiker AMH, Nyomba BL, Visser WJ, Einhorn TA, Dequeker EJ, Bouillon R (1989) Bone mineral homeostasis in spontaneously diabetic BB rats: II. Impaired bone turnover and decreased osteocalcin synthesis. Endocrinology 124:573–582

    Google Scholar 

  8. Umpierrez GE, Zlatev T, Spanheimer RG (1989) Correlation of altered collagen metabolism in diabetic animals with insulin therapy. Matrix 9:336–342

    Google Scholar 

  9. Reid IR, Evans MC, Cooper GJS, Ames RW, Stapleton J (1993) Circulating insulin levels are related to bone density in normal postmenopausal women. Am J Physiol 265 (4) 1: E655-E659

    Google Scholar 

  10. Reid IR, Ames R, Evans MC, Sharpe S, Gamble G, France JT, Lim TMT, Cundy TF (1992) Determinants of total body and regional bone mineral density in normal postmenopausal women—a key role for fat mass. J Clin Endocrinol Metab 75:45–51

    Google Scholar 

  11. Reid IR, Plank LD, Evans MC (1992) Fat mass is an important determinant of whole body bone density in premenopausal women but not in men. J Clin Endocrinol Metab 75:779–782

    Google Scholar 

  12. Reid IR, Evans MC, Ames RW (1994) Volumetric bone density of the lumbar spine is related to fat mass but not lean mass in normal postmenopausal women. Osteoporosis Int 4:362–367

    Google Scholar 

  13. Reid IR, Legge M, Stapleton JP, Evans MC, Grey AB (1995) Regular exercise dissociates fat mass and bone density in premenopausal women. J Clin Endocrinol Metab 80:1764–1768

    Google Scholar 

  14. Compston JE, Bhambhani M, Laskey MA, Murphy S, Khaw KT (1992) Body composition and bone mass in postmenopausal women. Clin Endocrinol 37:426–431

    Google Scholar 

  15. Tsunenari T, Tsutsumi M, Ohno K, Yamamoto Y, Kawakatsu M, Shimogaki K, Negishi H, Sugimoto T, Fukase M, Fujita T (1993) Age-related and gender-related changes in body composition in Japanese subjects. J Bone Miner Res 8:397–402

    Google Scholar 

  16. Lindsay R, Cosman F, Herrington BS, Himmelstein S (1992) Bone mass and body composition in normal women. J Bone Miner Res 7:55–63

    Google Scholar 

  17. Nuti R, Martini G, Frediani G, Valenti R, Giovani S (1994) Relationships between body composition and bone density in healthy and osteoporotic women. J Bone Miner Res 9 (suppl 1):S257

    Google Scholar 

  18. Nelson DA, Feingold M, Bolin F, Parfitt AM (1991) Principal components analysis of regional bone density in black and white women: relationship to body size and composition. Am J Phys Anthropol 86:507–514

    Google Scholar 

  19. Rae MH, Mole PA, Paterson CR (1991) Endogenous factors affecting bone mineral content in post-menopausal women. Maturitas 13:319–324

    Google Scholar 

  20. Boyce BF, Aufdemorte TB, Garrett IR, Yates AJP, Mundy GR (1989) Effects of interleukin-1 on bone turnover in normal mice. Endocrinology 125:1142–1150

    Google Scholar 

  21. Cornish J, Callon KE King A, Edgar S, Reid IR (1993) The effect of leukemia inhibitory factor on bone in vivo. Endocrinology 132:1359–1366

    Google Scholar 

  22. Cornish J, Callon KE, Cooper GJS, Reid IR (1993) Amylin stimulates osteoblast proliferation and increases mineralized bone volume in adult mice. Biochem Biophys Res Commun 207:133–139

    Google Scholar 

  23. Cornish J, Callon KE, Reid IR (1995) An in vivo model of the rapid assessment of the local effects of parathyroid hormone on bone histomorphometry. Bone 17:249S-254S

    Google Scholar 

  24. Moller DE, Flier JS (1991) Insulin resistance-mechanisms, syndromes, and implications. N Engl J Med 325:938–948

    Google Scholar 

  25. Reid IR, Evans MC, Cooper GJS, Ames RW, Stapleton J (1993) Circulating insulin levels are related to bone density in normal postmenopausal women. Am J Physiol 265:E655-E659

    Google Scholar 

  26. Garzo VG, Dorrington JH (1984) Aromatase activity in human granulosa cells during follicular development and the modulation of follicle-stimulating hormone and insulin. Am Obstet Gynecol 148:657–662

    Google Scholar 

  27. Plymate SR, Matej LA, Jones RE, Friedl KE (1988) Inhibition of sex hormone-binding globulin production in the human hepatoma (hep g2) cell line by insulin and prolactin. J Clin Endocrinol Metab 67:460–461

    Google Scholar 

  28. Peiris AN, Stagner JI, Plymate SR, Vogel RL, Heck M, Samols E (1993) Relationship of insulin secretory pulses to sex hormone-binding globulin in normal men. J Clin Endocrinol Metab 76:279–282

    Google Scholar 

  29. Bouillon R (1991) Diabetic bone disease. Calcif Tissue Int 49:155–160

    Google Scholar 

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Cornish, J., Callon, K.E. & Reid, I.R. Insulin increases histomorphometric indices of bone formation In vivo . Calcif Tissue Int 59, 492–495 (1996). https://doi.org/10.1007/BF00369216

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  • DOI: https://doi.org/10.1007/BF00369216

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