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Long-term effect of orchidectomy on cortical bone from rat femur: Bone mass and mechanical properties

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The study comprised seven groups of intact rats killed at 9, 12, 15, and 24 months of age, and three groups of rats castrated at the age of 9 months and killed together with the intact rats 3, 6, and 15 months after castration. The composition, dimension, and mechanical properties of intact bone as well as the constituent bone collagen from femoral diaphyses were investigated in relation to both age (9–24 months) and castration. Castration had no effect on density and only minor effect on ash and collagen contents. An age-related increase in bone mass, cross-sectional area, and wall thickness of the diaphyses was arrested (bone mass, area) or even reversed (to a decrease in wall thickness) after castration. Therefore, a growing difference, pronounced from 6 months after castration, between intact and castrated rats was observed in bone mass, cross-sectional area, and wall thickness. The compressive mechanical strength of intact bone normalized with regard to cross-sectional area was unaffected by castration, whereas castration tended to increase the stiffness of the bone collagen. When observed in a polarization microscope, two different zones in cross sections of the diaphyses were apparent. The average diameter of the border line separating the two zones was independent of age and castration. By measuring the average thickness of each of the two zones, age-related periosteal bone formation and endosteal bone resorption were demonstrated. After castration, the rate of bone formation was reduced and the rate of bone resorption was accelerated. Castration was thus found to affect the composition and the quality of the cortical bone to a minor extent only. On the other hand, the quantity of cortical bone was markedly reduced from 6 months after castration due to both an inhibited rate of bone formation and an accelerated rate of bone resorption.

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References

  1. Bengnér U, Johnell O, Redlund-Johnell I (1988) Changes in incidence and prevalence of vertebral fractures during 30 years. Calcif Tissue Int 42:293–296

    Google Scholar 

  2. Obrant KJ, Bengnér U, Johnell O, Nilsson BE, Sernbo I (1989) Increasing age-adjusted risk of fragility fractures: a sign of increasing osteoporosis in successive generations. Calcif Tissue Int 44:157–167

    Google Scholar 

  3. Johnell O, Nilsson B, Obrant K, Sernbo I (1984) Age and sex patterns of hip fracture—changes in 30 years. Acta Orthop Scand 55:290–292

    Google Scholar 

  4. Garn SM, Rohmann CG, Wagner B, Ascoli W (1969) Continuing bone growth throughout life: a general phenomenon. Am J Phys Anthropol 26:313–318

    Google Scholar 

  5. Martin RB, Atkinson PJ (1977) Age and sex-related changes in the structure and strength of the human femoral shaft. J Biomechanics 10:223–231

    Google Scholar 

  6. Martin RB, Pickett JC, Zinaich S (1980) Studies of skeletal remodeling in aging men. Clin Orthop 149:268–282

    Google Scholar 

  7. Pead MJ, Skerry TM, Lanyon LE (1988) Direct transformation from quiescence to bone formation in the adult periosteum following a single brief period of bone loading. J Bone Miner 3:647–656

    Google Scholar 

  8. Ruff CB, Hayes WC (1988) Sex differences in age-related remodeling of the femur and tibia. J Orthop 6:886–896

    Google Scholar 

  9. Ruff CB, Hayes WC (1983) Cross-sectional geometry of Pecos Pueblo femora and tibiae—a biomechanical investigation. I. Method and general patterns of variation. Am J Phys Anthropol 60:359–381

    Google Scholar 

  10. Ruff CB, Hayes WC (1983) Cross-sectional geometry of Pecos Pueblo femora and tibiae—a biomechanical investigation. II. Sex, age, and side differences. Am J Phys Anthropol 60:383–400

    Google Scholar 

  11. Saville PD (1969) Changes in skeletal mass and fragility with castration in the rat: a model of osteoporosis. J Am Geriatr Soc 17:155–166

    Google Scholar 

  12. Cruess RL, Hong KC (1978) The long-term effect of estrogen administration on the metabolism of male rat bone. Proc Soc Exp Biol Med 159:368–373

    Google Scholar 

  13. Hodgkinson A (1979) Effects of calcium deprivation and orchidectomy on bone composition in the rat. Horm Metab Res 11:516–519

    Google Scholar 

  14. Wink CS, Felts WJL (1980) Effects of castration on the bone structure of male rats: a model of osteoporosis. Calcif Tissue Int 32:77–82

    Google Scholar 

  15. Schoutens A, Verhas M, L'Hermite-Baleriaux M, L'Hermite M, Verschaeren A, Dourov N, Mone M, Heilporn A, Tricot A (1984) Growth and bone haemodynamic responses to castration in male rats. Reversibility by testosterone. Acta Endocrinol 107:428–432

    Google Scholar 

  16. Verhas M, Schoutens A, L'Hermite-Baleriaux M, Dourov N, Verschaeren A, Mone M, Heilporn A (1986) The effect of orchidectomy on bone metabolism in aging rats. Calcif Tissue Int 39:74–77

    Google Scholar 

  17. Gürkan L, Ekeland A, Gautvik KM, Langeland N, Rønningen H, Solheim LF (1986) Bone changes after castration in rats. A model for osteoporosis. Acta Orthop Scand 57:67–70

    Google Scholar 

  18. Grynpas MD, Simmons ED, Carnes D, Gundberg C, Pritzker KPH (1987) Bone mineral in the castrated rat model of osteopenia. J Orthop Res 5:586–591

    Google Scholar 

  19. Uhthoff HK, Jaworski ZFG (1978) Bone loss in response to long-term immobilisation. J Bone Joint Surg 60-B:420–429

    Google Scholar 

  20. Wronski TJ, Morey ER (1982) Skeletal abnormalities in rats induced by simulated weightlessness. Metab Bone Dis Rel Res 4:69–75

    Google Scholar 

  21. Danielsen CC, Andreassen TT, Mosekilde Li (1986) Mechanical properties of collagen from decalcified rat femur in relation to age and in vitro maturation. Calcif Tissue Int 39:69–73

    Google Scholar 

  22. Mosekilde Li, Mosekilde Le, Danielsen CC (1987) Biomechanical competence of vertebral trabecular bone in relation to ash density and age in normal individuals. Bone 8:79–85

    Google Scholar 

  23. Woessner JF (1976) Determination of hydroxyproline in connective tissues. In: Hall DA (ed) The methodology of connective tissue research. Joynson-Bruvvers, Oxford, p 227

    Google Scholar 

  24. Danielsen CC, Andreassen TT (1988) Mechanical properties of rat tail tendon in relation to proximal-distal sampling position and age. J Biomechanics 21:207–212

    Google Scholar 

  25. Frost HM (1986) Intermediary organization of the skeleton. CRC Press, Boca Raton, Florida

    Google Scholar 

  26. Sontag W (1986) Quantitative measurements of periosteal and cortical-endosteal bone formation and resorption in the midshaft of male rat femur. Bone 7:63–70

    Google Scholar 

  27. Ruth EB (1953) Bone studies. II. An experimental study of the haversian-type vascular channels. Am J Anat 93:429–455

    Google Scholar 

  28. Lozupone E, Favia A (1988) Distribution of resorption processes in the compacta and spongiosa of bones from lactating rats fed a low-calcium diet. Bone 9:215–224

    Google Scholar 

  29. Hagaman JR, Ambrose WW, Hirsch PF (1990) A scanning electron microscopic and photon absorptiometric study of the development, prolongation, and pattern of recovery from lactation-induced osteopenia in rats. J Bone Miner Res 5:123–132

    Google Scholar 

  30. Kiebzak GM, Smith R, Gundberg CC, Howe JC, Sacktor B (1988) Bone status of senescent male rats: chemical, morphometric, and mechanical analysis. J Bone Miner Res 3:37–45

    Google Scholar 

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Danielsen, C.C., Mosekilde, L. & Andreassen, T.T. Long-term effect of orchidectomy on cortical bone from rat femur: Bone mass and mechanical properties. Calcif Tissue Int 50, 169–174 (1992). https://doi.org/10.1007/BF00298796

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  • DOI: https://doi.org/10.1007/BF00298796

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