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PLOS ONE  2012 

Tibial Loading Increases Osteogenic Gene Expression and Cortical Bone Volume in Mature and Middle-Aged Mice

DOI: 10.1371/journal.pone.0034980

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Abstract:

There are conflicting data on whether age reduces the response of the skeleton to mechanical stimuli. We examined this question in female BALB/c mice of different ages, ranging from young to middle-aged (2, 4, 7, 12 months). We first assessed markers of bone turnover in control (non-loaded) mice. Serum osteocalcin and CTX declined significantly from 2 to 4 months (p<0.001). There were similar age-related declines in tibial mRNA expression of osteoblast- and osteoclast-related genes, most notably in late osteoblast/matrix genes. For example, Col1a1 expression declined 90% from 2 to 7 months (p<0.001). We then assessed tibial responses to mechanical loading using age-specific forces to produce similar peak strains (?1300 με endocortical; ?2350 με periosteal). Axial tibial compression was applied to the right leg for 60 cycles/day on alternate days for 1 or 6 weeks. qPCR after 1 week revealed no effect of loading in young (2-month) mice, but significant increases in osteoblast/matrix genes in older mice. For example, in 12-month old mice Col1a1 was increased 6-fold in loaded tibias vs. controls (p = 0.001). In vivo microCT after 6 weeks revealed that loaded tibias in each age group had greater cortical bone volume (BV) than contralateral control tibias (p<0.05), due to relative periosteal expansion. The loading-induced increase in cortical BV was greatest in 4-month old mice (+13%; p<0.05 vs. other ages). In summary, non-loaded female BALB/c mice exhibit an age-related decline in measures related to bone formation. Yet when subjected to tibial compression, mice from 2–12 months have an increase in cortical bone volume. Older mice respond with an upregulation of osteoblast/matrix genes, which increase to levels comparable to young mice. We conclude that mechanical loading of the tibia is anabolic for cortical bone in young and middle-aged female BALB/c mice.

References

[1]  Ozcivici E, Luu YK, Adler B, Qin YX, Rubin J, et al. (2010) Mechanical signals as anabolic agents in bone. Nat Rev Rheumatol 6: 50–59.
[2]  Hoshi A, Watanabe H, Chiba M, Inaba Y (1998) Effects of exercise at different ages on bone density and mechanical properties of femoral bone of aged mice. Tohoku J Exp Med 185: 15–24.
[3]  Silbermann M, Bar-Shira-Maymon B, Coleman R, Reznick A, Weisman Y, et al. (1990) Long-term physical exercise retards trabecular bone loss in lumbar vertebrae of aging female mice. Calcif Tiss Int 46: 80–93.
[4]  Raab DM, Smith EL, Crenshaw TD, Thomas DP (1990) Bone mechanical properties after exercise training in young and old rats. J Appl Physiol 68: 130–134.
[5]  Umemura Y, Ishiko T, Tsujimoto H, Miura H, Mokushi N, et al. (1995) Effects of jump training on bone hypertrophy in young and old rats. Int J Sports Med 16: 364–367.
[6]  Jarvinen TL, Pajamaki I, Sievanen H, Vuohelainen T, Tuukkanen J, et al. (2003) Femoral neck response to exercise and subsequent deconditioning in young and adult rats. J Bone Miner Res 18: 1292–1299.
[7]  Buhl KM, Jacobs CR, Turner RT, Evans GL, Farrell PA, et al. (2001) Aged bone displays an increased responsiveness to low-intensity resistance exercise. J Appl Physiol 90: 1359–1364.
[8]  Leppanen OV, Sievanen H, Jokihaara J, Pajamaki I, Kannus P, et al. (2008) Pathogenesis of age-related osteoporosis: impaired mechano-responsiveness of bone is not the culprit. PLoS ONE 3: e2540.
[9]  Rubin CT, Bain SD, McCleod KJ (1992) Suppression of osteogenic response in the aging skeleton. Calcif Tiss Int 50: 306–313.
[10]  Turner CH, Takano Y, Owan I (1995) Aging changes mechanical loading thresholds for bone formation in rats. J Bone Miner Res 10: 1544–1549.
[11]  Srinivasan S, Agans SC, King KA, Moy NY, Poliachik SL, et al. (2003) Enabling bone formation in the aged skeleton via rest-inserted mechanical loading. Bone 33: 946–955.
[12]  Brodt MD, Silva MJ (2010) Aged mice have enhanced endocortical response and normal periosteal response compared to young-adult mice following 1 week of axial tibial compression. J Bone Miner Res 25: 2006–2015.
[13]  McKenzie JA, Silva MJ (2011) Comparing histological, vascular and molecular responses associated with woven and lamellar bone formation induced by mechanical loading in the rat ulna. Bone 48: 250–258.
[14]  Mantila Roosa SM, Liu Y, Turner CH (2011) Gene expression patterns in bone following mechanical loading. J Bone Miner Res 26: 100–112.
[15]  Zaman G, Saxon LK, Sunters A, Hilton H, Underhill P, et al. (2010) Loading-related regulation of gene expression in bone in the contexts of estrogen deficiency, lack of estrogen receptor alpha and disuse. Bone 46: 628–642.
[16]  Li X, Srivastava AK, Gu W, Masinde G, Mohan S, et al. (2002) Opposing changes in osteocalcin levels in bone vs serum during the acquisition of peak bone density in C3H/HeJ and C57BL/6J mice. Calcif Tissue Int 71: 416–420.
[17]  Hamrick MW, Ding KH, Pennington C, Chao YJ, Wu YD, et al. (2006) Age-related loss of muscle mass and bone strength in mice is associated with a decline in physical activity and serum leptin. Bone 39: 845–853.
[18]  Dimai HP, Linkhart TA, Linkhart SG, Donahue LR, Beamer WG, et al. (1998) Alkaline phosphatase levels and osteoprogenitor cell numbers suggest bone formation may contribute to peak bone density differences between two inbred strains of mice. Bone 22: 211–216.
[19]  Frenkel B, Capparelli C, Van Auken M, Baran D, Bryan J, et al. (1997) Activity of the osteocalcin promoter in skeletal sites of transgenic mice and during osteoblast differentiation in bone marrow-derived stromal cell cultures: effects of age and sex. Endocrinology 138: 2109–2116.
[20]  Cao J, Venton L, Sakata T, Halloran BP (2003) Expression of RANKL and OPG correlates with age-related bone loss in male C57BL/6 mice. J Bone Miner Res 18: 270–277.
[21]  Lynch MA, Brodt MD, Silva MJ (2010) Skeletal effects of whole-body vibration in adult and aged mice. J Orthop Res 28: 241–247.
[22]  Ferguson VL, Ayers RA, Bateman TA, Simske SJ (2003) Bone development and age-related bone loss in male C57BL/6J mice. Bone 33: 387–398.
[23]  Kesavan C, Mohan S, Oberholtzer S, Wergedal JE, Baylink DJ (2005) Mechanical loading-induced gene expression and BMD changes are different in two inbred mouse strains. J Appl Physiol 99: 1951–1957.
[24]  Willinghamm MD, Brodt MD, Lee KL, Stephens AL, Ye J, et al. (2010) Age-related changes in bone structure and strength in female and male BALB/c mice. Calcif Tissue Int 86: 470–483.
[25]  Fritton JC, Myers ER, Wright TM, van der Meulen MC (2008) Bone mass is preserved and cancellous architecture altered due to cyclic loading of the mouse tibia after orchidectomy. J Bone Miner Res 23: 663–671.
[26]  Lynch ME, Main RP, Xu Q, Walsh DJ, Schaffler MB, et al. (2010) Cancellous bone adaptation to tibial compression is not sex dependent in growing mice. J Appl Physiol 109: 685–691.
[27]  Lynch ME, Main RP, Xu Q, Schmicker TL, Schaffler MB, et al. (2011) Tibial compression is anabolic in the adult mouse skeleton despite reduced responsiveness with aging. Bone 49: 439–446.
[28]  Sugiyama T, Saxon LK, Zaman G, Moustafa A, Sunters A, et al. (2008) Mechanical loading enhances the anabolic effects of intermittent parathyroid hormone (1–34) on trabecular and cortical bone in mice. Bone 43: 238–248.
[29]  Busse B, Djonic D, Milovanovic P, Hahn M, Puschel K, et al. (2010) Decrease in the osteocyte lacunar density accompanied by hypermineralized lacunar occlusion reveals failure and delay of remodeling in aged human bone. Aging Cell 9: 1065–1075.
[30]  Vashishth D, Verborgt O, Divine G, Schaffler MB, Fyhrie DP (2000) Decline in osteocyte lacunar density in human cortical bone is associated with accumulation of microcracks with age. Bone 26: 375–380.
[31]  Klein-Nulend J, Sterck JGH, Semeins CM, Lips P, Joldersma M, et al. (2002) Donor age and mechanosensitivity of human bone cells. Osteoporosis Int 13: 137–146.
[32]  Donahue SW, Jacobs CR, Donahue HJ (2001) Flow-induced calcium oscillations in rat osteoblasts are age, loading frequency, and shear stress dependent. Am J Physiol Cell Physiol 281: C1635–1641.
[33]  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: E1113–1120.
[34]  Forwood MR, Turner CH (1994) The response of rat tibiae to incremental bouts of mechanical loading: a quantum concept for bone formation. Bone 15: 603–609.
[35]  Beamer WG, Donahue LR, Rosen CJ, Baylink DJ (1996) Genetic variability in adult bone density among inbred strains of mice. Bone 18: 397–403.
[36]  Flurkey K, Currer JM, Harrison DE (2007) Mouse models in aging research. In: Fox JG, Barthold SW, Davisson MT, Newcomer CE, Quimby FW, et al., editors. The mouse in biomedical research. 2nd ed. Burlington: Academic Press. pp. 637–672.
[37]  Kotiya AA, Bayly PV, Silva MJ (2011) Short-term low-strain vibration enhances chemo-transport yet does not stimulate osteogenic gene expression or cortical bone formation in adult mice. Bone 48: 468–475.
[38]  Silva MJ, Brodt MD, Hucker WJ (2005) Finite element analysis of the mouse tibia: Estimating endocortical strain during three-point bending in SAMP6 osteoporotic mice. Anat Rec A Discov Mol Cell Evol Biol 283A: 380–390.
[39]  De Souza RL, Matsuura M, Eckstein F, Rawlinson SC, Lanyon LE, et al. (2005) Non-invasive axial loading of mouse tibiae increases cortical bone formation and modifies trabecular organization: a new model to study cortical and cancellous compartments in a single loaded element. Bone 37: 810–818.
[40]  Fritton JC, Myers ER, Wright TM, van der Meulen MC (2005) Loading induces site-specific increases in mineral content assessed by microcomputed tomography of the mouse tibia. Bone 36: 1030–1038.

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