138
Views
14
CrossRef citations to date
0
Altmetric
Research Article

Effects of soy isoflavones and mechanical vibration on rat bone tissue

, , , , , & show all
Pages 709-717 | Received 28 Nov 2012, Accepted 19 Jan 2013, Published online: 27 Feb 2013

References

  • Rubin J, Rubin C, Jacobs CR. Molecular pathways mediating mechanical signaling in bone. Gene 2006;367:1–16
  • Aaron RK, Ciombor DM, Wang S, Simon B. Clinical biophysics: the promotion of skeletal repair by physical forces. Ann NY Acad Sci 2006;1068:513–31
  • Marcus R. Mechanisms of exercise; effects on bone. In Bilezikian JP, Raisz LG, Martin TJ, eds. Principles of Bone Biology. San Diego: Academic Press, 1996:1135–46
  • Sowers M, Crutchfield M, Bandekar R, et al. Bone mineral density and its change in pre- and postmenopausal white women: the Michigan Bone Health Study. J Bone Miner Res 1998; 13:1134–40
  • Sehmisch S, Galal R, Kolios L, et al. Effects of low-magnitude, high-frequency mechanical stimulation in the rat osteopenia model. Osteoporos Int 2009;20:1999–2008
  • Oxlund H, Andersen NB, Ørtoft G, et al. Growth hormone and mild exercise in combination markedly enhance cortical bone formation and strength in old rats. Endocrinology 1998;139: 1899–904
  • Chang TK, Huang CH, Huang CH, et al. The influence of long term treadmill exercise on bone mass and articular cartilage in ovariectomized rats. BMC Musculoskelet Disord 2010;11:85
  • Rubin CT, Bain SD, McLeod KJ. Suppression of the osteogenic response in the aging skeleton. Calcif Tissue Int 1992;50:306–13
  • Turner CH, Takano Y, Owan I. Aging changes mechanical loading thresholds for bone formation in rats. J Bone Miner Res 1995;10:1544–9
  • Flieger J, Karachalios T, Khaldi L, et al. Mechanical stimulation in the form of vibration prevents postmenopausal bone loss in ovariectomized rats. Calcif Tissue Int 1998;63:510–14
  • Oxlund BS, Ortoft G, Andreassen TT, et al. Low-intensity, high-frequency vibration appears to prevent the decrease in strength of the femur and tibia associated with ovariectomy of adult rats. Bone 2003;32:69–77
  • Judex S, Lei X, Han D, et al. Low-magnitude mechanical signals that stimulate bone formation in the ovariectomized rat are dependent on the applied frequency but not on the strain magnitude. J Biomech 2007;40:1333–9
  • Rossouw JE, Anderson GL, Prentice RL, et al. Risks and benefits of estrogen plus progestin in healthy postmenopausal women: principal results from the Women's Health Initiative randomized controlled trial. JAMA 2002;288:321–33
  • Potter SM, Baum JA, Teng H, et al. Soy protein and isoflavones: their effects on blood lipids and bone density in postmenopausal women. Am J Clin Nutr 1998;68:1375–9
  • Mäkelä S, Savolainen H, Aavik E, et al. Differentiation between vasculoprotective and uterotrophic effects of ligands with different binding affinities to estrgen receptors a and b. Proc Natl Acad Sci USA 1999;96:7077–82
  • Alekel DL, Germain AS, Peterson CT, et al. Isoflavone-rich soy protein isolate attenuates bone loss in the lumbar spine of perimenopausal women. Am J Clin Nutr 2000;72:844–52
  • Picherit C, Chanteranne B, Bennetau-Pelissero C, et al. Dose-dependent bone-sparing effects of dietary isoflavones in the ovariectomized rat. Br J Nutr 2001;85:307–16
  • File SE, Jarrett N, Fluck E, et al. Eating soya improves human memory. Psychopharmacology 2001;157:430–6
  • Duffy R, Wiseman H, File SE. Improved cognitive function in postmenopausal women after 12 weeks of consumption of a soya extract containing isoflavones. Pharmacol Biochem Behav 2003;75:721–9
  • Kritz-Silverstein D, von Muhlen D, Barrett- Connor E, et al. Isoflavones and cognitive function in older women: the Soy and Postmenopausal Health Aging (SOPHIA) Study. Menopause 2003;10:196–202
  • Anderson JW, Johnstone BM, Cook-Newell ME. Meta-analysis of the effects of soy protein intake on serum lipids. N Engl J Med 1995;333:276–82
  • Patriarca MT, Barbosa de Moraes AR, Nader HB, et al. Hyaluronic acid concentration in postmenopausal facial skin after topical estradiol and genistein treatment: a double-blind, randomized clinical trial of efficacy. Menopause 2012 Sep:24; Epub ahead of print
  • Setchell KD, Lydeking-Olsen E, Adlercreutz H. Epidemiology of phytoestrogens. Baillière's Clin Endocrinol Metab 1998;12:605–23
  • Adlercreutz H, Mousavi Y, Clark J, et al. Dietary phytoestrogens and cancer: in vitro and in vivo studies. J Steroid Biochem Mol Biol 1992;41:331–7
  • Kreijkamp-Kaspers S, Kok L, Grobbee DE, et al. Effect of soy protein containing isoflavones on cognitive function, bone mineral density, and plasma lipids in postmenopausal women: a randomized controlled trial. JAMA 2004;292:65–74
  • Levis S, Strickman-Stein N, Ganjei-Azar P, et al. Soy isoflavones in the prevention of menopausal bone loss and menopausal symptoms: a randomized, double-blind trial. Arch Intern Med 2011;171:1363–9
  • Friso A, Tomanin R, Salvalaio M, et al. Genistein reduces glycosaminoglycan levels in a mouse model of mucopolysaccharidosis type II. Br J Pharmacol 2010;159:1082–91
  • Nikitovic D, Tsatsakis AM, Karamanos NK, et al. The effects of genistein on the synthesis and distribution of glycosaminoglycans/proteoglycans by two osteosarcoma cell lines depends on tyrosine kinase and the estrogen receptor density. Anticancer Res 2003;23:459–64
  • Condi FL, Soares JM Jr, Teodoro WR, et al. The effects of conjugated estrogen, raloxifene and soy extract on collagen in rat bones. Climacteric 2012;15:441–8
  • Kohrt WM, Snead DB, Slatopolsky E, et al. Additive effects of weight-bearing exercise and estrogen on bone mineral density in older women. J Bone Miner Res 1995;10:1303–11
  • Villareal DT, Binder EF, Yarasheski KE, et al. Effects of exercise training added to ongoing hormone replacement therapy on bone mineral density in frail elderly women. J Am Geriatr Soc 2003;51:985–90
  • Wu J, Wang X, Chiba H, et al. Combined intervention of soy isoflavone and moderate exercise prevents body fat elevation and bone loss in ovariectomized mice. Metabolism 2004;53: 942–8
  • Liu K, Ma G, Lv G, et al. Effects of soybean isoflavone dosage and exercise on the serum markers of bone metabolism in ovariectomized rats. Asia Pac J Clin Nutr 2007;16:193–5
  • de Oliveira ML, Bergamaschi CT, Silva OL, et al. Mechanical vibration preserves bone structure in rats treated with glucocorticoids. Bone 2010;46:1516–21
  • Figard H, Mougin F, Gaume V, et al. Combined intervention of dietary soybean proteins and swim training: effects on bone metabolism in ovariectomized rats. J Bone Miner Metab 2006; 24:206–12
  • Santos MA, Florencio-Silva R, Simões MJ, et al. Efeitos das isoflavonas da soja sobre o tecido ósseo de ratas. Reprodução & Climatério 2010;26:19–25
  • Nozaka K, Miyakoshi N, Kasukawa Y, et al. Intermittent administration of human parathyroid hormone enhances bone formation and union at the site of cancellous bone osteotomy in normal and ovariectomized rats. Bone 2008;42:90–7
  • Parfitt AM, Drezner MK, Glorieux FH, et al. Bone histomorphometry: standardization of nomenclature, symbols, and units. J Bone Miner Res 1987;2:595–610
  • Aguiar JAK, Lima CR, Berto AGA, et al. An improved methodology to produce Flavobacterium heparinum condroitinases, important instruments for diagnosis of diseases. Biotechnol Appl Biochem 2003;37:115–27
  • Keenam JM, Hegsted M, Jones LK, et al. Comparison of bone density measurement technique: DXA and Archimedes’ principle. J Bone Miner Res 1997;12:1903–7
  • Hughes SW. Archimedes revisited: a faster, better, cheaper method of accurately measuring the volume of small objects. Phys Educ 2005;40:468–74
  • Kalu DN. The ovariectomized rat model of postmenopausal bone loss. Bone Mineral 1991;15:175–92
  • Nishimura Y, Fukuoka H, Kiriyama M, et al. Bone turnover and calcium metabolism during 20 days bed rest in young healthy males and females. Acta Physiol Scand Suppl 1994; 616:27–35
  • Huddleston AL, Rockwell D, Kulund DN, et al. Bone mass in lifetime tennis athletes. JAMA 1980;244:1107–9
  • Stein TP. Weight, muscle and bone loss during space flight: another perspective. Eur J Appl Physiol 2012 Nov 29; Epub ahead of print
  • Rochefort GY, Pallu S, Benhamou CL. Osteocyte: the unrecognized side of bone tissue. Osteoporos Int 2010;219:1457–69
  • Bonewald LF. Mechanosensation and transduction in osteocytes. Bonekey Osteovision 2006;3:7–15
  • Crockett JC, Rogers MJ, Coxon FP, et al. Bone remodelling at a glance. J Cell Sci 2011;124:991–8
  • Bass SL, Saxon LK, Daly RM, et al. The effect of mechanical loading on the size and shape of bone in pre-, peri-, and postpubertal girls: a study in tennis players. J Bone Miner Res 2002;17:2274–80
  • Rubinacci A, Marenzana M, Cavani F, et al. Ovariectomy sensitizes rat cortical bone to whole-body vibration. Calcif Tissue Int 2008;82:316–26
  • Frost HM. Bone ‘mass’ and the ‘mechanostat’: a proposal. Anat Rec 1987;219:1–9
  • Riggs BL, Melton LJ. Osteoporosis: Etiology, Diagnosis, and Management. New York: Lippincott Raven, 1988:133–54
  • Wu J, Wang XX, Takasaki M, et al. Cooperative effects of exercise training and genistein administration on bone mass in ovariectomized mice. J Bone Miner Res 2001;16:1829–36
  • Setchell KD, Cassidy A. Dietary isoflavones: biological effects and relevance to human health. J Nutr 1999;129:758–67
  • Oseni T, Patel R, Pyle J, et al. Selective estrogen receptor modulators and phytoestrogens. Planta Med 2008;74:1656–65
  • Arjmandi BH, Getlinger MJ, Goyal NV, et al. Role of soy protein with normal or reduced isoflavone content in reversing bone loss induced by ovarian hormone deficiency in rats. Am J Clin Nutr 1998;68:1358–63
  • Hertrampf T, Schleipen C, Offermanns M, et al. Comparison of the bone protective effects of an isoflavone-rich diet with dietary and subcutaneous administrations of genistein in ovariectomized rats. Toxicol Lett 2009;184:198–203
  • Kawakita S, Marota F, Naito Y, et al. Effect of an isoflavones-containing red clover preparation and alkaline supplementation on bone metabolism in ovariectomized rats. Clin Interv Agin 2009;4:91–100
  • Kennedy AR. The evidence for soybean products as cancer preventive agents. J Nutr 1995;125:733–43
  • Conrad HE. Structure of heparan sulfate and dermatan sulfate. Ann NY Acad Sci 1989;556:18–28
  • Kjellen L, Lindahl U. Proteoglycans: structures and interactions. Ann Rev Biochem 1991;60:443–75
  • Prince CW, Rahemtulla F, Butler WT. Metabolism of rat bone proteoglycans in vivo. Biochem J 1983;216:589–96
  • Hoshi K, Kemmotsu S, Takeuchi Y, et al. The primary calcification in bones follows removal of decorin and fusion of collagen fibrils. J Bone Miner Res 1999;14:273–80
  • Xu T, Bianco P, Fisher LW, et al. Targeted disruption of the biglycan gene leads to an osteoporosis-like phenotype in mice. Nat Genet 1998;20:78–82
  • Yamamoto T, Nagaoka N, Hirata A, et al. Ultrastructural and immunohistochemical studies of medullary bone calcification, with special reference to sulphated glycosaminoglycans. J Electron Microsc 2005;54:29–34
  • Bailey AJ, Sims TJ, Avery NC, et al. Chemistry of collagen cross-links: glucose-mediated covalent cross-linking of type-IV collagen in lens capsules. Biochem J 1993;296:489–96
  • Knott L, Whitehead CC, Fleming RH, et al. Biochemical changes in the collagenous matrix of osteoporotic avian bone. Biochem J 1995;310:1045–51
  • Montes GS. Structural biology of the fibres of the collagenous and elastic systems. Cell Biol Int 1996;20:15–27
  • Hirshberg A, Lib M, Koslovisky A, et al. The influence of inflammation on the polarization colors of collagen fibers in the wall of odontogenic keratocyst. Oral Oncol 2007;43:278–82
  • Retamoso LB, Montagner F, Camargo ES, et al. Polarized light microscopic analysis of bone formation after inhibition of cyclooxygenase 1 and 2. Anat Rec (Hoboken) 2010;293:195–9
  • Kogiso M, Sakai T, Mitsuya K, et al. Genistein suppresses antigen-specific immune responses through competition with 17beta-estradiol for estrogen receptors in ovalbumin-immunized BALB/c mice. Nutrition 2006;22:802–9
  • Parry DA, Flint MH, Gillard GC, Craig RS. A role for glycosaminoglycans in the development of collagen fibrils. FEBS Lett 1982;149:1–7
  • Corsi A, Xu T, Chen XD, et al. Phenotypic effects of biglycan deficiency are linked to collagen fibril abnormalities, are synergized by decorin deficiency, and mimic Ehlers-Danlos-like changes in bone and other connective tissue. J Bone Miner Res 2002;17:1180–9

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.