1,585
Views
25
CrossRef citations to date
0
Altmetric
Original Articles

Women with previous stress fractures show reduced bone material strength

Microindentation measurements in a retrospective case-control study of 60 subjects

&
Pages 626-631 | Received 15 Nov 2015, Accepted 02 May 2016, Published online: 20 Jun 2016

  • Arendt E, Agel J, Heikes C, Griffiths H. Stress injuries to bone in college athletes: a retrospective review of experience at a single institution. Am J Sports Med 2003; 31(6): 959–68.
  • Barrack M T, Gibbs J C, De Souza M J, Williams N I, Nichols J F, Rauh M J, Nattiv A. Higher incidence of bone stress injuries with increasing female athlete triad-related risk factors: a prospective multisite study of exercising girls and women. Am J Sports Med 2014; 42(4): 949–58.
  • Barrow G W, Saha S. Menstrual irregularity and stress fractures in collegiate female distance runners. Am J Sports Med 1988; 16(3): 209–16.
  • Bennell K L, Brukner P D. Epidemiology and site specificity of stress fractures. Clin Sports Med 1997; 16(2): 179–96.
  • Breer S, Krause M, Marshall R P, Oheim R, Amling M, Barvencik F. Stress fractures in elderly patients. Int Orthop 2012; 36(12): 2581–7.
  • Burr D B, Forwood M R, Fyhrie D P, Martin R B, Schaffler M B, Turner C H. Bone microdamage and skeletal fragility in osteoporotic and stress fractures. J Bone Miner Res 1997; 12(1): 6–15.
  • Cox G, Einhorn T, Tzioupis C, Giannoudis P. Bone-turnover markers in fracture healing. J Bone Joint Surg [Br] 2010; 92-B: 329–34.
  • Diez-Perez A, Güerri R, Nogues X, Cáceres E, Pena M J, Mellibovsky L, et al. Microindentation for in vivo measurement of bone tissue mechanical properties in humans. J Bone Miner Res 2010; 25(8): 1877–85.
  • Evans R K, Antczak A J, Lester M, Yanovich R, Israeli E, Moran D S. Effects of a 4-month recruit training program on markers of bone metabolism. Med Sci Sports Exerc 2008; 40(11 Suppl): S660–S70.
  • Fantner G E, Hassenkam T, Kindt J H, Weaver J C, Birkedal H, Pechenik L, et al. Sacrificial bonds and hidden length dissipate energy as mineralized fibrils separate during bone fracture. Nat Mate 2005; 4(8): 612–6.
  • Farr J N, Drake M T, Amin S, Melton L J, McCready L K, Khosla S. In Vivo assessment of bone quality in postmenopausal women with type 2 diabetes. J Bone Miner Res 2014; 29(4): 787–95.
  • Felsenberg D B S. The bone quality framework: Determinants of bone strenght and their interrelationships, and implications for osteoporosis management. Clin Ther 2005; 27(1): 1–11.
  • Gallant M A, Brown D M, Organ J M, Allen M R, Burr D B. Reference-point indentation correlates with bone toughness assessed using whole-bone traditional mechanical testing. Bone 2013; 53(1): 301–5.
  • Gourion-Arsiquaud S, West P A, Boskey A L. Fourier transform-infrared microspectroscopy and microscopic imaging. Methods Mol Biol 2008; 455: 293–03.
  • Güerri-Fernández R C, Nogués X, Quesada Gómez J M, Torres del Pliego E, Puig L, García-Giralt N, Yoskovitz G Mellibovsky L Hansma PK, Díez-Pérez A. Microindentation for in vivo measurement of bone tissue material properties in atypical femoral fracture patients and controls. J Bone Miner Res 2013; 28(1): 162–8.
  • Hansma P, Turner P, Drake B, Yurtsev E, Proctor A, Mathews P, Lelujian J, Randall C, Adams J, Jungmann R. The bone diagnostic instrument II: Indentation distance increase. Rev Sci Instrum 2008; 79(6): 064303.
  • Hengsberger S, Kulik A, Zysset P. Nanoindentation discriminates the elastic properties of individual human bone lamellae under dry and physiological conditions. Bone 2002; 30(1): 178–84.
  • Ingle B, Hay S, Bottjer H, Eastell R. Changes in bone mass and bone turnover following distal forearm fracture. Osteoporos Int 1999; 10(5): 399–07.
  • Ivaska K K, PGerdhem P, Åkesson K, Garnero P, Obrant K J. Effect of fracture on bone turnover markers: a longitudinal study comparing marker levels before and after injury in 113 elderly women. J Bone Miner Res 2007; 22(8): 1155–64.
  • Lauder T D, Dixit S, Pezzin L E, Williams M V, Campbell C S, Davis G D. The relation between stress fractures and bone mineral density: evidence from active-duty Army women. Arch Phys Med Rehabil 2000; 81(1): 73–9.
  • Li G, Zhang S, Chen G, Chen H, Wang A. Radiographic and histologic analyses of stress fracture in rabbit tibias. Am J Sports Med 1985; 13(5): 285–94.
  • Macione J, Kavukcuoglu N, Nesbitt R, Mann A, Guzelsu N, Kotha S. Hierarchies of damage induced loss of mechanical properties in calcified bone after in vivo fatigue loading of rat ulnae. J Mech Behav Biomed Mater 2011; 4(6): 841–8.
  • O’Brien F J, Taylor D, Lee T C. Microcracks accumulation at different intervals during fatigue testing of compact bone. J Biomech 2003; 36(7): 973–80.
  • Popp K L, Hughes J M, Smock A J, Novotny S A, Stovitz S D, Koehler S M, Petit M A. Bone geometry, strength, and muscle size in runners with a history of stress fracture. Med Sci Sports Exerc 2009; 41(12): 2145–50.
  • Presbitero G, O’Brien F J, Lee T C, Taylor D. Distribution of microcrack lengths in bone in vivo and in vitro. J Theor Biol 2012; 304: 164–71.
  • Schnackenburg K E, Macdonald H M, Ferber R, Wiley J P, Boyd S K. Bone quality and muscle strength in female athletes with lower limb stress fractures. Med Sci Sports Exerc 2011; 43(11): 2110–9.
  • Seeman E, Delmas P D. Microarchitectural deterioration of cortical and trabecular bone: differing effects of denosumab and alendronate. J Bone Miner Res 2010; 25(8): 1886–94.
  • Speroff L, Fritz M A. Clinical gynecologic endocrinology and infertility. Seventh ed.: Lippincott, Williams & Wilkins 2005; 403ff. ISBN 0-7817-4795-3.
  • Uthgenannt B A, Silva M J. Use of the rat forelimb compression model to create discrete levels of bone damage in vivo. J Biomech 2007; 40(2): 317–24.
  • Veitch S, Findlay S, Hamer A, Blumsohn A, Eastell R, Ingle B. Changes in bone mass and bone turnover following tibial shaft fracture. Osteoporos Int 2006; 17(3): 364–72.
  • Wakamatsu K, Sakuraba K, Suzuki Y, Maruyama A, Tsuchiya Y, Shikakura J, Ochi, E. Association between the stress fracture and bone metabolism/quality markers in lacrosse players. Open Access J Sports Med 2012; 3: 67.
  • Warden S J, Burr D B, Brukner P D. Stress fractures: pathophysiology, epidemiology, and risk factors. Curr Osteoporos Rep 2006; 4(3): 103–9.
  • Wentz L, Liu P-Y, Haymes E, Ilich J Z. Females have a greater incidence of stress fractures than males in both military and athletic populations: a systemic review. Mil Med 2011; 176(4): 420–30.
  • Willinghamm M D, Brodt M D, Lee K L, Stephens A L, Ye J, Silva M J. Age-related changes in bone structure and strength in female and male BALB/c mice. Calcif Tissue Int 2010; 86(6): 470–83.
  • Yanovich R, Evans R K, Friedman E, Moran D S. Bone turnover markers do not predict stress fracture in elite combat recruits. Clin Orthop Rel Res 2013; 471(4): 1365–72.
  • Young A J, McAllister D R. Evaluation and treatment of tibial stress fractures. Clin Sports Med 2006; 25(1): 117–28.
  • Zioupos P, Cook R B, Hutchinson J R. Some basic relationships between density values in cancellous and cortical bone. J Biomech 2008; 41(9): 1961–8.