Literature DB >> 8889110

Models for the pathogenesis of stress fractures in athletes.

K L Bennell1, S A Malcolm, J D Wark, P D Brukner.   

Abstract

It would seem that the development of a stress fracture results from unsuccessful adaptation of bone to a change in its mechanical environment caused by repetitive loading. It involves the physiological processes of microdamage production and remodelling. Whether the initiating factor is microdamage production or activation of remodelling through direct effects of strain is unclear. The remodelling process involves both the removal of bone which has become fatigue damaged or is extraneous to the requirements of the new loading environment, and the addition of new bone in an manner that is best suited to withstand the new mechanical strain. Normally this process is well modulated and does not cause symptoms. If the amount of bone removed is not sufficient to unduly weaken bone structure and the addition of new bone occurs sufficiently rapidly to correct any weakness before failure occurs or to repair microdamage, the process will successfully lead to a bone with appropriate material strength and geometry to withstand the new strain environment. However, if there is imbalance between bone removal and replacement, together with accumulation of microdamage, signs and symptoms of a stress fracture may result. Any factors which influence bone load, bone strength, or remodelling have the potential to result in a stress fracture. Attention should be paid to the identification of these factors in an attempt to prevent this overuse injury in athletes.

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Year:  1996        PMID: 8889110      PMCID: PMC1332329          DOI: 10.1136/bjsm.30.3.200

Source DB:  PubMed          Journal:  Br J Sports Med        ISSN: 0306-3674            Impact factor:   13.800


  46 in total

1.  Tibial stress syndrome in athletes.

Authors:  D B Clement
Journal:  J Sports Med       Date:  1974 Mar-Apr

2.  Mechanical influences in bone remodeling. Experimental research on Wolff's law.

Authors:  A Chamay; P Tschantz
Journal:  J Biomech       Date:  1972-03       Impact factor: 2.712

3.  Stress fractures in children.

Authors:  C A Engh; R A Robinson; J Milgram
Journal:  J Trauma       Date:  1970-07

4.  RPC of the month from the AFIP.

Authors:  D E Sweet; R M Allman
Journal:  Radiology       Date:  1971-06       Impact factor: 11.105

5.  Increased intracortical remodeling following fatigue damage.

Authors:  S Mori; D B Burr
Journal:  Bone       Date:  1993 Mar-Apr       Impact factor: 4.398

6.  Bone remodeling in response to in vivo fatigue microdamage.

Authors:  D B Burr; R B Martin; M B Schaffler; E L Radin
Journal:  J Biomech       Date:  1985       Impact factor: 2.712

7.  Bone creep-fatigue damage accumulation.

Authors:  W E Caler; D R Carter
Journal:  J Biomech       Date:  1989       Impact factor: 2.712

8.  Radiographic and histologic analyses of stress fracture in rabbit tibias.

Authors:  G P Li; S D Zhang; G Chen; H Chen; A M Wang
Journal:  Am J Sports Med       Date:  1985 Sep-Oct       Impact factor: 6.202

9.  Stress fractures. Identifiable risk factors.

Authors:  M Giladi; C Milgrom; A Simkin; Y Danon
Journal:  Am J Sports Med       Date:  1991 Nov-Dec       Impact factor: 6.202

10.  Microcracking in dog bone under load. A biomechanical study of bone visco-elasticity.

Authors:  U Jonsson; K Eriksson
Journal:  Acta Orthop Scand       Date:  1984-08
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  15 in total

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Authors:  Stephanie A Pasquesi; Susan S Margulies
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Review 2.  Bone stress injuries.

Authors:  Tim Hoenig; Kathryn E Ackerman; Belinda R Beck; Mary L Bouxsein; David B Burr; Karsten Hollander; Kristin L Popp; Tim Rolvien; Adam S Tenforde; Stuart J Warden
Journal:  Nat Rev Dis Primers       Date:  2022-04-28       Impact factor: 52.329

3.  Bone Turnover Alterations after Completing a Multistage Ultra-Trail: A Case Study.

Authors:  Carlos Castellar-Otín; Miguel Lecina; Francisco Pradas
Journal:  Healthcare (Basel)       Date:  2022-04-25

4.  Traumatic spondylolysis in a heptathlete: a case history and review.

Authors:  Fleur Castlereagh; Henry Pollard
Journal:  J Chiropr Med       Date:  2005

5.  Stress fracture risk factors in female football players and their clinical implications.

Authors:  Stuart J Warden; Mark W Creaby; Adam L Bryant; Kay M Crossley
Journal:  Br J Sports Med       Date:  2007-06-21       Impact factor: 13.800

6.  Family history predicts stress fracture in active female adolescents.

Authors:  Keith J Loud; Lyle J Micheli; Stephanie Bristol; S Bryn Austin; Catherine M Gordon
Journal:  Pediatrics       Date:  2007-07-16       Impact factor: 7.124

Review 7.  Effects of Low Energy Availability on Bone Health in Endurance Athletes and High-Impact Exercise as A Potential Countermeasure: A Narrative Review.

Authors:  Mark J Hutson; Emma O'Donnell; Katherine Brooke-Wavell; Craig Sale; Richard C Blagrove
Journal:  Sports Med       Date:  2021-03       Impact factor: 11.136

Review 8.  A systematic review of the etiopathogenesis of Kienböck's disease and a critical appraisal of its recognition as an occupational disease related to hand-arm vibration.

Authors:  Stéphane Stahl; Adelana Santos Stahl; Christoph Meisner; Afshin Rahmanian-Schwarz; Hans-Eberhard Schaller; Oliver Lotter
Journal:  BMC Musculoskelet Disord       Date:  2012-11-21       Impact factor: 2.362

9.  Olecranon Stress Injury in an Adolescent Overhand Pitcher: A Case Report and Analysis of the Literature.

Authors:  Jason Brucker; Novneet Sahu; Bradley Sandella
Journal:  Sports Health       Date:  2015-07       Impact factor: 3.843

10.  Identifying Factors That Contribute to Adolescent Bony Stress Injury in Secondary School Athletes: A Comparative Analysis With a Healthy Athletic Control Group.

Authors:  Eric D Nussbaum; Jaynie Bjornaraa; Charles J Gatt
Journal:  Sports Health       Date:  2019-01-15       Impact factor: 3.843

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