Promoting adaptive bone formation to prevent stress fractures in military personnel

Eur J Sport Sci. 2022 Jan;22(1):4-15. doi: 10.1080/17461391.2021.1949637. Epub 2021 Jul 16.

Abstract

Mechanical loading leads to adaptive bone formation - the formation of new bone on existing skeletal surfaces - which increases bone strength and fatigue resistance. The same mechanical loading can also cause microdamage to bone and development of a stress fracture through targeted remodelling. Stress fractures are common in military recruits and cause significant morbidity, lost training time, and discharge from military service. This narrative review proposes strategies to promote adaptive bone formation as a novel approach to mitigate the risk of stress fracture injuries during arduous military training. Exercise that is unaccustomed, dynamic, high-impact, multidirectional, intermittent, and includes extended rest periods to restore bone mechanosensitivity, is most osteogenic. New bone formation can take up to one year to mineralize, and so new exercise training programmes should be initiated well in advance of military activities with high risk of stress fracture. Bone mechanosensitivity is highest in adolescence, before puberty, and so increasing physical activity in youth is likely to protect skeletal health in later life, including for those in the military. Recent data show that adaptive bone formation takes place during initial military training. Adaptive bone formation can also be supported with adequate sleep, vitamin D, calcium, and energy availability. Further evidence on how strategies to promote adaptive bone formation affect stress fracture risk are required. Adaptive bone formation can be optimized with a range of training and nutritional strategies to help create a resilient skeleton, which may protect against stress fracture throughout military service.

Keywords: Bone health; Exercise; Musculoskeletal.

Publication types

  • Review

MeSH terms

  • Adolescent
  • Exercise
  • Fractures, Stress* / etiology
  • Fractures, Stress* / prevention & control
  • Humans
  • Military Personnel*
  • Osteogenesis
  • Vitamin D

Substances

  • Vitamin D