4.6 Review

The fragile elderly hip: Mechanisms associated with age-related loss of strength and toughness

Journal

BONE
Volume 61, Issue -, Pages 138-148

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.bone.2013.12.034

Keywords

Hip fracture; Ageing; Osteoporosis; Cortical thinning; Osteocyte; Toughness

Funding

  1. UK MRC [G9321536, G0501550]
  2. Arthritis Research UK [17173]
  3. ASBMR
  4. BBSRC [BB/D004624]
  5. NIHR Biomedical Research Centre (Cambridge)
  6. EU [F2-2008-201099, 201865]
  7. Medical Research Council [G0501550, MC_U105960371] Funding Source: researchfish
  8. MRC [G0501550, MC_U105960371] Funding Source: UKRI

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Every hip fracture begins with a microscopic crack, which enlarges explosively over microseconds. Most hip fractures in the elderly occur on falling from standing height, usually sideways or backwards. The typically moderate level of trauma very rarely causes fracture in younger people. Here, this paradox is traced to the decline of multiple protective mechanisms at many length scales from nanometres to that of the whole femur. With normal ageing, the femoral neck asymmetrically and progressively loses bone tissue precisely where the cortex is already thinnest and is also compressed in a sideways fall. At the microscopic scale of the basic remodelling unit (BMU) that renews bone tissue, increased numbers of actively remodelling BMUs associated with the reduced mechanical loading in a typically inactive old age augments the numbers of mechanical flaws in the structure potentially capable of initiating cracking. Menopause and over-deep osteoclastic resorption are associated with incomplete BMU refilling leading to excessive porosity, cortical thinning and disconnection of trabeculae. In the femoral cortex, replacement of damaged bone or bone containing dead osteocytes is inefficient, impeding the homeostatic mechanisms that match strength to habitual mechanical usage. In consequence the participation of healthy osteocytes in crack-impeding mechanisms is impaired. Observational studies demonstrate that protective crack deflection in the elderly is reduced. At the most microscopic levels attention now centres on the role of tissue ageing, which may alter the relationship between mineral and matrix that optimises the inhibition of crack progression and on the role of osteocyte ageing and death that impedes tissue maintenance and repair. This review examines recent developments in the understanding of why the elderly hip becomes fragile. This growing understanding is suggesting novel testable approaches for reducing risk of hip fracture that might translate into control of the growing worldwide impact of hip fractures on our ageing populations. (C) 2014 The Authors. Published by Elsevier Inc. All rights reserved.

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