4.6 Article

Increased tissue-level storage modulus and hardness with age in male cortical bone and its association with decreased fracture toughness*

期刊

BONE
卷 148, 期 -, 页码 -

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.bone.2021.115949

关键词

Bone; Aging; Cortical; Nanoindentation; Fracture; Mineralization

资金

  1. National Science Foundation [1068988]
  2. National Institute of Arthritis and Musculoskeletal and Skin Diseases [AR063157]
  3. VA Office of Research and Development [BX004297]
  4. Div Of Civil, Mechanical, & Manufact Inn
  5. Directorate For Engineering [1068988] Funding Source: National Science Foundation

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The incidence of bone fractures increases with age due to declining bone quantity and quality. In males, the age-related decline in fracture toughness of cortical bone is characterized by increased stiffness and hardness with age, while viscoelasticity remains constant. The changes in tissue-level characteristics, such as mineralization, contribute to decreased fracture toughness in male cortical bone.
The incidence of bone fracture increases with age, due to both declining bone quantity and quality. Toward the goal of an improved understanding of the causes of the age-related decline in the fracture toughness of male cortical bone, nanoindentation experiments were performed on femoral diaphysis specimens from men aged 21?98 years. Because aged bone has less matrix-bound water and dry bone is less viscoelastic, we used a nanoindentation method that is sensitive to changes in viscoelasticity. Given the anisotropy of bone stiffness, longitudinal (n = 26) and transverse (n = 25) specimens relative to the long axis of the femur diaphysis were tested both dry in air and immersed in phosphate buffered saline solution. Indentation stiffness (storage modulus) and hardness increased with age, while viscoelasticity (loss modulus) was independent of donor age. The increases in indentation stiffness and hardness with age were best explained by increased mineralization with age. Indentation stiffness and hardness were negatively correlated with previously acquired fracture toughness parameters, which is consistent with a tradeoff between material strength and toughness. In keeping with the complex structure of bone, a combination of tissue-level storage modulus or hardness, bound water, and osteonal area in regression models best explained the variance in the fracture toughness of male human cortical bone. On the other hand, viscoelasticity was unchanged with age and was not associated with fracture toughness. In conclusion, the age-related increase in stiffness and hardness of male cortical bone may be one of the multiple tissue-level characteristics that contributes to decreased fracture toughness.

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