Effect of Age and Exercise on the Viscoelastic Properties of Rat Tail Tendon

被引:0
作者
Andrew S. LaCroix
Sarah E. Duenwald-Kuehl
Stacey Brickson
Tiffany L. Akins
Gary Diffee
Judd Aiken
Ray Vanderby
Roderic S. Lakes
机构
[1] University of Wisconsin–Madison,Department of Biomedical Engineering
[2] University of Wisconsin–Madison,Department of Orthopedics and Rehabilitation
[3] University of Wisconsin–Madison,Department of Kinesiology
[4] University of Wisconsin–Madison,Department of Comparative Biology
[5] University of Wisconsin–Madison,Department of Engineering Physics
来源
Annals of Biomedical Engineering | 2013年 / 41卷
关键词
Viscoelasticity; Systemic exercise effects; Aging;
D O I
暂无
中图分类号
学科分类号
摘要
Tendon mechanical properties are thought to degrade during aging but improve with exercise. A remaining question is whether exercise in aged animals provides sufficient regenerative, systemic stimulus to restore younger mechanical behaviors. Herein we address that question with tail tendons from aged and exercised rats, which would be subject to systemic effects but not direct loading from the exercise regimen. Twenty-four month old rats underwent one of three treadmill exercise training protocols for 12 months: sedentary (walking at 0° incline for 5 min/day), moderate (running at 0° incline for 30 min/day), or high (running at 4° incline for 30 min/day). A group of 9 month old rats were used to provide an adult control, while a group of 3 month old rats provided a young control. Tendons were harvested at sacrifice and mechanically tested. Results show significant age-dependent differences in modulus, ultimate stress, relaxation rate, and percent relaxation. Relaxation rate was strain-dependent, consistent with nonlinear superposition or Schapery models but not with quasilinear viscoelasticity (QLV). Trends in exercise data suggest that with exercise, tendons assume the elastic character of younger rats (lower elastic modulus and ultimate stress).
引用
收藏
页码:1120 / 1128
页数:8
相关论文
共 146 条
  • [11] Magnusson SP(2001)Exercise training increases the Ca J. Appl. Physiol. 20 1315-1322
  • [12] Trappe TA(2002) sensitivity of tension in rat cardiac myocytes J. Orthop. Res. 37 1131-1140
  • [13] Chimich D(2009)A potential mechanism for age-related declines in patellar tendon biomechanics Ann. Biomed. Eng. 47 1-14
  • [14] Shrive N(2010)Viscoelastic relaxation and recovery of tendon Biorheology 31 599-605
  • [15] Frank C(2003)Stress relaxation and recovery in tendon and ligament: experiment and modeling Ann. Biomed. Eng. 68 1950-1955
  • [16] Marchuk L(1990)Effect of altered matrix proteins on quasilinear viscoelastic properties in transgenic mouse tail tendons J. Appl. Physiol. 23 354-358
  • [17] Bray R(1995)Effects of endurance exercise on isomyosin patterns in fast- and slow-twitch skeletal muscles Am. J. Sports Med. 10 775-782
  • [18] Chung E(1977)Biomechanical analysis of patellar tendon allografts as a function of donor age J. Biomech. 130 21011-21018
  • [19] Diffee GM(2008)Mechanical and structural changes in rat tail tendon induced by alloxan diabetes and aging J. Biomech. Eng. 30 79-81
  • [20] Couppé C(1997)Ageing changes in the tensile properties of tendons: influence of collagen fibril volume fraction J. Biomech. 25 163-173