A reduction in plantarflexor power during the push-off phase of walking leads to the slowing of preferred walking speed with age, which in turn negatively affects old adults' health and independence. Although commonly implicated, sarcopenia and muscle weakness alone cannot fully explain the reduction in plantarflexor power or accompanying changes in coordination. We postulate that this disconnect arises from age-related changes in Achilles tendon behavior that alter muscle-tendon dynamics during movement. This study tightly integrates novel in vivo imaging, computational modeling, and motion analysis to investigate tendon deformations associated with physiological loading and movement to an unprecedented level of detail. Our overarching hypothesis is that age-related changes in tendon elasticity and inter-fascicle adhesions have a substantial effect on the ability for muscles to generate sufficient plantarflexor power during movement. This study has three aims.
The first aim i s to determine how advancing age affects the in vivo behavior of the plantarflexor muscles and Achilles tendon during prescribed ankle flexion movements under physiological loading. We will combine high-resolution static MRI, dynamic MRI, and shear wave elastography to test the hypothesis that advancing age brings altered spatial patterns of Achilles tendon tissue elasticity that predict measured muscle tissue deformation patterns.
The second aim i s to predict the functional implications of age- related changes in Achilles tendon tissue mechanics on plantarflexor performance during movement. We will link measurements of human movement with a unique computational framework that includes detailed structural representations of the 3D morphology of the plantarflexor muscle-tendons and their dynamic interactions. We will test the primary hypothesis that simulating age-related changes in Achilles tendon elasticity and inter-fascicle adhesions will diminish power production and increase localized tissue strains.
The third aim i s to investigate age-related changes in Achilles tendon behavior during walking and its relevance to functional motor performance and response to gait interventions. We will measure in vivo Achilles tendon deformations, plantarflexor fascicle behavior, and plantarflexor power during walking. We will couple these measurements with biofeedback designed to elicit prescribed increases in plantarflexor power output. We will use these data to test the hypotheses that: 1) more uniform tendon deformations during walking with aging, which would reflect a reduction in sliding between tendon fascicles, will predict reduced ankle joint kinetics and altered plantarflexor muscle fascicle kinematics, and 2) with aging, different coordination strategies will be used to increase plantarflexor power, adaptations that will be consistent with Aim 2 model predictions. Combined, these aims will reveal the influence of age-related changes in Achilles tendon mechanics on plantarflexor muscle behavior during movement, insights critical for developing informed interventions to maintain or restore mobility while mitigating risk for muscle-tendon tissue damage.

Public Health Relevance

The maintenance of walking ability with aging is critical for independent living. This study uses imaging and computer models to investigate how age-related alterations within the Achilles tendon can diminish walking performance. The information obtained is important for developing informed interventions to maintain or restore walking ability in the elderly, while mitigating risk for injury.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Research Project (R01)
Project #
5R01AG051748-04
Application #
9685749
Study Section
Musculoskeletal Rehabilitation Sciences Study Section (MRS)
Program Officer
Joseph, Lyndon
Project Start
2016-04-01
Project End
2021-03-31
Budget Start
2019-04-01
Budget End
2020-03-31
Support Year
4
Fiscal Year
2019
Total Cost
Indirect Cost
Name
University of Wisconsin Madison
Department
Engineering (All Types)
Type
Biomed Engr/Col Engr/Engr Sta
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Rasske, Kristen; Franz, Jason R (2018) Aging effects on the Achilles tendon moment arm during walking. J Biomech 77:34-39
Franz, Jason R; Khanchandani, Ashish; McKenny, Hannah et al. (2018) Ankle Rotation and Muscle Loading Effects on the Calcaneal Tendon Moment Arm: An In Vivo Imaging and Modeling Study. Ann Biomed Eng :
Fickey, Sarah N; Browne, Michael G; Franz, Jason R (2018) Biomechanical effects of augmented ankle power output during human walking. J Exp Biol 221:
Handsfield, Geoffrey G; Inouye, Joshua M; Slane, Laura C et al. (2017) A 3D model of the Achilles tendon to determine the mechanisms underlying nonuniform tendon displacements. J Biomech 51:17-25
Orselli, Maria Isabel V; Franz, Jason R; Thelen, Darryl G (2017) The effects of Achilles tendon compliance on triceps surae mechanics and energetics in walking. J Biomech 60:227-231
Browne, Michael G; Franz, Jason R (2017) The independent effects of speed and propulsive force on joint power generation in walking. J Biomech 55:48-55
Zelik, Karl E; Franz, Jason R (2017) It's positive to be negative: Achilles tendon work loops during human locomotion. PLoS One 12:e0179976
Rasske, Kristen; Thelen, Darryl G; Franz, Jason R (2017) Variation in the human Achilles tendon moment arm during walking. Comput Methods Biomech Biomed Engin 20:201-205
Browne, Michael G; Franz, Jason R (2017) Does dynamic stability govern propulsive force generation in human walking? R Soc Open Sci 4:171673
Franz, Jason R (2016) The Age-Associated Reduction in Propulsive Power Generation in Walking. Exerc Sport Sci Rev 44:129-36