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Kharazi, M.

Publications and source records attributed to Kharazi, M..

2 recordsLinked to original sources

Contractile work and biarticular mechanisms of the triceps surae muscles facilitate net ankle mechanical work at high walking speeds

Increasing walking speed is accompanied by an enhancement of the mechanical power and work performed at the ankle joint despite the decrease of the intrinsic muscle force potential. We measured Achilles tendon (AT) elongation and, based on an experimentally determined AT-force-elongation relationship; we quantified AT-force as a proxy of the triceps surae muscle force at four walking speeds (slow 0.7 m.s-1, preferred 1.4 m.s-1, transition 2.0 m.s-1 and maximum 2.6{+/-}0.3 m.s-1). Further, we investigated the mechanical power and work of the triceps surae muscles at the ankle joint (TSA) and the mechanical power and work of the biarticular gastrocnemii at the ankle and knee joint. We found a ~21% decrease of maximum AT-force at the two higher speeds compared to the preferred; however, the net TSA-work increased as a function of walking speed. An earlier plantarflexion accompanied by increased activation of the triceps surae muscles and a knee-to-ankle energy transfer via the biarticular gastrocnemii enhanced the net TSA-mechanical work by 1.7 and 2.4-fold in the transition and maximum walking speeds, respectively. Our findings provide first time evidence for different mechanistic participation of the monoarticular soleus muscle and the biarticular gastrocnemii for the speed-related enhancement of net TSA-work.

bioengineering↗

Quantifying mechanical loading and elastic strain energy of the human Achilles tendon during walking and running

The purpose of the current study was to assess Achilles tendon (AT) mechanical loading and strain energy during locomotion using a new in vivo approach for measuring AT length that considers the AT curve-path shape. Eleven participants walked at 1.4 m/s and ran at 2.5 m/s and 3.5 m/s on a treadmill. AT length, defined as the distance between its origin at the gastrocnemius medialis myotendinous junction (MTJ) and the calcaneal insertion, was determined experimentally by integrating kinematics and ultrasound analysis. Small foil markers were placed on the skin covering the AT path from the origin to the insertion, and the MTJ, tracked using ultrasonography, was projected to the reconstructed skin to account for their misalignment. Skin-to-bone displacements were assessed during a passive rotation (5 {degrees}/s) of the ankle joint and considered in the calculation of AT length. Force and strain energy of the AT during locomotion were calculated by fitting a quadratic function to the experimentally measured tendon force-length curve obtained from maximum voluntary isometric contractions. Maximum AT strain and force were affected by speed (p<0.05, ranging from 4.0 to 4.9% strain and 1.989 to 2.556 kN), yet insufficient in magnitude to be considered an effective stimulus for tendon adaptation. Further, we found a recoil of elastic strain energy at the beginning of the stance phase of running (70-77 ms after touch down) between 1.7 {+/-}0.6 and 1.9 {+/-}1.1 J, which might be functionally relevant for running efficiency. Summary statementA new accurate in vivo approach to assess Achilles tendon strain, force and strain energy during locomotion.

bioengineering↗