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April 25, 2026Journal of Experimental Biology0 citationsOpen Access

The biarticularity of the gastrocnemii muscles provides relevant mechanisms for managing drop-like gait perturbations in humans

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CTChristos TheodorakisBerlin School of Economics and LawSBSebastian BohmBerlin School of Economics and LawFMFalk MersmannBerlin School of Economics and Law

Key Points

  • The research aims to understand how the biarticular gastrocnemii muscles influence energy transfer between the ankle and knee during drop-like perturbations.
  • Measured Achilles tendon elongation and force in 17 participants
  • Quantified electromyographic activity of soleus and gastrocnemii muscles
  • Analyzed body kinematics during unpredictable and adapted drop-like perturbations
  • Biarticular mechanisms contributed 17% to 26% of mechanical work performed by the Achilles tendon at the ankle joint.
  • 26% of negative mechanical work was transferred from the ankle to the knee during unpredictable perturbations.
  • Energy transfer rate was higher in unpredictable perturbations compared to adapted ones.

Abstract

This study investigated the ankle-to-knee and knee-to-ankle joint energy transfer via the biarticular gastrocnemii muscles during unpredictable and adapted drop-like gait perturbations to understand how biarticular mechanisms of the gastrocnemii contribute to the mechanical work performed by the Achilles tendon (AT) force at the ankle joint. This has been done by measuring AT elongation and quantifying AT force as an indicator of the triceps surae muscle forces, as well as the body kinematics and electromyographic activity of the soleus, gastrocnemius medialis and gastrocnemius lateralis muscles, in 17 participants. Biarticular mechanisms contributed significantly to both the negative and positive mechanical work performed by the AT force at the ankle joint during both types of drop-like perturbations, constituting 17% to 26% of this mechanical work. In particular, during the initial stance phase of unpredictable, drop-like perturbations, a significant proportion of energy (26% of the negative mechanical work done at the ankle joint) was transferred from the ankle to the knee joint via the biarticular gastrocnemii muscles. More importantly, the rate of this energy transfer was elevated during the unpredictable perturbations, when beneficial stability control mechanisms based on prediction are unavailable, compared to adapted ones. Finally, our findings imply that elastic tissues contribute significantly to managing drop-like perturbations, including energy storage and recoil in the AT and potential for elastic energy exchange in the vasti tendons during the energy transfer phases. These findings could inform the design of prevention treatments and bioengineering approaches, especially for improving stability control in uneven terrain.

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Cite This Study

Theodorakis et al. (2026) studied this question.

synapsesocial.com/papers/69ec5ae988ba6daa22dac6c9https://doi.org/10.1242/jeb.252394
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Biarticular energy transfer mechanisms of the gastrocnemii muscles are associated with managing body energy during hole negotiation gait2026
  2. 2Biarticular energy transfer mechanisms of the gastrocnemii muscles are associated with managing body energy during hole negotiation gait2026
  3. 3Impaired gastrocnemius medialis muscle-tendon decoupling reduces gait efficiency in spastic paresis syndrome2026
  4. 4Effect of knee joint position on soleus muscle function during isokinetic plantarflexion2025
  5. 5Gastrocnemius medialis neuromechanics during cycling at various exercise intensities2026