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Updated: Sep 30, 2026

An In Vitro Adult Mouse Muscle-nerve Preparation for Studying the Firing Properties of Muscle Afferents
Published on: September 24, 2014
Emulating the influence of exoskeleton stiffness on primary afferent feedback in rat isolated muscle-tendon unit
Amro A Alshareef1, Paul Nardelli2, Surabhi N Simha3
1Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia, USA.
Abstract:
Exoskeletons assist and augment movement, but their effects on proprioceptive feedback remain poorly understood due to challenges in making direct measures of sensory signals in humans. Here, we leveraged a benchtop animal model to explore how mechanical context akin to an elastic exoskeleton operating on a human lower limb joint influences primary muscle spindle firing. In an anesthetized rat preparation, we applied controlled stretches to the medial gastrocnemius with engineered springs (0-0.5 N/mm) in parallel to the muscle-tendon unit (MTU) while modulating muscle activation to maintain overall system stiffness. Fascicle length was measured with sonomicrometry, force and MTU length with a servo motor, and spindle instantaneous firing rate (IFR) using dorsal root recordings. Trading off increases in exoskeleton stiffness with reductions in muscle activation decreased biological muscle force (3.1±0.6 N to 1.6±0.6 N, p<0.001) and stiffness (4.4±1.5 N/mm to 2.3±1.3 N/mm, p<0.01), and increased fascicle length (7.9±1.3 mm to 8.3±1.5 mm, p<0.005). We found significant correlations between spindle firing and each independent fascicle dynamics factor we investigated (p<0.005). Thus, parallel stiffness modified muscle fascicle dynamics but did not alter spindle firing, possibly due to internal trade-offs in the salient fascicle dynamics that drive spindle behavior. Leveraging in-situ experiments that enable monitoring of afferent feedback in complex mechanical contexts such as added parallel stiffness can provide a window into the effects of wearable devices on underlying sensory systems.
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