bioRxiv · 10.64898/2025.12.04.692254
The impact of mechanical requirements on the neural control of skeletal muscle and subsequent energetic rates
Abstract
1The energetic cost of skeletal muscle contraction is a fundamental driver in the selection of locomotor strategies. Muscle energy consumption depends on muscle-fibre typology, neural drive, and mechanical state. While the influence of fibre-type and mechanical state on energy use has been extensively characterised in isolated muscle preparations, these experiments fail to capture the influence of realistic in vivo motor unit recruitment strategies. Hence, this study aims to capture neural drive in the tibialis anterior, in particular motor unit recruitment thresholds and rate coding, and the corresponding changes in energy use across a range of mechanical demands. Fixed ankle angle dorsiflexion contractions were performed at varying rates of torque development, while high density electromyography characterized motor unit spiking activity, B-mode ultrasound captured muscle fascicle dynamics, and indirect calorimetry measured energetic rates. Faster rates of torque development required earlier recruitment of motor units with increased motor unit firing rates which coincided with increased fascicle strain rates. At higher rates of torque development, these altered motor unit discharge patterns and muscle mechanics coincided with increased muscle energy use. Together, these findings highlight that in vivo muscle energetics emerge from the dynamic interplay between neural control and mechanical demands.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Konno, R. N., Hug, F., Lichtwark, G. A., Dick, T. J.. 2025-12-09. The impact of mechanical requirements on the neural control of skeletal muscle and subsequent energetic rates. https://doi.org/10.64898/2025.12.04.692254
Cite the original work for its findings. Save a collection to share your selection of sources.