Linking Muscle Mechanics to the Metabolic Cost of Human Hopping
Jessup, L. N.; Kelly, L. A.; Cresswell, A. G.; Lichtwark, G. A.
Show abstract
Many models have been developed to predict metabolic energy expenditure based on biomechanical proxies of muscle function. However, current models may only perform well for select forms of locomotion, not only because the models are rarely rigorously tested across subtle and broad changes in locomotor task, but also because previous research has not adequately characterised different forms of locomotion to account for the potential variability in muscle function and thus metabolic energy expenditure. To help to address the latter point, the present study imposed frequency and height constraints to hopping and quantified gross metabolic power as well as the activation requirements of medial gastrocnemius, lateral gastrocnemius (GL), soleus (SOL), tibialis anterior, vastus lateralis (VL), rectus femoris (RF) and biceps femoris (BF), and the work requirements GL, SOL and VL. Gross metabolic power increased with a decrease in hop frequency and increase in hop height. There was no hop frequency or hop height effect on the mean electromyography (EMG) of ankle musculature, however, the mean EMG of VL and RF increased with a decrease in hop frequency and that of BF increased with an increase in hop height. With a reduction in hop frequency, GL, SOL and VL fascicle shortening, fascicle shortening velocity and fascicle to MTU shortening ratio increased, whereas with an increase in hop height, only SOL fascicle shortening velocity increased. Therefore, within the constraints that we imposed, decreases in hop frequency and increases in hop height resulted in increases in metabolic power that could be explained by increases in the activation requirements of knee musculature and/or increases in the work requirements of both knee and ankle musculature. Summary StatementThis study directly measures activation and work requirements of lower-limb musculature and whole-body metabolic energy requirements across a wide variety of human hopping conditions, helping to guide biomechanical models of energy expenditure.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Simple models highlight differences in the walking biomechanics of young children and adults 98%
- Habitual foot strike pattern does not affect simulated Triceps Surae muscle metabolic energy consumption during running 97%
- Speed-specific optimal contractile conditions of the human soleus muscle from slow to maximum running speed 97%
Similar papers in this journal
- An in-silico investigation of the effect of changing cycling crank power and cadence on muscle energetics and active muscle volume 97%
- Running with an exotendon reduces compressive knee contact force 97%
- Trunk Control during Gait: Walking with Wide and Narrow Step Widths Present Distinct Challenges 97%
Similar papers in this journal
- Vertebral level specific modulation of paraspinal muscle activity based on vestibular signals during walking. 96%
- Residual force depression is not related to positive muscle fascicle work during submaximal voluntary dorsiflexion contractions in humans 96%
- Role Of Forelimb Morphology In Muscle Sensorimotor Functions During Locomotion In The Cat 96%
Similar papers in this journal
Similar papers in this journal
- A single decreasing ramp friction sprint for torque-cadence relationship assessment during cycling 96%
- Perception of effort during an isometric contraction is influenced by prior muscle lengthening or shortening 95%
- RACLET: the Ramp Above Critical Level Endurance Test to evaluate critical force in isometric task. 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.