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January 1, 1998Journal of Applied Physiology414 citations

Neuromuscular fatigue after maximal stretch-shortening cycle exercise

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VSVojko StrojnikPKPaavo V. Komi

Key Result

Maximally intensive stretch-shortening cycle exercise significantly increased blood lactate (P<0.001) and decreased single twitch peak torque (P<0.05), indicating neuromuscular fatigue.

Structured PICO

P
Population
12 healthy volunteers
I
Intervention
Short-lasting maximally intensive stretch-shortening cycle exercise (drop jumps on an inclined sledge apparatus until unable to maintain jumping height > 90% of maximum)
C
Comparator
Baseline (pre-exercise)
O
Outcome
Neuromuscular fatigue mechanisms (measured by twitch torque, stimulation torque, maximal voluntary torque, and EMG amplitude)surrogate

Fatigue from short-lasting maximal stretch-shortening cycle exercise appears primarily driven by impaired high-frequency action potential propagation rather than contractile failure.

Abstract

To examine some possible sites of fatigue during short-lasting maximally intensive stretch-shortening cycle exercise, drop jumps on an inclined sledge apparatus were analyzed. Twelve healthy volunteers performed jumps until they were unable to maintain jumping height > 90% of their maximum. After the workout, the increases in the blood lactate concentration and serum creatine kinase activation were statistically significant (P 0.05), but with a steeper maximal slope of torque rise (P < 0.05); during 20- and 100-Hz stimulation the torque declined (both P < 0.01) and the maximal voluntary torque changed nonsignificantly but with a smaller maximal slope of torque rise (P < 0.01) and a higher activation level (P < 0.05), accompanied by an increased electromyogram amplitude. These findings indicate that the muscle response after the short-lasting consecutive maximum jumps on the sledge apparatus may involve two distinct mechanisms acting in opposite directions: 1) The contractile mechanism seems to be potentiated through a shorter Ca2+ transient and faster cross-bridge cycling, as implied by twitch changes. 2) High-frequency action potential propagation shows an impairment, which is suggested as the possible dominant reason for fatigue in exercise of this type.

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Cite This Study

Strojnik et al. (1998) studied Healthy volunteers (n=12). Maximally intensive stretch-shortening cycle exercise (drop jumps) vs. Baseline was evaluated on Neuromuscular fatigue markers including blood lactate, creatine kinase, and twitch torque. Maximally intensive stretch-shortening cycle exercise significantly increased blood lactate (P<0.001) and decreased single twitch peak torque (P<0.05), indicating neuromuscular fatigue.

synapsesocial.com/papers/6a11df52f12454ca8d21adfahttps://doi.org/10.1152/jappl.1998.84.1.344
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