Key result
Fatigue induced by repeated tetani reduced maximum shortening velocity to 70% of control, mainly due to transient ADP accumulation in mouse muscle fibres with impaired energy buffering.
The reduction in maximum shortening velocity during skeletal muscle fatigue is primarily driven by transient accumulation of ADP rather than reduced tetanic Ca2+.
Slack tests in fatigued mouse fibers leave open Ca2+ versus ADP contributions to V0 decline; hypothesis-generating for muscle performance mechanisms.
The mechanism behind the reduction in shortening velocity in skeletal muscle fatigue is unclear. In the present study we have measured the maximum shortening velocity (V0) with slack tests during fatigue produced by repeated, 350 ms tetani in intact, single muscle fibres from the mouse. We have focused on two possible mechanisms behind the reduction in V0: reduced tetanic Ca2+ and accumulation of ADP. 2. During fatigue V0 initially declined slowly, reaching 90 % of the control after about forty tetani. The rate of decline then increased and V0 fell to 70 % of the control in an additional twenty tetani. The reduction in isometric force followed a similar pattern. 3. Exposing unfatigued fibres to 10 microM dantrolene, which reduces tetanic Ca2+, lowered force by about 35 % but had no effect on V0. 4. In order to see if ADP might increase rapidly during ongoing contractions, we used a protocol with a tetanus of longer duration bracketed by standard-duration tetani. V0 in these three tetani were not significantly different in control, whereas V0 was markedly lower in the longer tetanus during fatigue and in unfatigued fibres where the creatine kinase reaction was inhibited by 10 microM dinitrofluorobenzene. 5. We conclude that the reduction in V0 during fatigue is mainly due to a transient accumulation of ADP, which develops during contractions in fibres with impaired phosphocreatine energy buffering.
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Westerblad et al. (1998) studied Skeletal muscle fatigue. Fatigue produced by repeated tetani vs. Unfatigued fibres / control was evaluated on Maximum shortening velocity (V0). Fatigue induced by repeated tetani reduced maximum shortening velocity to 70% of control, mainly due to transient ADP accumulation in mouse muscle fibres with impaired energy buffering.
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