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Significant increases in maximal isometric twitch TPT and decreased 1/2 RT were maintained during a 120-day HDT.
Maximal isometric twitch force (Pt) was estimated according to the tendogram of the TS isometric twitch response to a single electrical stimulus applied to the tibial nerve (Fig. 1a, left panel).
Maximal isometric twitch force (P t) was estimated according to the tendogram of the TS isometric twitch response to a single electrical stimulus applied to the tibial nerve (Fig. 1 a, left panel).
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Square wave pulses 0.2 ms in duration were generated by a stimulator to produce a maximum isometric twitch force.
Stimulation voltage and muscle length (Lo) were adjusted to obtain maximum isometric twitch force.
Maximum isometric twitch and tetanic forces in the C57BL/10.SJL- Dysf strain were not significantly reduced.
By stimulation with a single electrical pulse (4 kHz, 15 Volt, 0.5 ms) using an AD Instruments converter, muscles were adjusted to the optimum length (L0; mm) which is achieved when isometric twitch force is maximal (Pt; mN).
The maximal rates of rise (+dS/dt) and fall (− dS/dt) of isometric twitch stress were expressed as functions of active stress.
We measured the maximal force developed by the soleus muscles of AC and AT rats, either during a single intermittent isometric twitch or during tetanic contractions, evoked by direct muscle stimulation and through nerve stimulation (Fig. 1, a d).
Our findings, therefore, suggest that a certain level of mental fatigue may persist in the recovery period after play in the heat, whereby a sustained maximal isometric effort might be more difficult to reproduce with a large muscle mass high in fast-twitch fibres, such as the KE.
Specifically, contractile RFD and rapid neural activation during various time windows, evoked peak twitch force, voluntary activation and normalized EMG activity, and V-wave responses, as well as maximal isometric strength were, in general, substantially lower on the paretic side.
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