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Contraction type influences the human ability to use the available torque capacity of skeletal muscle during explosive efforts
Author(s) -
Neale A. Tillin,
Matthew T.G. Pain,
Jonathan P. Folland
Publication year - 2012
Publication title -
proceedings of the royal society b biological sciences
Language(s) - English
Resource type - Journals
eISSN - 1471-2954
pISSN - 0962-8452
DOI - 10.1098/rspb.2011.2109
Subject(s) - isometric exercise , concentric , explosive material , torque , eccentric , electromyography , contraction (grammar) , muscle contraction , physical medicine and rehabilitation , medicine , mathematics , anatomy , chemistry , physics , geometry , organic chemistry , thermodynamics , quantum mechanics
The influence of contraction type on the human ability to use the torque capacity of skeletal muscle during explosive efforts has not been documented. Fourteen male participants completed explosive voluntary contractions of the knee extensors in four separate conditions: concentric (CON) and eccentric (ECC); and isometric at two knee angles (101°, ISO101 and 155°, ISO155). In each condition, torque was measured at 25 ms intervals up to 150 ms from torque onset, and then normalized to the maximum voluntary torque (MVT) specific to that joint angle and angular velocity. Explosive voluntary torque after 50 ms in each condition was also expressed as a percentage of torque generated after 50 ms during a supramaximal 300 Hz electrically evoked octet in the same condition. Explosive voluntary torque normalized to MVT was more than 60 per cent larger in CON than any other condition after the initial 25 ms. The percentage of evoked torque expressed after 50 ms of the explosive voluntary contractions was also greatest in CON (ANOVA;p < 0.001), suggesting higher concentric volitional activation. This was confirmed by greater agonist electromyography normalized toM max (recorded during the explosive voluntary contractions) in CON. These results provide novel evidence that the ability to use the muscle's torque capacity explosively is influenced by contraction type, with concentric contractions being more conducive to explosive performance due to a more effective neural strategy.

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