4.6 Article

Effect of Temperature on Crossbridge Force Changes during Fatigue and Recovery in Intact Mouse Muscle Fibers

期刊

PLOS ONE
卷 8, 期 10, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pone.0078918

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  1. Ministero dell'Istruzione, dell'Universita e della Ricerca (MIUR) [PRIN 2010R8JK2X_002]
  2. University of Florence and Ente Cassa di Risparmio di Firenze, Italy [CRF 2010.0256, 2011.0302]

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Repetitive or prolonged muscle contractions induce muscular fatigue, defined as the inability of the muscle to maintain the initial tension or power output. In the present experiments, made on intact fiber bundles from FDB mouse, fatigue and recovery from fatigue were investigated at 24 degrees C and 35 degrees C. Force and stiffness were measured during tetani elicited every 90 s during the pre-fatigue control phase and recovery and every 1.5 s during the fatiguing phase made of 105 consecutive tetani. The results showed that force decline could be split in an initial phase followed by a later one. Loss of force during the first phase was smaller and slower at 35 degrees C than at 24 degrees C, whereas force decline during the later phase was greater at 35 degrees C so that total force depression at the end of fatigue was the same at both temperatures. The initial force decline occurred without great reduction of fiber stiffness and was attributed to a decrease of the average force per attached crossbridge. Force decline during the later phase was accompanied by a proportional stiffness decrease and was attributed to a decrease of the number of attached crossbridge. Similarly to fatigue, at both 24 and 35 degrees C, force recovery occurred in two phases: the first associated with the recovery of the average force per attached crossbridge and the second due to the recovery of the pre-fatigue attached crossbridge number. These changes, symmetrical to those occurring during fatigue, are consistent with the idea that, i) initial phase is due to the direct fast inhibitory effect of [Pi] i increase during fatigue on crossbridge force; ii) the second phase is due to the delayed reduction of Ca2+ release and / or reduction of the Ca2+ sensitivity of the myofibrils due to high [P-i]

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