The oxygen-conforming response (OCR) of skeletal muscle refers to a downregulation of muscle force for a given muscle activation when oxygen delivery (O2D) is reduced, which is rapidly reversed when O2D is restored. We tested the hypothesis that the OCR exists in voluntary human exercise and results in compensatory changes in muscle activation to maintain force output, thereby altering perception of effort. In eight men and eight women, electromyography (EMG), oxyhemoglobin (O2Hb) and deoxyhemoglobin (HHb), forearm blood flow (FBF), and task effort awareness (TEA) were measured. Participants completed two nonfatiguing rhythmic handgrip tests consisting of 5-min steady state (SS) followed by two bouts of 2-min brachial artery compression to reduce FBF by ~50% of SS (C1 and C2), separated by 2 min of no compression (NC1) and ending with 2 min of no compression (NC2). When FBF was compromised during C1, EMG/Force (1.58 0.39) increased compared with SS (1.31 0.33, P 0.001). However, EMG/Force was not restored upon FBF restoration at NC1 (1.48 0.38, P 0.479), consistent with C1 evoking skeletal muscle fatigue. When FBF was compromised during C2, EMG/Force increased (1.73 0.50) compared with NC1 (1.48 0.38, P 0.013). EMG/Force returned to NC1 levels during NC2 (1.50 0.39, P 0.016), consistent with an OCR in C2. TEA (SS 2.2 2.3, C1 3.9 2.5, NC1 3.4 2.7, C2 4.6 2.7, NC2 3.9 2.8) mirrored changes in EMG. It is noteworthy that during the second compromise and then restoration of muscle oxygenation EMG and TEA were rapidly restored to precompromise levels. We interpreted these findings to support the existence of an OCR and its ability to rapidly modify perception of effort during voluntary exercise.
CITATION STYLE
Drouin, P. J., Kohoko, Z. I. N., Mew, O. K., Lynn, M. J. T., Fenuta, A. M., & Tschakovsky, M. E. (2019). Fatigue-independent alterations in muscle activation and effort perception during forearm exercise: Role of local oxygen delivery. Journal of Applied Physiology, 127(1), 111–121. https://doi.org/10.1152/japplphysiol.00122.2019
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