<p>Twelve healthy untrained men (age 22 ± 1 years; body mass (BM) 76.8 ± 14.4&#xa0;kg; height 180 ± 8&#xa0;cm, (mean ± SD)), participated in this study. The subjects performed an incremental exercise test on a cycloergometer with an increase of power output (PO) by 30&#xa0;W every 3&#xa0;min – until exhaustion. Gross mechanical efficiency (GE) and delta efficiency (DE) during exercise of moderate-intensity (below lactate threshold – &lt; LT) was calculated. Both legs muscle mass (LMM) (determined using 3T MRI) amounted to 14.1 ± 2.1&#xa0;kg (i.e., 18.6% of body mass). Pulmonary oxygen consumption (V̇O<sub>2</sub>) at rest (sitting position) was 391 ± 42 mL min<sup>−1</sup>. The slope of the V̇O<sub>2</sub>(PO) relationship (at the PO’s &lt; LT) amounted to 10.25 ± 0.99 mL O<sub>2</sub> min<sup>−1</sup> W<sup>−1</sup> and the intercept 501 ± 130 mL min<sup>−1</sup>. Pulmonary maximal oxygen uptake (V̇O<sub>2max</sub>) was 3198 ± 458 mL O<sub>2</sub> min<sup>−1</sup>, 42.2 ± 5.7 mL O<sub>2</sub> min<sup>−1</sup>&#xa0;kg<sup>−1</sup> BM and 187 ± 30 mL O<sub>2</sub> min<sup>−1</sup>&#xa0;kg<sup>−1</sup> of LMM. The LMM was positively correlated with the V̇O<sub>2</sub> at rest (<i>p</i> = 0.01). No relation between the LMM and the DE was found, whereas GE at the PO of 30–90&#xa0;W was negatively correlated with the LMM (<i>p</i> ≤ 0.05). We concluded that greater muscle mass is not favorable when performing moderate-intensity cycling, since it results in poorer gross muscle mechanical efficiency.</p>

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Higher legs muscle mass reduces gross mechanical efficiency during moderate intensity cycling in young healthy men

  • Jerzy A. Zoladz,
  • Justyna Zapart-Bukowska,
  • Marcin Grandys,
  • Joanna Majerczak,
  • Zenon Nieckarz

摘要

Twelve healthy untrained men (age 22 ± 1 years; body mass (BM) 76.8 ± 14.4 kg; height 180 ± 8 cm, (mean ± SD)), participated in this study. The subjects performed an incremental exercise test on a cycloergometer with an increase of power output (PO) by 30 W every 3 min – until exhaustion. Gross mechanical efficiency (GE) and delta efficiency (DE) during exercise of moderate-intensity (below lactate threshold – < LT) was calculated. Both legs muscle mass (LMM) (determined using 3T MRI) amounted to 14.1 ± 2.1 kg (i.e., 18.6% of body mass). Pulmonary oxygen consumption (V̇O2) at rest (sitting position) was 391 ± 42 mL min−1. The slope of the V̇O2(PO) relationship (at the PO’s < LT) amounted to 10.25 ± 0.99 mL O2 min−1 W−1 and the intercept 501 ± 130 mL min−1. Pulmonary maximal oxygen uptake (V̇O2max) was 3198 ± 458 mL O2 min−1, 42.2 ± 5.7 mL O2 min−1 kg−1 BM and 187 ± 30 mL O2 min−1 kg−1 of LMM. The LMM was positively correlated with the V̇O2 at rest (p = 0.01). No relation between the LMM and the DE was found, whereas GE at the PO of 30–90 W was negatively correlated with the LMM (p ≤ 0.05). We concluded that greater muscle mass is not favorable when performing moderate-intensity cycling, since it results in poorer gross muscle mechanical efficiency.