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Ansdell, P.

Publications and source records attributed to Ansdell, P..

2 recordsLinked to original sources

Motor unit discharge rate modulation during isometric contractions to failure is intensity and task dependent

The nature of neuromuscular decrements associated with contractions to task failure is known to dependent on task demands. Task-specificity of the associated adjustments in motor unit discharge rate (MUDR) behaviour, however, remains unclear. This study examined MUDR adjustments during different submaximal isometric knee-extension tasks to failure. Participants performed a sustained and an intermittent task at 20 and 50% of maximal voluntary torque (MVT), respectively (Experiment 1). High-density surface electromyography signals were recorded from vastus lateralis (VL) and medialis (VM) and decomposed into individual MU discharge timings, with the identified MUs tracked from recruitment to task failure. MUDR was quantified and normalised to intervals of 10% of contraction time (CT). MUDR of both muscles exhibited distinct modulation patterns in each task. During 20% MVT sustained task, MUDR decreased until [~]50% CT, after which it gradually returned to baseline. Conversely, during the 50% MVT intermittent task, MUDR remained stable until [~]40-50% CT, after which it started to continually increase until task failure. To explore the effect of contraction intensity on the observed patterns, VL and VM MUDR was quantified during sustained contractions at 30 and 50% MVT (Experiment 2). During the 30% MVT sustained task, MUDR remained stable until [~]80-90% CT in both muscles, after which it continually increased until task failure. During the 50% MVT sustained task the increase in MUDR occurred earlier, after [~]70-80% CT. Our results suggest that adjustments in MUDR during submaximal isometric contractions to failure are task- and intensity-dependent.

neuroscience↗

No sex differences in oxygen uptake or extraction kinetics in the moderate or heavy exercise intensity domains

The integrative response to exercise differs between sexes, with oxidative energy contribution purported as a potential mechanism. The present study investigated whether this difference was evident in the kinetics of oxygen uptake (V{square}O2) and extraction (HHb+Mb) during exercise. Sixteen adults (8 males, 8 females, age: 27{+/-}5 years) completed three experimental visits. Incremental exercise testing was performed to obtain lactate threshold and V{square}O2peak. Subsequent visits involved three six-minute cycling bouts at 80% of lactate threshold and one 30-minute bout at a work rate 30% between the lactate threshold and power at V{square}O2peak. Pulmonary gas exchange and near-infrared spectroscopy of the vastus lateralis were used to continuously sample V{square}O2 and HHb+Mb, respectively. The phase II V{square}O2 kinetics were quantified using mono-exponential curves during moderate and heavy exercise. Slow component amplitudes were also quantified for the heavy intensity domain. Relative V{square}O2peak values were not different between sexes (p=0.111). Males achieved [~]30% greater power outputs (p=0.002). In the moderate and heavy intensity domains, the relative amplitude of the phase II transition was not different between sexes for V{square}O2 ([~]24 and [~]40% V{square}O2peak, p[≥]0.179) and HHb+Mb ([~]20 and [~]32% ischemia, p[≥]0.193). Similarly, there were no sex differences in the time constants for V{square}O2 ([~]28 s, p[≥]0.385) or HHb+Mb ([~]10s, p[≥]0.274). In the heavy intensity domain, neither V{square}O2 (p[≥]0.686) or HHb+Mb (p[≥]0.432) slow component amplitudes were different between sexes. The oxidative response to moderate and heavy intensity exercise did not differ between males and females, suggesting similar dynamic responses of oxidative metabolism during intensity-matched exercise. New and NoteworthyThis study demonstrated no sex differences in the oxidative response to moderate and heavy intensity cycling exercise. The change in oxygen uptake and deoxyhaemoglobin were modelled with mono-exponential curve fitting, which revealed no differences in the rate of oxidative energy provision between sexes. This provides insight into previously reported sex differences in the integrative response to exercise.

physiology↗