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Morgan, S.-J.

Publications and source records attributed to Morgan, S.-J..

2 recordsLinked to original sources

Reliability of transcranial magnetic stimulation-evoked responses on knee extensor muscles during cycling

Transcranial magnetic stimulation (TMS) measures the excitability and inhibition of corticomotor networks. Despite its task-specificity, few studies have used TMS during dynamic movements and the reliability of TMS-derived measures has not been assessed during cycling. This study aimed to evaluate the reliability of motor evoked potentials (MEP) and short- and long-interval intracortical inhibition (SICI and LICI) on vastus lateralis and rectus femoris muscle activity during a fatiguing single-leg cycling task. Nine healthy adults (2 females) performed two identical sessions of counterweighted single-leg cycling at 60% peak power output until failure. Five single-pulses and five short- and long-interval paired pulses delivered to the motor cortex, and two maximal femoral nerve stimulations [maximal M-wave (Mmax)], were delivered during two baseline cycling bouts (unfatigued) and every 5 min throughout cycling (fatigued). When comparing both baseline bouts within the same session, MEP{middle dot}Mmax-1 and LICI (both ICC: >0.9) were rated excellent while SICI was rated good (ICC: 0.7-0.9). At baseline between sessions, in the vastus lateralis, Mmax (ICC: >0.9) and MEP{middle dot}Mmax-1 (ICC: 0.7) demonstrated good reliability, LICI was moderate (ICC: 0.5), and SICI was poor (ICC: 0.3). Across the fatiguing task, Mmax demonstrated excellent reliability (ICC >0.8), MEP{middle dot}Mmax-1 ranged good to excellent (ICC: 0.7-0.9), LICI was moderate to excellent (ICC: 0.5-0.9), and SICI remained poorly reliable (ICC: 0.3-0.6). Overall, these results corroborate the cruciality of retaining mode-specific testing measurements and suggest that during cycling, Mmax, MEP{middle dot}Mmax-1, and LICI measures are reliable whereas SICI, although less reliable across days, can be reliable within the same session.

physiology↗

Blood flow occlusion superimposed on submaximal knee extensions does not evoke hypoalgesia: A pilot study

Exercise-induced hypoalgesia (EIH) is a transient decrease in pain perception that can be observed following various tasks, including non-painful low-intensity and painful high-intensity exercise. The application of blood flow occlusion (BFO) can help enhance exercise adaptations while being able to exercise at a low intensity, which has important implications for clinical and rehabilitative settings. Through descending inhibitory pathways, BFO-induced pain can potentially alleviate exercise-induced pain. This study aimed to assess whether the superimposition of BFO - and its associated augmented perceived responses - during low-intensity, low-volume resistance exercise could induce hypoalgesia. Nineteen healthy adults (10 females) attended three sessions: i) no exercise (CTRL), ii) two minutes of dynamic single-leg knee extension at 10% body weight (EXER), and iii) EXER with complete occlusion applied to the upper exercising leg (OCCL). Handheld algometry-derived pain pressure threshold (PPT) of the trapezius and contralateral and ipsilateral rectus femoris muscles were measured pre- and post-exercise, and after 5 and 10 min of recovery. Perceived pain (0-10) and effort (6-20) were also rated after exercise. Although pain and effort were augmented in the OCCL condition (Pain: 6{+/-}2; Effort: 14{+/-}3) compared to CTRL (Pain: 2{+/-}2, p<0.001; Effort 9{+/-}2, p=0.017), PPT of all muscles did not change across time nor between any conditions. Therefore, the low-intensity, low-volume resistance exercise prescribed in the present study was insufficient to evoke EIH even with the application of BFO-induced pain.

physiology↗