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Biology subjects

Paasuke, M.

Publications and source records attributed to Paasuke, M..

2 recordsLinked to original sources

Antioxidant supplementation blunts the proteome response to three weeks of sprint interval training preferentially in human type 2 muscle fibres

Sprint interval training (SIT) is a time-efficient type of endurance training that involves large type 2 muscle fibre recruitment. Effiective antioxidant supplementation may mitigate positive training adaptations by limiting the oxidant challenge. Our aim was to test whether SIT affiects type 2 more than type 1 muscle fibres, and whether the training response is mitigated by antioxidant treatment. Young men performed three SIT sessions (6 x 30 s all-out cycling) per week for three weeks while treated with antioxidants (vitamin C, 1 g/day; vitamin E, 235 mg/day) or placebo. Vastus lateralis biopsies were taken to measure (i) activation of genes for reactive oxygen/nitrogen species (ROS) sensors and inflammatory mediators with quantitative RT PCR and (ii) fibre type-specific proteome adaptations using mass spectrometry-based proteomics. Vitamin treatment decreased the upregulation of genes for ROS sensors and inflammatory regulators during the first SIT session. The three weeks of SIT caused generally larger proteome adaptations in type 2 than in type 1 fibres, and this included larger increases in abundance of proteins involved in mitochondrial energy production. Vitamin treatment blunted the SIT-induced proteome adaptations, whereas it did not affiect the training-induced improvement in maximal cycling performance. In conclusion, (i) the large type 2 fibre recruitment and resulting proteome adaptations are instrumental to the effiectiveness of SIT, and (ii) antioxidant supplementation counteracts positive muscular adaptations to SIT, which would blunt any improvement in submaximal endurance performance, whereas it does not affiect the improvement in maximal cycling performance, where O2 delivery to muscle would be limiting.

physiology↗

Dissociation between biomechanical stiffness and sEMG activity in trapezius and lumbar skeletal muscles in steady postures

BackgroundProlonged sitting posture and sedentary behaviour, spent mostly in sitting are harmful for general health. The low back and shoulder area are the most vulnerable. In these regions the sEMG registration of neuromuscular activity shows low activity in steady postures. Stiffness of according muscle can be measured by myotonometry. We were not able to find any direct comparison between these parameters although separately, direct correlations between contraction force and sEMG or stiffness have been clearly established. Research questionWhether and how stiffness is modulated by neuromuscular activity in standing, lying or in different sitting postures in these vulnerable regions. MethodsThe muscles biomechanical stiffness (measured with MyotonPRO) and mean power frequency (MPF) with amplitude (AMP) on surface electromyography (sEMG) were registered in the upper part of musculus trapezius (UT) and musculus erector spinae (ES, at the level of L4 vertebrae). Nine healthy physically active males aged 19-46 (mean{+/-}SD, 28.6{+/-}10.9 years), participated in the study. The standing, prone, and three sitting postures where studied. The latter were distinguished by the back-tight-angle (BTA): 1) sitting on a common chair, straight back, BTA 90{degrees}), 2) slumped sitting on the same chair (BTA<90{degrees}), and 3) sitting on an experimental chair with a convex base, BTA 115-120{degrees}. Results and SignificanceMuscle stiffness did not correlate with either of the sEMG parameters in ES but did so only in low grade with the AMP in UT (Spearman rank {rho}=0.24, p=0.02). It was interesting that contrary to UT, in ES a significant positive correlation ({rho}=0.24, p=0.02) was noted between MPF and AMP. It is likely that the steady body position under the Earths g-force may be ensured by the biomechanical characteristics of the tissue rather than neuromuscular activity. This can be explained by incompressible nature of soft tissues and be a less resource-consuming strategy. HighlightsO_LIMuscle stiffness in the low back is similar to standing straight and lying. C_LIO_LIIn steady postures muscle stiffness does not correlate with neuromuscular activity. C_LIO_LIBody position is consolidated by the muscles biomechanical stiffness. C_LI

biophysics↗