| Literature DB >> 31165339 |
Kenji Doma1, Anthony Nicholls2, Daniel Gahreman3, Felipe Damas4, Cleiton Augusto Libardi4, Wade Sinclair2.
Abstract
BACKGROUND: The current study examined the acute effects of a lower body resistance training (RT) session on physiological and thermoregulatory measures during a sub-maximal running protocol in the heat in heat-acclimatized men. Ten resistance-untrained men (age 27.4 ± 4.1 years; height 1.78 ± 0.06 m; body mass 76.8 ± 9.9 kg; peak oxygen uptake 48.2 ± 7.0 mL kg-1 min-1) undertook a high-intensity RT session at six-repetition maximum. Indirect muscle damage markers (i.e., creatine kinase [CK], delayed-onset muscle soreness [DOMS], and countermovement jump [CMJ]) were collected prior to, immediately post and 24 and 48 h after the RT session. The sub-maximal running protocol was performed at 70% of the ventilatory threshold, which was conducted prior to and 24 and 48 h following the RT session to obtain physiological and thermoregulatory measures.Entities:
Keywords: Core temperature; Creatine kinase; Delayed-onset of muscle soreness; Running economy; Strength training
Year: 2019 PMID: 31165339 PMCID: PMC6548784 DOI: 10.1186/s40798-019-0195-y
Source DB: PubMed Journal: Sports Med Open ISSN: 2198-9761
Fig. 1The schematic of the research design including the 6 repetition maximum (6RM) test, maximal oxygen consumption (VO2max) test, running economy (RE) test at baseline (TBase), resistance training (RT), countermovement jump (CMJ), creatine kinase (CK), delayed onset of muscle soreness (DOMS) and body mass (BM)
The mean ± standard deviation of the psycho-physiological measures during the running economy test at baseline (TBase), 24 h post (T24) and 48 h post (T48) resistance training bout
| TBase | T24 | T48 | Time effect | |
|---|---|---|---|---|
| CUC (Kcal kg−1 km−1) | 1.13 ± 0.10 | 1.19 ± 0.12* | 1.16 ± 0.12 | |
| Rf (min−1) | 36.8 ± 9.2 | 39.8 ± 9.0 | 40.1 ± 8.7 | |
| VE (L min−1) | 73.7 ± 10.8 | 81.6 ± 11.3* | 78.8 ± 9.5 | |
| VE/VO2 | 27.7 ± 3.2 | 29.1 ± 3.2* | 28.8 ± 3.3 | |
| VE/VCO2 | 28.3 ± 2.9 | 29.7 ± 3.2* | 29.9 ± 3.1* | |
| VO2 (mL kg−1 min−1) | 34.9 ± 3.2 | 36.5 ± 3.5* | 35.8 ± 3.0 | |
| VCO2 (mL kg−1 min−1) | 34.0 ± 3.3 | 35.9 ± 3.7* | 34.4 ± 3.5 | |
| RER | 0.98 ± 0.03 | 0.98 ± 0.05 | 0.97 ± 0.05 | |
| RPE | 12 ± 2 | 13 ± 3 | 13 ± 3 | |
| HR (beats·min−1) | 166 ± 10 | 171 ± 12 | 169 ± 10 | |
| TC (°C) | 37.8 ± 0.3 | 37.7 ± 0.3 | – | – |
| DT | 2.55 ± 0.72 | 2.80 ± 0.82 | 2.90 ± 0.81 | |
| ST | 9.50 ± 0.85 | 9.60 ± 1.00 | 9.80 ± 0.92 |
CU caloric unit cost, R respiratory frequency, VE ventilation, VCO carbon dioxide production, VE/VO ventilatory equivalents for oxygen, VE/VCO ventilatory equivalents for carbon dioxide production, RER respiratory exchange ratio, RPE rating of perceived exertion, HR heart rate, D thermal discomfort, S thermal sensation, T core temperature
* Significantly greater than TBase (p < 0.05)
The effect size calculations with associated 95% confidence interval of the psycho-physiological measures during the running economy test between baseline (Tbase) and 24 h (T24) and 48 h (T48) following the resistance-training bout
| TBase-T24 | TBase-T48 | T24-T48 | |
|---|---|---|---|
| CUC | 0.49 (− 0.42–1.36) | 0.22 (− 0.67–1.09) | 0.25 (− 0.64–1.12) |
| Rf | 0.34 (− 0.56–1.21) | 0.33 (− 0.57–1.19) | 0.02 (− 0.85–0.90) |
| VE | 0.68a (− 0.25–1.55) | 0.49 (− 0.42–1.36) | 0.24 (− 0.65–1.11) |
| VCO2 | 0.43 (− 0.48–1.30) | 0.11 (− 0.77–0.98) | 0.33 (− 0.57–1.20) |
| VE/VO2 | 0.44 (− 0.47–1.31) | 0.34 (− 0.56–1.21) | 0.09 (− 0.79–0.97) |
| VE/VCO2 | 0.46 (− 0.45–1.33) | 0.53a (− 0.38–1.40) | − 0.06 (− 0.94–0.82) |
| VO2 | 0.07 (− 0.81–0.94) | 0.28 (− 0.61–1.15) | 0.03 (− 0.85–0.90) |
| RER | 0.00 (− 0.88–0.88) | − 0.49 (− 1.35–0.42) | 0.40 (− 0.50–1.27) |
| RPE | 0.32 (− 0.57–1.19) | 0.19 (− 0.70–1.06) | 0.12 (− 0.77–0.99) |
| HR | 0.51a (− 0.40–1.38) | 0.30 (− 0.59–1.17) | 0.24 (− 0.65–1.11) |
| TC | − 0.33 (− 1.20–0.56) | – | – |
| DT | 0.31 (− 0.57–1.19) | 0.46 (− 0.45–1.32) | − 0.12 (− 0.99–0.76) |
| ST | 0.11 (− 0.77–0.98) | 0.34 (− 0.56–1.21) | − 0.21 (− 1.08–0.68) |
R respiratory frequency, VE ventilation, VCO carbon dioxide production, VE/VO ventilatory equivalents for oxygen, VE/VCO ventilatory equivalents for carbon dioxide production, RER respiratory exchange ratio, RPE rating of perceived exertion, HR heart rate, D thermal discomfort, S thermal sensation, T core temperature
aModerate effect
Fig. 2Mean ± standard deviation of the indirect muscle damage markers at baseline (Tbase), immediately following (T1) and 24 (T24) and 48 (T48) hours following the resistance training bout for countermovement jump (a), creatine kinase (b) and muscle soreness (c) measures. * Significantly different from Tbase (p < 0.05); † significantly different from T1 (p < 0.05)
The effect size calculations of the indirect markers of muscle damage between baseline (TBase) and immediately post (T1), 24 h (T24) and 48 h (T48) following the resistance-training bout with 95% confidence intervals in parentheses
| CMJ | CK | DOMS | |
|---|---|---|---|
| TBase–T1 | − 1.41b (− 0.38–2.32) | 0.71a (− 0.22–1.58) | 1.41b (0.38–2.33) |
| TBase–T24 | − 1.08b (− 0.10–1.96) | 1.12b (0.14–2.01) | 10.53b (6.84–13.33) |
| TBase–T48 | − 0.79a (− 0.15–1.66) | 0.99b (0.02–1.87) | 5.75b (3.58–7.42) |
| T1–T24 | 0.60a (− 0.32–1.47) | 0.84b (− 0.11–1.71) | 2.85b (1.51–3.94) |
| T1–T48 | 0.65a (− 0.27–1.52) | 0.73a (− 0.20–1.60) | 2.36b (1.14–3.38) |
| T24–T48 | 0.15 (− 0.73–1.02) | − 0.03 (− 0.91–0.85) | − 0.15 (− 1.03–0.73) |
CMJ countermovement jump, CK creatine kinase, DOMS delayed onset of muscle soreness
aModerate effect
bLarge effect