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Muscle Massage Adding Capacitive Resistive Electric Transfer Therapy in Active or Sham Condition for Post-Exercise Recovery in Athletes: A Crossover Clinical Trial.

The increasing demands of elite sports reduce recovery time, impair performance, and increase injury risk. Efficient lactate transport is essential for postexercise recovery. Capacitive resistive electric transfer (CRET) therapy enhances deep tissue heating, induces vasodilation, and promotes circulation. To evaluate whether adding active CRET to a standardized muscle recovery massage, compared with the same massage plus sham CRET, influences indicators of muscle recovery following a maximal anaerobic effort test. A randomized, single-blind, sham-controlled, and crossover clinical trial was conducted in 25 athletes. Participants completed four visits and, after the maximal power and anaerobic capacity test (Wingate test), received a standardized muscle recovery massage combined with either active CRET or sham CRET. Blood lactate levels, muscle oxygenation, muscle thickness, echogenicity, knee extension force, and muscle activity were assessed before and after the test, after treatment, and 24&#xa0;hours later. Compared with massage plus sham CRET, massage plus active CRET was associated with lower blood lactate concentration at 60&#xa0;min postexercise (p&#xa0;=&#xa0;0.029). Ultrasound-derived muscle thickness and echogenicity also differed between conditions at several time points (p&#xa0;<&#xa0;0.05). However, no significant differences were observed in Wingate test performance, force, muscle activity, and oxygenation between conditions. In athletes performing repeated Wingate exercise, adding active CRET to massage was associated with lower blood lactate concentration at 60&#xa0;min postexercise and with differences in ultrasound-derived muscle thickness and echogenicity compared with sham CRET plus massage. However, these between-condition differences were not accompanied by clear short-term functional recovery benefits. TRIAL REGISTRATION: NCT06906146.

Humans

Dose-response effects of isometric wall squats on postexercise hypotension in older women with hypertension.

OBJECTIVES: The isometric wall squat (IWS) is a promising nonpharmacological intervention for blood pressure (BP) management, but its optimal dosage in older adults remains unclear. This study compared postexercise hypotension (PEH) after two IWS doses in medicated older women with systemic arterial hypertension (SAH). METHODS: Thirty older hypertensive women (68.8&#x200a;&#xb1;&#x200a;10.0&#x200a;years) were randomized into three groups: control (CG), 8-min IWS (G8-IWS; 4&#x200a;&#xd7;&#x200a;2-min sets), and 12-min IWS (G12-IWS; 6&#x200a;&#xd7;&#x200a;2-min sets). BP and heart rate (HR) were assessed at rest and at 0, 5, 10, 15, 30, 45, and 60&#x200a;min postexercise and analyzed using linear mixed-effects models with Bonferroni correction ( P &#x200a;<&#x200a;0.05). RESULTS: G12-IWS significantly reduced systolic BP and mean arterial pressure (MAP) at 45-60&#x200a;min and 30-60&#x200a;min postexercise ( P &#x200a;<&#x200a;0.05), while G8-IWS showed no BP changes. G12-IWS decreased HR (30-60&#x200a;min) and rate-pressure product (RPP; 15-60&#x200a;min); G8-IWS reduced RPP from 30 to 60&#x200a;min only. Diastolic BP and pulse pressure remained unchanged in both groups. CONCLUSION: A single G12-IWS session induced clinically meaningful PEH (~8-10&#x200a;mmHg), exceeding reported with isometric handgrip exercise (~4-6&#x200a;mmHg), with greater RPP suppression than G8-IWS. This equipment-free protocol represents a relevant nonpharmacological strategy for BP management in older women with SAH.

Humans

Application of 13C MRS demonstrates carbohydrate feeding spares muscle but not liver glycogen utilization during high-intensity interval exercise.

We examined liver and muscle glycogen utilization during high-intensity interval cycling, and the impact of carbohydrate (CHO) feeding, using noninvasive 13C magnetic resonance spectroscopy (MRS). Following 24 h of standardized dietary intake, nine male cyclists completed 8 &#xd7; 5-min intervals (1-min recovery), ingesting either placebo (PLA), 60 g maltodextrin (CHO), or 60 g maltodextrin plus caffeine, taurine, l-theanine, l-citrulline, and citicoline (CHO+) in a randomized crossover design. 13C MRS and 1H imaging were performed pre- and postexercise to determine liver and muscle glycogen and liver volume, respectively. Liver glycogen utilization was not significantly different between trials (P = 0.101) despite lower postexercise plasma glucagon concentrations in CHO and CHO+ (P = 0.001). In contrast, muscle glycogen utilization was significantly lower (&#x223c;40%) with CHO feeding compared with PLA (P = 0.006), yet this sparing effect was not evident with CHO+ (P = 0.073) in accordance with a higher mean power output during the late intervals (+2.8%, P = 0.046). Plasma glucose was comparable between trials (P = 0.175), whereas plasma lactate was higher in CHO+ versus CHO (P = 0.003), alongside lower blood bicarbonate (P = 0.005), base excess (P < 0.001), and total CO2 (P = 0.004). These findings demonstrate preferential use of skeletal muscle glycogen during high-intensity interval training (HIIT), which is attenuated under conditions of CHO feeding. This sparing effect is, however, not evident with the coingestion of a caffeine-containing multi-ingredient blend, potentially due to an increased capacity to sustain higher power outputs resulting in greater glycogen utilization.NEW & NOTEWORTHY Using 13C MRS, we provide data demonstrating preferential use of skeletal muscle glycogen during HIIT. Furthermore, data show muscle glycogen utilization is attenuated with CHO feeding, yet sparing is not evident when coingesting a caffeine-containing formulation, potentially reflecting increased capacity to perform more total work rather than a direct metabolic effect of caffeine. In contrast, liver glycogen utilization was not significantly different with CHO feeding despite a modest reduction of &#x223c;5 g versus placebo.

Male