Key result
Low-volume sprint interval exercise with the legs elicited a significantly larger post-exercise hypotensive response compared to endurance exercise (AUC 7540 vs 3897 mm Hg·min), with similar effects observed when exercising the arms.
Why the study?
Does low-volume sprint interval exercise elicit different post-exercise hypotension and hypervolemia compared to endurance exercise in untrained males?
RCT (n=12)
Open-label
Randomized and counterbalanced
No
Does low-volume sprint interval exercise elicit different post-exercise hypotension and hypervolemia compared to endurance exercise in untrained males?
Mean Difference: 3643 (95% CI 20–6764)
Absolute Event Rate: 7540% vs 3897%
p-value: p=0.049
Low-volume sprint interval exercise induces greater post-exercise hypotension than endurance exercise, with similar subsequent hypervolemia, regardless of whether arms or legs are used.
May induce post-exercise hypotension and hypervolemia irrespective of limb use; extends acute hemodynamic profiles but remains hypothesis-generating pending larger trials.
INTRODUCTION: Exercise reduces arterial and central venous blood pressures during recovery, which contributes to its valuable anti-hypertensive effects and to facilitating hypervolemia. Repeated sprint exercise potently improves metabolic function, but its cardiovascular effects (esp. hematological) are less well-characterized, as are effects of exercising upper versus lower limbs. The purposes of this study were to identify the acute (<24 h) profiles of arterial blood pressure and blood volume for (i) sprint intervals versus endurance exercise, and (ii) sprint intervals using arms versus legs. METHODS: Twelve untrained males completed three cycling exercise trials; 50-min endurance (legs), and 5(*)30-s intervals using legs or arms, in randomized and counterbalanced sequence, at a standardized time of day with at least 8 days between trials. Arterial pressure, hemoglobin concentration and hematocrit were measured before, during and across 22 h after exercise, the first 3 h of which were seated rest. RESULTS: The post-exercise hypotensive response was larger after leg intervals than endurance (AUC: 7540 ± 3853 vs. 3897 ± 2757 mm Hg·min, p = 0.049, 95% CI: 20 to 6764), whereas exercising different limbs elicited similar hypotension (arms: 6420 ± 3947 mm Hg·min, p = 0.48, CI: -1261 to 3896). In contrast, arterial pressure at 22 h was reduced after endurance but not after leg intervals (-8 ± 8 vs. 0 ± 7 mm Hg, p = 0.04, CI: 7 ± 7) or reliably after arm intervals (-4 ± 8 mm Hg, p = 0.18 vs. leg intervals). Regardless, plasma volume expansion at 22 h was similar between leg intervals and endurance (both +5 ± 5%; CI: -5 to 5%) and between leg and arm intervals (arms: +5 ± 7%, CI: -8 to 5%). CONCLUSIONS: These results emphasize the relative importance of central and/or systemic factors in post-exercise hypotension, and indicate that markedly diverse exercise profiles can induce substantive hypotension and subsequent hypervolemia. At least for endurance exercise, this hypervolemia may not depend on the volume of post-exercise hypotension. Finally, endurance exercise led to reduced blood pressure the following day, but sprint interval exercise did not.
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Graham et al. (2016) conducted an RCT in Healthy untrained males (n=12). Sprint interval exercise (legs or arms) vs. Endurance exercise (50 min cycling at 65% VO2max) was evaluated on Post-exercise hypotension (AUC of mean arterial pressure) (MD 3643 mm Hg·min, 95% CI 20 to 6764, p=0.049). Low-volume sprint interval exercise with the legs elicited a significantly larger post-exercise hypotensive response compared to endurance exercise (AUC 7540 vs 3897 mm Hg·min), with similar effects observed when exercising the arms.
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