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February 1, 1998Acta Physiologica Scandinavica450 citations

Skeletal muscle blood flow in humans and its regulation during exercise

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BSBengt SaltinGRGöran RådegranMKMaria Koskolou

Key Result

Dynamical knee-extensor exercise increases femoral artery blood flow linearly from ~0.3 L/min at rest to 6-10 L/min, regulated by factors including adenosine and muscle sympathetic nerve activity.

Key Points

  • The study aims to investigate regional limb blood flow during exercise, focusing on its mechanisms and physiological responses.
  • Measured blood flow using dilution techniques and ultrasound Doppler at rest and during exercise.
  • Assessed the increase in femoral artery blood flow with varying power outputs during dynamical knee-extensor exercise.
  • Examined the role of vasoactive compounds like adenosine and the impact of muscle contraction on sympathetic nerve activity.
  • Blood flow in the femoral artery increased from ∼0.3 L min −1 at rest to 6–10 L min −1 during exercise.
  • Perfusion during peak effort could reach up to 2–3 L kg −1 min −1, indicating a ∼100-fold increase from rest.
  • Muscle contraction led to delayed increases in muscle sympathetic nerve activity, crucial for regulating blood flow and blood pressure during high-intensity exercise.

Structured PICO

P
Population
Humans
E
Exposure
Dynamical exercise (e.g., knee-extensor exercise)
C
Comparator
Rest
O
Outcome
Regional limb blood flow and its regulation mechanismssurrogate

This review summarizes the physiological mechanisms of skeletal muscle hyperemia during exercise, highlighting the role of the muscle pump, adenosine, and sympathetic nerve activity.

Abstract

Regional limb blood flow has been measured with dilution techniques (cardio‐green or thermodilution) and ultrasound Doppler. When applied to the femoral artery and vein at rest and during dynamical exercise these methods give similar reproducible results. The blood flow in the femoral artery is ∼0.3 L min −1 at rest and increases linearly with dynamical knee‐extensor exercise as a function of the power output to 6–10 L min −1 ( Q = 1.94 + 0.07 load). Considering the size of the knee‐extensor muscles, perfusion during peak effort may amount to 2–3 L kg −1 min −1 , i.e. ∼100‐fold elevation from rest. The onset of hyperaemia is very fast at the start of exercise with T ½ of 2–10 s related to the power output with the muscle pump bringing about the very first increase in blood flow. A steady level is reached within ∼10–150 s of exercise. At all exercise intensities the blood flow fluctuates primarily due to the variation in intramuscular pressure, resulting in a phase shift with the pulse pressure as a superimposed minor influence. Among the many vasoactive compounds likely to contribute to the vasodilation after the first contraction adenosine is a primary candidate as it can be demonstrated to (1) cause a change in limb blood flow when infused i.a., that is similar in time and magnitude as observed in exercise, and (2) become elevated in the interstitial space (microdialysis technique) during exercise to levels inducing vasodilation. NO appears less likely since NOS blockade with L ‐NMMA causing a reduced blood flow at rest and during recovery, it has no effect during exercise. Muscle contraction causes with some delay (60 s) an elevation in muscle sympathetic nerve activity (MSNA), related to the exercise intensity. The compounds produced in the contracting muscle activating the group III–IV sensory nerves (the muscle reflex) are unknown. In small muscle group exercise an elevation in MSNA may not cause vasoconstriction (functional sympatholysis). The mechanism for functional sympatholysis is still unknown. However, when engaging a large fraction of the muscle mass more intensely during exercise, the MSNA has an important functional role in maintaining blood pressure by limiting blood flow also to exercising muscles.

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Cite This Study

Saltin et al. (1998) conducted a review in Exercise physiology. Exercise vs. Rest was evaluated on Skeletal muscle blood flow. Dynamical knee-extensor exercise increases femoral artery blood flow linearly from ~0.3 L/min at rest to 6-10 L/min, regulated by factors including adenosine and muscle sympathetic nerve activity.

synapsesocial.com/papers/6a20357760a84f4b7dd8dfe1https://doi.org/10.1046/j.1365-201x.1998.0293e.x
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