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January 1, 2016Comprehensive physiology83 citations

Cardiovascular Adaptations to Exercise Training

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YHYlva HellstenMNMichael Nyberg

Key Result

Endurance training induces systemic and peripheral cardiovascular adaptations, including increased maximal cardiac output, improved muscle perfusion capacity, and structural vascular changes.

Key Points

  • To review systemic and peripheral cardiovascular adaptations resulting from endurance exercise training in humans and animals.
  • Synthesized physiological findings regarding central cardiac adaptations and peripheral vascular remodeling during aerobic exercise training.
  • Evaluated mechanisms governing maximal cardiac output, arterial structural remodeling, and skeletal muscle microvascular oxygen delivery.
  • Maximal cardiac output increases via cardiac dimensional enlargement, enhanced myocardial contractility, and expanded blood volume that elevates stroke volume.
  • Conduit and resistance arteries exhibit increased luminal diameters, reduced wall thickness, and elevated arterial compliance to minimize vascular resistance.
  • Muscular microvascular expansion shortens diffusion distances, increases capillary diffusion area, and prolongs erythrocyte transit time to maximize oxygen extraction.

Structured PICO

P
Population
Humans and animals
I
Intervention
Aerobic exercise training / endurance training
O
Outcome
Systemic and peripheral cardiovascular adaptations

This review summarizes the systemic and peripheral cardiovascular adaptations to endurance training, highlighting improvements in cardiac output, vascular structure, and microvascular networks.

Abstract

ABSTRACT Aerobic exercise training leads to cardiovascular changes that markedly increase aerobic power and lead to improved endurance performance. The functionally most important adaptation is the improvement in maximal cardiac output which is the result of an enlargement in cardiac dimension, improved contractility, and an increase in blood volume, allowing for greater filling of the ventricles and a consequent larger stroke volume. In parallel with the greater maximal cardiac output, the perfusion capacity of the muscle is increased, permitting for greater oxygen delivery. To accommodate the higher aerobic demands and perfusion levels, arteries, arterioles, and capillaries adapt in structure and number. The diameters of the larger conduit and resistance arteries are increased minimizing resistance to flow as the cardiac output is distributed in the body and the wall thickness of the conduit and resistance arteries is reduced, a factor contributing to increased arterial compliance. Endurance training may also induce alterations in the vasodilator capacity, although such adaptations are more pronounced in individuals with reduced vascular function. The microvascular net increases in size within the muscle allowing for an improved capacity for oxygen extraction by the muscle through a greater area for diffusion, a shorter diffusion distance, and a longer mean transit time for the erythrocyte to pass through the smallest blood vessels. The present article addresses the effect of endurance training on systemic and peripheral cardiovascular adaptations with a focus on humans, but also covers animal data. © 2016 American Physiological Society. Compr Physiol 6:1‐32, 2016.

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Cite This Study

Hellsten et al. (2016) conducted a review in Cardiovascular adaptations to exercise training. Endurance training was evaluated. Endurance training induces systemic and peripheral cardiovascular adaptations, including increased maximal cardiac output, improved muscle perfusion capacity, and structural vascular changes.

synapsesocial.com/papers/6a0c746fd48675e494237786https://doi.org/10.1002/j.2040-4603.2016.tb00672.x
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