A century of exercise physiology: lung fluid balance during and following exercise

Eur J Appl Physiol. 2023 Jan;123(1):1-24. doi: 10.1007/s00421-022-05066-3. Epub 2022 Oct 20.

Abstract

Purpose: This review recalls the principles developed over a century to describe trans-capillary fluid exchanges concerning in particular the lung during exercise, a specific condition where dyspnea is a leading symptom, the question being whether this symptom simply relates to fatigue or also implies some degree of lung edema.

Method: Data from experimental models of lung edema are recalled aiming to: (1) describe how extravascular lung water is strictly controlled by "safety factors" in physiological conditions, (2) consider how waning of "safety factors" inevitably leads to development of lung edema, (3) correlate data from experimental models with data from exercising humans.

Results: Exercise is a strong edemagenic condition as the increase in cardiac output leads to lung capillary recruitment, increase in capillary surface for fluid exchange and potential increase in capillary pressure. The physiological low microvascular permeability may be impaired by conditions causing damage to the interstitial matrix macromolecular assembly leading to alveolar edema and haemorrhage. These conditions include hypoxia, cyclic alveolar unfolding/folding during hyperventilation putting a tensile stress on septa, intensity and duration of exercise as well as inter-individual proneness to develop lung edema.

Conclusion: Data from exercising humans showed inter-individual differences in the dispersion of the lung ventilation/perfusion ratio and increase in oxygen alveolar-capillary gradient. More recent data in humans support the hypothesis that greater vasoconstriction, pulmonary hypertension and slower kinetics of alveolar-capillary O2 equilibration relate with greater proneness to develop lung edema due higher inborn microvascular permeability possibly reflecting the morpho-functional features of the air-blood barrier.

Keywords: Alveolar folding/unfolding; Alveolar-capillary equilibration; Interstitial matrix; Interstitial pressure; Lung diffusion; Lung edema; Precapillary vasoconstriction; Pulmonary arterial pressure; Pulmonary hypertension; Ventilation/perfusion mismatch.

Publication types

  • Review

MeSH terms

  • Blood-Air Barrier
  • Extravascular Lung Water / physiology
  • Humans
  • Hypoxia
  • Lung*
  • Pulmonary Edema* / etiology