4.6 Article

Direct demonstration of 25- and 50-μm arteriovenous pathways in healthy human and baboon lungs

Journal

Publisher

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajpheart.01024.2006

Keywords

intrapulmonary arteriovenous anastomoses; shunt; baboon; pulmonary circulation

Funding

  1. NHLBI NIH HHS [HL-15469, T32 HL-07654] Funding Source: Medline

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Postmortem microsphere studies in adult human lungs have demonstrated the existence of intrapulmonary arteriovenous pathways using nonphysiological conditions. The aim of the current study was to determine whether large diameter ( >25 and 50 mu m) intrapulmonary arteriovenous pathways are functional in human and baboon lungs under physiological perfusion and ventilation pressures. We used fresh healthy human donor lungs obtained for transplantion and fresh lungs from baboons ( Papio c. anubis). Lungs were ventilated with room air by using a peak inflation pressure of 15 cmH(2)O and a positive end-expiratory pressure of 5 cmH(2)O. Lungs were perfused between 10 and 20 cmH(2)O by using a phosphate-buffered saline solution with 5% albumin. We infused a mixture of 25- and 50-mu m microspheres ( 0.5 and 1 million total for baboons and human studies, respectively) into the pulmonary artery and collected the entire pulmonary venous outflow. Under these conditions, evidence of intrapulmonary arteriovenous anastomoses was found in baboon ( n = 3/4) and human ( n = 4/6) lungs. In those lungs showing evidence of arteriovenous pathways, 50-mu m microspheres were always able to traverse the pulmonary circulation, and the fraction of transpulmonary passage ranged from 0.0003 to 0.42%. These data show that intrapulmonary arteriovenous pathways >50 mu m in diameter are functional under physiological ventilation and perfusion pressures in the isolated lung. These pathways provide an alternative conduit for pulmonary blood flow that likely bypasses the areas of gas exchange at the capillary-alveolar interface that could compromise both gas exchange and the ability of the lung to filter out microemboli.

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