GAS-EXCHANGE IN TIDALLY VENTILATED AND NON-STEADILY PERFUSED LUNG MODEL

被引:13
作者
ARIELI, R
FARHI, LE
机构
[1] TECHNION ISRAEL INST TECHNOL, FAC MED, DEPT PHYSIOL & BIOPHYS, IL-31096 HAIFA, ISRAEL
[2] SUNY BUFFALO, SCH MED, DEPT PHYSIOL, BUFFALO, NY 14214 USA
[3] TECHNION ISRAEL INST TECHNOL, RAPPAPORT FAMILY INST RES MED SCI, IL-31096 HAIFA, ISRAEL
来源
RESPIRATION PHYSIOLOGY | 1985年 / 60卷 / 03期
关键词
D O I
10.1016/0034-5687(85)90059-3
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The effect of cyclic lung perfusion, fast cycle in synchrony with heart beats and slow cycle in synchrony with ventilation, on gas exchange was studied in a lung model. There was almost no effect in the fast cycle. In a homogeneous single-lung unit, arterial PO2 increased, and the (A-a)DO2 decreased (by .apprx. 0.5 Torr), as the amplitude of the slow cyclic lung perfusion (TIP) increased. The calculated (A-a)DO2 and (a-A)DCO2 were negative. Maximal PaO2 was found when peak lung perfusion was delayed with respect to ventilation by 0.2 of a cycle. In a non-homogeneous 9-unit lung, cyclic lung perfusion caused an increase in PaO2 and a decrease in (A-a)DO2 by 2 Torr as compared to steady perfusion. No apparent negative (A-a)DO2 was found, but apparent negative (a-A)DCO2 was calculated at no pulmonary shunt and also with 5% shunt. The correlation of cyclic lung perfusion to the reduced (A-a)DO2 in dense-gas breathing, where large swings of pleural pressure are expected, and its effect on the diffusion capacity of the lung are discussed. Non-steady perfusion of the lung as caused by ventilatory movements expanded our understanding of gas exchange and shed some light on a few controversial experimental findings, such as the negative (a-A)DCO2, the decreased (A-a)DO2 while breathing dense gas and the effects of gas density on diffusion capacity of the lung.
引用
收藏
页码:295 / 309
页数:15
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