DISTINCT BEHAVIOR OF PORTAL VENOUS AND ARTERIAL VASCULAR WATERFALLS IN PORCINE LIVER

被引:10
作者
BELOUCIF, S [1 ]
BRIENZA, N [1 ]
ANDREONI, K [1 ]
AYUSE, T [1 ]
TAKATA, M [1 ]
ODONNELL, CP [1 ]
ROBOTHAM, JL [1 ]
机构
[1] JOHNS HOPKINS MED INST,DEPT ANESTHESIOL & CRIT CARE MED,PULM ANESTHESIA LAB,BALTIMORE,MD 21205
关键词
D O I
10.1016/0883-9441(95)90001-2
中图分类号
R4 [临床医学];
学科分类号
1002 ; 100602 ;
摘要
Purpose: Hepatic dysfunction is associated with morbidity and mortality in critically iii patients, Understanding liver hemodynamics in pathological states requires characterization of the normal portal venous and hepatic arterial circulations. Using pressure flow analysis, we tested the hypothesis that vascular waterfalls determine blood flows in the normal liver. Methods: In 14 vascularly isolated porcine livers, steady-state pressure-flow relationships, which defined a slope (incremental resistance) and a zero flow pressure intercept (Po), were generated for each vessel over a range of hepatic venous pressures (Phv), Results: Critical dosing pressures occurred in the portal venous circulation (Po = 3.8 +/- 0.4 mm Hg) with classical waterfall physiology observed as Phv was raised, The hepatic arterial critical closing pressure (Po = 8.3 +/- 1 mm Hg) showed a constant positive pressure difference of 5 mm Hg versus Phv as the latter was increased from 0 to 28 mm Hg (P < .05). Portal venous resistance decreased when Phv was greater than Po (P < .05), but no effect on hepatic arterial resistance was seen as Phv was increased. Conclusion: Both critical closing pressures and incremental resistances showed markedly different responses to increased outflow pressures in the portal venous and hepatic arterial circulations, The results provide the physiological basis to analyze hemodynamic changes in the liver under normal and path cal conditions. Copyright (C) 1995 by W.B. Saunders Company.
引用
收藏
页码:104 / 114
页数:11
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共 41 条
[1]  
Ayuse, Brienza, O'Donnell, Et al., Pressureflow analysis of portal vein and hepatic artery interactions in porcine liver, Am J Physiol, 267, pp. H1233-H1243, (1994)
[2]  
Ayuse, Brienza, Revelly, Et al., The role of nitric oxide in the porcine liver circulation under normal and endotoxemic conditions, J Appl Physiol, 78, pp. 1319-1329, (1995)
[3]  
Ayuse, Brienza, Revelly, Et al., Alterations in liver hemodynamics and pressure-flow relationships in an intact porcine model of endotoxin shock, Am J Physiol: Heart Circ Physiol, 268, pp. H1106-H1114, (1995)
[4]  
Bellamy, Lowensohn, Ehrlich, Et al., Effect of coronary sinus occlusion on coronary pressure-flow relations, Am J Physiol, 239, pp. H57-H64, (1980)
[5]  
Bennett, Rothe, Hepatic capacitance responses to changes in flow and hepatic venous pressure in dogs, Am J Physiol, 240, pp. H18-H28, (1981)
[6]  
Brienza, Ayuse, Revelly, Et al., Effects of endotoxin on the isolated porcine liver: Pressure-flow analysis, J Appl Physiol, 78, pp. 784-792, (1995)
[7]  
Brower, Sylvester, Permutt, Flow-volume characteristics in the pulmonary circulation, J Appl Physiol, 69, pp. 1746-1753, (1990)
[8]  
Dahn, Lange, Lobdell, Et al., Splanchnic and total body oxygen consumption differences in septic and injured patients, Surgery, 101, pp. 69-80, (1987)
[9]  
Drapanas, Zemel, Vang, Hemodynamics of the isolated perfused pig liver: Metabolism according to routes of perfusion and rates of flow, Ann Surg, 164, pp. 522-537, (1966)
[10]  
Ezzat, Lautt, Hepatic arterial pressure-flow autoregulation is adenosine mediated., Am J Physiol, 252, pp. H836-H845, (1987)