Impairment of blood volume restitution after large hemorrhage: A mathematical model

被引:16
作者
Carlson, DE
Kligman, MD
Gann, DS
机构
[1] UNIV MARYLAND, SCH MED, DEPT SURG, BALTIMORE, MD 21201 USA
[2] UNIV MARYLAND, SCH MED, DEPT PHYSIOL, BALTIMORE, MD 21201 USA
关键词
hemorrhagic shock; membrane potential; plasma oncotic pressure; simulation; sodium and potassium transport;
D O I
10.1152/ajpregu.1996.270.5.R1163
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
A mathematical model tests possible mechanisms for the progressive failure of blood volume restitution seen after larger hemorrhages (> 26%) with increasing changes in plasma osmolality. After 10% hemorrhage, the model requires a decrease in net hydrostatic capillary pressure, the release of solute into the extracellular space, and the release of Na+ and K+ from a bound pool in equilibrium with the interstitium to match the experimental data. The solute and released cations expand the interstitium to drive the restitution of volume and protein from 3 to 24 h. After 30% hemorrhage, the best prediction of the average experimental responses occurs when the Na+-K+-adenosinetriphosphatase (ATPase) in the cell membrane is inhibited by 38.7% from 0.8 to 3 h, and the proportionality between capillary pressure and blood volume is reduced by 68% from its value for 10% hemorrhage. When the change in plasma osmolality is doubled after 30% hemorrhage, an increase in the inhibition of the ATPase to 85% and extension of its duration to 24 h are necessary to match experimental findings. The associated defect in sodium transport may occur after large hemorrhage so that sodium and water move into cells. This response may oppose osmotically driven expansion of the interstitium and thus account for the failure of restitution.
引用
收藏
页码:R1163 / R1177
页数:15
相关论文
共 44 条
[1]  
ALTMAN PL, 1973, BIOL DATA BOOK, V2, P1236
[2]   INTERSTITIAL-LYMPHATIC MECHANISMS IN THE CONTROL OF EXTRACELLULAR FLUID VOLUME [J].
AUKLAND, K ;
REED, RK .
PHYSIOLOGICAL REVIEWS, 1993, 73 (01) :1-78
[3]  
BAUMAN JW, 1975, RENAL FUNCTION PHYSL, P13
[4]  
Beck J., 1977, Parameter Estimation in Engineering and Science
[5]   MICROVASCULAR EXCHANGE AND INTERSTITIAL VOLUME REGULATION IN THE RAT - MODEL VALIDATION [J].
BERT, JL ;
BOWEN, BD ;
REED, RK .
AMERICAN JOURNAL OF PHYSIOLOGY, 1988, 254 (02) :H384-H399
[6]   CELL SWELLING AND DEPOLARIZATION IN HEMORRHAGIC-SHOCK [J].
BORCHELT, BD ;
WRIGHT, PA ;
EVANS, JA ;
GANN, DS .
JOURNAL OF TRAUMA-INJURY INFECTION AND CRITICAL CARE, 1995, 39 (02) :187-194
[7]   CARDIOVASCULAR STABILIZATION AFTER HEMORRHAGE DEPENDS UPON RESTITUTION OF BLOOD-VOLUME [J].
BYRNES, GJ ;
PIRKLE, JC ;
GANN, DS .
JOURNAL OF TRAUMA-INJURY INFECTION AND CRITICAL CARE, 1978, 18 (09) :623-627
[8]  
CATCHPOLE HR, 1966, FED PROC, V25, P1124
[9]   INVIVO MYOCYTE SODIUM ACTIVITY AND CONCENTRATION DURING HEMORRHAGIC-SHOCK [J].
CHIAO, JJC ;
MINEI, JP ;
SHIRES, GT ;
SHIRES, GT .
AMERICAN JOURNAL OF PHYSIOLOGY, 1990, 258 (03) :R684-R689
[10]  
Crone C., 1984, HDB PHYSL CARDIOVASC, V4, P411