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Am J Physiol Heart Circ Physiol 277: H1215-H1227, 1999;
0363-6135/99 $5.00
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Vol. 277, Issue 3, H1215-H1227, September 1999

Transport of fluid and solutes in the body I. Formulation of a mathematical model

C. C. Gyenge1, B. D. Bowen1, R. K. Reed2, and J. L. Bert1

1 Department of Chemical Engineering, University of British Columbia, Vancouver, British Columbia, Canada, V6T 1Z4; and 2 Department of Physiology, University of Bergen, N-5009 Bergen, Norway

A compartmental model of short-term whole body fluid, protein, and ion distribution and transport is formulated. The model comprises four compartments: a vascular and an interstitial compartment, each with an embedded cellular compartment. The present paper discusses the assumptions on which the model is based and describes the equations that make up the model. Fluid and protein transport parameters from a previously validated model as well as ionic exchange parameters from the literature or from statistical estimation [see companion paper: C. C. Gyenge, B. D. Bowen, R. K. Reed, and J. L. Bert. Am. J. Physiol. 277 (Heart Circ. Physiol. 46): H1228-H1240, 1999] are used in formulating the model. The dynamic model has the ability to simulate 1) transport across the capillary membrane of fluid, proteins, and small ions and their distribution between the vascular and interstitial compartments; 2) the changes in extracellular osmolarity; 3) the distribution and transport of water and ions associated with each of the cellular compartments; 4) the cellular transmembrane potential; and 5) the changes of volume in the four fluid compartments. The validation and testing of the proposed model against available experimental data are presented in the companion paper.

hyperosmolarity; cell volume; interstitial volume; plasma volume expansion; plasma osmolarity


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Am. J. Physiol. Heart Circ. Physiol.Home page
C. C. Gyenge, B. D. Bowen, R. K. Reed, and J. L. Bert
Transport of fluid and solutes in the body II. Model validation and implications
Am J Physiol Heart Circ Physiol, September 1, 1999; 277(3): H1228 - H1240.
[Abstract] [Full Text] [PDF]




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