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Am J Physiol Regul Integr Comp Physiol 285: R1384-R1394, 2003. First published August 14, 2003; doi:10.1152/ajpregu.00168.2003
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THIRST AND VOLUME, ELECTROLYTE HOMEOSTASIS

A two-barrier compartment model for volume flow across amphibian skin

Peng Guo,1 Stanley D. Hillyard,2 and Bingmei M. Fu1,3

1Department of Mechanical Engineering, 3Cancer Institute, 2Department of Biological Sciences, University of Nevada, Las Vegas, Las Vegas, Nevada 89154

Submitted 3 April 2003 ; accepted in final form 12 August 2003

The amphibian skin has long been used as a model tissue for the study of ion transport and osmotic water movement across tight epithelia. To understand the mechanism of water uptake across amphibian skin, we model the skin as a well-stirred compartment bounded by an apical barrier and a tissue barrier. The compartment represents the lateral intercellular space between cells in the stratum granulosum. The apical barrier represents the stratum corneum, the principal/mitochondria-rich cells, and the junctional area between cells. This barrier is hypothesized to have the ability to actively transport solutes through Na+-K+-ATPase. The actively transported solute flux is assumed to satisfy the Michaelis-Menten relationship. The tissue barrier represents a composite barrier comprising the stratum spinosum, the stratum germinativum, the basal lamina, and the dermis. Our model shows that 1) the predicted rehydration rates from apical bathing solutions are in good agreement with the experiment results in Hillyard and Larsen (J Comp Physiol 171: 283-292, 2001); 2) under their experimental conditions, there is a substantial volume flux coupled to the active solute flux and this coupled volume flux is nearly constant when the osmolality of the apical bathing solution is >100 mosmol/kgH2O; 3) the molar ratio of the actively transported solute flux to the coupled water flux is about 1:160, which is the same as that reported in Nielsen (J Membr Biol 159: 61-69, 1997).

tight epithelium; active solute transport; Michaelis-Menten equation; coupled-water transport



Address for reprint requests and other correspondence: B. M. Fu, Dept. of Mechanical Engineering, Cancer Institute, 4505 Maryland Parkway, Box 454027, Las Vegas, NV 89154 (E-mail: bmfu{at}nscee.edu).




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S. D. Hillyard, V. Baula, W. Tuttle, N. J. Willumsen, and E. H. Larsen
Behavioral and Neural Responses of Toads to Salt Solutions Correlate with Basolateral Membrane Potential of Epidermal Cells of the Skin
Chem Senses, October 1, 2007; 32(8): 765 - 773.
[Abstract] [Full Text] [PDF]




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