Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia.

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia. / Larsen, Erik Hviid; Møbjerg, Nadja; Nielsen, Robert.

In: Comparative Biochemistry and Physiology A, Vol. 148, No. 1, 2007, p. 101-116.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Larsen, EH, Møbjerg, N & Nielsen, R 2007, 'Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia.', Comparative Biochemistry and Physiology A, vol. 148, no. 1, pp. 101-116. https://doi.org/10.1016/j.cbpa.2006.12.039

APA

Larsen, E. H., Møbjerg, N., & Nielsen, R. (2007). Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia. Comparative Biochemistry and Physiology A, 148(1), 101-116. https://doi.org/10.1016/j.cbpa.2006.12.039

Vancouver

Larsen EH, Møbjerg N, Nielsen R. Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia. Comparative Biochemistry and Physiology A. 2007;148(1):101-116. https://doi.org/10.1016/j.cbpa.2006.12.039

Author

Larsen, Erik Hviid ; Møbjerg, Nadja ; Nielsen, Robert. / Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia. In: Comparative Biochemistry and Physiology A. 2007 ; Vol. 148, No. 1. pp. 101-116.

Bibtex

@article{ac67f310990611dd86a6000ea68e967b,
title = "Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia.",
abstract = "The theory of Na+ recirculation for isosmotic fluid absorption follows logically from Hertz's convection-diffusion equation applied to the exit of water and solutes from the lateral intercellular space. Experimental evidence is discussed indicating Na+ recirculation based upon the following approaches: (i) An isotope tracer method in small intestine. Simultaneous measurement of water flow and ion transport in toad skin epithelium demonstrating, (ii) occasional hyposmotic absorbates, and (iii) reduced fluid absorption in the presence of serosal bumetanide. (iv) Studies of the metabolic cost of net Na+ absorption demonstrating an efficiency that is lower than the 18 Na+ per O2 consumed given by the stoichiometry of the Na+/K+-pump. Mathematical modeling predicts a significant range of observations such as isosmotic transport, hyposmotic transport, solvent drag, anomalous solvent drag, the residual hydraulic permeability in proximal tubule of AQP1(-/-) mice, the adverse relationship between hydraulic permeability and the concentration difference needed to reverse transepithelial water flow, and in a non-contradictory way the wide range of metabolic efficiencies from above to below 18 Na+/O2. Certain types of observations are poorly or not at all reproduced by the model. It is discussed that such lack of agreement between model and experiment is due to cellular regulations of ion permeabilities that are not incorporated in the modeling. Clarification of these problems requires further experimental studies.",
author = "Larsen, {Erik Hviid} and Nadja M{\o}bjerg and Robert Nielsen",
note = "Keywords: Animals; Kidney Tubules, Proximal; Sodium; Water; Water-Electrolyte Balance",
year = "2007",
doi = "10.1016/j.cbpa.2006.12.039",
language = "English",
volume = "148",
pages = "101--116",
journal = "Comparative biochemistry and physiology. Part A, Molecular & integrative physiology",
issn = "1095-6433",
publisher = "Elsevier",
number = "1",

}

RIS

TY - JOUR

T1 - Application of the Na+ recirculation theory to ion coupled water transport in low- and high resistance osmoregulatory epithelia.

AU - Larsen, Erik Hviid

AU - Møbjerg, Nadja

AU - Nielsen, Robert

N1 - Keywords: Animals; Kidney Tubules, Proximal; Sodium; Water; Water-Electrolyte Balance

PY - 2007

Y1 - 2007

N2 - The theory of Na+ recirculation for isosmotic fluid absorption follows logically from Hertz's convection-diffusion equation applied to the exit of water and solutes from the lateral intercellular space. Experimental evidence is discussed indicating Na+ recirculation based upon the following approaches: (i) An isotope tracer method in small intestine. Simultaneous measurement of water flow and ion transport in toad skin epithelium demonstrating, (ii) occasional hyposmotic absorbates, and (iii) reduced fluid absorption in the presence of serosal bumetanide. (iv) Studies of the metabolic cost of net Na+ absorption demonstrating an efficiency that is lower than the 18 Na+ per O2 consumed given by the stoichiometry of the Na+/K+-pump. Mathematical modeling predicts a significant range of observations such as isosmotic transport, hyposmotic transport, solvent drag, anomalous solvent drag, the residual hydraulic permeability in proximal tubule of AQP1(-/-) mice, the adverse relationship between hydraulic permeability and the concentration difference needed to reverse transepithelial water flow, and in a non-contradictory way the wide range of metabolic efficiencies from above to below 18 Na+/O2. Certain types of observations are poorly or not at all reproduced by the model. It is discussed that such lack of agreement between model and experiment is due to cellular regulations of ion permeabilities that are not incorporated in the modeling. Clarification of these problems requires further experimental studies.

AB - The theory of Na+ recirculation for isosmotic fluid absorption follows logically from Hertz's convection-diffusion equation applied to the exit of water and solutes from the lateral intercellular space. Experimental evidence is discussed indicating Na+ recirculation based upon the following approaches: (i) An isotope tracer method in small intestine. Simultaneous measurement of water flow and ion transport in toad skin epithelium demonstrating, (ii) occasional hyposmotic absorbates, and (iii) reduced fluid absorption in the presence of serosal bumetanide. (iv) Studies of the metabolic cost of net Na+ absorption demonstrating an efficiency that is lower than the 18 Na+ per O2 consumed given by the stoichiometry of the Na+/K+-pump. Mathematical modeling predicts a significant range of observations such as isosmotic transport, hyposmotic transport, solvent drag, anomalous solvent drag, the residual hydraulic permeability in proximal tubule of AQP1(-/-) mice, the adverse relationship between hydraulic permeability and the concentration difference needed to reverse transepithelial water flow, and in a non-contradictory way the wide range of metabolic efficiencies from above to below 18 Na+/O2. Certain types of observations are poorly or not at all reproduced by the model. It is discussed that such lack of agreement between model and experiment is due to cellular regulations of ion permeabilities that are not incorporated in the modeling. Clarification of these problems requires further experimental studies.

U2 - 10.1016/j.cbpa.2006.12.039

DO - 10.1016/j.cbpa.2006.12.039

M3 - Journal article

C2 - 17303459

VL - 148

SP - 101

EP - 116

JO - Comparative biochemistry and physiology. Part A, Molecular & integrative physiology

JF - Comparative biochemistry and physiology. Part A, Molecular & integrative physiology

SN - 1095-6433

IS - 1

ER -

ID: 6566209