Literature DB >> 8087079

Externally driven countercurrent multiplication in a mathematical model of the urinary concentrating mechanism of the renal inner medulla.

J F Jen1, J L Stephenson.   

Abstract

Substitution of measured permeabilities into mathematical models of the concentrating mechanism of the renal inner medulla yields less than the known urine osmolalities. To gain a better understanding of the mechanism we analyse a model in which a force of unspecified origin [expressed as fraction, epsilon, of entering descending thin limb (DTL) concentration] drives fluid from DTL to interstitial vascular space (CORE), thus concentrating the solution in DTL. When flow in the DTL reverses at the hairpin bend of the loop of Henle, the high solute permeability of ascending thin limb (ATL) permits solute to diffuse into the CORE thus permitting epsilon to be multiplied many-fold. Behavior of the model is described by two non-linear differential equations. In the limit for infinite salt permeability of ATL the two equations reduce to a single equation that is formally identical with that for the Hargitay and Kuhn multiplier, which assumes fluid transport directly from DTL to ATL (Z. Electrochem. Angew. Phys. Chem. 55, 539, 1951). Solutions of the equations describing the model with parameters taken from perfused thin limbs show that urine osmolalities of the order of 5000 mosm L-1 can be generated by forces of the order of 20 mosm L-1. It seems probable that mammals including desert rodents use some variant of this basic mechanism for inner medullary concentration.

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Year:  1994        PMID: 8087079     DOI: 10.1007/bf02460468

Source DB:  PubMed          Journal:  Bull Math Biol        ISSN: 0092-8240            Impact factor:   1.758


  16 in total

1.  Three-dimensional anatomy and renal concentrating mechanism. I. Modeling results.

Authors:  A S Wexler; R E Kalaba; D J Marsh
Journal:  Am J Physiol       Date:  1991-03

2.  Electrolyte, urea, and water transport in a two-nephron central core model of the renal medulla.

Authors:  J L Stephenson; Y Zhang; R Tewarson
Journal:  Am J Physiol       Date:  1989-09

3.  Concentration of urine in a central core model of the renal counterflow system.

Authors:  J L Stephenson
Journal:  Kidney Int       Date:  1972-08       Impact factor: 10.612

Review 4.  Short and long loop nephrons.

Authors:  R L Jamison
Journal:  Kidney Int       Date:  1987-02       Impact factor: 10.612

5.  Comparison of central core and radially separated models of renal inner medulla.

Authors:  J F Jen; H Wang; R P Tewarson; J L Stephenson
Journal:  Am J Physiol       Date:  1995-04

6.  Convective uphill transport of NaCl from ascending thin limb of loop of Henle.

Authors:  J L Stephenson; J F Jen; H Wang; R P Tewarson
Journal:  Am J Physiol       Date:  1995-04

7.  Renal countercurrent system: role of collecting duct convergence and pelvic urea predicted from a mathematical model.

Authors:  P Lory; A Gilg; M Horster
Journal:  J Math Biol       Date:  1983       Impact factor: 2.259

8.  Role of inner medullary collecting duct NaCl transport in urinary concentration.

Authors:  P S Chandhoke; G M Saidel; M A Knepper
Journal:  Am J Physiol       Date:  1985-11

9.  Three-dimensional anatomy and renal concentrating mechanism. II. Sensitivity results.

Authors:  A S Wexler; R E Kalaba; D J Marsh
Journal:  Am J Physiol       Date:  1991-03

10.  Effectiveness of a salt transport cascade in the renal medulla: computer simulations.

Authors:  P Lory
Journal:  Am J Physiol       Date:  1987-06
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  11 in total

Review 1.  Mammalian urine concentration: a review of renal medullary architecture and membrane transporters.

Authors:  C Michele Nawata; Thomas L Pannabecker
Journal:  J Comp Physiol B       Date:  2018-05-24       Impact factor: 2.200

Review 2.  Role of three-dimensional architecture in the urine concentrating mechanism of the rat renal inner medulla.

Authors:  Thomas L Pannabecker; William H Dantzler; Harold E Layton; Anita T Layton
Journal:  Am J Physiol Renal Physiol       Date:  2008-05-21

Review 3.  Modeling transport in the kidney: investigating function and dysfunction.

Authors:  Aurélie Edwards
Journal:  Am J Physiol Renal Physiol       Date:  2009-11-04

Review 4.  Comparative physiology and architecture associated with the mammalian urine concentrating mechanism: role of inner medullary water and urea transport pathways in the rodent medulla.

Authors:  Thomas L Pannabecker
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2013-01-30       Impact factor: 3.619

5.  Requirement of aquaporin-1 for NaCl-driven water transport across descending vasa recta.

Authors:  T L Pallone; A Edwards; T Ma; E P Silldorff; A S Verkman
Journal:  J Clin Invest       Date:  2000-01       Impact factor: 14.808

6.  Urine concentrating mechanism in the inner medulla of the mammalian kidney: role of three-dimensional architecture.

Authors:  W H Dantzler; T L Pannabecker; A T Layton; H E Layton
Journal:  Acta Physiol (Oxf)       Date:  2010-12-07       Impact factor: 6.311

7.  Modeling glucose metabolism and lactate production in the kidney.

Authors:  Ying Chen; Brendan C Fry; Anita T Layton
Journal:  Math Biosci       Date:  2017-05-08       Impact factor: 2.144

8.  Urine-concentrating mechanism in the inner medulla: function of the thin limbs of the loops of Henle.

Authors:  William H Dantzler; Anita T Layton; Harold E Layton; Thomas L Pannabecker
Journal:  Clin J Am Soc Nephrol       Date:  2013-08-01       Impact factor: 8.237

9.  Modeling Glucose Metabolism in the Kidney.

Authors:  Ying Chen; Brendan C Fry; Anita T Layton
Journal:  Bull Math Biol       Date:  2016-07-01       Impact factor: 1.758

Review 10.  The physiology of urinary concentration: an update.

Authors:  Jeff M Sands; Harold E Layton
Journal:  Semin Nephrol       Date:  2009-05       Impact factor: 5.299

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