Literature DB >> 22496414

Autoregulation and conduction of vasomotor responses in a mathematical model of the rat afferent arteriole.

Ioannis Sgouralis1, Anita T Layton.   

Abstract

We have formulated a mathematical model for the rat afferent arteriole (AA). Our model consists of a series of arteriolar smooth muscle cells and endothelial cells, each of which represents ion transport, cell membrane potential, and gap junction coupling. Cellular contraction and wall mechanics are also represented for the smooth muscle cells. Blood flow through the AA lumen is described by Poiseuille flow. The AA model's representation of the myogenic response is based on the hypothesis that changes in hydrostatic pressure induce changes in the activity of nonselective cation channels. The resulting changes in membrane potential then affect calcium influx through changes in the activity of the voltage-gated calcium channels, so that vessel diameter decreases with increasing pressure values. With this configuration, the model AA maintains roughly stable renal blood flow within a physiologic range of blood flow pressure. Model simulation of vasoconstriction initiated from local stimulation also agrees well with findings in the experimental literature, notably those of Steinhausen et al. (Steinhausen M, Endlich K, Nobiling R, Rarekh N, Schütt F. J Physiol 505: 493-501, 1997), which indicated that conduction of vasoconstrictive response decays more rapidly in the upstream flow direction than downstream. The model can be incorporated into models of integrated renal hemodynamic regulation.

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Year:  2012        PMID: 22496414      PMCID: PMC3404589          DOI: 10.1152/ajprenal.00589.2011

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  40 in total

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Review 10.  Systolic pressure and the myogenic response of the renal afferent arteriole.

Authors:  R Loutzenhiser; A K Bidani; X Wang
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  20 in total

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6.  Functional implications of sexual dimorphism of transporter patterns along the rat proximal tubule: modeling and analysis.

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7.  Theoretical assessment of renal autoregulatory mechanisms.

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8.  Parametric transfer function analysis and modeling of blood flow autoregulation in the optic nerve head.

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9.  Mathematical modeling of renal hemodynamics in physiology and pathophysiology.

Authors:  Ioannis Sgouralis; Anita T Layton
Journal:  Math Biosci       Date:  2015-03-09       Impact factor: 2.144

10.  Tubular fluid flow and distal NaCl delivery mediated by tubuloglomerular feedback in the rat kidney.

Authors:  Hwayeon Ryu; Anita T Layton
Journal:  J Math Biol       Date:  2013-03-26       Impact factor: 2.259

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