Literature DB >> 21439980

Influence of tissue metabolism and capillary oxygen supply on arteriolar oxygen transport: a computational model.

T E Moschandreou1, C G Ellis, D Goldman.   

Abstract

We present a theoretical model for steady-state radial and longitudinal oxygen transport in arterioles containing flowing blood (plasma and red blood cells) and surrounded by living tissue. This model combines a detailed description of convective and diffusive oxygen transport inside the arteriole with a novel boundary condition at the arteriolar lumen surface, and the results provide new mass transfer coefficients for computing arteriolar O(2) losses based on far-field tissue O(2) tension and in the presence of spatially distributed capillaries. A numerical procedure is introduced for calculating O(2) diffusion from an arteriole to a continuous capillary-tissue matrix immediately adjacent to the arteriole. The tissue O(2) consumption rate is assumed to be constant and capillaries act as either O(2) sources or sinks depending on the local O(2) environment. Using the model, O(2) saturation (SO(2)) and tension (PO(2)) are determined for the intraluminal region of the arteriole, as well as for the extraluminal region in the neighbouring tissue. Our model gives results that are consistent with available experimental data and previous intraluminal transport models, including appreciable radial decreases in intraluminal PO(2) for all vessel diameters considered (12-100 μm) and slower longitudinal decreases in PO(2) for larger vessels than for smaller ones, and predicts substantially less diffusion of O(2) from arteriolar blood than do models with PO(2) specified at the edge of the lumen. The dependence of the new mass transfer coefficients on vessel diameter, SO(2) and far-field PO(2) is calculated allowing their application to a wide range of physiological situations. This novel arteriolar O(2) transport model will be a vital component of future integrated models of microvascular regulation of O(2) supply to capillary beds and the tissue regions they support.
Copyright © 2011 Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 21439980      PMCID: PMC3125398          DOI: 10.1016/j.mbs.2011.03.010

Source DB:  PubMed          Journal:  Math Biosci        ISSN: 0025-5564            Impact factor:   2.144


  28 in total

1.  The number and distribution of capillaries in muscles with calculations of the oxygen pressure head necessary for supplying the tissue.

Authors:  A Krogh
Journal:  J Physiol       Date:  1919-05-20       Impact factor: 5.182

2.  Oxygen exchange in the microcirculation of hamster retractor muscle.

Authors:  D P Swain; R N Pittman
Journal:  Am J Physiol       Date:  1989-01

3.  Rate of oxygen loss from arterioles is an order of magnitude higher than expected.

Authors:  A S Popel; R N Pittman; M L Ellsworth
Journal:  Am J Physiol       Date:  1989-03

4.  Longitudinal gradients in periarteriolar oxygen tension. A possible mechanism for the participation of oxygen in local regulation of blood flow.

Authors:  B R Duling; R M Berne
Journal:  Circ Res       Date:  1970-11       Impact factor: 17.367

5.  Analysis of oxygen diffusion from arteriolar networks.

Authors:  A S Popel; J F Gross
Journal:  Am J Physiol       Date:  1979-12

6.  Distribution of oxygen tension on the surface of arterioles, capillaries and venules of brain cortex and in tissue in normoxia: an experimental study on rats.

Authors:  E Vovenko
Journal:  Pflugers Arch       Date:  1999-03       Impact factor: 3.657

7.  An in vitro capillary system for studies on microcirculatory O2 transport.

Authors:  E J Boland; P K Nair; D D Lemon; J S Olson; J D Hellums
Journal:  J Appl Physiol (1985)       Date:  1987-02

Review 8.  Erythrocytes: oxygen sensors and modulators of vascular tone.

Authors:  Mary L Ellsworth; Christopher G Ellis; Daniel Goldman; Alan H Stephenson; Hans H Dietrich; Randy S Sprague
Journal:  Physiology (Bethesda)       Date:  2009-04

9.  A model of oxygen exchange between an arteriole or venule and the surrounding tissue.

Authors:  D P Weerappuli; A S Popel
Journal:  J Biomech Eng       Date:  1989-02       Impact factor: 2.097

10.  Calculations of oxygen transport by red blood cells and hemoglobin solutions in capillaries.

Authors:  Arjun Vadapalli; Daniel Goldman; Aleksander S Popel
Journal:  Artif Cells Blood Substit Immobil Biotechnol       Date:  2002-05
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  6 in total

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Authors:  Christopher G Ellis; Stephanie Milkovich; Daniel Goldman
Journal:  Microcirculation       Date:  2012-07       Impact factor: 2.628

2.  Effects of fiber type and size on the heterogeneity of oxygen distribution in exercising skeletal muscle.

Authors:  Gang Liu; Feilim Mac Gabhann; Aleksander S Popel
Journal:  PLoS One       Date:  2012-09-18       Impact factor: 3.240

Review 3.  Integrative models of vascular remodeling during tumor growth.

Authors:  Heiko Rieger; Michael Welter
Journal:  Wiley Interdiscip Rev Syst Biol Med       Date:  2015-03-21

4.  A computational model of a microfluidic device to measure the dynamics of oxygen-dependent ATP release from erythrocytes.

Authors:  Richard J Sove; Nour Ghonaim; Daniel Goldman; Christopher Gerald Ellis
Journal:  PLoS One       Date:  2013-11-27       Impact factor: 3.240

5.  The Bohr Effect Is Not a Likely Promoter of Renal Preglomerular Oxygen Shunting.

Authors:  Ufuk Olgac; Vartan Kurtcuoglu
Journal:  Front Physiol       Date:  2016-10-27       Impact factor: 4.566

6.  Computational Model for Tumor Oxygenation Applied to Clinical Data on Breast Tumor Hemoglobin Concentrations Suggests Vascular Dilatation and Compression.

Authors:  Michael Welter; Thierry Fredrich; Herbert Rinneberg; Heiko Rieger
Journal:  PLoS One       Date:  2016-08-22       Impact factor: 3.240

  6 in total

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