Literature DB >> 25860

Analysis of postcapillary pH changes in blood in vivo after gas exchange.

A Bidani, E D Crandall, R E Forster.   

Abstract

A quantitative description of the reaction and transport processes that take place in blood during and after gas exchange in capillaries is developed and used to interpret recently reported experimental results. Included in the computation are 1) CO2-H2CO3 hydration-dehydration reactions in plasma and erythrocytes, 2) CO2 reactions with hemoglobin, 3) O2 binding to hemoglobin, 4) buffering of H+ intra- and extracellularly, 5) HCO3- Cl- exchange across the red cell membrane, 6) diffusion of gases between alveolar gas and blood, and 7) transcellular movement of water. Ion and water fluxes are described assuming passive diffusion down their electrochemical potential gradients. Recent data on the magnitude of the Bohr and Haldane shifts and on carbamate formation in the presence of 2,3-diphosphoglycerate are used. The analysis is used to examine the direction, magnitude, and time course of plasma pH changes in blood leaving the pulmonary capillaries and is shown to preduct results that agree very closely with recently reported experimental measurements in vivo. The time computed for plasma pH equilibration after gas exchange when carbonic anhydrase activity is absent from plasma is so great that blood may never be in complete electrochemical equilibrium as it travels around the circulation in normal man.

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Year:  1978        PMID: 25860     DOI: 10.1152/jappl.1978.44.5.770

Source DB:  PubMed          Journal:  J Appl Physiol Respir Environ Exerc Physiol        ISSN: 0161-7567


  9 in total

1.  A mechanistic physicochemical model of carbon dioxide transport in blood.

Authors:  David P O'Neill; Peter A Robbins
Journal:  J Appl Physiol (1985)       Date:  2016-11-23

2.  Intra-aortic decrease in blood plasma pH.

Authors:  R Rispens; B Oeseburg; J P Zock; W G Zijlstra
Journal:  Pflugers Arch       Date:  1980-07       Impact factor: 3.657

3.  Calculated changes in pH and pCO2 in arterial blood plasma assuming absence of ion and water exchange between plasma and erythrocytes during their equilibration with alveolar gas.

Authors:  J P Zock; P Rispens; W G Zijlstra
Journal:  Pflugers Arch       Date:  1981-08       Impact factor: 3.657

4.  Micropuncture determination of pH, PCO2, and total CO2 concentration in accessible structures of the rat renal cortex.

Authors:  T D DuBose; L R Pucacco; M S Lucci; N W Carter
Journal:  J Clin Invest       Date:  1979-08       Impact factor: 14.808

Review 5.  Mathematical modeling of acid-base physiology.

Authors:  Rossana Occhipinti; Walter F Boron
Journal:  Prog Biophys Mol Biol       Date:  2015-01-22       Impact factor: 3.667

6.  Carbonic anhydrase in skeletal and cardiac muscle from rabbit and rat.

Authors:  C Geers; D Krüger; W Siffert; A Schmid; W Bruns; G Gro
Journal:  Biochem J       Date:  1992-02-15       Impact factor: 3.857

7.  The influence of changes in pCO2 on the fractional packed cell volume of whole blood.

Authors:  A Luttmann; K Mückenhoff; H H Loeschcke; A Plaas-Link
Journal:  Pflugers Arch       Date:  1981-12       Impact factor: 3.657

Review 8.  Role of Carbonic Anhydrases and Inhibitors in Acid-Base Physiology: Insights from Mathematical Modeling.

Authors:  Rossana Occhipinti; Walter F Boron
Journal:  Int J Mol Sci       Date:  2019-08-06       Impact factor: 5.923

Review 9.  Cell physiology and molecular mechanism of anion transport by erythrocyte band 3/AE1.

Authors:  Michael L Jennings
Journal:  Am J Physiol Cell Physiol       Date:  2021-10-20       Impact factor: 4.249

  9 in total

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