Literature DB >> 4868032

Longitudinal distribution of vascular resistance in the pulmonary arteries, capillaries, and veins.

J S Brody, E J Stemmler, A B DuBois.   

Abstract

A new method has been described for measuring the pressure and resistance to blood flow in the pulmonary arteries, capillaries, and veins. Studies were performed in dog isolated lung lobes perfused at constant flow with blood from a donor dog. Pulmonary artery and vein volume and total lobar blood volume were measured by the ether plethysmograph and dyedilution techniques. The longitudinal distribution of vascular resistance was determined by analyzing the decrease in perfusion pressure caused by a bolus of low viscosity liquid introduced into the vascular inflow of the lobe. The pulmonary arteries were responsible for 46% of total lobar vascular resistance, whereas the pulmonary capillaries and veins accounted for 34 and 20% of total lobar vascular resistance respectively. Vascular resistance was 322 dynes .sec.cm(-5)/ml of vessel in the lobar pulmonary arteries, 112 dynes.sec.cm(-5)/ml in the pulmonary capillaries, and 115 dynes.sec.cm(-5)/ml in the lobar pulmonary veins. Peak vascular resistivity (resistance per milliliter of volume) was in an area 2 ml proximal to the capillary bed, but resistivity was high throughout the pulmonary arterial tree. The pulmonary arteries accounted for approximately 50% of vascular resistance upstream from the sluice point when alveolar pressure exceeded venous pressure. The method described provides the first measurements of pulmonary capillary pressure. Mid-capillary pressure averaged 13.3 cm H(2)O, pulmonary artery pressure averaged 20.4 cm H(2)O, and pulmonary vein pressure averaged 9.2 cm H(2)O. These techniques also provide a way of analyzing arterial, capillary, and venous responses to various pharmacologic and physiologic stimuli.

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Year:  1968        PMID: 4868032      PMCID: PMC297229          DOI: 10.1172/JCI105773

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  37 in total

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2.  Effect of elevated left atrial pressure and decreased plasma protein concentration on the development of pulmonary edema.

Authors:  A C GUYTON; A W LINDSEY
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3.  Pulmonary capillary blood volume, flow and diffusing capacity during exercise.

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4.  Physical basis of the dependence of blood viscosity on tube radius.

Authors:  R H HAYNES
Journal:  Am J Physiol       Date:  1960-06

5.  The pulmonary vein wedge pressure in man.

Authors:  D C CONNOLLY; E H WOOD
Journal:  Circ Res       Date:  1955-01       Impact factor: 17.367

6.  Relationships between pulmonary artery pressure and blood flow in the dog lung.

Authors:  M H WILLIAMS
Journal:  Am J Physiol       Date:  1954-11

7.  Pulmonary capillary blood flow during cardiac catheterization.

Authors:  H LINDERHOLM; P KIMBEL; D H LEWIS; A B DUBOIS
Journal:  J Appl Physiol       Date:  1962-01       Impact factor: 3.531

8.  Effect of chemoreceptor stimulation on the pulmonary veins.

Authors:  S Stern; K Braun
Journal:  Am J Physiol       Date:  1966-03

9.  Pulmonary capillary pressure and filtration coefficient in the isolated perfused lung.

Authors:  K A Gaar; A E Taylor; L J Owens; A C Guyton
Journal:  Am J Physiol       Date:  1967-10

10.  Distribution of vascular resistance in the isolated perfused dog lung.

Authors:  I G McDonald; J Butler
Journal:  J Appl Physiol       Date:  1967-10       Impact factor: 3.531

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  12 in total

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2.  The cite of action of nerves in the pulmonary vascular bed in the dog.

Authors:  I de B Daly; D J Ramsay; B A Waaler
Journal:  J Physiol       Date:  1970-08       Impact factor: 5.182

3.  Time shift in ventilation-induced density fluctuation of arterial blood.

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Journal:  Ann Biomed Eng       Date:  1987       Impact factor: 3.934

4.  Distribution of extravascular fluid volumes in isolated perfused lungs measured with H215O.

Authors:  T Jones; H A Jones; C G Rhodes; P D Buckingham; J M Hughes
Journal:  J Clin Invest       Date:  1976-03       Impact factor: 14.808

5.  Quantitative structural analysis of pulmonary vessels in isolated ventricular septal defect in infancy.

Authors:  A Hislop; S G Haworth; E A Shinebourne; L Reid
Journal:  Br Heart J       Date:  1975-10

6.  Re-endothelialization of rat lung scaffolds through passive, gravity-driven seeding of segment-specific pulmonary endothelial cells.

Authors:  Michelle E Scarritt; Nicholas C Pashos; Jessica M Motherwell; Zachary R Eagle; Brian J Burkett; Ashley N Gregory; Ricardo Mostany; Daniel J Weiss; Diego F Alvarez; Bruce A Bunnell
Journal:  J Tissue Eng Regen Med       Date:  2017-05-07       Impact factor: 3.963

7.  Differential reactivity in the pulmonary circulation.

Authors:  J S Brody; E J Stemmler
Journal:  J Clin Invest       Date:  1968-04       Impact factor: 14.808

8.  Pulsatile uptake of CO in the human lung.

Authors:  H A Menkes; K Sera; R M Rogers; R W Hyde; R E Forster; A B DuBois
Journal:  J Clin Invest       Date:  1970-02       Impact factor: 14.808

9.  (18)FDG PET imaging can quantify increased cellular metabolism in pulmonary arterial hypertension: A proof-of-principle study.

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Review 10.  Hypoxic pulmonary vasoconstriction.

Authors:  J T Sylvester; Larissa A Shimoda; Philip I Aaronson; Jeremy P T Ward
Journal:  Physiol Rev       Date:  2012-01       Impact factor: 46.500

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