Literature DB >> 7615463

Nitric oxide generation and hypoxic vasoconstriction in buffer-perfused rabbit lungs.

F Grimminger1, R Spriestersbach, N Weissmann, D Walmrath, W Seeger.   

Abstract

Nitric oxide generation and hypoxic vasoconstriction in buffer-perfused rabbit lungs. J. Appl. Physiol. 78(4): 1509-1515, 1995.--We investigated the role of nitric oxide (NO) generation in hypoxic pulmonary vasoconstriction in buffer-perfused rabbit lungs. Exhaled NO was detected by chemiluminescence, and intravascular NO release was quantified as perfusate accumulation of nitrite, peroxynitrite, and nitrate (NOx). Under baseline conditions, exhaled NO was 45.3 +/- 4.1 parts per billion (1.8 +/- 0.2 nmol/min), and lung NOx release into the perfusate was 4.1 +/- 0.4 nmol/min. Alveolar hypoxia (alveolar PO2 of approximately 23 Torr) induced readily reproducible pressor responses preceded by a sharp drop in exhaled NO concentration. In contrast, perfusate NOx accumulation was not affected. Vasoconstrictor responses to U-46619 and angiotensin II were not accompanied by a decrease in NO exhalation. NG-monomethyl-L-arginine dose-dependently suppressed NO exhalation and amplified pressor responses to hypoxia > U-46619 and angiotensin II. In conclusion, portions of baseline NO generation originating from sites with ready access to the gaseous space sharply decrease in response to alveolar hypoxia, whereas the intravascular release of NO is unchanged. Such differential regulation of lung NO synthesis in response to hypoxia may suggest a complex role in the regulation or modulation of hypoxic pulmonary vasoconstriction.

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Year:  1995        PMID: 7615463     DOI: 10.1152/jappl.1995.78.4.1509

Source DB:  PubMed          Journal:  J Appl Physiol (1985)        ISSN: 0161-7567


  12 in total

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2.  Enhancement of myofilament calcium sensitivity by acute hypoxia in rat distal pulmonary arteries.

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3.  Acetylcholine causes dose dependent increase in pulmonary flow in patients with chronic heart failure and elevated pulmonary vascular resistance.

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4.  Separating the direct effect of hypoxia from the indirect effect of changes in cardiac output on the maximum pressure difference across the tricuspid valve in healthy humans.

Authors:  George M Balanos; Nicholas P Talbot; Peter A Robbins; Keith L Dorrington
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5.  Nitric oxide and exercise in the horse.

Authors:  P C Mills; D J Marlin; E Demoncheaux; C Scott; I Casas; N C Smith; T Higenbottam
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6.  Exhaled NO during graded changes in inhaled oxygen in man.

Authors:  L Schmetterer; K Strenn; J Kastner; H G Eichler; M Wolzt
Journal:  Thorax       Date:  1997-08       Impact factor: 9.139

7.  Effects of dimethylarginine dimethylaminohydrolase-1 overexpression on the response of the pulmonary vasculature to hypoxia.

Authors:  Adel Bakr; Oleg Pak; Ashraf Taye; Farid Hamada; Ramadan Hemeida; Wiebke Janssen; Mareike Gierhardt; Hossein A Ghofrani; Werner Seeger; Friedrich Grimminger; Ralph T Schermuly; Martin Witzenrath; Ralf P Brandes; Ngan Huang; John P Cooke; Norbert Weissmann; Natascha Sommer
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Review 8.  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

9.  Hypoxic vasoconstriction of partial muscular intra-acinar pulmonary arteries in murine precision cut lung slices.

Authors:  Renate Paddenberg; Peter König; Petra Faulhammer; Anna Goldenberg; Uwe Pfeil; Wolfgang Kummer
Journal:  Respir Res       Date:  2006-06-29

10.  Videomorphometric analysis of hypoxic pulmonary vasoconstriction of intra-pulmonary arteries using murine precision cut lung slices.

Authors:  Renate Paddenberg; Petra Mermer; Anna Goldenberg; Wolfgang Kummer
Journal:  J Vis Exp       Date:  2014-01-14       Impact factor: 1.355

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