Literature DB >> 23912160

Depleted energy charge and increased pulmonary endothelial permeability induced by mitochondrial complex I inhibition are mitigated by coenzyme Q1 in the isolated perfused rat lung.

Robert D Bongard1, Ke Yan2, Raymond G Hoffmann2, Said H Audi3, Xiao Zhang3, Brian J Lindemer4, Mary I Townsley5, Marilyn P Merker6.   

Abstract

Mitochondrial dysfunction is associated with various forms of lung injury and disease that also involve alterations in pulmonary endothelial permeability, but the relationship, if any, between the two is not well understood. This question was addressed by perfusing isolated intact rat lung with a buffered physiological saline solution in the absence or presence of the mitochondrial complex I inhibitor rotenone (20 μM). Compared to control, rotenone depressed whole lung tissue ATP from 5.66 ± 0.46 (SEM) to 2.34 ± 0.15 µmol · g(-1) dry lung, with concomitant increases in the ADP:ATP and AMP:ATP ratios. Rotenone also increased lung perfusate lactate (from 12.36 ± 1.64 to 38.62 ± 3.14 µmol · 15 min(-1) perfusion · g(-1) dry lung) and the lactate:pyruvate ratio, but had no detectable impact on lung tissue GSH:GSSG redox status. The amphipathic quinone coenzyme Q1 (CoQ1; 50 μM) mitigated the impact of rotenone on the adenine nucleotide balance, wherein mitigation was blocked by NAD(P)H-quinone oxidoreductase 1 or mitochondrial complex III inhibitors. In separate studies, rotenone increased the pulmonary vascular endothelial filtration coefficient (Kf) from 0.043 ± 0.010 to 0.156 ± 0.037 ml · min(-1) · cm H2O(-1) · g(-1) dry lung, and CoQ1 protected against the effect of rotenone on Kf. A second complex I inhibitor, piericidin A, qualitatively reproduced the impact of rotenone on Kf and the lactate:pyruvate ratio. Taken together, the observations imply that pulmonary endothelial barrier integrity depends on mitochondrial bioenergetics as reflected in lung tissue ATP levels and that compensatory activation of whole lung glycolysis cannot protect against pulmonary endothelial hyperpermeability in response to mitochondrial blockade. The study further suggests that low-molecular-weight amphipathic quinones may have therapeutic utility in protecting lung barrier function in mitochondrial insufficiency. Published by Elsevier Inc.

Entities:  

Keywords:  Free radicals; Mitochondrial electron transport complex I; Perfused lung; Pulmonary endothelial filtration coefficient; Pulmonary endothelial permeability; Pulmonary endothelium; Quinone

Mesh:

Substances:

Year:  2013        PMID: 23912160      PMCID: PMC3924785          DOI: 10.1016/j.freeradbiomed.2013.07.040

Source DB:  PubMed          Journal:  Free Radic Biol Med        ISSN: 0891-5849            Impact factor:   7.376


  66 in total

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Authors:  K J Cavanaugh; J Oswari; S S Margulies
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3.  Metabolic response to carbon monoxide by isolated rat lungs.

Authors:  D J Bassett; A B Fisher
Journal:  Am J Physiol       Date:  1976-03

4.  Hyperoxia-induced reactive oxygen species formation in pulmonary capillary endothelial cells in situ.

Authors:  Corinna Brueckl; Stephanie Kaestle; Alexander Kerem; Helmut Habazettl; Fritz Krombach; Hermann Kuppe; Wolfgang M Kuebler
Journal:  Am J Respir Cell Mol Biol       Date:  2005-12-15       Impact factor: 6.914

5.  Rotenone induces cell death in primary dopaminergic culture by increasing ROS production and inhibiting mitochondrial respiration.

Authors:  Khaled Radad; Wolf-Dieter Rausch; Gabriele Gille
Journal:  Neurochem Int       Date:  2006-03-31       Impact factor: 3.921

6.  Effect of metabolic inhibitors on Na+ transport in isolated perfused rat lungs.

Authors:  G Saumon; G Martet
Journal:  Am J Respir Cell Mol Biol       Date:  1993-08       Impact factor: 6.914

7.  Coenzyme Q1 redox metabolism during passage through the rat pulmonary circulation and the effect of hyperoxia.

Authors:  Said H Audi; Marilyn P Merker; Gary S Krenz; Taniya Ahuja; David L Roerig; Robert D Bongard
Journal:  J Appl Physiol (1985)       Date:  2008-08-14

8.  Mitochondrial ROS-K+ channel signaling pathway regulated secretion of human pulmonary artery endothelial cells.

Authors:  Jin-Sheng Ouyang; Yu-Ping Li; Cheng-Ye Li; Chang Cai; Cheng-Shui Chen; Shao-Xian Chen; Yan-Fan Chen; Li Yang; Yu-Peng Xie
Journal:  Free Radic Res       Date:  2012-09-27

9.  When does the lung die? Time course of high energy phosphate depletion and relationship to lung viability after "death".

Authors:  A M D'Armini; E J Tom; C S Roberts; D C Henke; J J Lemasters; T M Egan
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Journal:  Front Physiol       Date:  2012-05-28       Impact factor: 4.566

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  13 in total

1.  Detection of hydrogen peroxide production in the isolated rat lung using Amplex red.

Authors:  Said H Audi; Nina Friedly; Ranjan K Dash; Andreas M Beyer; Anne V Clough; Elizabeth R Jacobs
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Authors:  Said H Audi; Anthony Cammarata; Anne V Clough; Ranjan K Dash; Elizabeth R Jacobs
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3.  Assessment of Protection Offered By the NRF2 Pathway Against Hyperoxia-Induced Acute Lung Injury in NRF2 Knockout Rats.

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Authors:  Said H Audi; Pardis Taheri; Ming Zhao; Kurt Hu; Elizabeth R Jacobs; Anne V Clough
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5.  99MTc-Hexamethylpropyleneamine Oxime Imaging for Early Detection of Acute Lung Injury in Rats Exposed to Hyperoxia or Lipopolysaccharide Treatment.

Authors:  Said H Audi; Anne V Clough; Steven T Haworth; Meetha Medhora; Mahsa Ranji; John C Densmore; Elizabeth R Jacobs
Journal:  Shock       Date:  2016-10       Impact factor: 3.454

6.  Biomarkers for Radiation Pneumonitis Using Noninvasive Molecular Imaging.

Authors:  Meetha Medhora; Steven Haworth; Yu Liu; Jayashree Narayanan; Feng Gao; Ming Zhao; Said Audi; Elizabeth R Jacobs; Brian L Fish; Anne V Clough
Journal:  J Nucl Med       Date:  2016-03-31       Impact factor: 10.057

7.  Exercise hormone irisin mitigates endothelial barrier dysfunction and microvascular leakage-related diseases.

Authors:  Jianbin Bi; Jia Zhang; Yifan Ren; Zhaoqing Du; Yuanyuan Zhang; Chang Liu; Yawen Wang; Lin Zhang; Zhihong Shi; Zheng Wu; Yi Lv; Rongqian Wu
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8.  A rapid dynamic in vivo near-infrared fluorescence imaging assay to track lung vascular permeability after acute radiation injury.

Authors:  Jaidip Jagtap; Said Audi; Mir Hadi Razeghi-Kondelaji; Brian L Fish; Christopher Hansen; Jayashree Narayan; Feng Gao; Gayatri Sharma; Abdul K Parchur; Anjishnu Banerjee; Carmen Bergom; Meetha Medhora; Amit Joshi
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2021-01-06       Impact factor: 5.464

9.  Depolarized mitochondrial membrane potential and protection with duroquinone in isolated perfused lungs from rats exposed to hyperoxia.

Authors:  Said H Audi; Swetha Ganesh; Pardis Taheri; Xiao Zhang; Ranjan K Dash; Anne V Clough; Elizabeth R Jacobs
Journal:  J Appl Physiol (1985)       Date:  2021-12-23

10.  Mitochondrial Respiratory Chain Inhibitors Involved in ROS Production Induced by Acute High Concentrations of Iodide and the Effects of SOD as a Protective Factor.

Authors:  Lingyan Wang; Qi Duan; Tingting Wang; Mohamed Ahmed; Na Zhang; Yongmei Li; Lanying Li; Xiaomei Yao
Journal:  Oxid Med Cell Longev       Date:  2015-07-29       Impact factor: 6.543

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