Literature DB >> 19520921

Rosiglitazone attenuates chronic hypoxia-induced pulmonary hypertension in a mouse model.

Rachel E Nisbet1, Jennifer M Bland, Dean J Kleinhenz, Patrick O Mitchell, Erik R Walp, Roy L Sutliff, C Michael Hart.   

Abstract

Chronic hypoxia contributes to pulmonary hypertension through complex mechanisms that include enhanced NADPH oxidase expression and reactive oxygen species (ROS) generation in the lung. Stimulation of peroxisome proliferator-activated receptor gamma (PPARgamma) reduces the expression and activity of NADPH oxidase. Therefore, we hypothesized that activating PPARgamma with rosiglitazone would attenuate chronic hypoxia-induced pulmonary hypertension, in part, through suppressing NADPH oxidase-derived ROS that stimulate proliferative signaling pathways. Male C57Bl/6 mice were exposed to chronic hypoxia (CH, Fi(O2) 10%) or room air for 3 or 5 weeks. During the last 10 days of exposure, each animal was treated daily by gavage with either the PPARgamma ligand, rosiglitazone (10 mg/kg/d) or with an equal volume of vehicle. CH increased: (1) right ventricular systolic pressure (RVSP), (2) right ventricle weight, (3) thickness of the walls of small pulmonary vessels, (4) superoxide production and Nox4 expression in the lung, and (5) platelet-derived growth factor receptor beta (PDGFRbeta) expression and activity and reduced phosphatase and tensin homolog deleted on chromosome 10 (PTEN) expression. Treatment with rosiglitazone prevented the development of pulmonary hypertension at 3 weeks; reversed established pulmonary hypertension at 5 weeks; and attenuated CH-stimulated Nox4 expression and superoxide production, PDGFRbeta activation, and reductions in PTEN expression. Rosiglitazone also attenuated hypoxia-induced increases in Nox4 expression in pulmonary endothelial cells in vitro despite hypoxia-induced reductions in PPARgamma expression. Collectively, these findings indicate that PPARgamma ligands attenuated hypoxia-induced pulmonary vascular remodeling and hypertension by suppressing oxidative and proliferative signals providing novel insights for mechanisms underlying therapeutic effects of PPARgamma activation in pulmonary hypertension.

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Year:  2009        PMID: 19520921      PMCID: PMC2848739          DOI: 10.1165/rcmb.2008-0132OC

Source DB:  PubMed          Journal:  Am J Respir Cell Mol Biol        ISSN: 1044-1549            Impact factor:   6.914


  51 in total

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2.  Vascular remodeling versus vasoconstriction in chronic hypoxic pulmonary hypertension: a time for reappraisal?

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3.  [Effects of peroxisome proliferator-activated receptor gamma ligands on monocrotaline-induced pulmonary hypertension in rats].

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Journal:  Nihon Kokyuki Gakkai Zasshi       Date:  2005-05

4.  The inhibitory effect of rosiglitazone on agonist-induced or spontaneous regulation of contractility.

Authors:  Hyun Dong Je; Sun Young Park; Amy L Barber; Uy Dong Sohn
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5.  PPAR-gamma activation inhibits angiogenesis by blocking ELR+CXC chemokine production in non-small cell lung cancer.

Authors:  Venkateshwar G Keshamouni; Douglas A Arenberg; Raju C Reddy; Michael J Newstead; Shalini Anthwal; Theodore J Standiford
Journal:  Neoplasia       Date:  2005-03       Impact factor: 5.715

6.  Tumor suppressor and anti-inflammatory actions of PPARgamma agonists are mediated via upregulation of PTEN.

Authors:  L Patel; I Pass; P Coxon; C P Downes; S A Smith; C H Macphee
Journal:  Curr Biol       Date:  2001-05-15       Impact factor: 10.834

7.  Peroxisome proliferator-activated receptor-gamma ligands regulate endothelial membrane superoxide production.

Authors:  Jinah Hwang; Dean J Kleinhenz; Bernard Lassègue; Kathy K Griendling; Sergey Dikalov; C Michael Hart
Journal:  Am J Physiol Cell Physiol       Date:  2004-12-08       Impact factor: 4.249

8.  Expression and function of PPARgamma in rat and human vascular smooth muscle cells.

Authors:  R E Law; S Goetze; X P Xi; S Jackson; Y Kawano; L Demer; M C Fishbein; W P Meehan; W A Hsueh
Journal:  Circulation       Date:  2000-03-21       Impact factor: 29.690

9.  Hypoxic vasoconstriction in intact lungs: a role for NADPH oxidase-derived H(2)O(2)?

Authors:  N Weissmann; A Tadic; J Hänze; F Rose; S Winterhalder; M Nollen; R T Schermuly; H A Ghofrani; W Seeger; F Grimminger
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2000-10       Impact factor: 5.464

10.  Peroxisome proliferator-activated receptor gamma ligands stimulate endothelial nitric oxide production through distinct peroxisome proliferator-activated receptor gamma-dependent mechanisms.

Authors:  John A Polikandriotis; Louis J Mazzella; Heidi L Rupnow; C Michael Hart
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  116 in total

1.  Peroxisome proliferator-activated receptor γ inhibits pulmonary hypertension targeting store-operated calcium entry.

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Journal:  J Mol Med (Berl)       Date:  2014-11-14       Impact factor: 4.599

Review 2.  PPARgamma as a potential therapeutic target in pulmonary hypertension.

Authors:  Roy L Sutliff; Bum-Yong Kang; C Michael Hart
Journal:  Ther Adv Respir Dis       Date:  2010-06       Impact factor: 4.031

Review 3.  Reactive oxygen and nitrogen species in pulmonary hypertension.

Authors:  Diana M Tabima; Sheila Frizzell; Mark T Gladwin
Journal:  Free Radic Biol Med       Date:  2012-03-06       Impact factor: 7.376

Review 4.  Update on pulmonary hypertension 2009.

Authors:  Mark T Gladwin; Hossein-Ardeschir Ghofrani
Journal:  Am J Respir Crit Care Med       Date:  2010-05-15       Impact factor: 21.405

5.  Adiponectin decreases pulmonary arterial remodeling in murine models of pulmonary hypertension.

Authors:  Meiqian Weng; Michael J Raher; Patricio Leyton; Terry P Combs; Philipp E Scherer; Kenneth D Bloch; Benjamin D Medoff
Journal:  Am J Respir Cell Mol Biol       Date:  2010-11-12       Impact factor: 6.914

Review 6.  Metabolic Syndrome and the Lung.

Authors:  Cynthia W Baffi; Lisa Wood; Daniel Winnica; Patrick J Strollo; Mark T Gladwin; Loretta G Que; Fernando Holguin
Journal:  Chest       Date:  2016-01-20       Impact factor: 9.410

7.  Time-dependent PPARγ Modulation of HIF-1α Signaling in Hypoxic Pulmonary Artery Smooth Muscle Cells.

Authors:  Justine I Blum; Kaiser M Bijli; Tamara C Murphy; Jennifer M Kleinhenz; C Michael Hart
Journal:  Am J Med Sci       Date:  2016-04-04       Impact factor: 2.378

8.  Neprilysin regulates pulmonary artery smooth muscle cell phenotype through a platelet-derived growth factor receptor-dependent mechanism.

Authors:  Vijaya Karoor; Masahiko Oka; Sandra J Walchak; Louis B Hersh; York E Miller; Edward C Dempsey
Journal:  Hypertension       Date:  2013-02-04       Impact factor: 10.190

9.  Repurposing rosiglitazone, a PPAR-γ agonist and oral antidiabetic, as an inhaled formulation, for the treatment of PAH.

Authors:  Jahidur Rashid; Ahmad Alobaida; Taslim A Al-Hilal; Samia Hammouda; Ivan F McMurtry; Eva Nozik-Grayck; Kurt R Stenmark; Fakhrul Ahsan
Journal:  J Control Release       Date:  2018-04-30       Impact factor: 9.776

10.  Chronic inhibition of PPAR-γ signaling induces endothelial dysfunction in the juvenile lamb.

Authors:  Shruti Sharma; Jubilee Barton; Ruslan Rafikov; Saurabh Aggarwal; Hsuan-Chang Kuo; Peter E Oishi; Sanjeev A Datar; Jeffrey R Fineman; Stephen M Black
Journal:  Pulm Pharmacol Ther       Date:  2012-12-17       Impact factor: 3.410

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