Iron homeostasis and pulmonary hypertension: iron deficiency leads to pulmonary vascular remodelling in the rat
File(s)
Author(s)
Zhao, L
Type
Journal Article
Abstract
Rationale: Iron deficiency without anemia is prevalent in patients with idiopathic pulmonary arterial hypertension and associated with reduced exercise capacity and survival.
Objectives: We hypothesized that iron deficiency is involved in the pathogenesis of pulmonary hypertension and iron replacement is a possible therapeutic strategy.
Methods and Results: Rats were fed an iron-deficient diet (IDD, 7 mg/kg) and investigated for 4 weeks. Iron deficiency was evident from depleted iron stores (decreased liver, serum iron, and ferritin), reduced erythropoiesis, and significantly decreased transferrin saturation and lung iron stores after 2 weeks IDD. IDD rats exhibited profound pulmonary vascular remodeling with prominent muscularization, medial hypertrophy, and perivascular inflammatory cell infiltration, associated with raised pulmonary artery pressure and right ventricular hypertrophy. IDD rat lungs demonstrated increased expression of hypoxia-induced factor-1α and hypoxia-induced factor-2α, nuclear factor of activated T cells and survivin, and signal transducers and activators of transcription-3 activation, which promote vascular cell proliferation and resistance to apoptosis. Biochemical examination showed reduced mitochondrial complex I activity and mitochondrial membrane hyperpolarization in mitochondria from IDD rat pulmonary arteries. Along with upregulation of the glucose transporter, glucose transporter 1, and glycolytic genes, hk1 and pdk1, lung fluorine-18–labeled 2-fluoro-2-deoxyglucose ligand uptake was significantly increased in IDD rats. The hemodynamic and pulmonary vascular remodeling were reversed by iron replacement (ferric carboxymaltose, 75 mg/kg) and attenuated in the presence of iron deficiency by dichloroacetate and imatinib, 2 putative treatments explored for pulmonary arterial hypertension that target aerobic glycolysis and proliferation, respectively.
Conclusions: These data suggest a major role for iron in pulmonary vascular homeostasis and support the clinical evaluation of iron replacement in patients with pulmonary hypertension.
Objectives: We hypothesized that iron deficiency is involved in the pathogenesis of pulmonary hypertension and iron replacement is a possible therapeutic strategy.
Methods and Results: Rats were fed an iron-deficient diet (IDD, 7 mg/kg) and investigated for 4 weeks. Iron deficiency was evident from depleted iron stores (decreased liver, serum iron, and ferritin), reduced erythropoiesis, and significantly decreased transferrin saturation and lung iron stores after 2 weeks IDD. IDD rats exhibited profound pulmonary vascular remodeling with prominent muscularization, medial hypertrophy, and perivascular inflammatory cell infiltration, associated with raised pulmonary artery pressure and right ventricular hypertrophy. IDD rat lungs demonstrated increased expression of hypoxia-induced factor-1α and hypoxia-induced factor-2α, nuclear factor of activated T cells and survivin, and signal transducers and activators of transcription-3 activation, which promote vascular cell proliferation and resistance to apoptosis. Biochemical examination showed reduced mitochondrial complex I activity and mitochondrial membrane hyperpolarization in mitochondria from IDD rat pulmonary arteries. Along with upregulation of the glucose transporter, glucose transporter 1, and glycolytic genes, hk1 and pdk1, lung fluorine-18–labeled 2-fluoro-2-deoxyglucose ligand uptake was significantly increased in IDD rats. The hemodynamic and pulmonary vascular remodeling were reversed by iron replacement (ferric carboxymaltose, 75 mg/kg) and attenuated in the presence of iron deficiency by dichloroacetate and imatinib, 2 putative treatments explored for pulmonary arterial hypertension that target aerobic glycolysis and proliferation, respectively.
Conclusions: These data suggest a major role for iron in pulmonary vascular homeostasis and support the clinical evaluation of iron replacement in patients with pulmonary hypertension.
Date Issued
2015-03-12
Date Acceptance
2015-03-12
Citation
Circulation Research, 2015, 116 (10), pp.1680-1690
ISSN
1524-4571
Publisher
American Heart Association
Start Page
1680
End Page
1690
Journal / Book Title
Circulation Research
Volume
116
Issue
10
Copyright Statement
© 2015 American Heart Association, Inc.
Sponsor
British Heart Foundation
Grant Number
RG/10/16/28575
Subjects
Science & Technology
Life Sciences & Biomedicine
Cardiac & Cardiovascular Systems
Hematology
Peripheral Vascular Disease
Cardiovascular System & Cardiology
glycolysis
hypertension, pulmonary
iron
STAT3
vascular remodeling
ARTERIAL-HYPERTENSION
HEART-FAILURE
HYPOXIA
PATHOLOGY
CELLS
DICHLOROACETATE
APOPTOSIS
MICE
INVOLVEMENT
METABOLISM
Animals
Antihypertensive Agents
Arterial Pressure
Benzamides
Cell Proliferation
Deficiency Diseases
Dichloroacetic Acid
Disease Models, Animal
Erythropoiesis
Ferric Compounds
Ferritins
Glycolysis
Hematinics
Homeostasis
Hypertension, Pulmonary
Hypertrophy, Right Ventricular
Imatinib Mesylate
Iron
Liver
Male
Maltose
Piperazines
Pulmonary Artery
Pyrimidines
Rats, Sprague-Dawley
Signal Transduction
Time Factors
Transferrin
Vascular Remodeling
Cardiovascular System & Hematology
1103 Clinical Sciences
1102 Cardiovascular Medicine And Haematology
Publication Status
Published
Date Publish Online
2015-03-12