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Peroxisome proliferator-activated receptor-γ enhances human pulmonary artery smooth muscle cell apoptosis through
David E Green1, Tamara C Murphy2, Bum-Yong Kang2
1Department of Medicine, Division of Pulmonary, Allergy, and Critical Care Medicine, Atlanta Veterans Affairs Medical Center/Emory University, Atlanta, Georgia degree4@emory.edu.
Abstract:
Pulmonary hypertension (PH) is a progressive disorder whose cellular pathogenesis involves enhanced smooth muscle cell (SMC) proliferation and resistance to apoptosis signals. Existing evidence demonstrates that the tumor suppressor programmed cell death 4 (PDCD4) affects patterns of cell growth and repair responses in the systemic vasculature following experimental injury. In the current study, the regulation PDCD4 and its functional effects on growth and apoptosis susceptibility in pulmonary artery smooth muscle cells were explored. We previously demonstrated that pharmacological activation of the nuclear transcription factor peroxisome proliferator-activated receptor-γ (PPARγ) attenuated hypoxia-induced proliferation of human pulmonary artery smooth muscle cells (HPASMCs) by inhibiting the expression and mitogenic functions of microRNA-21 (miR-21). In the current study, we hypothesize that PPARγ stimulates PDCD4 expression and HPASMC apoptosis by inhibiting miR-21. Our findings demonstrate that PDCD4 is reduced in the mouse lung upon exposure to chronic hypoxia (10% O2 for 3 wk) and in hypoxia-exposed HPASMCs (1% O2). HPASMC apoptosis was reduced by hypoxia, by miR-21 overexpression, or by siRNA-mediated PPARγ and PDCD4 depletion. Activation of PPARγ inhibited miR-21 expression and resultant proliferation, while restoring PDCD4 levels and apoptosis to baseline. Additionally, pharmacological activation of PPARγ with rosiglitazone enhanced PDCD4 protein expression and apoptosis in a dose-dependent manner as demonstrated by increased annexin V detection by flow cytometry. Collectively, these findings demonstrate that PPARγ confers growth-inhibitory signals in hypoxia-exposed HPASMCs through suppression of miR-21 and the accompanying derepression of PDCD4 that augments HPASMC susceptibility to undergo apoptosis.
Insights
Peroxisome proliferator-activated receptor-γ (PPARγ) activation reduces pulmonary hypertension by inhibiting microRNA-21 and increasing programmed cell death 4 (PDCD4), promoting apoptosis in pulmonary artery smooth muscle cells.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Cellular Pathophysiology
Background:
- Pulmonary hypertension (PH) involves increased pulmonary artery smooth muscle cell (SMC) proliferation and resistance to apoptosis.
- Programmed cell death 4 (PDCD4) is a tumor suppressor influencing vascular cell growth and repair.
- Peroxisome proliferator-activated receptor-γ (PPARγ) activation inhibits hypoxia-induced proliferation in human pulmonary artery smooth muscle cells (HPASMCs) via microRNA-21 (miR-21) inhibition.
Purpose of the Study:
- To investigate the regulation of PDCD4 and its functional role in HPASMC growth and apoptosis.
- To test the hypothesis that PPARγ stimulates PDCD4 expression and HPASMC apoptosis by inhibiting miR-21.
Main Methods:
- Chronic hypoxia exposure in mice and HPASMCs to assess PDCD4 levels.
- Manipulation of miR-21, PPARγ, and PDCD4 expression using overexpression and siRNA.
- Pharmacological activation of PPARγ with rosiglitazone and assessment of apoptosis via flow cytometry (annexin V detection).
Main Results:
- PDCD4 expression was reduced in mouse lungs and HPASMCs under hypoxia.
- Hypoxia, miR-21 overexpression, or depletion of PPARγ/PDCD4 reduced HPASMC apoptosis.
- PPARγ activation suppressed miR-21, restored PDCD4 levels, and increased HPASMC apoptosis.
- Rosiglitazone dose-dependently enhanced PDCD4 protein and HPASMC apoptosis.
Conclusions:
- PPARγ activation inhibits hypoxia-induced HPASMC proliferation by suppressing miR-21.
- This suppression leads to derepression of PDCD4, enhancing HPASMC apoptosis.
- PPARγ signaling represents a potential therapeutic target for pulmonary hypertension by modulating cell death pathways.
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