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Induction and Characterization of Pulmonary Hypertension in Mice using the Hypoxia/SU5416 Model
Published on: June 3, 2020
Hypoxic pulmonary hypertension in mice with constitutively active platelet-derived growth factor receptor-β
Bhola K Dahal1, Rainer Heuchel, Soni Savai Pullamsetti
1University of Giessen Lung Centre (UGLC), Giessen, Germany.
Abstract:
Platelet-derived growth factor (PDGF) has been implicated in the pathobiology of vascular remodeling. The multikinase inhibitor imatinib that targets PDGF receptor (PDGFR), c-kit and Abl kinases, shows therapeutic efficacy against experimental pulmonary hypertension (PH); however, the role of PDGFR-b in experimental PH has not been examined by genetic approach. We investigated the chronic hypoxia-induced PH in mice carrying an activating point mutation of PDGFR-β (D849N) and evaluated the therapeutic efficacy of imatinib. In addition, we studied pulmonary global gene expression and confirmed the expression of identified genes by immunohistochemistry. Chronically hypoxic D849N mice developed PH and strong pulmonary vascular remodeling that was improved by imatinib (100 mg/kg/day) as evident from the significantly reduced right ventricular systolic pressure, right ventricular hypertrophy and muscularization of peripheral pulmonary arteries. Global gene expression analysis revealed that stromal cell derived factor SDF)-1α was significantly upregulated, which was confirmed by immunohistochemistry. Moreover, an enhanced immunoreactivity for SDF-1α, PDGFR-β and CXCR4, the receptor for SDF-1α was localized to the α-smooth muscle cell (SMC) actin positive pulmonary vascular cells in hypoxic mice and patients with idiopathic pulmonary arterial hypertension (IPAH). In conclusion, our findings substantiate the major role of PDGFR activation in pulmonary vascular remodeling by a genetic approach. Immunohistochemistry findings suggest a role for SDF-1α/CXCR4 axis in pulmonary vascular remodeling and point to a potential interaction between the chemokine SDF-1 and the growth factor PDGF signaling. Future studies designed to elucidate an interaction between the chemokine SDF-1 and the PDGF system may uncover novel therapeutic targets.
Insights
Genetic activation of platelet-derived growth factor receptor-beta (PDGFR-β) drives pulmonary hypertension and vascular remodeling. Imatinib treatment improved these conditions, suggesting PDGFR-β is a key therapeutic target for pulmonary hypertension.
Area of Science:
- Cardiovascular Research
- Pulmonary Hypertension Pathobiology
- Molecular Medicine
Background:
- Platelet-derived growth factor (PDGF) signaling is implicated in vascular remodeling.
- Imatinib, a multikinase inhibitor, shows efficacy in experimental pulmonary hypertension (PH).
- The specific role of PDGFR-β in PH pathogenesis via genetic mechanisms remains underexplored.
Purpose of the Study:
- To investigate the role of PDGFR-β in chronic hypoxia-induced PH using a genetic mouse model.
- To evaluate the therapeutic efficacy of imatinib in this model.
- To explore pulmonary gene expression changes and identify potential signaling pathways involved in PH.
Main Methods:
- Utilized mice with an activating PDGFR-β mutation (D849N) exposed to chronic hypoxia.
- Administered imatinib (100 mg/kg/day) to assess therapeutic effects.
- Performed global pulmonary gene expression analysis and confirmed findings via immunohistochemistry.
Main Results:
- Hypoxic D849N mice developed PH and significant pulmonary vascular remodeling.
- Imatinib treatment ameliorated PH, reducing right ventricular systolic pressure, hypertrophy, and pulmonary artery muscularization.
- Upregulation of stromal cell-derived factor (SDF)-1α was observed, with enhanced SDF-1α, PDGFR-β, and CXCR4 immunoreactivity in pulmonary vascular cells.
Conclusions:
- Genetic activation of PDGFR-β plays a significant role in pulmonary vascular remodeling in PH.
- The SDF-1α/CXCR4 axis is implicated in PH pathogenesis, potentially interacting with PDGF signaling.
- Targeting PDGFR activation and the SDF-1α/CXCR4 pathway may offer novel therapeutic strategies for PH.
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