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Molecular Analysis of Endothelial-mesenchymal Transition Induced by Transforming Growth Factor-β Signaling
Published on: August 3, 2018
SGLT2 inhibitors attenuate endothelial to mesenchymal transition and cardiac fibroblast activation
Kevin Schmidt1,2,3, Arne Schmidt1,2,3, Sonja Groß1
1Institute of Molecular and Translational Therapeutic Strategies (IMTTS), Hannover Medical School, Hannover, Germany.
Abstract:
Beneficial effects of sodium glucose co-transporter 2 inhibitors (SGLT2is) in cardiovascular diseases have been extensively reported leading to the inclusion of these drugs in the treatment guidelines for heart failure. However, molecular actions especially on non-myocyte cells remain uncertain. We observed dose-dependent inhibitory effects of two SGLT2is, dapagliflozin (DAPA) and empagliflozin (EMPA), on inflammatory signaling in human umbilical vein endothelial cells. Proteomic analyses and subsequent enrichment analyses discovered profound effects of these SGLT2is on proteins involved in mitochondrial respiration and actin cytoskeleton. Validation in functional oxygen consumption measurements as well as tube formation and migration assays revealed strong impacts of DAPA. Considering that most influenced parameters played central roles in endothelial to mesenchymal transition (EndMT), we performed in vitro EndMT assays and identified substantial reduction of mesenchymal and fibrosis marker expression as well as changes in cellular morphology upon treatment with SGLT2is. In line, human cardiac fibroblasts exposed to DAPA showed less proliferation, reduced ATP production, and decelerated migration capacity while less extensive impacts were observed upon EMPA. Mechanistically, sodium proton exchanger 1 (NHE1) as well as sodium-myoinositol cotransporter (SMIT) and sodium-multivitamin cotransporter (SMVT) could be identified as relevant targets of SGLT2is in non-myocyte cardiovascular cells as validated by individual siRNA-knockdown experiments. In summary, we found comprehensive beneficial effects of SGLT2is on human endothelial cells and cardiac fibroblasts. The results of this study therefore support a distinct effect of selected SGLT2i on non-myocyte cardiovascular cells and grant further insights into potential molecular mode of action of these drugs.
Insights
Sodium glucose co-transporter 2 inhibitors (SGLT2is) show beneficial effects on non-myocyte cardiovascular cells, reducing inflammation and inhibiting endothelial to mesenchymal transition. These SGLT2is target key proteins, offering new insights into cardiovascular disease treatment.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Cell Biology
Background:
- Sodium glucose co-transporter 2 inhibitors (SGLT2is) are established treatments for heart failure.
- The precise molecular mechanisms of SGLT2is, particularly in non-myocyte cardiovascular cells, require further elucidation.
Purpose of the Study:
- To investigate the effects of SGLT2is, dapagliflozin (DAPA) and empagliflozin (EMPA), on inflammatory signaling and cellular processes in human endothelial cells and cardiac fibroblasts.
- To identify molecular targets of SGLT2is in non-myocyte cardiovascular cells.
Main Methods:
- In vitro assays using human umbilical vein endothelial cells and human cardiac fibroblasts.
- Proteomic analysis, oxygen consumption measurements, tube formation, migration, and endothelial to mesenchymal transition (EndMT) assays.
- siRNA-knockdown experiments to validate molecular targets.
Main Results:
- Dapagliflozin and empagliflozin inhibited inflammatory signaling and endothelial to mesenchymal transition in endothelial cells.
- SGLT2is impacted mitochondrial respiration and actin cytoskeleton proteins.
- Dapagliflozin significantly reduced cardiac fibroblast proliferation, ATP production, and migration, with less pronounced effects from empagliflozin.
- Sodium proton exchanger 1 (NHE1), sodium-myoinositol cotransporter (SMIT), and sodium-multivitamin cotransporter (SMVT) were identified as relevant targets.
Conclusions:
- SGLT2is exert beneficial effects on human endothelial cells and cardiac fibroblasts.
- These findings support distinct actions of SGLT2is on non-myocyte cardiovascular cells.
- The study provides novel insights into the molecular mechanisms underlying the cardiovascular benefits of SGLT2is.
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