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Published on: August 13, 2019
Estradiol Downregulates MicroRNA-193a to Mediate Its Anti-Mitogenic Actions on Human Coronary Artery Smooth Muscle
Lisa Rigassi1, Marinella Rosselli1, Brigitte Leeners1
1Department of Obstetrics and Gynaecology, Clinic for Reproductive Endocrinology, University Hospital Zurich, 8952 Schlieren, Switzerland.
Abstract:
The abnormal growth of smooth muscle cells (SMCs) contributes to the vascular remodeling associated with coronary artery disease, a leading cause of death in women. Estradiol (E2) mediates cardiovascular protective actions, in part, by inhibiting the abnormal growth (proliferation and migration) of SMCs through various mechanism. Since microRNAs (miRNAs) play a major role in regulating cell growth and vascular remodeling, we hypothesize that miRNAs may mediate the protective actions of E2. Following preliminary leads from E2-regulated miRNAs, we found that platelet-derived growth factor (PDGF)-BB-induced miR-193a in SMCs is downregulated by E2 via estrogen receptor (ER)α, but not the ERβ or G-protein-coupled estrogen receptor (GPER). Importantly, miR-193a is actively involved in regulating SMC functions. The ectopic expression of miR-193a induced vascular SMC proliferation and migration, while its suppression with antimir abrogated PDGF-BB-induced growth, effects that were similar to E2. Importantly, the restoration of miR-193a abrogated the anti-mitogenic actions of E2 on PDGF-BB-induced growth, suggesting a key role of miR-193a in mediating the growth inhibitory actions of E2 in vascular SMCs. E2-abrogated PDGF-BB, but not miR-193a, induced SMC growth, suggesting that E2 blocks the PDGF-BB-induced miR-193a formation to mediate its anti-mitogenic actions. Interestingly, the PDGF-BB-induced miR-193a formation in SMCs was also abrogated by 2-methoxyestradiol (2ME), an endogenous E2 metabolite that inhibits SMC growth via an ER-independent mechanism. Furthermore, we found that miR-193a induces SMC growth by activating the phosphatidylinositol 3-kinases (PI3K)/Akt signaling pathway and promoting the G1 to S phase progression of the cell cycle, by inducing Cyclin D1, Cyclin Dependent Kinase 4 (CDK4), Cyclin E, and proliferating-cell-nuclear-antigen (PCNA) expression and Retinoblastoma-protein (RB) phosphorylation. Importantly, in mice, treatment with miR-193a antimir, but not its control, prevented cuff-induced vascular remodeling and significantly reducing the vessel-wall-to-lumen ratio in animal models. Taken together, our findings provide the first evidence that miR-193a promotes SMC proliferation and migration and may play a key role in PDGF-BB-induced vascular remodeling/occlusion. Importantly, E2 prevents PDGF-BB-induced SMC growth by downregulating miR-193a formation in SMCs. Since, miR-193a antimir prevents SMC growth as well as cuff-induced vascular remodeling, it may represent a promising therapeutic molecule against cardiovascular disease.
Insights
Estradiol (E2) protects against cardiovascular disease by downregulating miR-193a, a microRNA that promotes smooth muscle cell growth. Inhibiting miR-193a may offer a novel therapeutic strategy for vascular remodeling and related diseases.
Area of Science:
- Cardiovascular Biology
- Molecular Endocrinology
- Vascular Cell Biology
Background:
- Abnormal smooth muscle cell (SMC) growth drives vascular remodeling in coronary artery disease.
- Estradiol (E2) exhibits cardiovascular protective effects by inhibiting SMC proliferation and migration.
- MicroRNAs (miRNAs) are key regulators of cell growth and vascular remodeling, potentially mediating E2's protective actions.
Purpose of the Study:
- To investigate the role of miRNAs in mediating the cardiovascular protective effects of E2.
- To determine if miR-193a mediates E2's inhibition of SMC proliferation and migration.
- To explore the therapeutic potential of targeting miR-193a in vascular remodeling.
Main Methods:
- Investigated E2 regulation of PDGF-BB-induced miR-193a in SMCs via estrogen receptors (ERα, ERβ, GPER).
- Assessed the effects of ectopic miR-193a expression and antimir suppression on SMC proliferation and migration.
- Utilized mouse models of vascular remodeling (cuff-induced) to evaluate the in vivo efficacy of miR-193a antimir.
Main Results:
- E2, via ERα, downregulates PDGF-BB-induced miR-193a in SMCs; miR-193a promotes SMC proliferation and migration.
- miR-193a antimir abrogated PDGF-BB-induced SMC growth and mimicked E2's anti-mitogenic effects.
- miR-193a antimir treatment prevented cuff-induced vascular remodeling in mice, reducing the vessel-wall-to-lumen ratio.
Conclusions:
- miR-193a promotes SMC proliferation and migration, playing a key role in PDGF-BB-induced vascular remodeling.
- E2 inhibits PDGF-BB-induced SMC growth by downregulating miR-193a formation.
- miR-193a antimir represents a potential therapeutic agent for cardiovascular diseases characterized by vascular remodeling.
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