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Published on: July 30, 2014
Fibrillin-1-regulated miR-122 has a critical role in thoracic aortic aneurysm formation
Rong-Mo Zhang1, Kerstin Tiedemann2,3, Muthu L Muthu1
1Faculty of Medicine and Health Sciences, McGill University, Montreal, Canada.
Abstract:
Thoracic aortic aneurysms (TAA) in Marfan syndrome, caused by fibrillin-1 mutations, are characterized by elevated cytokines and fragmentated elastic laminae in the aortic wall. This study explored whether and how specific fibrillin-1-regulated miRNAs mediate inflammatory cytokine expression and elastic laminae degradation in TAA. miRNA expression profiling at early and late TAA stages using a severe Marfan mouse model (Fbn1mgR/mgR) revealed a spectrum of differentially regulated miRNAs. Bioinformatic analyses predicted the involvement of these miRNAs in inflammatory and extracellular matrix-related pathways. We demonstrate that upregulation of pro-inflammatory cytokines and matrix metalloproteinases is a common characteristic of mouse and human TAA tissues. miR-122, the most downregulated miRNA in the aortae of 10-week-old Fbn1mgR/mgR mice, post-transcriptionally upregulated CCL2, IL-1β and MMP12. Similar data were obtained at 70 weeks of age using Fbn1C1041G/+ mice. Deficient fibrillin-1-smooth muscle cell interaction suppressed miR-122 levels. The marker for tissue hypoxia HIF-1α was upregulated in the aortic wall of Fbn1mgR/mgR mice, and miR-122 was reduced under hypoxic conditions in cell and organ cultures. Reduced miR-122 was partially rescued by HIF-1α inhibitors, digoxin and 2-methoxyestradiol in aortic smooth muscle cells. Digoxin-treated Fbn1mgR/mgR mice demonstrated elevated miR-122 and suppressed CCL2 and MMP12 levels in the ascending aortae, with reduced elastin fragmentation and aortic dilation. In summary, this study demonstrates that miR-122 in the aortic wall inhibits inflammatory responses and matrix remodeling, which is suppressed by deficient fibrillin-1-cell interaction and hypoxia in TAA.
Insights
MicroRNA-122 (miR-122) plays a crucial role in thoracic aortic aneurysms (TAA) by suppressing inflammation and matrix degradation. Its downregulation in Marfan syndrome is linked to disease progression, but can be restored with treatments like digoxin.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Genetics
Background:
- Marfan syndrome, caused by fibrillin-1 mutations, leads to thoracic aortic aneurysms (TAA) characterized by inflammation and elastic laminae degradation.
- Specific microRNAs (miRNAs) are implicated in regulating these pathological processes in TAA.
Purpose of the Study:
- To investigate the role of fibrillin-1-regulated miRNAs in mediating inflammatory cytokine expression and elastic laminae degradation in TAA.
- To explore the therapeutic potential of targeting these miRNAs in TAA.
Main Methods:
- Utilized a severe Marfan mouse model (Fbn1mgR/mgR) and a milder model (Fbn1C1041G/+) for miRNA expression profiling at different TAA stages.
- Employed bioinformatic analyses to predict miRNA involvement in inflammatory and extracellular matrix pathways.
- Investigated the impact of hypoxia and fibrillin-1 deficiency on miR-122 levels and tested therapeutic interventions with digoxin and 2-methoxyestradiol.
Main Results:
- Downregulation of miR-122 was observed in Marfan mouse models with TAA, correlating with increased CCL2, IL-1β, and MMP12 expression.
- Deficient fibrillin-1-smooth muscle cell interaction and hypoxia suppressed miR-122 levels.
- Treatment with digoxin in Marfan mice elevated miR-122, suppressed inflammatory markers and MMP12, reduced elastin fragmentation, and mitigated aortic dilation.
Conclusions:
- miR-122 acts as a key inhibitor of inflammatory responses and matrix remodeling in the aortic wall.
- Fibrillin-1 deficiency and hypoxia contribute to miR-122 suppression in TAA.
- Restoring miR-122 levels, for example, with digoxin, shows promise for treating TAA in Marfan syndrome.
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