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Published on: May 14, 2020
miR-29b participates in early aneurysm development in Marfan syndrome
Denis R Merk1, Jocelyn T Chin, Benjamin A Dake
1Department of Cardiothoracic Surgery, 300 Pasteur Drive, Falk Cardiovascular Research Building, Stanford University, Stanford, CA 94305, USA.
Rationale:
Marfan syndrome (MFS) is a systemic connective tissue disorder notable for the development of aortic root aneurysms and the subsequent life-threatening complications of aortic dissection and rupture. Underlying fibrillin-1 gene mutations cause increased transforming growth factor-β (TGF-β) signaling. Although TGF-β blockade prevents aneurysms in MFS mouse models, the mechanisms through which excessive TGF-β causes aneurysms remain ill-defined.
Objective:
We investigated the role of microRNA-29b (miR-29b) in aneurysm formation in MFS.
Methods And Results:
Using quantitative polymerase chain reaction, we discovered that miR-29b, a microRNA regulating apoptosis and extracellular matrix synthesis/deposition genes, is increased in the ascending aorta of Marfan (Fbn1(C1039G/+)) mice. Increased apoptosis, assessed by increased cleaved caspase-3 and caspase-9, enhanced caspase-3 activity, and decreased levels of the antiapoptotic proteins, Mcl-1 and Bcl-2, were found in the Fbn1(C1039G/+) aorta. Histological evidence of decreased and fragmented elastin was observed exclusively in the Fbn1(C1039G/+) ascending aorta in association with repressed elastin mRNA and increased matrix metalloproteinase-2 expression and activity, both targets of miR-29b. Evidence of decreased activation of nuclear factor κB, a repressor of miR-29b, and a factor suppressed by TGF-β, was also observed in Fbn1(C1039G/+) aorta. Furthermore, administration of a nuclear factor κB inhibitor increased miR-29b levels, whereas TGF-β blockade or losartan effectively decreased miR-29b levels in Fbn1(C1039G/+) mice. Finally, miR-29b blockade by locked nucleic acid antisense oligonucleotides prevented early aneurysm development, aortic wall apoptosis, and extracellular matrix deficiencies.
Conclusions:
We identify increased miR-29b expression as key to the pathogenesis of early aneurysm development in MFS by regulating aortic wall apoptosis and extracellular matrix abnormalities.
Insights
Increased microRNA-29b (miR-29b) drives Marfan syndrome aortic aneurysms by promoting cell death and damaging the extracellular matrix. Blocking miR-29b prevents these changes, offering a potential therapeutic target for Marfan syndrome.
Area of Science:
- Cardiovascular Genetics
- Molecular Biology
- Connective Tissue Disorders
Background:
- Marfan syndrome (MFS) is a genetic disorder affecting connective tissue, leading to aortic root aneurysms and potentially fatal aortic dissection or rupture.
- Mutations in the fibrillin-1 gene elevate transforming growth factor-beta (TGF-β) signaling, but the precise mechanisms driving aneurysm formation are not fully understood.
Purpose of the Study:
- To investigate the role of microRNA-29b (miR-29b) in the development of aortic aneurysms in a mouse model of Marfan syndrome.
Main Methods:
- Quantitative polymerase chain reaction (qPCR) was used to measure miR-29b levels in the aorta of Marfan mice (Fbn1(C1039G/+)).
- Apoptosis, extracellular matrix integrity (elastin), and matrix metalloproteinase activity were assessed.
- The influence of nuclear factor κB (NF-κB), TGF-β, and losartan on miR-29b levels was examined, and the effect of miR-29b blockade was evaluated.
Main Results:
- miR-29b levels were significantly increased in the ascending aorta of Marfan mice.
- These mice exhibited enhanced apoptosis, reduced elastin, and increased matrix metalloproteinase-2 activity, all linked to miR-29b regulation.
- miR-29b blockade effectively prevented aneurysm development, aortic apoptosis, and extracellular matrix abnormalities in Marfan mice.
Conclusions:
- Elevated miR-29b expression is a critical factor in the early pathogenesis of Marfan syndrome-associated aortic aneurysms.
- miR-29b contributes to disease progression by modulating aortic wall apoptosis and extracellular matrix integrity.
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