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Notch1 haploinsufficiency causes ascending aortic aneurysms in mice
Sara N. Koenig, Stephanie LaHaye, James D. Feller, Patrick Rowland, Kan N. Hor, Aaron J. Trask, Paul M.L. Janssen, Freddy Radtke, Brenda Lilly, Vidu Garg
Sara N. Koenig, Stephanie LaHaye, James D. Feller, Patrick Rowland, Kan N. Hor, Aaron J. Trask, Paul M.L. Janssen, Freddy Radtke, Brenda Lilly, Vidu Garg
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Research Article Cardiology

Notch1 haploinsufficiency causes ascending aortic aneurysms in mice

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Abstract

An ascending aortic aneurysm (AscAA) is a life-threatening disease whose molecular basis is poorly understood. Mutations in NOTCH1 have been linked to bicuspid aortic valve (BAV), which is associated with AscAA. Here, we describe a potentially novel role for Notch1 in AscAA. We found that Notch1 haploinsufficiency exacerbated the aneurysmal aortic root dilation seen in the Marfan syndrome mouse model and that heterozygous deletion of Notch1 in the second heart field (SHF) lineage recapitulated this exacerbated phenotype. Additionally, Notch1+/– mice in a predominantly 129S6 background develop aortic root dilation, indicating that loss of Notch1 is sufficient to cause AscAA. RNA sequencing analysis of the Notch1.129S6+/– aortic root demonstrated gene expression changes consistent with AscAA. These findings are the first to our knowledge to demonstrate an SHF lineage–specific role for Notch1 in AscAA and suggest that genes linked to the development of BAV may also contribute to the associated aortopathy.

Authors

Sara N. Koenig, Stephanie LaHaye, James D. Feller, Patrick Rowland, Kan N. Hor, Aaron J. Trask, Paul M.L. Janssen, Freddy Radtke, Brenda Lilly, Vidu Garg

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Figure 3

Exacerbated aneurysm phenotype observed in Notch1+/–;Fbn1C1039G/+ mice is recapitulated by deletion of Notch1 in second heart field lineage.

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Exacerbated aneurysm phenotype observed in Notch1+/–;Fbn1C1039G/+ mice i...
Notch1 heterozygosity was introduced in second heart field–derived cells with Mef2C-Cre+/– mice (denoted Notch1+/SHFdel). (A) Measurements of aortic diameter by echocardiography reveal recapitulation of exacerbated aortic dilation in Notch1+/–;Fbn1C1039G/+ mice, with ~40% of Notch1+/SHFdel;Fbn1C1039G/+ mice having more severe aortic dilation than the Notch1+/fl; Fbn1C1039G/+ mice. STJ, sinotubular junction; AscAo, ascending aorta (Notch1+/fl; Fbn1C1039G/+, n = 6; Notch1+/SHFdel;Fbn1C1039G/+, n = 8). (B and C) Gross images of ascending and transverse aorta show exacerbated aortic root dilation in Notch1+/SHFdel;Fbn1C1039G/+ mice as compared with Notch1+/fl; Fbn1C1039G/+ mice. H&E stain reveals substantial medial degeneration (D–G), accompanied by regional loss of elastin (black) and increased collagen deposition (yellow), as shown by Russell-Movat’s pentachrome staining (H–K) (n = 3/genotype). Scale bars: 200μm.

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