Key result
Chemogenetic generation of endothelial hydrogen peroxide in DAAO-TGTie2 mice caused hypertension and abdominal aortic aneurysms, which was completely blocked by pharmacological DUSP3 inhibition.
Why the study?
Pathological oxidative stress is implicated in aortic aneurysm development, but animal models using chemogenetic approaches to study this mechanism are needed.
Does chemogenetic oxidative stress induced by d-alanine in DAAO-TGTie2 mice cause aortic aneurysm formation?
Does chemogenetic oxidative stress induced by d-alanine in DAAO-TGTie2 mice cause aortic aneurysm formation?
p-value: p=<0.001
Endothelial-specific oxidative stress causes abdominal, but not thoracic, aortic aneurysms via DUSP3-mediated JNK1 dephosphorylation and vascular smooth muscle cell phenotypic switching.
Should not yet change AAA practice; leaves open DUSP3 targeting and human relevance of regional endothelial ROS signaling.
Aortic aneurysms are potentially fatal focal enlargements of the aortic lumen; the disease burden is increasing as the human population ages. Pathological oxidative stress is implicated in the development of aortic aneurysms. We pursued a chemogenetic approach to create an animal model of aortic aneurysm formation using a transgenic mouse line, DAAO-TGTie2, that expresses yeast d-amino acid oxidase (DAAO) under control of the endothelial Tie2 promoter. In DAAO-TGTie2 mice, DAAO generated the ROS hydrogen peroxide (H2O2) in endothelial cells only when provided with d-amino acids. When DAAO-TGTie2 mice were chronically fed d-alanine, the animals became hypertensive and developed abdominal, but not thoracic, aortic aneurysms. Generation of H2O2 in the endothelium led to oxidative stress throughout the vascular wall. Proteomics analyses indicated that the oxidant-modulated protein kinase JNK1 was dephosphorylated by the phosphoprotein phosphatase DUSP3 (dual specificity phosphatase 3) in abdominal, but not thoracic, aorta, causing activation of Kruppel-like Factor 4 (KLF4)-dependent transcriptional pathways that triggered phenotypic switching and aneurysm formation. Pharmacological DUSP3 inhibition completely blocked the aneurysm formation caused by chemogenetic oxidative stress. These studies establish that regional differences in oxidant-modulated signaling pathways lead to differential disease progression in discrete vascular beds and identify DUSP3 as a potential pharmacological target for the treatment of aortic aneurysms.
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Das et al. (2025) studied Aortic aneurysm and hypertension. d-alanine (chemogenetic oxidative stress) vs. l-alanine or wild-type littermates was evaluated on Survival and development of abdominal aortic aneurysms (p=<0.001). Chemogenetic generation of endothelial hydrogen peroxide in DAAO-TGTie2 mice caused hypertension and abdominal aortic aneurysms, which was completely blocked by pharmacological DUSP3 inhibition.
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