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NADPH oxidase 4 attenuates cerebral artery changes during the progression of Marfan syndrome
Yara Onetti1, Thayna Meirelles2, Ana P Dantas3
1Departament de Farmacologia, de Terapèutica i de Toxicologia, Institut de Neurociències, Facultat de Medicina, Universitat Autònoma de Barcelona, Bellaterra, Spain;
Abstract:
Marfan syndrome (MFS) is a connective tissue disorder that is often associated with the fibrillin-1 (Fbn1) gene mutation and characterized by cardiovascular alterations, predominantly ascending aortic aneurysms. Although neurovascular complications are uncommon in MFS, the improvement in Marfan patients' life expectancy is revealing other secondary alterations, potentially including neurovascular disorders. However, little is known about small-vessel pathophysiology in MFS. MFS is associated with hyperactivated transforming growth factor (TGF)-β signaling, which among numerous other downstream effectors, induces the NADPH oxidase 4 (Nox4) isoform of NADPH oxidase, a strong enzymatic source of H2O2 We hypothesized that MFS induces middle cerebral artery (MCA) alterations and that Nox4 contributes to them. MCA properties from 3-, 6-, or 9-mo-old Marfan (Fbn1(C1039G/+)) mice were compared with those from age/sex-matched wild-type littermates. At 6 mo, Marfan compared with wild-type mice developed higher MCA wall/lumen (wild-type: 0.081 ± 0.004; Marfan: 0.093 ± 0.002; 60 mmHg; P < 0.05), coupled with increased reactive oxygen species production, TGF-β, and Nox4 expression. However, wall stiffness and myogenic autoregulation did not change. To investigate the influence of Nox4 on cerebrovascular properties, we generated Marfan mice with Nox4 deficiency (Nox4(-/-)). Strikingly, Nox4 deletion in Marfan mice aggravated MCA wall thickening (cross-sectional area; Marfan: 6,660 ± 363 μm(2); Marfan Nox4(-/-): 8,795 ± 824 μm(2); 60 mmHg; P < 0.05), accompanied by decreased TGF-β expression and increased collagen deposition and Nox1 expression. These findings provide the first evidence that Nox4 mitigates cerebral artery structural changes in a murine model of MFS.
Insights
Marfan syndrome (MFS) involves fibrillin-1 (Fbn1) gene mutations. This study shows NADPH oxidase 4 (Nox4) mitigates middle cerebral artery (MCA) changes in MFS mice, suggesting a novel therapeutic target for neurovascular complications.
Area of Science:
- Biomedical research
- Genetics
- Cardiovascular biology
Background:
- Marfan syndrome (MFS), linked to FBN1 mutations, primarily affects the aorta.
- Neurovascular complications in MFS are understudied despite increased life expectancy.
- Hyperactivated TGF-β signaling in MFS influences downstream effectors like NADPH oxidase 4 (Nox4).
Purpose of the Study:
- To investigate if MFS induces alterations in the middle cerebral artery (MCA).
- To determine the role of Nox4 in MFS-associated MCA pathophysiology.
- To explore potential neurovascular complications in MFS.
Main Methods:
- Comparison of MCA properties in Marfan (Fbn1(C1039G/+)) mice and wild-type littermates at 3, 6, and 9 months.
- Assessment of MCA wall/lumen ratio, reactive oxygen species (ROS), TGF-β, and Nox4 expression.
- Generation and analysis of Marfan mice with Nox4 deficiency (Nox4(-/-)) to evaluate Nox4's influence.
Main Results:
- Marfan mice exhibited increased MCA wall/lumen ratio, ROS production, TGF-β, and Nox4 expression at 6 months.
- MCA wall stiffness and myogenic autoregulation remained unchanged.
- Nox4 deletion in Marfan mice exacerbated MCA wall thickening, decreased TGF-β, and increased collagen and Nox1 expression.
Conclusions:
- Nox4 mitigates structural changes in the middle cerebral artery in a mouse model of Marfan syndrome.
- Findings suggest Nox4 plays a protective role against MFS-induced cerebrovascular alterations.
- This study provides the first evidence of Nox4's involvement in MFS neurovascular pathophysiology.
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