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;

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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