Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Aging‐Associated Nox4 ‐Mediated Mitochondrial Reactive Oxygen Species and DNA Damage Promote Vascular Cell Reprogramming and Aortic Remodeling in Abdominal Aneurysms

View through CrossRef
Background Aging and male sex are major risk factors for abdominal aortic aneurysm (AAA), a disease characterized by vascular cell phenotypic switching and aortic wall remodeling. Mitochondrial oxidative stress has been implicated in these changes. We previously demonstrated that NOX4 (NADPH oxidase 4) expression and activity increase with age in cardiovascular cells, promoting mitochondrial oxidative stress and vascular dysfunction. This study investigates whether NOX4‐driven mitochondrial oxidative stress and DNA damage promote AAA development through vascular cell reprogramming. Methods We used mitochondria‐targeted Nox4 ‐overexpressing ( Nox4 TG) mice with an Apoe −/− background to model angiotensin II (Ang II)‐induced AAA. AAA incidence, aortic morphology, reactive oxygen species levels, DNA damage markers, and wall remodeling parameters were assessed in Apoe −/− , Apoe −/− / Nox4 TG, and Apoe −/− /Nox4 −/− mice. Vascular cell populations were analyzed by spectral flow cytometry and gene expression profiling. In vitro, Ang II‐treated smooth muscle cells (SMCs) from wild‐type, Nox4 TG, and Nox4 −/− mice were evaluated for mitochondrial reactive oxygen species, DNA damage, and activation of inflammatory pathways. Results Apoe −/− /Nox4TG mice exhibited the highest AAA incidence, aortic dilation, reactive oxygen species levels, DNA damage, and inflammation, whereas Apoe −/− /Nox4 −/− mice were most protected. Macrophage‐like SMCs increased, and contractile SMCs decreased in Nox4 TG aortas. Ang II‐treated Nox4 TG SMCs showed elevated mitochondrial reactive oxygen species, DNA damage, and cyclic GMP‐AMP synthase‐STING (stimulator of interferon genes) activation. Flow cytometry analysis confirmed the presence of aneurysmal SMC with reduced ACTA2 (actin alpha 2, smooth muscle), MYH11 (myosin heavy chain 11), TAGLN (transgelin), and increased CD68, CD11b, and LGALS3 expression. Conclusions NOX4‐dependent mitochondrial DNA damage and activation of DNA‐sensing pathways promote SMC phenotypic switching, inflammation, and aortic wall remodeling in AAA. Targeting NOX4 and enhancing mitochondrial function may offer therapeutic strategies for AAA prevention.
Title: Aging‐Associated Nox4 ‐Mediated Mitochondrial Reactive Oxygen Species and DNA Damage Promote Vascular Cell Reprogramming and Aortic Remodeling in Abdominal Aneurysms
Description:
Background Aging and male sex are major risk factors for abdominal aortic aneurysm (AAA), a disease characterized by vascular cell phenotypic switching and aortic wall remodeling.
Mitochondrial oxidative stress has been implicated in these changes.
We previously demonstrated that NOX4 (NADPH oxidase 4) expression and activity increase with age in cardiovascular cells, promoting mitochondrial oxidative stress and vascular dysfunction.
This study investigates whether NOX4‐driven mitochondrial oxidative stress and DNA damage promote AAA development through vascular cell reprogramming.
Methods We used mitochondria‐targeted Nox4 ‐overexpressing ( Nox4 TG) mice with an Apoe −/− background to model angiotensin II (Ang II)‐induced AAA.
AAA incidence, aortic morphology, reactive oxygen species levels, DNA damage markers, and wall remodeling parameters were assessed in Apoe −/− , Apoe −/− / Nox4 TG, and Apoe −/− /Nox4 −/− mice.
Vascular cell populations were analyzed by spectral flow cytometry and gene expression profiling.
In vitro, Ang II‐treated smooth muscle cells (SMCs) from wild‐type, Nox4 TG, and Nox4 −/− mice were evaluated for mitochondrial reactive oxygen species, DNA damage, and activation of inflammatory pathways.
Results Apoe −/− /Nox4TG mice exhibited the highest AAA incidence, aortic dilation, reactive oxygen species levels, DNA damage, and inflammation, whereas Apoe −/− /Nox4 −/− mice were most protected.
Macrophage‐like SMCs increased, and contractile SMCs decreased in Nox4 TG aortas.
Ang II‐treated Nox4 TG SMCs showed elevated mitochondrial reactive oxygen species, DNA damage, and cyclic GMP‐AMP synthase‐STING (stimulator of interferon genes) activation.
Flow cytometry analysis confirmed the presence of aneurysmal SMC with reduced ACTA2 (actin alpha 2, smooth muscle), MYH11 (myosin heavy chain 11), TAGLN (transgelin), and increased CD68, CD11b, and LGALS3 expression.
Conclusions NOX4‐dependent mitochondrial DNA damage and activation of DNA‐sensing pathways promote SMC phenotypic switching, inflammation, and aortic wall remodeling in AAA.
Targeting NOX4 and enhancing mitochondrial function may offer therapeutic strategies for AAA prevention.

Related Results

Hypertension and Abdominal Aortic Aneurysms: Risk Factors, Diagnosis, and Endovascular Treatment
Hypertension and Abdominal Aortic Aneurysms: Risk Factors, Diagnosis, and Endovascular Treatment
Introduction: Hypertension is a chronic condition characterized by persistently elevated blood pressure, which significantly contributes to cardiovascular morbidity and mortality. ...
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Abstract Background: Age-associated epigenetic alteration is the underlying cause of DNA damage in aging cells. Two types of youth-associated DNA-protection epigenetic mark...
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Genome wide hypomethylation and youth-associated DNA gap reduction promoting DNA damage and senescence-associated pathogenesis
Introduction: The United States currently faces two opioid crises, an evolved crisis currently manifesting as widespread abuse of illicit opioids, and a crisis in pain management l...
The Dual Role of NOX4 in Cardiovascular Diseases: Driver of Oxidative Stress and Mediator of Adaptive Remodeling
The Dual Role of NOX4 in Cardiovascular Diseases: Driver of Oxidative Stress and Mediator of Adaptive Remodeling
NADPH oxidase 4 (NOX4) plays a crucial role in regulating cardiac function and pathology through its involvement in oxidative stress, fibrosis, and maladaptive remodeling. Studies ...
Blood pressure, hypertension, and the risk of aortic aneurysm in the UK Biobank
Blood pressure, hypertension, and the risk of aortic aneurysm in the UK Biobank
Abstract Background Although an association between elevated blood pressure and risk of aortic aneurysm is established, f...
Complex Collision Tumors: A Systematic Review
Complex Collision Tumors: A Systematic Review
Abstract Introduction: A collision tumor consists of two distinct neoplastic components located within the same organ, separated by stromal tissue, without histological intermixing...
NADPH-oxidase 4 gene over-expression in peripheral blood lymphocytes of the schizophrenia patients
NADPH-oxidase 4 gene over-expression in peripheral blood lymphocytes of the schizophrenia patients
Introduction Increased systemic oxidative stress is common in schizophrenia (SZ) patients. NADPH-oxidase 4 (NOX4) is the cell oxidoreductase, catalyzing the hydrogen peroxide forma...

Back to Top