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Novel genomic targets in oxidant-induced vascular injury
C R Partridge1, E S Williams, R Barhoumi
1Department of Veterinary Physiology and Pharmacology, Texas A&M University, College Station, 77843, USA.
Abstract:
To study the complex interaction between oxidative injury and the pathogenesis of vascular disease, vascular gene expression was examined in male Sprague-Dawley rats given 35 or 70 mg/kg allylamine, a synthetic amine converted to acrolein and hydrogen peroxide within the vascular wall. Vascular lesions and extensive vascular remodeling, coupled to increased production of 8-epi-PGF2alpha, nuclear localization of NFkappaB, and alterations in glutathione homeostasis, were observed in animals treated with allylamine for up to 20 days. Transcriptional profiling, immunohistochemistry, and in situ hybridization showed that genes involved in adhesion and extracellular matrix (ECM) (alpha(1) integrin, collagen), cytoskeletal rearrangements (alpha-smooth muscle actin, alpha-tropomyosin), and signal transduction (NFkappaB, osteopontin, and LINE) were altered by oxidant treatment. To evaluate mechanisms of gene dysregulation, cultured aortic smooth muscle cells were challenged with allylamine or its metabolites and processed for molecular analysis. These agents increased formation of reactive oxygen species and elicited changes in gene expression similar to those observed in vivo. Oxidative stress and changes in gene expression were inhibited by N-acetyl cysteine, a precursor of glutathione. These results indicate that genes along the ECM-integrin-cytoskeletal axis, in addition to LINE, are molecular targets in oxidant-induced vascular injury.
Insights
Oxidative stress from allylamine causes vascular disease by altering genes involved in the extracellular matrix and cytoskeleton. N-acetyl cysteine protected against these harmful effects, suggesting new therapeutic targets.
Area of Science:
- Cardiovascular Biology
- Molecular Toxicology
- Vascular Biology
Background:
- Oxidative injury is a key factor in vascular disease pathogenesis.
- Allylamine exposure induces oxidative stress and vascular damage in animal models.
- Understanding gene expression changes is crucial for identifying therapeutic targets.
Purpose of the Study:
- To investigate the intricate relationship between oxidative injury and vascular disease.
- To identify specific genes and molecular pathways dysregulated by allylamine-induced oxidative stress.
- To explore the protective effects of N-acetyl cysteine against vascular damage.
Main Methods:
- Male Sprague-Dawley rats were treated with allylamine (35 or 70 mg/kg).
- Vascular gene expression was analyzed using transcriptional profiling, immunohistochemistry, and in situ hybridization.
- Cultured aortic smooth muscle cells were used to examine molecular mechanisms.
- Reactive oxygen species (ROS) production and glutathione homeostasis were assessed.
Main Results:
- Allylamine treatment led to vascular lesions, remodeling, and increased 8-epi-PGF2alpha production.
- Key genes in extracellular matrix (ECM), integrin, and cytoskeletal pathways were altered.
- Allylamine increased ROS formation and induced gene expression changes in cultured cells.
- N-acetyl cysteine mitigated oxidative stress and gene expression alterations.
Conclusions:
- Genes within the ECM-integrin-cytoskeletal axis and LINE are molecular targets in oxidant-induced vascular injury.
- Oxidative stress plays a significant role in the pathogenesis of vascular disease.
- N-acetyl cysteine demonstrates potential as a therapeutic agent by inhibiting oxidative stress and gene dysregulation.
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