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Mechanisms of homocysteine-induced oxidative stress
Neetu Tyagi1, Kara C Sedoris, Mesia Steed
1Dept. of Physiology and Biophysics, School of Medicine, 500 S. Preston St., 1115-A, Univ. of Louisville, Louisville, KY 40202, USA.
Insights
High homocysteine (Hcy) levels increase oxidative stress and reduce nitric oxide (NO) bioavailability in heart cells. This occurs by activating PAR-4, boosting NADPH oxidase, and reducing DDAH expression, leading to cardiovascular risks.
Area of Science:
- Cardiovascular Biology
- Oxidative Stress Research
- Endothelial Cell Function
Background:
- Hyperhomocysteinemia is linked to cardiovascular disease but its molecular mechanisms, particularly oxidative stress induction by homocysteine (Hcy), remain unclear.
- Understanding how Hcy affects endothelial cells is crucial for elucidating its role in cardiovascular morbidity and mortality.
Purpose of the Study:
- To investigate the molecular mechanisms by which Hcy induces oxidative stress and reduces nitric oxide (NO) bioavailability in cardiac microvascular endothelial cells (MVEC).
Main Methods:
- MVEC were cultured with varying concentrations of Hcy (0-100 microM) for different durations (0-24 h).
- Gene expression of key proteins (PARs, thioredoxin, NADPH oxidase, NOS isoforms, DDAH) was analyzed using RT-PCR.
- Reactive oxygen species (ROS), asymmetric dimethylarginine (ADMA), and NO levels were quantified.
Main Results:
- Hcy significantly upregulated inducible NO synthase (iNOS) and downregulated endothelial NO synthase (eNOS), without affecting neuronal NO synthase (nNOS).
- Hcy caused significant accumulation of ADMA due to reduced DDAH expression and increased nitrotyrosine formation.
- Hcy activated PAR-4, leading to increased NADPH oxidase and decreased thioredoxin expression, thereby enhancing ROS production.
Conclusions:
- Hcy reduces NO bioavailability in MVEC through increased oxidative stress (via PAR-4 activation, NADPH oxidase induction, and thioredoxin downregulation) and ADMA accumulation (due to DDAH downregulation).
- These molecular events provide insight into the pathogenic mechanisms linking hyperhomocysteinemia to cardiovascular complications.
Abstract:
Hyperhomocysteinemia decreases vascular reactivity and is associated with cardiovascular morbidity and mortality. However, pathogenic mechanisms that increase oxidative stress by homocysteine (Hcy) are unsubstantiated. The aim of this study was to examine the molecular mechanism by which Hcy triggers oxidative stress and reduces bioavailability of nitric oxide (NO) in cardiac microvascular endothelial cells (MVEC). MVEC were cultured for 0-24 h with 0-100 microM Hcy. Differential expression of protease-activated receptors (PARs), thioredoxin, NADPH oxidase, endothelial NO synthase, inducible NO synthase, neuronal NO synthase, and dimethylarginine-dimethylaminohydrolase (DDAH) were measured by real-time quantitative RT-PCR. Reactive oxygen species were measured by using a fluorescent probe, 2',7'-dichlorofluorescein diacetate. Levels of asymmetric dimethylarginine (ADMA) were measured by ELISA and NO levels by the Griess method in the cultured MVEC. There were no alterations in the basal NO levels with 0-100 microM Hcy and 0-24 h of treatment. However, Hcy significantly induced inducible NO synthase and decreased endothelial NO synthase without altering neuronal NO synthase levels. There was significant accumulation of ADMA, in part because of reduced DDAH expression by Hcy in MVEC. Nitrotyrosine expression was increased significantly by Hcy. The results suggest that Hcy activates PAR-4, which induces production of reactive oxygen species by increasing NADPH oxidase and decreasing thioredoxin expression and reduces NO bioavailability in cultured MVEC by 1) increasing NO2-tyrosine formation and 2) accumulating ADMA by decreasing DDAH expression.
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