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Oxidative stress and homocysteine in coronary artery disease
V Cavalca1, G Cighetti, F Bamonti
1Istituto di Cardiologia, Università degli Studi di Milano, 20138 Milan, Italy. viviana.cavalca@unimi.it
Insights
Elevated homocysteine (Hcy) is linked to cardiovascular disease (CVD), but doesn't fully explain oxidative damage. Increased malondialdehyde (MDA) indicates lipid peroxidation in coronary artery disease (CAD), with free MDA distinguishing unstable from stable angina.
Area of Science:
- Biochemistry
- Cardiology
- Oxidative Stress
Background:
- Cardiovascular diseases (CVDs) are associated with oxidative stress.
- Hyperhomocysteinemia, a risk factor for CVD, may induce oxygen free radical production.
Purpose of the Study:
- To investigate the role of homocysteine (Hcy) in oxidative stress within coronary artery disease (CAD).
- To assess plasma malondialdehyde (MDA) levels as an indicator of lipid peroxidation in CAD patients.
Main Methods:
- Measured plasma Hcy in 68 cardiovascular patients and 70 healthy controls.
- Quantified plasma MDA (free and total) in 40 CAD patients (stable and unstable angina) using gas chromatography-mass spectrometry.
- Utilized an immunoenzymatic method for Hcy measurement.
Main Results:
- Significantly higher plasma Hcy in cardiovascular patients versus controls (10.2 vs 8.9 micromol/L).
- Significantly elevated total MDA in CAD patients compared to controls (2.6 vs 1.3 micromol/L).
- Free MDA was significantly higher in CAD patients (0.4 vs 0.2 micromol/L) and further elevated in unstable angina versus stable angina (0.5 vs 0.3 micromol/L).
Conclusions:
- Moderate Hcy increase is associated with CVD, but not solely responsible for oxidative damage.
- Lipid peroxidation is implicated in CAD, evidenced by increased plasma MDA levels.
- Free MDA levels can differentiate between unstable and chronic stable angina, suggesting potential diagnostic utility.
Background:
Oxidative stress is present in cardiovascular diseases (CVDs), and hyperhomocysteinemia, an independent risk factor for these diseases, may play a role by inducing production of oxygen free radicals.
Methods:
To evaluate the possible role of homocysteine (Hcy) in inducing oxidative stress in coronary artery disease (CAD), plasma Hcy was measured in 68 consecutive cardiovascular patients, and plasma malondialdehyde (MDA), both free and total (free + bound), was measured in 40 patients with CAD (18 with chronic stable angina and 22 with unstable angina). As controls, we tested 70 healthy volunteers. Hcy was measured by an immunoenzymatic method and MDA, an index of lipid peroxidation, by gas chromatography-mass spectrometry.
Results:
Plasma Hcy concentrations were significantly higher in cardiovascular patients than in controls (10.2 vs 8.9 micromol/L; P <0.0002), with no significant difference between values in the stable and unstable angina subgroups. Similarly, total MDA was significantly higher in the CAD group than in the controls (2.6 vs 1.3 micromol/L; P <0.00001), again with no significant difference between stable and unstable angina patients. By contrast, free MDA, which was significantly higher in the CAD patients than the controls (0.4 vs 0.2 micromol/L; P < 0.00001), was also significantly higher in the unstable than in the stable angina group (0.5 vs 0.3 micromol/L; P <0.03). However, no correlation was observed among Hcy and free and total MDA.
Conclusions:
Our findings show that a moderate increase of Hcy is associated with CVD but that Hcy at the detected values cannot be considered completely responsible for oxidative damage. That lipid peroxidation is involved in CAD is shown by our observation of significantly increased plasma free and total MDA concentrations compared with controls. Moreover, free MDA values discriminated between unstable and chronic stable angina, and could thus represent a new diagnostic tool.
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