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Published on: August 28, 2009
Role of Heme Oxygenases in Cardiovascular Syndromes and Co-morbidities
David D Haines1, Arpad Tosaki1
1Department of Pharmacology, Faculty of Pharmacy, University of Debrecen, Debrecen, Hungary.
Insights
Heme oxygenases (HOs) are key in cardiovascular disease (CVD) pathogenesis. Modulating HO activity offers potential therapeutic targets for major CVDs like atherosclerosis and stroke.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- Cardiovascular diseases (CVD) are the leading global cause of mortality.
- Heme oxygenases (HOs) are enzymes involved in heme metabolism and possess antioxidant properties.
- HOs comprise three isoforms: HO-1 (inducible), HO-2 (constitutive), and HO-3 (function undefined).
Purpose of the Study:
- To review the contribution of heme oxygenases (HOs) to the pathogenesis of cardiovascular diseases (CVD).
- To examine the role of HO isoforms in major CVDs, including atherosclerosis, coronary artery disease, stroke, peripheral artery disease, kidney disease, cardiopulmonary disease, and cerebrovascular disease.
- To identify potential therapeutic targets by modulating HO activity in CVD.
Main Methods:
- Literature review focusing on the role of heme oxygenases in cardiovascular disease pathogenesis.
- Analysis of studies investigating HO isoforms (HO-1, HO-2) in relation to specific CVD conditions.
- Synthesis of findings on the interplay between HO activity, oxidative stress, and CVD development.
Main Results:
- Elevated bilirubin, a product of HO activity, correlates with the severity of coronary artery disease and stroke.
- Peripheral artery disease severity correlates with elevated serum HO, though its role as a contributor or adaptive response is unclear.
- HO inducers may ameliorate kidney disease and cardiopulmonary disease, while HO-1 inducers show promise for cerebrovascular disease and stroke prevention.
Conclusions:
- Heme oxygenase activity is implicated in the pathogenesis of major cardiovascular diseases.
- HO-1 and HO-2 play significant roles in counteracting oxidative damage and influencing CVD progression.
- Targeting heme oxygenase activity presents a promising therapeutic strategy for various cardiovascular conditions.
Abstract:
Cardiovascular Diseases (CVD), are the leading cause of human mortality worldwide and the focus of the intensive investigation is to characterize their pathogenesis. This review examines contribution to CVD of heme oxygenases (HOs), heat shock protein enzymes, comprising 3 isoforms: HO-1 (inducible), HO-2 (constitutively expressed) and HO-3 (function presently undefined), which constitute a primary endogenous countermeasure to oxidative tissue damage. Their role as CVD countermeasures is considered in the context of atherosclerosis, consequences of which are the leading cause of CVD deaths and from which 5 major syndromes may develop, namely: coronary artery disease and stroke, peripheral artery disease, kidney disease, cardiopulmonary disease and cerebrovascular disease. Over 75% of CVD deaths result from Coronary artery disease and stroke, with the severity of these conditions correlating with a systemic increase of the endogenous antioxidant bilirubin, produced by HO degradation of heme. Peripheral artery disease, (PAD) resulting from constricted arteries of the extremities is a painful and disabling condition, the severity of which correlates with elevated serum HO. Whether this represents an adaptive response or the enzyme is a contributor to PAD, remains to be determined. CVD symptoms, particularly hypertension, damage the vasculature and filtering structures of the kidneys and may be ameliorated by HO inducers. Interestingly, constitutive renal expression of HO-2 indicates that the enzyme is vital for healthy kidney function. Right ventricular hypertrophy and increased vascular resistance in blood vessels of the lungs exhibit mutually reinforcing positive feedback to result in cardiopulmonary heart disease, with morbidity and mortality resulting from associated inflammation and may be decreased with HO-1 inducers. Cerebrovascular disease, a major CVD complication affecting brain vasculature, with resulting susceptibility to stroke, maybe potently ameliorated by HO-1 inducers. Conclusion: Each of the six major categories of CVD exhibit features of pathogenesis that hold potential as future therapeutic targets, for modulated heme oxygenase activity.
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