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Homocysteine, MTHFR gene polymorphisms, and cardio-cerebrovascular risk
1Department of Mother and Child and Biology-Genetics, Section of Biology and Genetics, University of Verona, Strada Grazie 8, 37134 Verona, Italy. elisabetta.trabetti@univr.it
Insights
Elevated homocysteine levels increase vascular disease risk, especially with other factors. More research is needed to clarify the link between mild hyperhomocysteinemia and vascular damage.
Area of Science:
- Cardiovascular Science
- Genetics
- Nutritional Science
Background:
- Vascular diseases often link to traditional risk factors.
- Emerging evidence implicates elevated homocysteine in atherosclerosis and cardiovascular events.
- Cardio- and cerebrovascular diseases involve complex genetic and environmental interactions.
Purpose of the Study:
- To review the pro-atherogenic mechanisms of homocysteine.
- To examine genetic factors, like the MTHFR 677C>T polymorphism, influencing homocysteine levels.
- To assess therapeutic interventions for hyperhomocysteinemia and vascular disease prevention.
Main Methods:
- Literature review of experimental and clinical studies.
- Analysis of genetic polymorphisms affecting homocysteine metabolism.
- Evaluation of studies on vitamin interventions (folate, B12, B6).
Main Results:
- Homocysteine may act synergistically with other risk factors in vascular disease.
- The MTHFR 677C>T polymorphism is frequently studied but results are inconsistent.
- Therapeutic interventions show variable efficacy in lowering homocysteine and preventing events.
Conclusions:
- Mild hyperhomocysteinemia's role in vascular damage requires further clarification.
- Homogeneity in data is lacking due to numerous influencing factors.
- Prospective, randomized trials with genetic analysis are recommended to define the relationship.
Abstract:
Vascular diseases are commonly associated with traditional risk factors, but in the last decade scientific evidence has suggested that elevated plasma levels of homocysteine are associated with an increased risk of atherosclerosis and cardiovascular ischaemic events. Cardio- and cerebrovascular diseases are multifactorial, as their aetiopathogenesis is determined by genetic and environmental factors and by gene-gene and gene-environment interactions. Experimental studies have shown that many possible mechanisms are implicated in the pro-atherogenic effect of homocysteine. Hyperhomocysteinaemia may confer a mild risk alone, but it increases the risk of disease in association with other factors promoting vascular lesions. Variants in genes encoding enzymes involved in homocysteine metabolism, or depletion of important cofactors or substrates for those enzymes, including folate, vitamin B12 and vitamin B6, may result in elevated plasma homocysteine levels. Several studies have been performed to elucidate the genetic determinant of hyperhomocysteinaemia in patients with vascular disease, and the MTHFR 677C>T polymorphism is the one most extensively investigated. However, the lack of homogeneity in the data and the high number of factors influencing plasma homocysteine concentrations remain conflicting. Moreover, studies on the evaluation of therapeutic interventions in improving the atherogenic profile, lowering plasma homocysteine levels, and preventing vascular events, have shown inconsistent results, which are reviewed in this paper. More prospective, double-blind, randomized studies, including folate and vitamin B interventions, and genotyping for polymorphisms in genes involved in homocysteine metabolism, might better define the relationship between mild hyperhomocysteinaemia and vascular damage.
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