Homocysteine, MTHFR gene polymorphisms, and cardio-cerebrovascular risk

Elisabetta Trabetti1

  • 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.

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