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Homocysteine, a new cardiovascular risk factor, is also a powerful uremic toxin
A F Perna1, P Castaldo, D Ingrosso
1Department of Nephrology and Institute of Biochemistry of Macromolecules, S.U.N., School of Medicine, Naples, Italy. a-perna25@hotmail.com
Insights
High homocysteine levels, seen in homocystinuria and chronic kidney disease, are linked to cardiovascular issues like atherosclerosis and thrombosis. This suggests homocysteine acts as both a cardiovascular risk factor and a uremic toxin.
Area of Science:
- Biochemistry
- Cardiovascular Medicine
- Nephrology
Background:
- Homocystinuria, an inherited disorder, presents with high plasma homocysteine and generalized atherosclerosis.
- Patients with chronic renal failure often exhibit elevated homocysteine levels, contributing to cardiovascular complications.
Purpose of the Study:
- To explore the role of homocysteine as a cardiovascular risk factor and uremic toxin.
- To elucidate the mechanisms by which homocysteine contributes to vascular disease.
Main Methods:
- Review of clinical observations in homocystinuria patients.
- Analysis of epidemiological studies on homocysteine and cardiovascular disease.
- Examination of experimental models investigating homocysteine's effects.
Main Results:
- Homocysteine accumulation inhibits transmethylation processes, leading to hypomethylation.
- Hypomethylation affects various biological compounds involved in thrombosis and atherosclerosis.
- Evidence suggests homocysteine is implicated in vascular damage in both inherited and acquired hyperhomocysteinemia.
Conclusions:
- Homocysteine is a significant cardiovascular risk factor.
- Homocysteine functions as a uremic toxin, contributing to vascular pathology in kidney disease.
- Hypomethylation is a key mechanism through which homocysteine exerts its detrimental effects on the vasculature.
Abstract:
Homocystinuria, an inherited disease in which plasma levels of homocysteine are high, was discovered in the sixties and it soon became clear that the affected patients had striking features of generalized atherosclerosis. The most common causes of death were arterial and venous thrombosis, stroke, or myocardial infarction. Observations in this human model of hyperhomocysteinemia led to studies in the general population whose findings suggest - though not conclusively- that homocysteine is a cardiovascular risk factor. The same is true for patients with chronic renal failure who almost always have moderate to severe high blood homocysteine levels. Homocysteine accumulates in relation to the concentration of its precursor, S-adenosylhomocysteine, a powerful competitive transmethylation inhibitor. Inhibition of a methyltransferase required to repair damaged proteins has actually been detected in uremic patients' red blood cells. However, in view of the multiple, widespread metabolic roles of S-adenosylmethionine-dependent methyltransferases, in many organs and tissues including the vascular endothelium, hypomethylation is currently interpreted as one of homocysteine's most important mechanisms of action. Various biological compounds, including small molecules and nucleic acids, as well as proteins, which are involved in the pathophysiology of thrombosis and atherosclerosis, are all potential targets of hypomethylation. Epidemiological studies and experimental models tend to confirm that homocysteine is both a cardiovascular risk factor and a uremic toxin, acting through different mechanisms.