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Hyperhomocysteinemia in uremia--a red flag in a disrupted circuit
Alessandra F Perna1, Diego Ingrosso, Eleonora Violetti
1First Division of Nephrology, Second University of Naples, Naples, Italy. alessandra.perna@unina2.it
Insights
High homocysteine levels are linked to cardiovascular risk, but folic acid may not be the solution. New research explores alternative culprits like epigenetic changes and protein damage in chronic kidney disease.
Area of Science:
- Biochemistry
- Genetics
- Nephrology
Background:
- Hyperhomocysteinemia is recognized as an independent cardiovascular risk factor.
- Recent intervention studies in general and CKD populations show negative results, questioning homocysteine's direct role.
- Folic acid's efficacy is debated, suggesting potential negative effects or that homocysteine is a marker for other issues.
Purpose of the Study:
- Investigate alternative mechanisms linking hyperhomocysteinemia to cardiovascular events.
- Explore the role of S-adenosylhomocysteine (AdoHcy) and epigenetic dysregulation in CKD.
- Examine the impact of protein homocysteinylation on protein function in uremia.
Main Methods:
- Review of observational studies and Mendelian randomization.
- Analysis of intracellular AdoHcy levels and gene expression in CKD and uremia.
- Assessment of protein homocysteinylation in uremic patients.
Main Results:
- Elevated homocysteine leads to increased intracellular AdoHcy, inhibiting methyltransferases and causing epigenetic dysregulation.
- Abnormal gene expression in CKD/uremia is linked to hyperhomocysteinemia and AdoHcy, reversible with folate therapy.
- Protein homocysteinylation is increased in uremia, potentially altering protein function.
Conclusions:
- Homocysteine may be a surrogate marker, with epigenetic dysregulation via AdoHcy and protein homocysteinylation being potential culprits.
- Further research is needed to identify the true causative factors in hyperhomocysteinemia-related cardiovascular risks.
- Targeting mechanisms beyond simple homocysteine reduction may be crucial for effective cardiovascular prevention in CKD.
Abstract:
Hyperhomocysteinemia is an independent cardiovascular risk factor, according to most observational studies and to studies using the Mendelian randomization approach, utilizing the common polymorphism C677T of methylene tetrahydrofolate reductase. In contrast, the most recent secondary preventive intervention studies, in the general population and in chronic kidney disease (CKD) and uremia, which are all negative (with the possible notable exception of stroke), point to other directions. However, all trials use folic acid in various dosages as a means to reduce homocysteine levels, with the addition of vitamins B6 and B12. It is possible that folic acid has negative effects, which offset the benefits; alternatively, homocysteine could be an innocent by-stander, or a surrogate of the real culprit. The latter possibility leads us to the search for potential candidates. First, the accumulation of homocysteine in blood leads to an intracellular increase of S-adenosylhomocysteine (AdoHcy), a powerful competitive methyltransferase inhibitor, which by itself is considered a predictor of cardiovascular events. DNA methyltransferases are among the principal targets of hyperhomocysteinemia, as studies in several cell culture and animal models, as well as in humans, show. In CKD and in uremia, hyperhomocysteinemia and high intracellular AdoHcy are present and are associated with abnormal allelic expression of genes regulated through methylation, such as imprinted genes, and pseudoautosomal genes, thus pointing to epigenetic dysregulation. These alterations are susceptible to reversal upon homocysteine-lowering therapy obtained through folate administration. Second, it has to be kept in mind that homocysteine is mainly protein-bound, and its effects could be linked therefore to protein homocysteinylation. In this respect, increased protein homocysteinylation has been found in uremia, leading to alterations in protein function.
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