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Published on: November 7, 2017
Metabolic consequences of hyperhomocysteinemia in uremia
A F Perna1, D Ingrosso, E Satta
1Department of Pediatrics, Division of Nephrology, and Department of Biochemistry and Biophysics, School of Medicine, Second University of Naples, Naples, Italy. alessandra.perna@unina2.it
Insights
Elevated homocysteine (Hcy) in chronic renal failure (CRF) impairs protein repair by inhibiting methyltransferases. Folate treatment helps, but Hcy remains an uremic toxin causing molecular damage.
Area of Science:
- Biochemistry
- Nephrology
- Cardiovascular Medicine
Background:
- Elevated homocysteine (Hcy) is linked to cardiovascular risk.
- Chronic renal failure (CRF) commonly causes hyperhomocysteinemia.
- S-adenosylhomocysteine (AdoHcy) accumulation inhibits methyltransferases.
Purpose of the Study:
- Investigate the role of Hcy in protein damage in CRF.
- Assess the impact of Hcy on protein methylation and repair.
- Evaluate the effects of folate treatment on Hcy levels and protein damage.
Main Methods:
- Measured erythrocyte AdoHcy and AdoMet-AdoHcy ratio in CRF patients.
- Assessed protein L-isoaspartyl O-methyltransferase (PCMT) activity.
- Quantified D-aspartate residues in erythrocyte membrane proteins.
- Utilized stable isotope studies to assess methyl transfer rates.
- Analyzed plasma protein isoaspartyl content before and after folate treatment.
Main Results:
- CRF patients showed increased erythrocyte AdoHcy and reduced AdoMet-AdoHcy ratio.
- PCMT activity and D-aspartate residues were reduced in CRF erythrocytes.
- Methyl transfer reactions were significantly reduced in uremia.
- Plasma proteins, especially albumin, had increased isoaspartyl content in uremia, partially improved by folate.
Conclusions:
- Homocysteine acts as an uremic toxin, damaging proteins by inhibiting methylation and PCMT-mediated repair.
- CRF disrupts essential methylation pathways, leading to molecular damage.
- Folate treatment offers partial improvement but does not fully resolve Hcy-induced protein damage.
Abstract:
An elevated blood level of homocysteine (Hcy), a sulfur amino acid, is associated with increased cardiovascular risk. Hcy is generated from S-adenosylhomocysteine (AdoHcy), the demethylated product of S-adenosylmethionine (AdoMet) in transmethylation reactions. AdoHcy is a competitive inhibitor of AdoMet-dependent methyltransferases. AdoHcy accumulation is prevented by rapid metabolism of its products. Chronic renal failure (CRF) is almost constantly associated with hyperhomocysteinemia. It has been shown that: (1) AdoHcy concentration is significantly increased and the AdoMet-AdoHcy ratio is reduced in erythrocytes of patients with CRF; (2) erythrocyte membrane protein methyl esterification, catalyzed by the enzyme protein L-isoaspartyl O-methyltransferase (PCMT; EC 2.1.1.77), is reduced in CRF; PCMT catalyzes a repair reaction involved in the conversion of an isopeptide bond (detrimental to protein structure and function) into a normal peptide bond; (3) D-aspartate residues, a side product of protein methylation and repair, are significantly reduced in erythrocyte membrane proteins of patients with CRF; and (4) folate treatment significantly reduces plasma Hcy levels and improves AdoMet-AdoHcy ratios. Stable isotope studies recently confirmed that the rate of methyl transfer reactions is significantly reduced in uremia. Additional evidence, obtained by independent groups, is consistent with this interpretation. We recently found increased isoaspartyl content of circulating plasma protein levels, particularly albumin, which was only partially reduced after folate treatment, in uremia. This kind of molecular damage possibly is caused by protein increased intrinsic instability as a result of interference with the uremic milieu. In conclusion, Hcy is an uremic toxin involved in protein molecular damage through the inhibition of methylation reactions and protein PCMT-mediated repair.
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