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.

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