Molecular pathology of dityrosine cross-links in proteins: structural and functional analysis of four proteins

Dorairajan Balasubramanian1, Ritu Kanwar

  • 1Hyderabad Eye Research Foundation, LV Prasad Eye Institute, India. dbala@lvpeye.stph.net

Insights

Dityrosine (DT) cross-linking, a marker of oxidative stress, weakens protein structural stability and compromises biological activity. This study reveals DT bonds form readily on protein surfaces, impacting enzyme, lens, and signaling proteins.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oxidative Stress Research

Background:

  • Dityrosine (DT) bonds are oxidative cross-links between tyrosines, increasingly recognized as biomarkers for oxidative stress, aging, and various diseases.
  • While DT cross-linked proteins are detected in pathologies, the specific impacts of DT bonds on protein structure and function remain largely uncharacterized.

Purpose of the Study:

  • To investigate the structural and functional consequences of intermolecular DT-dimerization in four diverse proteins: ribonuclease A, calmodulin, alpha-crystallin, and gamma B-crystallin.
  • To elucidate the mechanisms and preferred sites of DT bond formation within proteins.

Main Methods:

  • Proteins were subjected to conditions promoting DT bond formation via radical reactions and photosensitization.
  • Spectroscopic methods (e.g., circular dichroism) were used to monitor protein conformation and structural stability.
  • Biological activities, including enzymatic function, chaperone-like ability, and ligand binding, were assessed for DT-modified proteins.

Main Results:

  • DT bonds preferentially form on surface-exposed tyrosine residues through radical mechanisms, not via singlet oxygen or nitric oxide.
  • DT-dimerized proteins exhibited reduced structural stability, denaturing at lower temperatures and salt concentrations compared to native monomers.
  • Enzymatic activity of ribonuclease A was reduced, alpha-crystallin retained chaperone function, gamma B-crystallin showed increased aggregation, and calmodulin binding efficiency decreased.

Conclusions:

  • DT cross-linking of globular proteins leads to decreased structural stability and impaired biological function, both of which have pathological relevance.
  • Intramolecular DT cross-links appear to induce more severe structural and functional deficits than intermolecular cross-links.
  • Understanding DT bond formation and its consequences is crucial for comprehending aging and disease processes.