Oxygen removal during pathogen inactivation with riboflavin and UV light preserves protein function in plasma for

H B Feys1, B Van Aelst, K Devreese

  • 1Transfusion Research Center, Belgian Red Cross-Flanders, Ghent, Belgium.

Vox Sanguinis
|January 28, 2014
PubMed
Abstract

Insights

Riboflavin pathogen reduction technology (RF-PRT) damages plasma proteins by generating reactive oxygen species. Applying hypoxic conditions during RF-PRT can prevent this damage to blood components.

Area of Science:

  • Biochemistry
  • Blood Component Safety
  • Pathogen Inactivation

Background:

  • Photochemical pathogen inactivation technologies (PCT) aim to inactivate pathogens in transfusion products by damaging nucleic acids.
  • Concerns regarding PCT's impact on blood component integrity have limited its routine clinical adoption.
  • Understanding the specific mechanisms of damage caused by riboflavin pathogen reduction technology (RF-PRT) is crucial.

Purpose of the Study:

  • To elucidate the mechanism by which RF-PRT affects plasma constituents.
  • To investigate the role of oxygen in RF-PRT-induced damage to plasma components.

Main Methods:

  • Assessed activity and antigen levels of plasma components after RF-PRT.
  • Utilized ADAMTS13 as a sentinel molecule to evaluate plasma component integrity.
  • Measured reactive oxygen species generation and protein carbonyl content.

Main Results:

  • RF-PRT reduced ADAMTS13 activity and antigen levels, along with other coagulation factors.
  • Damage to ADAMTS13, FVIII, and fibrinogen was mitigated by removing dissolved oxygen prior to RF-PRT.
  • Superoxide anions were identified as key reactive oxygen species generated during RF-PRT, leading to increased protein carbonyl content.

Conclusions:

  • RF-PRT generates reactive oxygen species that compromise the biomolecular integrity of plasma constituents.
  • Hypoxic conditions during RF-PRT can circumvent the adverse effects on plasma component integrity.
  • This finding offers a strategy to enhance the safety and efficacy of RF-PRT in transfusion medicine.

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