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Treatment of Platelet Products with Riboflavin and UV Light: Effectiveness Against High Titer Bacterial Contamination
Published on: August 24, 2015
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.
Background And Objective:
Photochemical pathogen inactivation technologies (PCT) for individual transfusion products act by inhibition of replication through irreversibly damaging nucleic acids. Concern on the collateral impact of PCT on the blood component's integrity has caused reluctance to introduce this technology in routine practice. This work aims to uncover the mechanism of damage to plasma constituents by riboflavin pathogen reduction technology (RF-PRT).
Methods:
Activity and antigen of plasma components were determined following RF-PRT in the presence or absence of dissolved molecular oxygen.
Results:
Employing ADAMTS13 as a sentinel molecule in plasma, our data show that its activity and antigen are reduced by 23 ± 8% and 29 ± 9% (n = 24), respectively, which corroborates with a mean decrease of 25% observed for other coagulation factors. Western blotting of ADAMTS13 shows decreased molecular integrity, with no obvious indication of additional proteolysis nor is riboflavin able to directly inhibit the enzyme. However, physical removal of dissolved oxygen prior to RF-PRT protects ADAMTS13 as well as FVIII and fibrinogen from damage, indicating a direct role for reactive oxygen species. Redox dye measurements indicate that superoxide anions are specifically generated during RF-PRT. Protein carbonyl content as a marker of disseminated irreversible biomolecular damage was significantly increased (3·1 ± 0·8 vs. 1·6 ± 0·5 nmol/mg protein) following RF-PRT, but not in the absence of dissolved molecular oxygen (1·8 ± 0·4 nmol/mg).
Conclusions:
RF-PRT of single plasma units generates reactive oxygen species that adversely affect biomolecular integrity of relevant plasma constituents, a side-effect, which can be bypassed by applying hypoxic conditions during the pathogen inactivation process.
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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