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Platelet enhancement of bacterial growth during room temperature storage: mitigation through refrigeration
Patrick M Ketter1, Robin Kamucheka1, Bernard Arulanandam2
1U.S. Army Institute of Surgical Research, Coagulation and Blood Research Task Area, Texas.
Introduction:
Due to high risk of septic transfusion reactions arising from bacterial contamination, US Food and Drug Administration regulations currently limit platelet storage to 5 days at room temperature (RT). However, blood culturing methods can take up to 7 days to detect bacteria, allowing transfusion of potentially contaminated units. Thus, cold storage (CS) may be a viable means of extending shelf life and improving safety.
Study Design And Methods:
Platelets and fresh plasma (FP) were collected by apheresis from healthy donors, aliquoted, and challenged with Acinetobacter baumannii, Escherichia coli, Pseudomonas aeruginosa, Staphylococcus aureus, or Staphylococcus epidermidis. Aliquots were then stored at either RT or CS.
Results:
Significant (p < 0.05) bacterial growth was detected at RT for most bacteria as early as Day 1 after collection, with peak growth occurring between Days 3 and 4. Growth remained static during CS. Additionally, platelets appeared to enhance bacterial replication with growth significantly lower (p < 0.05) in FP relative to RT-stored platelets. Lactic acid promoted bacterial growth when added to FP at RT. Bacterial challenge also resulted in significantly increased platelet activation (p < 0.05) and significantly reduced platelet function (p < 0.05) in RT storage relative to uninfected controls by Day 5 after collection. Conversely, CS ablated bacteria growth, limited platelet metabolism, and preserved platelet function throughout the study.
Conclusion:
These data suggest that CS presents an attractive alternative to RT to both extend storage life and reduce the risk of transfusion-related sepsis.
Insights
Cold storage (CS) of platelets prevents bacterial growth and preserves platelet function, unlike room temperature (RT) storage. This offers a safer alternative to current 5-day storage limits, reducing transfusion-related sepsis risk.
Area of Science:
- Hematology
- Transfusion Medicine
- Microbiology
Background:
- Current US Food and Drug Administration regulations limit platelet storage to 5 days at room temperature (RT) due to high risk of septic transfusion reactions from bacterial contamination.
- Blood culturing methods can take up to 7 days, potentially allowing transfusion of contaminated units before detection.
Purpose of the Study:
- To evaluate cold storage (CS) as a viable method for extending platelet shelf life and improving transfusion safety.
- To compare bacterial growth and platelet function in platelets stored at RT versus CS.
Main Methods:
- Platelets and fresh plasma (FP) were collected and challenged with common bacterial contaminants (Acinetobacter baumannii, Escherichia coli, Pseudomonas aeruginosa, Staphylococcus aureus, or Staphylococcus epidermidis).
- Aliquots were stored at either RT or CS and analyzed for bacterial growth, platelet activation, and function.
Main Results:
- Significant bacterial growth occurred at RT within 1-4 days, while growth remained static during CS.
- Platelets enhanced bacterial replication at RT, with significantly lower growth in FP.
- RT storage led to increased platelet activation and reduced function by Day 5, whereas CS preserved platelet function and inhibited bacterial growth.
Conclusions:
- Cold storage (CS) effectively inhibits bacterial growth in stored platelets.
- CS preserves platelet function and presents a safer alternative to RT storage, potentially extending shelf life and reducing transfusion-related sepsis.
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