Literature DB >> 23320518

Storage of red blood cells affects membrane composition, microvesiculation, and in vitro quality.

Ruqayyah Almizraq1, Jayme D R Tchir, Jelena L Holovati, Jason P Acker.   

Abstract

BACKGROUND: During storage detrimental biochemical and biomechanical changes occur within a red blood cell (RBC). RBC microparticles (RMPs) produced during storage have been identified as biomarkers of RBC quality, being potentially immunogenic and inhibitory to nitric oxide regulation. STUDY DESIGN AND METHODS: In this study, microvesiculation and changes in the composition of the RBC membrane were investigated throughout 49 days of storage and were correlated with in vitro assays examining membrane quality. Leukoreduced RBC units produced using the buffy coat method were collected and stored at 1 to 6°C and were tested weekly for hemolysis, osmotic fragility, deformability, ATP, hematologic indices, and morphology. Microvesiculation was assessed using multicolor flow cytometry. High-performance liquid chromatography and mass spectrometry were used to determine the composition and quantity of phospholipids (PLs) and cholesterol (C) on Days 2 and 43.
RESULTS: The assessment of RBCs throughout storage revealed significant increases in percent hemolysis, while significant decreases in ATP concentrations, and the mean corpuscular hemoglobin concentration were observed. Flow cytometry analysis revealed a significant increase in the mean number of microparticles per microliter during storage. Throughout storage, significant decreases were identified in the amount of PLs and total lipids within the RBC membrane. No significant change in the amount of C in the RBC membrane was identified.
CONCLUSION: Significant changes to the RBC membrane occur during storage. The length of storage will influence RMP generation, osmotic fragility, hemolysis, and changes in deformability. These changes in RBC in vitro quality may contribute to transfusion reactions and negative posttransfusion outcomes.
© 2013 American Association of Blood Banks.

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Year:  2013        PMID: 23320518     DOI: 10.1111/trf.12080

Source DB:  PubMed          Journal:  Transfusion        ISSN: 0041-1132            Impact factor:   3.157


  40 in total

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Review 2.  Duration of red blood cell storage and inflammatory marker generation.

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3.  Storage of Red Blood Cells and Transfusion-Related Acute Lung Injury.

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4.  Multi-omics Evidence for Inheritance of Energy Pathways in Red Blood Cells.

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Review 5.  Red blood cell storage lesion: causes and potential clinical consequences.

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6.  Blood manufacturing methods affect red blood cell product characteristics and immunomodulatory activity.

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7.  Influence of blood storage age on immune and coagulation parameters in critically ill transfused patients.

Authors:  Philip J Norris; Ken Schechtman; Heather C Inglis; Avril Adelman; John W Heitman; Ryan Vilardi; Avani Shah; Nareg H Roubinian; Ali Danesh; Anne M Guiltinan; Sheila M Keating; Jacques Lacroix; Mitchell J Cohen; Philip C Spinella
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8.  Donor-dependent aging of young and old red blood cell subpopulations: Metabolic and functional heterogeneity.

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9.  The influence of storage age on iron status, oxidative stress and antioxidant protection in paediatric packed cell units.

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Journal:  Blood Transfus       Date:  2013-11-29       Impact factor: 3.443

10.  Transfusion of stored red blood cells in trauma patients is not associated with increased procoagulant microparticles.

Authors:  Satbir K Dhillon; Mindy L Houck; Donald H Jenkins; Jordan K Rosedahl; William S Harmsen; Timothy M Halling; Myung S Park
Journal:  J Trauma Acute Care Surg       Date:  2014-11       Impact factor: 3.313

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