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Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells
Stored red blood cells (RBCs) incur biochemical and morphological changes, collectively termed the storage lesion. Functionally, the storage lesion manifests as slower oxygen unloading from RBCs, which may compromise the efficacy of transfusions where the clinical imperative is to rapidly boost oxyg...
Autores principales: | , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Society of Hematology
2022
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631703/ https://www.ncbi.nlm.nih.gov/pubmed/35736672 http://dx.doi.org/10.1182/bloodadvances.2022007774 |
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author | Rabcuka, Julija Blonski, Slawomir Meli, Athinoula Sowemimo-Coker, Samuel Zaremba, Damian Stephenson, Daniel Dzieciatkowska, Monika Nerguizian, David Cardigan, Rebecca Korczyk, Piotr M. Smethurst, Peter A. D’Alessandro, Angelo Swietach, Pawel |
author_facet | Rabcuka, Julija Blonski, Slawomir Meli, Athinoula Sowemimo-Coker, Samuel Zaremba, Damian Stephenson, Daniel Dzieciatkowska, Monika Nerguizian, David Cardigan, Rebecca Korczyk, Piotr M. Smethurst, Peter A. D’Alessandro, Angelo Swietach, Pawel |
author_sort | Rabcuka, Julija |
collection | PubMed |
description | Stored red blood cells (RBCs) incur biochemical and morphological changes, collectively termed the storage lesion. Functionally, the storage lesion manifests as slower oxygen unloading from RBCs, which may compromise the efficacy of transfusions where the clinical imperative is to rapidly boost oxygen delivery to tissues. Recent analysis of large real-world data linked longer storage with increased recipient mortality. Biochemical rejuvenation with a formulation of adenosine, inosine, and pyruvate can restore gas-handling properties, but its implementation is impractical for most clinical scenarios. We tested whether storage under hypoxia, previously shown to slow biochemical degradation, also preserves gas-handling properties of RBCs. A microfluidic chamber, designed to rapidly switch between oxygenated and anoxic superfusates, was used for single-cell oxygen saturation imaging on samples stored for up to 49 days. Aliquots were also analyzed flow cytometrically for side-scatter (a proposed proxy of O(2) unloading kinetics), metabolomics, lipidomics, and redox proteomics. For benchmarking, units were biochemically rejuvenated at 4 weeks of standard storage. Hypoxic storage hastened O(2) unloading in units stored to 35 days, an effect that correlated with side-scatter but was not linked to posttranslational modifications of hemoglobin. Although hypoxic storage and rejuvenation produced distinct biochemical changes, a subset of metabolites including pyruvate, sedoheptulose 1-phosphate, and 2/3 phospho-d-glycerate, was a common signature that correlated with changes in O(2) unloading. Correlations between gas handling and lipidomic changes were modest. Thus, hypoxic storage of RBCs preserves key metabolic pathways and O(2) exchange properties, thereby improving the functional quality of blood products and potentially influencing transfusion outcomes. |
format | Online Article Text |
id | pubmed-9631703 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | American Society of Hematology |
record_format | MEDLINE/PubMed |
spelling | pubmed-96317032022-11-04 Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells Rabcuka, Julija Blonski, Slawomir Meli, Athinoula Sowemimo-Coker, Samuel Zaremba, Damian Stephenson, Daniel Dzieciatkowska, Monika Nerguizian, David Cardigan, Rebecca Korczyk, Piotr M. Smethurst, Peter A. D’Alessandro, Angelo Swietach, Pawel Blood Adv Transfusion Medicine Stored red blood cells (RBCs) incur biochemical and morphological changes, collectively termed the storage lesion. Functionally, the storage lesion manifests as slower oxygen unloading from RBCs, which may compromise the efficacy of transfusions where the clinical imperative is to rapidly boost oxygen delivery to tissues. Recent analysis of large real-world data linked longer storage with increased recipient mortality. Biochemical rejuvenation with a formulation of adenosine, inosine, and pyruvate can restore gas-handling properties, but its implementation is impractical for most clinical scenarios. We tested whether storage under hypoxia, previously shown to slow biochemical degradation, also preserves gas-handling properties of RBCs. A microfluidic chamber, designed to rapidly switch between oxygenated and anoxic superfusates, was used for single-cell oxygen saturation imaging on samples stored for up to 49 days. Aliquots were also analyzed flow cytometrically for side-scatter (a proposed proxy of O(2) unloading kinetics), metabolomics, lipidomics, and redox proteomics. For benchmarking, units were biochemically rejuvenated at 4 weeks of standard storage. Hypoxic storage hastened O(2) unloading in units stored to 35 days, an effect that correlated with side-scatter but was not linked to posttranslational modifications of hemoglobin. Although hypoxic storage and rejuvenation produced distinct biochemical changes, a subset of metabolites including pyruvate, sedoheptulose 1-phosphate, and 2/3 phospho-d-glycerate, was a common signature that correlated with changes in O(2) unloading. Correlations between gas handling and lipidomic changes were modest. Thus, hypoxic storage of RBCs preserves key metabolic pathways and O(2) exchange properties, thereby improving the functional quality of blood products and potentially influencing transfusion outcomes. American Society of Hematology 2022-09-22 /pmc/articles/PMC9631703/ /pubmed/35736672 http://dx.doi.org/10.1182/bloodadvances.2022007774 Text en © 2022 by The American Society of Hematology. Licensed under Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0), permitting only noncommercial, nonderivative use with attribution. All other rights reserved. |
spellingShingle | Transfusion Medicine Rabcuka, Julija Blonski, Slawomir Meli, Athinoula Sowemimo-Coker, Samuel Zaremba, Damian Stephenson, Daniel Dzieciatkowska, Monika Nerguizian, David Cardigan, Rebecca Korczyk, Piotr M. Smethurst, Peter A. D’Alessandro, Angelo Swietach, Pawel Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title | Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title_full | Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title_fullStr | Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title_full_unstemmed | Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title_short | Metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
title_sort | metabolic reprogramming under hypoxic storage preserves faster oxygen unloading from stored red blood cells |
topic | Transfusion Medicine |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631703/ https://www.ncbi.nlm.nih.gov/pubmed/35736672 http://dx.doi.org/10.1182/bloodadvances.2022007774 |
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