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Published on: March 14, 2017
Rapid clearance of storage-induced microerythrocytes alters transfusion recovery
Camille Roussel1,2,3,4, Alexandre Morel1,2,5, Michaël Dussiot1,2
1U1163, Laboratory of Cellular and Molecular Mechanisms of Hematological Disorders and Therapeutic Implications, INSERM, Université de Paris, Paris, France.
Abstract:
Permanent availability of red blood cells (RBCs) for transfusion depends on refrigerated storage, during which morphologically altered RBCs accumulate. Among these, a subpopulation of small RBCs, comprising type III echinocytes, spheroechinocytes, and spherocytes and defined as storage-induced microerythrocytes (SMEs), could be rapidly cleared from circulation posttransfusion. We quantified the proportion of SMEs in RBC concentrates from healthy human volunteers and assessed correlation with transfusion recovery, investigated the fate of SMEs upon perfusion through human spleen ex vivo, and explored where and how SMEs are cleared in a mouse model of blood storage and transfusion. In healthy human volunteers, high proportion of SMEs in long-stored RBC concentrates correlated with poor transfusion recovery. When perfused through human spleen, 15% and 61% of long-stored RBCs and SMEs were cleared in 70 minutes, respectively. High initial proportion of SMEs also correlated with high retention of RBCs by perfused human spleen. In the mouse model, SMEs accumulated during storage. Transfusion of long-stored RBCs resulted in reduced posttransfusion recovery, mostly due to SME clearance. After transfusion in mice, long-stored RBCs accumulated predominantly in spleen and were ingested mainly by splenic and hepatic macrophages. In macrophage-depleted mice, splenic accumulation and SME clearance were delayed, and transfusion recovery was improved. In healthy hosts, SMEs were cleared predominantly by macrophages in spleen and liver. When this well-demarcated subpopulation of altered RBCs was abundant in RBC concentrates, transfusion recovery was diminished. SME quantification has the potential to improve blood product quality assessment. This trial was registered at www.clinicaltrials.gov as #NCT02889133.
Insights
Storage-induced microerythrocytes (SMEs) in red blood cell (RBC) transfusions are cleared by macrophages, primarily in the spleen and liver. High SME proportions reduce transfusion recovery, highlighting their potential for quality assessment.
Area of Science:
- Hematology
- Transfusion Medicine
- Cellular Biology
Background:
- Refrigerated storage of red blood cells (RBCs) for transfusion leads to morphological alterations.
- A subpopulation of small RBCs, termed storage-induced microerythrocytes (SMEs), accumulates during storage.
- SMEs are rapidly cleared from circulation posttransfusion, potentially impacting transfusion efficacy.
Purpose of the Study:
- To quantify SMEs in stored RBC concentrates and assess their correlation with transfusion recovery.
- To investigate the clearance mechanisms of SMEs using ex vivo human spleen perfusion and an in vivo mouse model.
- To explore the role of macrophages in SME clearance and their impact on transfusion outcomes.
Main Methods:
- Quantification of SMEs in RBC concentrates from human volunteers.
- Ex vivo perfusion of stored RBCs through human spleen.
- In vivo studies using a mouse model of blood storage and transfusion, including macrophage depletion.
Main Results:
- High SME proportion in stored RBCs correlated with poor transfusion recovery in humans.
- SMEs were rapidly cleared during ex vivo human spleen perfusion.
- In mice, SMEs accumulated during storage and were cleared by splenic and hepatic macrophages posttransfusion, impacting recovery.
- Macrophage depletion delayed SME clearance and improved transfusion recovery in mice.
Conclusions:
- Storage-induced microerythrocytes (SMEs) are cleared predominantly by splenic and hepatic macrophages.
- Abundance of SMEs in RBC concentrates diminishes transfusion recovery.
- SME quantification offers potential for improved blood product quality assessment.
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