Comprehensive proteomic analysis of murine terminal erythroid differentiation

Author:

Gautier Emilie-Fleur123ORCID,Leduc Marjorie123ORCID,Ladli Meriem12ORCID,Schulz Vincent P.4ORCID,Lefèvre Carine12ORCID,Boussaid Ismael12ORCID,Fontenay Michaela125,Lacombe Catherine12,Verdier Frédérique12,Guillonneau François13ORCID,Hillyer Christopher D.6,Mohandas Narla6ORCID,Gallagher Patrick G.478ORCID,Mayeux Patrick123

Affiliation:

1. INSERM U1016, Centre National Recherche Scientifique (CNRS) UMR8104, Institut Cochin, Université de Paris, Paris, France;

2. Laboratoire d’Excellence GR-Ex, Paris, France;

3. Plateforme de Proteomique, Université Paris-Descartes (3P5), Paris, France;

4. Department of Pediatrics, Yale University, New Haven, CT;

5. Service d’Hématologie Biologique, Hôpital Cochin, Assistance Publique–Hôpitaux de Paris, Centre-Université de Paris, Paris, France;

6. New York Blood Center, New York, NY; and

7. Department of Pathology and

8. Department of Genetics, Yale University, New Haven, CT

Abstract

Abstract Murine-based cellular models have provided and continue to provide many useful insights into the fundamental mechanisms of erythropoiesis, as well as insights into the pathophysiology of inherited and acquired red cell disorders. Although detailed information on many aspects of these cell models is available, comprehensive proteomic data are lacking. This is a critical knowledge gap, as proteins are effectors of most biologic processes. To address this critical unmet need, proteomes of the murine cell lines Friend erythroleukemia (MEL), GATA1 erythroid (G1ER), and embryonic stem cell–derived erythroid progenitor (MEDEP) and proteomes of cultured murine marrow–derived erythroblasts at different stages of terminal erythroid differentiation were analyzed. The proteomes of MEDEP cells and primary murine erythroid cells were most similar, whereas those of MEL and G1ER cells were more distantly related. We demonstrated that the overall cellular content of histones does not decrease during terminal differentiation, despite strong chromatin condensation. Comparison of murine and human proteomes throughout terminal erythroid differentiation revealed that many noted transcriptomic changes were significantly dampened at the proteome level, especially at the end of the terminal differentiation process. Analysis of the early events associated with induction of terminal differentiation in MEDEP cells revealed divergent alterations in associated transcriptomes and proteomes. These proteomic data are powerful and valuable tools for the study of fundamental mechanisms of normal and disordered erythropoiesis and will be of broad interest to a wide range of investigators for making the appropriate choice of various cell lines to study inherited and acquired diseases of the erythrocyte.

Publisher

American Society of Hematology

Subject

Hematology

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