6533b82dfe1ef96bd1290a8c

RESEARCH PRODUCT

HSP70 sequestration by free α-globin promotes ineffective erythropoiesis in β-thalassaemia

Michael DussiotCarmen GarridoYves BeuzardSamuel DemarestGeneviève CourtoisIsaure Chauvot De BeauchêneStany ChretienPhilippe LeboulchOlivier HermineZakia Belaid-choucairIvan MouraThiago Trovati MacielAdonis HazouméMichaela FontenayVéronique Baudin-creuzaMargaux SevinLuba TchertanovJean-antoine RibeilJean-benoît ArletChristian AuclairFlavia GuillemGuillaume MarcionRenaud SeigneuricOlivier Negre

subject

Ineffective erythropoiesisCytoplasmErythroblastsCell SurvivalMutantApoptosis[ SDV.BBM.BM ] Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyalpha-globin[SDV.BC.BC]Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]Biologymedicine.disease_causeProtein Refolding03 medical and health sciences0302 clinical medicinealpha-GlobinsBone Marrowhemic and lymphatic diseasesmedicineHumans[ SDV.MHEP.HEM ] Life Sciences [q-bio]/Human health and pathology/HematologyErythropoiesisGATA1 Transcription FactorHSP70 Heat-Shock ProteinsMolecular Targeted TherapyCells CulturedHSP70030304 developmental biologyRegulation of gene expressionCell Nucleus0303 health sciencesMultidisciplinaryCaspase 3beta-Thalassemia[ SDV.BC.BC ] Life Sciences [q-bio]/Cellular Biology/Subcellular Processes [q-bio.SC]GATA1[SDV.MHEP.HEM]Life Sciences [q-bio]/Human health and pathology/Hematology[SDV.BBM.BM]Life Sciences [q-bio]/Biochemistry Molecular Biology/Molecular biologyMolecular biologyHsp70Enzyme ActivationKineticsGene Expression RegulationCytoplasm030220 oncology & carcinogenesisChaperone (protein)biology.proteinErythropoiesisbeta-ThalassaemiaProtein Binding

description

International audience; β-Thalassaemia major (β-TM) is an inherited haemoglobinopathy caused by a quantitative defect in the synthesis of β-globin chains of haemoglobin, leading to the accumulation of free α-globin chains that form toxic aggregates. Despite extensive knowledge of the molecular defects causing β-TM, little is known of the mechanisms responsible for the ineffective erythropoiesis observed in the condition, which is characterized by accelerated erythroid differentiation, maturation arrest and apoptosis at the polychromatophilic stage. We have previously demonstrated that normal human erythroid maturation requires a transient activation of caspase-3 at the later stages of maturation. Although erythroid transcription factor GATA-1, the master transcriptional factor of erythropoiesis, is a caspase-3 target, it is not cleaved during erythroid differentiation. We have shown that, in human erythroblasts, the chaperone heat shock protein70 (HSP70) is constitutively expressed and, at later stages of maturation, translocates into the nucleus and protects GATA-1 from caspase-3 cleavage. The primary role of this ubiquitous chaperone is to participate in the refolding of proteins denatured by cytoplasmic stress, thus preventing their aggregation. Here we show in vitro that during the maturation of human β-TM erythroblasts, HSP70 interacts directly with free α-globin chains. As a consequence, HSP70 is sequestrated in the cytoplasm and GATA-1 is no longer protected, resulting in end-stage maturation arrest and apoptosis. Transduction of a nuclear-targeted HSP70 mutant or a caspase-3-uncleavable GATA-1 mutant restores terminal maturation of β-TM erythroblasts, which may provide a rationale for new targeted therapies of β-TM

10.1038/nature13614https://hal.archives-ouvertes.fr/hal-01505816