4.7 Article

p53 activation during ribosome biogenesis regulates normal erythroid differentiation

Journal

BLOOD
Volume 137, Issue 1, Pages 89-102

Publisher

AMER SOC HEMATOLOGY
DOI: 10.1182/blood.2019003439

Keywords

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Categories

Funding

  1. INSERM-Institut Thematique Multi-Organismes (ITMO)-Immunologie Hematologie Pneumologie grant [IHP-2012]
  2. National Institutes of Health, National Institute of Diabetes and Digestive and Kidney Diseases [DK32094]
  3. LabEx GR-Ex [ANR-11-LABX-0051]
  4. program Investissements d'Avenir of the French National Research Agency [ANR-18-IDEX-0001]
  5. ArDoc from the Region Ile de France
  6. Fondation de France
  7. Agence Nationale pour la Recherche (ANR Blanc 2013)
  8. Fondation ARC pour la Recherche contre le Cancer
  9. Fondation pour la Recherche Medicale [Equipe FRM DEQ20180339221]
  10. Labex EpiGenMed (Investissements d'Avenir Program) [ANR-10-LABX12-01]
  11. INSERM
  12. Groupement d'Interet Scientifique-Infrastructures en Biologie Sante et Agronomie (GIS-IBiSA)
  13. Aix-Marseille Universite
  14. Site de Recherche Integree sur le Cancer (SIRIC) CARPEM
  15. Institute of Biological Sciences [ANR-10-INBS]

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Ribosome biogenesis plays a crucial role in erythroid development, with premature termination impacting erythroid expansion by activating p53 and preventing normal proliferation of erythroid progenitors.
The role of ribosome biogenesis in erythroid development is supported by the recognition of erythroid defects in ribosomopathies in both Diamond-Blackfan anemia and 5q- syndrome. Whether ribosome biogenesis exerts a regulatory function on normal erythroid development is still unknown. In the present study, a detailed characterization of ribosome biogenesis dynamics during human and murine erythropoiesis showed that ribosome biogenesis is abruptly interrupted by the decline in ribosomal DNA transcription and the collapse of ribosomal protein neosynthesis. Its premature arrest by the RNA Pol I inhibitor CX-5461 targeted the proliferation of immature erythroblasts. p53 was activated spontaneously or in response to CX-5461, concomitant to ribosome biogenesis arrest, and drove a transcriptional program in which genes involved in cell cycle-arrested, negative regulation of apoptosis, and DNA damage response were upregulated. RNA Pol I transcriptional stress resulted in nucleolar disruption and activation of the ATR-CHK1-p53 pathway. Our results imply that the timing of ribosome biogenesis extinction and p53 activation is crucial for erythroid development. In ribosomopathies in which ribosome availability is altered by unbalanced production of ribosomal proteins, the threshold downregulation of ribosome biogenesis could be prematurely reached and, together with pathological p53 activation, prevents a normal expansion of erythroid progenitors.

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