4.8 Article

Ribosomal protein gene RPL9 variants can differentially impair ribosome function and cellular metabolism

Journal

NUCLEIC ACIDS RESEARCH
Volume 48, Issue 2, Pages 770-787

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/nar/gkz1042

Keywords

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Funding

  1. Specific E-Rare grants funding EuroDBA researchers [ZonMW] [40-44000-98-1008, BMBF 01GM1609, ANR-15-RAR3-0007-04, ANR-15-RARE-0007-03, ANR-15-CE12-0001]
  2. Laboratory of Excellence for Red Cells [(LABEX GREx)-ANR] [Avenir-11-LABX-0005-02]
  3. French National PHRC OFABD
  4. United States National Institutes of Health/National Heart Lung and Blood Institute [R01HL119439-01A1]
  5. Diann Robbers Cancer Research Grant - KiKa Foundation [127]
  6. Pallotti Legacy for Cancer Research
  7. ZonMW
  8. DBA UK
  9. ProFI [ANR-10-INBS-08-01]
  10. Agence Nationale de la Recherche (ANR) [ANR-15-CE12-0001] Funding Source: Agence Nationale de la Recherche (ANR)

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Variants in ribosomal protein (RP) genes drive Diamond-Blackfan anemia (DBA), a bone marrow failure syndrome that can also predispose individuals to cancer. Inherited and sporadic RP gene variants are also linked to a variety of phenotypes, including malignancy, in individuals with no anemia. Here we report an individual diagnosed with DBA carrying a variant in the 5 ' UTR of RPL9 (uL6). Additionally, we report two individuals from a family with multiple cancer incidences carrying a RPL9 missense variant. Analysis of cells from these individuals reveals that despite the variants both driving pre-rRNA processing defects and 80S monosome reduction, the downstream effects are remarkably different. Cells carrying the 5 ' UTR variant stabilize TP53 and impair the growth and differentiation of erythroid cells. In contrast, ribosomes incorporating the missense variant erroneously read through UAG and UGA stop codons of mRNAs. Metabolic profiles of cells carrying the 5 ' UTR variant reveal an increased metabolism of amino acids and a switch from glycolysis to gluconeogenesis while those of cells carrying the missense variant reveal a depletion of nucleotide pools. These findings indicate that variants in the same RP gene can drive similar ribosome biogenesis defects yet still have markedly different downstream consequences and clinical impacts.

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