4.8 Article

A late-stage assembly checkpoint of the human mitochondrial ribosome large subunit

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-28503-5

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资金

  1. Medical Research Council UK [MC_UU_00015/4, MC_UU_00015/6]
  2. Fundacao para a Ciencia e a Tecnologia [PD/BD/105750/2014]
  3. Blood Cancer UK [12048]
  4. Kay Kendall Leukaemia Fund
  5. UK MRC [MR/T012412/1]
  6. Wellcome Trust [100140]
  7. MRC
  8. Cambridge National Institute for Health Research Biomedical Research Centre [BRC-1215-20014]
  9. European Cooperation in Science and Technology (COST) Action [CA18233]
  10. European Commission under Marie Skodowska-Curie Actions, Individual Fellowship-Reintegration Panel [705560]
  11. MRC [MR/T012412/1] Funding Source: UKRI
  12. Fundação para a Ciência e a Tecnologia [PD/BD/105750/2014] Funding Source: FCT
  13. Marie Curie Actions (MSCA) [705560] Funding Source: Marie Curie Actions (MSCA)

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A study on the human mitochondrial transcriptome reveals that 2'-O-methylation is limited to specific residues of the mitoribosomal large subunit, and the modifications are dependent on different proteins. MRM2 plays a role in regulating mitochondrial respiration through mitoribosome biogenesis, but its methyltransferase activity is not essential for this process.
Many cellular processes, including ribosome biogenesis, are regulated through post-transcriptional RNA modifications. Here, a genome-wide analysis of the human mitochondrial transcriptome shows that 2'-O-methylation is limited to residues of the mitoribosomal large subunit (mtLSU) 16S mt-rRNA, introduced by MRM1, MRM2 and MRM3, with the modifications installed by the latter two proteins being interdependent. MRM2 controls mitochondrial respiration by regulating mitoribosome biogenesis. In its absence, mtLSU particles (visualized by cryo-EM at the resolution of 2.6 angstrom) present disordered RNA domains, partial occupancy of bL36m and bound MALSU1:L0R8F8:mtACP anti-association module, allowing five mtLSU biogenesis intermediates with different intersubunit interface configurations to be placed along the assembly pathway. However, mitoribosome biogenesis does not depend on the methyltransferase activity of MRM2. Disruption of the MRM2 Drosophila melanogaster orthologue leads to mitochondria-related developmental arrest. This work identifies a key checkpoint during mtLSU assembly, essential to maintain mitochondrial homeostasis. Rebelo-Guiomar et al. unveil late stage assembly intermediates of the human mitochondrial ribosome by inactivating the methyltransferase MRM2 in cells. Absence of MRM2 impairs organismal homeostasis, while its catalytic activity is dispensable for mitoribosomal biogenesis.

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