4.8 Article

mRNA Cap Methylation in Pluripotency and Differentiation

期刊

CELL REPORTS
卷 16, 期 5, 页码 1352-1365

出版社

CELL PRESS
DOI: 10.1016/j.celrep.2016.06.089

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资金

  1. MRC Senior Fellowship [MR/K024213/1]
  2. Lister Institute Prize Fellowship
  3. Wellcome Trust PhD studentships [097462/Z/11/Z]
  4. University of Dundee Human Pluripotent Stem Cell Facility
  5. Wellcome Institutional Support Fund [097818/Z/11/B]
  6. GRE Centre Award [097945/Z/11/Z]
  7. Division of Signal Transduction Therapy Unit (AstraZeneca)
  8. Division of Signal Transduction Therapy Unit (Boehringer-Ingelheim)
  9. Division of Signal Transduction Therapy Unit (GlaxoSmithKline)
  10. Division of Signal Transduction Therapy Unit (Merck KGaA)
  11. Division of Signal Transduction Therapy Unit (Janssen Pharmaceutica)
  12. Division of Signal Transduction Therapy Unit (Pfizer)
  13. Medical Research Council [G0700240, MR/K024213/1] Funding Source: researchfish
  14. MRC [G0700240, MR/K024213/1] Funding Source: UKRI
  15. Wellcome Trust [097462/Z/11/Z, 097818/Z/11/B] Funding Source: Wellcome Trust

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The mRNA cap recruits factors essential for transcript processing and translation initiation. We report that regulated mRNA cap methylation is a feature of embryonic stem cell (ESC) differentiation. Expression of the mRNA cap methyltransferase activating subunit RAM is elevated in ESCs, resulting in high levels of mRNA cap methylation and expression of a cohort of pluripotency-associated genes. During neural differentiation, RAM is suppressed, resulting in repression of pluripotency-associated factors and expression of a cohort of neural-associated genes. An established requirement of differentiation is increased ERK1/2 activity, which suppresses pluripotency-associated genes. During differentiation, ERK1/2 phosphorylates RAM serine-36, targeting it for ubiquitination and proteasomal degradation, ultimately resulting in changes in gene expression associated with loss of pluripotency. Elevated RAM expression also increases the efficiency of fibroblast reprogramming. Thus, the mRNA cap emerges as a dynamic mark that instructs change in gene expression profiles during differentiation and reprogramming.

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