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A Mettl16/m6A/mybl2b/Igf2bp1 axis ensures cell cycle progression of embryonic hematopoietic stem and progenitor cells

  • Yunqiao Han,
  • Kui Sun,
  • Shanshan Yu,
  • Yayun Qin,
  • Zuxiao Zhang,
  • Jiong Luo,
  • Hualei Hu,
  • Liyan Dai,
  • Manman Cui,
  • Chaolin Jiang,
  • Fei Liu,
  • Yuwen Huang,
  • Pan Gao,
  • Xiang Chen,
  • Tianqing Xin,
  • Xiang Ren,
  • Xiaoyan Wu,
  • Jieping Song,
  • Qing Wang,
  • Zhaohui Tang,
  • Jianjun Chen,
  • Haojian Zhang,
  • Xianqin Zhang,
  • Mugen Liu,
  • Daji Luo

摘要

Prenatal lethality associated with mouse knockout of Mettl16, a recently identified RNA N6-methyladenosine (m6A) methyltransferase, has hampered characterization of the essential role of METTL16-mediated RNA m6A modification in early embryonic development. Here, using cross-species single-cell RNA sequencing analysis, we found that during early embryonic development, METTL16 is more highly expressed in vertebrate hematopoietic stem and progenitor cells (HSPCs) than other methyltransferases. In Mettl16-deficient zebrafish, proliferation capacity of embryonic HSPCs is compromised due to G1/S cell cycle arrest, an effect whose rescue requires Mettl16 with intact methyltransferase activity. We further identify the cell-cycle transcription factor mybl2b as a directly regulated by Mettl16-mediated m6A modification. Mettl16 deficiency resulted in the destabilization of mybl2b mRNA, likely due to lost binding by the m6A reader Igf2bp1 in vivo. Moreover, we found that the METTL16-m6A-MYBL2-IGF2BP1 axis controlling G1/S progression is conserved in humans. Collectively, our findings elucidate the critical function of METTL16-mediated m6A modification in HSPC cell cycle progression during early embryonic development.