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

Author:

Han YunqiaoORCID,Sun KuiORCID,Yu Shanshan,Qin Yayun,Zhang Zuxiao,Luo Jiong,Hu Hualei,Dai LiyanORCID,Cui Manman,Jiang ChaolinORCID,Liu Fei,Huang Yuwen,Gao Pan,Chen Xiang,Xin Tianqing,Ren Xiang,Wu Xiaoyan,Song JiepingORCID,Wang QingORCID,Tang Zhaohui,Chen JianjunORCID,Zhang HaojianORCID,Zhang XianqinORCID,Liu MugenORCID,Luo DajiORCID

Abstract

AbstractPrenatal 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.

Funder

MOST | National Natural Science Foundation of China

MOST | NSFC | National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

Program for HUST Academic Frontier Youth Team

grants from the Ministry of Science and Technology of China

Publisher

Springer Science and Business Media LLC

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1. METTL Family in Health and Disease;Molecular Biomedicine;2024-08-19

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