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Publication : The <i>N</i><sup>6</sup>-methyladenosine (m<sup>6</sup>A)-forming enzyme METTL3 facilitates M1 macrophage polarization through the methylation of <i>STAT1</i> mRNA.

First Author  Liu Y Year  2019
Journal  Am J Physiol Cell Physiol Volume  317
Issue  4 Pages  C762-C775
PubMed ID  31365297 Mgi Jnum  J:287764
Mgi Id  MGI:6362788 Doi  10.1152/ajpcell.00212.2019
Citation  Liu Y, et al. (2019) The N(6)-methyladenosine (m(6)A)-forming enzyme METTL3 facilitates M1 macrophage polarization through the methylation of STAT1 mRNA. Am J Physiol Cell Physiol 317(4):C762-C775
abstractText  Compelling evidence indicates that epigenetic regulations orchestrate dynamic macrophage polarization. N(6)-methyladenosine (m(6)A) methylation is the most abundant epigenetic modification of mammalian mRNA, but its role in macrophage polarization is still completely unknown. Here, we show that the m(6)A-catalytic enzyme methyltransferase like 3 (METTL3) is specifically upregulated following the M1 polarization of mouse macrophages. Furthermore, METTL3 knockdown through siRNA transfection markedly inhibited M1, but enhanced M2, macrophage polarization. Conversely, its overexpression via plasmid transfection greatly facilitated M1, but attenuated M2, macrophage polarization. Further methylated RNA immunoprecipitation and in vitro m(6)A methylation assays suggested that METTL3 directly methylates mRNA encoding signal transducer and activator of transcription 1 (STAT1), a master transcription factor controlling M1 macrophage polarization, at its coding sequence and 3'-untranslated regions. In addition, METTL3-mediated STAT1 mRNA methylation significantly increased mRNA stability and subsequently upregulated STAT1 expression. In conclusion, METTL3 drives M1 macrophage polarization by directly methylating STAT1 mRNA, potentially serving as an anti-inflammatory target.
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