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METTL1‐m 7 G‐EGFR/EFEMP1 axis promotes the bladder cancer development
Author(s) -
Ying Xiaoling,
Liu Bixia,
Yuan Zusen,
Huang Yapeng,
Chen Cong,
Jiang Xu,
Zhang Haiqing,
Qi Defeng,
Yang Shulan,
Lin Shuibin,
Luo Junhang,
Ji Weidong
Publication year - 2021
Publication title -
clinical and translational medicine
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.125
H-Index - 1
ISSN - 2001-1326
DOI - 10.1002/ctm2.675
Subject(s) - gene silencing , translation (biology) , cancer research , transfer rna , bladder cancer , methyltransferase , biology , in vitro , downregulation and upregulation , cancer , gene , microbiology and biotechnology , messenger rna , rna , genetics , methylation
Abstract Background The posttranscriptional modifications of transfer RNA (tRNA) are critical for all aspects of the tRNA function and have been implicated in the tumourigenesis and progression of many human cancers. By contrast, the biological functions of methyltransferase‐like 1 (METTL1)‐regulated m 7 G tRNA modification in bladder cancer (BC) remain obscure. Results In this research, we show that METTL1 was highly expressed in BC, and its level was correlated with poor patient prognosis. Silencing METTL1 suppresses the proliferation, migration and invasion of BC cells in vitro and in vivo. Multi‐omics analysis reveals that METTL1‐mediated m 7 G tRNA modification altered expression of certain target genes, including EGFR/EFEMP1. Mechanistically, METTL1 regulates the translation of EGFR/EFEMP1 via modifying certain tRNAs. Furthermore, forced expression of EGFR/EFEMP1 partially rescues the effect of METTL1 deletion on BC cells. Conclusions Our findings demonstrate the oncogenic role of METTL1 and the pathological significance of the METTL1‐m 7 G‐EGFR/EFEMP1 axis in the BC development, thus providing potential therapeutic targets for the BC treatment.

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