Advances in RNA cytosine-5 methylation: detection, regulatory mechanisms, biological functions and links to cancer

被引:0
作者
Chen Xue
Yalei Zhao
Lanjuan Li
机构
[1] The First Affiliated Hospital,State Key Laboratory for Diagnosis and Treatment of Infectious Diseases
[2] College of Medicine,National Clinical Research Center for Infectious Diseases
[3] Zhejiang University,Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases
[4] The First Affiliated Hospital,undefined
[5] College of Medicine,undefined
[6] Zhejiang University,undefined
[7] The First Affiliated Hospital,undefined
[8] College of Medicine,undefined
[9] Zhejiang University,undefined
来源
Biomarker Research | / 8卷
关键词
5-methylcytosine; RNA modification; Epitranscriptome; Detection techniques; Biological functions;
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摘要
As an important posttranscriptional modification of RNA, 5-methylcytosine (m5C) has attracted increasing interest recently, with accumulating evidence suggesting the involvement of RNA m5C modification in multiple cellular processes as well as tumorigenesis. Cooperatively, advances in m5C detection techniques have enabled transcriptome mapping of RNA methylation at single-nucleotide resolution, thus stimulating m5C-based investigations. In this review, we summarize currently available approaches for detecting m5C distribution in RNA as well as the advantages and disadvantages of these techniques. Moreover, we elucidate the regulatory mechanisms of RNA m5C modification by introducing the molecular structure, catalytic substrates, cellular distributions and biological functions of RNA m5C regulators. The functional consequences of m5C modification on mRNAs, tRNAs, rRNAs and other RNA species, including viral RNAs and vault RNAs, are also discussed. Finally, we review the role of RNA m5C modification in cancer pathogenesis and progression, in hopes of providing new insights into cancer treatment.
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[21]  
Roundtree IA(2019)Genome-wide identification of mRNA 5-methylcytosine in mammals RNA Biol 16 912-445
[22]  
Evans ME(2019)Division of labour: tRNA methylation by the NSun2 tRNA methyltransferases Trm4a and Trm4b in fission yeast Nat Cell Biol 21 65-1831
[23]  
Pan T(2020)5-methylcytosine promotes pathogenesis of bladder cancer through stabilizing mRNAs Am J Transl Res 12 444-1804
[24]  
He C(2016)Role of m (5) C-related regulatory genes in the diagnosis and prognosis of hepatocellular carcinoma Curr Opin Oncol 28 1827-1399
[25]  
Bourgeois G(1958)Posttranscriptional methylation of transfer and ribosomal RNA in stress response pathways, cell differentiation, and cancer Biochim Biophys Acta 29 1793-755
[26]  
Ney M(1992)5-methyl cytosine in the RNA of Proc Natl Acad Sci U S A 89 1387-206
[27]  
Gaspar I(1975)A genomic sequencing protocol that yields a positive display of 5-methylcytosine residues in individual DNA strands Nucleic Acids Res 2 752-361
[28]  
Aigueperse C(2009)Effect of sodium bisulfite modification on the arginine acceptance of Nucleic Acids Res 37 201-464
[29]  
Schaefer M(2017) tRNA Arg Mol Plant 10 337-261
[30]  
Kellner S(2015)RNA cytosine methylation analysis by bisulfite sequencing Chembiochem. 16 458-1123