The m(6)A Methyltransferase METTL3 Promotes Translation in Human Cancer Cells.
暂无分享,去创建一个
R. Gregory | Shuibin Lin | Junho Choe | Robinson Triboulet | P. Du | Richard I Gregory | Peng Du | Robinson Triboulet | Shuibin Lin | Junho Choe | Shuibin Lin
[1] Arne Klungland,et al. ALKBH5 is a mammalian RNA demethylase that impacts RNA metabolism and mouse fertility. , 2013, Molecular cell.
[2] Arun K. Srivastava,et al. Cytotoxic genes from traditional Chinese medicine inhibit tumor growth both in vitro and in vivo. , 2014, Journal of integrative medicine.
[3] R J Roberts,et al. Sequence specificity of the human mRNA N6-adenosine methylase in vitro. , 1990, Nucleic acids research.
[4] Arun K. Srivastava,et al. Pristimerin enhances recombinant adeno-associated virus vector-mediated transgene expression in human cell lines in vitro and murine hepatocytes in vivo. , 2014, Journal of integrative medicine.
[5] Chuan He,et al. N 6 -methyladenosine Modulates Messenger RNA Translation Efficiency , 2015, Cell.
[6] M. Tuck,et al. Internal 6-methyladenine residues increase the in vitro translation efficiency of dihydrofolate reductase messenger RNA. , 1996, The international journal of biochemistry & cell biology.
[7] T. Nilsen,et al. Mapping of N6-methyladenosine residues in bovine prolactin mRNA. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[8] Yi Xing,et al. m(6)A RNA modification controls cell fate transition in mammalian embryonic stem cells. , 2014, Cell stem cell.
[9] Yoon Ki Kim,et al. Pioneer round of translation occurs during serum starvation. , 2007, Biochemical and biophysical research communications.
[10] M. Kupiec,et al. Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq , 2012, Nature.
[11] Yang Wang,et al. N6-methyladenosine modification destabilizes developmental regulators in embryonic stem cells , 2014, Nature Cell Biology.
[12] Miao Yu,et al. A METTL3-METTL14 complex mediates mammalian nuclear RNA N6-adenosine methylation , 2013, Nature chemical biology.
[13] Shu-Bing Qian,et al. Quantitative profiling of initiating ribosomes in vivo , 2014, Nature Methods.
[14] S. Tavazoie,et al. N6-methyladenosine marks primary microRNAs for processing , 2015, Nature.
[15] Marko Hočevar,et al. A variant in FTO shows association with melanoma risk not due to BMI , 2013, Nature Genetics.
[16] Shu-Bing Qian,et al. Dynamic m6A mRNA methylation directs translational control of heat shock response , 2015, Nature.
[17] O. Elemento,et al. Comprehensive Analysis of mRNA Methylation Reveals Enrichment in 3′ UTRs and near Stop Codons , 2012, Cell.
[18] O. Song,et al. Translation Initiation on mRNAs Bound by Nuclear Cap-binding Protein Complex CBP80/20 Requires Interaction between CBP80/20-dependent Translation Initiation Factor and Eukaryotic Translation Initiation Factor 3g* , 2012, The Journal of Biological Chemistry.
[19] Samie R. Jaffrey,et al. The dynamic epitranscriptome: N6-methyladenosine and gene expression control , 2014, Nature Reviews Molecular Cell Biology.
[20] Erez Y. Levanon,et al. m6A mRNA methylation facilitates resolution of naïve pluripotency toward differentiation , 2015, Science.
[21] M T Tuck,et al. Partial purification of a 6-methyladenine mRNA methyltransferase which modifies internal adenine residues. , 1992, The Biochemical journal.
[22] Chuan He,et al. FTO-dependent demethylation of N6-methyladenosine regulates mRNA splicing and is required for adipogenesis , 2014, Cell Research.
[23] F. Rottman,et al. Purification and cDNA cloning of the AdoMet-binding subunit of the human mRNA (N6-adenosine)-methyltransferase. , 1997, RNA.
[24] Patrick Neven,et al. Genome-wide association studies identify four ER negative–specific breast cancer risk loci , 2013, Nature Genetics.
[25] Ke Liu,et al. Structural basis for selective binding of m6A RNA by the YTHDC1 YTH domain. , 2014, Nature chemical biology.
[26] Jihui Wu,et al. Structure of the YTH domain of human YTHDF2 in complex with an m6A mononucleotide reveals an aromatic cage for m6A recognition , 2014, Cell Research.
[27] R. Desrosiers,et al. Identification of methylated nucleosides in messenger RNA from Novikoff hepatoma cells. , 1974, Proceedings of the National Academy of Sciences of the United States of America.
[28] Qi Zhou,et al. m(6)A RNA methylation is regulated by microRNAs and promotes reprogramming to pluripotency. , 2015, Cell stem cell.
[29] Minoru Yoshida,et al. RNA-Methylation-Dependent RNA Processing Controls the Speed of the Circadian Clock , 2013, Cell.
[30] J. Kopchick,et al. Elevation of internal 6-methyladenine mRNA methyltransferase activity after cellular transformation. , 1996, Cancer letters.
[31] R. Gregory,et al. Trim71 cooperates with microRNAs to repress Cdkn1a expression and promote embryonic stem cell proliferation , 2012, Nature Communications.
[32] Li Wang,et al. Crystal structure of the YTH domain of YTHDF2 reveals mechanism for recognition of N6-methyladenosine , 2014, Cell Research.
[33] Bing Ren,et al. N6-methyladenosine-dependent regulation of messenger RNA stability , 2013 .
[34] Yoon Ki Kim,et al. A new MIF4G domain-containing protein, CTIF, directs nuclear cap-binding protein CBP80/20-dependent translation. , 2009, Genes & development.
[35] Chuan He,et al. RNA N6-methyladenosine methylation in post-transcriptional gene expression regulation , 2015, Genes & development.
[36] Gideon Rechavi,et al. Transcriptome-wide mapping of N6-methyladenosine by m6A-seq based on immunocapturing and massively parallel sequencing , 2013, Nature Protocols.
[37] Markus Blatter,et al. Solution structure of the YTH domain in complex with N6-methyladenosine RNA: a reader of methylated RNA , 2014, Nucleic acids research.
[38] Saeed Tavazoie,et al. HNRNPA2B1 Is a Mediator of m6A-Dependent Nuclear RNA Processing Events , 2015, Cell.
[39] Arne Klungland,et al. A majority of m6A residues are in the last exons, allowing the potential for 3′ UTR regulation , 2015, Genes & development.
[40] Schraga Schwartz,et al. Perturbation of m6A writers reveals two distinct classes of mRNA methylation at internal and 5' sites. , 2014, Cell reports.
[41] Chengqi Yi,et al. N6-Methyladenosine in Nuclear RNA is a Major Substrate of the Obesity-Associated FTO , 2011, Nature chemical biology.
[42] Samir Adhikari,et al. Mammalian WTAP is a regulatory subunit of the RNA N6-methyladenosine methyltransferase , 2014, Cell Research.
[43] Robert P. Perry,et al. The methylated constituents of L cell messenger RNA: Evidence for an unusual cluster at the 5′ terminus , 1975, Cell.
[44] Olivier Elemento,et al. 5′ UTR m6A Promotes Cap-Independent Translation , 2015, Cell.
[45] Zhike Lu,et al. m6A-dependent regulation of messenger RNA stability , 2013, Nature.
[46] R. Gregory,et al. Methyltransferases modulate RNA stability in embryonic stem cells , 2014, Nature Cell Biology.