価格表

在庫・価格 : 2024年05月03日 01時09分 現在

商品名 商品コード メーカー 包装 価格 在庫 リスト
Anti-m6A, Rabbit-Poly
データシート
202003 SS2シナプティックシステムズ
Synaptic Systems GmbH
50 μg ¥125,000 1個 追加

在庫・価格 : 2024年05月03日 01時09分 現在

Anti-m6A, Rabbit-Poly

  • 商品コード:202003
  • メーカー:SS2
  • 包装:50μg
  • 価格: ¥125,000
  • 在庫:1個
使用文献
No. 文献情報 備考 参照
1 Karra E et al. A link between FTO, ghrelin, and impaired brain food-cue responsivity. J. Clin. Invest. 2013 Aug;123(8):3539-51
Karra E et al
2013/01/01
application: IP PubMed
2 Fustin JM et al. RNA-methylation-dependent RNA processing controls the speed of the circadian clock. Cell 2013 Nov;155(4):793-806
Fustin JM et al
2013/01/01
application: IP PubMed
3 Hess ME et al. The fat mass and obesity associated gene (Fto) regulates activity of the dopaminergic midbrain circuitry. Nat. Neurosci. 2013 Aug;16(8):1042-8
Hess ME et al
2013/01/01
application: IP PubMed
4 Dominissini D et al. Transcriptome-wide mapping of N(6)-methyladenosine by m(6)A-seq based on immunocapturing and massively parallel sequencing. Nat Protoc 2013 Jan;8(1):176-89
Dominissini D et al
2013/01/01
application: IP PubMed
5 Meyer KD et al. Comprehensive analysis of mRNA methylation reveals enrichment in 3" UTRs and near stop codons. Cell 2012 Jun;149(7):1635-46
Meyer KD et al
2012/01/01
application: DOTBLOT, IP PubMed
6 Dominissini D et al. Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq. Nature 2012 May;485(7397):201-6
Dominissini D et al
2012/01/01
application: IP PubMed
7 Jia G et al. N6-methyladenosine in nuclear RNA is a major substrate of the obesity-associated FTO. Nat. Chem. Biol. 2011 Oct;7(12):885-7
Jia G et al
2011/01/01
application: DOTBLOT PubMed
8 Xiao R et al. DamIP: using mutant DNA adenine methyltransferase to study DNA-protein interactions in vivo. Curr Protoc Mol Biol 2011 Apr;Chapter 21:Unit21.21
Xiao R et al
2011/01/01
application: IP PubMed
9 Bringmann P et al. Antibodies specific for N6-methyladenosine react with intact snRNPs U2 and U4/U6. FEBS Lett. 1987 Mar;213(2):309-15
Bringmann P et al
1987/01/01
PubMed
10 Fioravanti A et al. DNA binding of the cell cycle transcriptional regulator GcrA depends on N6-adenosine methylation in Caulobacter crescentus and other Alphaproteobacteria. PLoS Genet. 2013 May;9(5):e1003541
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application: IP PubMed
11 Liu L et al. Decomposition of RNA methylome reveals co-methylation patterns induced by latent enzymatic regulators of the epitranscriptome. Mol Biosyst 2015 Jan;11(1):262-74
Liu L et al
2015/01/01
application: IP PubMed
12 Chen T et al. m(6)A RNA methylation is regulated by microRNAs and promotes reprogramming to pluripotency. Cell Stem Cell 2015 Mar;16(3):289-301
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application: DOTBLOT, IP PubMed
13 Alarc坦n CR et al. N6-methyladenosine marks primary microRNAs for processing. Nature 2015 Mar;519(7544):482-5
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application: IP PubMed
14 Greer EL et al. DNA Methylation on N6-Adenine in C. elegans. Cell 2015 May;161(4):868-78
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15 Roost C et al. Structure and thermodynamics of N6-methyladenosine in RNA: a spring-loaded base modification. J. Am. Chem. Soc. 2015 Feb;137(5):2107-15
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16 Berulava T et al. N6-adenosine methylation in MiRNAs. PLoS ONE 2015;10(2):e0118438
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17 Deng X et al. Widespread occurrence of N6-methyladenosine in bacterial mRNA. Nucleic Acids Res. 2015 Jul;43(13):6557-67
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application: IP, species: e. coli PubMed
18 Geula S et al. Stem cells. m6A mRNA methylation facilitates resolution of naïve pluripotency toward differentiation. Science 2015 Feb;347(6225):1002-6
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19 Linder B et al. Single-nucleotide-resolution mapping of m6A and m6Am throughout the transcriptome. Nat. Methods 2015 Aug;12(8):767-72
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20 Li Y et al. Transcriptome-wide N⁶-methyladenosine profiling of rice callus and leaf reveals the presence of tissue-specific competitors involved in selective mRNA modification. RNA Biol 2014;11(9):1180-8
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21 Luo GZ et al. Unique features of the m6A methylome in Arabidopsis thaliana. Nat Commun 2014 Nov;5:5630
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22 Liu N et al. N(6)-methyladenosine-dependent RNA structural switches regulate RNA-protein interactions. Nature 2015 Feb;518(7540):560-4
Liu N et al
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23 Yuan S et al. Methylation by NSun2 represses the levels and function of microRNA 125b. Mol. Cell. Biol. 2014 Oct;34(19):3630-41
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24 Li Y et al. Genome-wide detection of high abundance N6-methyladenosine sites by microarray. RNA 2015 Aug;21(8):1511-8
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25 Zhao X et al. FTO-dependent demethylation of N6-methyladenosine regulates mRNA splicing and is required for adipogenesis. Cell Res. 2014 Dec;24(12):1403-19
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application: DOTBLOT, IP PubMed
26 Mishima E et al. Immuno-Northern Blotting: Detection of RNA Modifications by Using Antibodies against Modified Nucleosides. PLoS ONE 2015;10(11):e0143756
Mishima E et al
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application: WB, DOTBLOT PubMed
27 Zhou C et al. DNA N<sup>6</sup>-methyladenine demethylase ALKBH1 enhances osteogenic differentiation of human MSCs. Bone Res 2016;4:16033
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application: DOTBLOT PubMed
28 Koziol MJ et al. Identification of methylated deoxyadenosines in vertebrates reveals diversity in DNA modifications. Nat. Struct. Mol. Biol. 2016 Jan;23(1):24-30
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29 Li X et al. Mouse Maternal High-Fat Intake Dynamically Programmed mRNA m&#x2076;A Modifications in Adipose and Skeletal Muscle Tissues in Offspring. Int J Mol Sci 2016 Aug;17(8)
Li X et al
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application: DOTBLOT PubMed
30 Molinie B et al. m(6)A-LAIC-seq reveals the census and complexity of the m(6)A epitranscriptome. Nat. Methods 2016 08;13(8):692-8
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application: IP PubMed
31 Koziol MJ et al. Identification of Methylated Deoxyadenosines in Genomic DNA by dA<sup>6m</sup> DNA Immunoprecipitation. Bio Protoc 2016 Nov;6(21)
Koziol MJ et al
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application: IP PubMed
32 Xiang Y et al. RNA m<sup>6</sup>A methylation regulates the ultraviolet-induced DNA damage response. Nature 2017 03;543(7646):573-576
Xiang Y et al
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application: DOTBLOT, ICC PubMed
33 Tao X et al. Transcriptome-wide N <sup>6</sup> -methyladenosine methylome profiling of porcine muscle and adipose tissues reveals a potential mechanism for transcriptional regulation and differential methylation pattern. BMC Genomics 2017 04;18(1):336
Tao X et al
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application: DOTBLOT, IP PubMed
34 Zhou C et al. Genome-Wide Maps of m6A circRNAs Identify Widespread and Cell-Type-Specific Methylation Patterns that Are Distinct from mRNAs. Cell Rep 2017 Aug;20(9):2262-2276
Zhou C et al
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application: IP PubMed
35 Kudou K et al. The requirement of Mettl3-promoted <i>MyoD</i> mRNA maintenance in proliferative myoblasts for skeletal muscle differentiation. Open Biol 2017 09;7(9)
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application: IP PubMed
36 de Wit E et al. Genome-wide HP1 binding in Drosophila: developmental plasticity and genomic targeting signals. Genome Res. 2005 Sep;15(9):1265-73
de Wit E et al
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application: ICC, species: drosophila PubMed
37 Ni TK et al. Premature polyadenylation of MAGI3 is associated with diminished N<sup>6</sup>-methyladenosine in its large internal exon. Sci Rep 2018 01;8(1):1415
Ni TK et al
2018/01/01
application: DOTBLOT PubMed
38 Wang X et al. Reduced m<sup>6</sup>A mRNA methylation is correlated with the progression of human cervical cancer. Oncotarget 2017 Nov;8(58):98918-98930
Wang X et al
2017/01/01
application: DOTBLOT PubMed
39 Weng H et al. METTL14 Inhibits Hematopoietic Stem/Progenitor Differentiation and Promotes Leukemogenesis via mRNA m<sup>6</sup>A Modification. Cell Stem Cell 2018 Feb;22(2):191-205.e9
Weng H et al
2018/01/01
application: IP PubMed
40 Mart鱈nez-P辿rez M et al. <i>Arabidopsis</i> m<sup>6</sup>A demethylase activity modulates viral infection of a plant virus and the m<sup>6</sup>A abundance in its genomic RNAs. Proc. Natl. Acad. Sci. U.S.A. 2017 10;114(40):10755-10760
Mart鱈nez-P辿rez M et al
2017/01/01
application: DOTBLOT, IP PubMed
41 Li J et al. Downregulation of N<sup>6</sup>-methyladenosine binding YTHDF2 protein mediated by miR-493-3p suppresses prostate cancer by elevating N<sup>6</sup>-methyladenosine levels. Oncotarget 2018 Jan;9(3):3752-3764
Li J et al
2018/01/01
application: DOTBLOT, species: human PubMed
42 Cui Q et al. m<sup>6</sup>A RNA Methylation Regulates the Self-Renewal and Tumorigenesis of Glioblastoma Stem Cells. Cell Rep 2017 03;18(11):2622-2634
Cui Q et al
2017/01/01
application: DOTBLOT, species: human PubMed
43 Lin S et al. The m(6)A Methyltransferase METTL3 Promotes Translation in Human Cancer Cells. Mol. Cell 2016 05;62(3):335-345
Lin S et al
2016/01/01
application: IP, species: human PubMed
44 Wang X et al. mRNA m<sup>6</sup>A plays opposite role in regulating UCP2 and PNPLA2 protein expression in adipocytes. Int J Obes (Lond) 2018 Nov;42(11):1912-1924
Wang X et al
2018/01/01
application: IP, species: pig PubMed
45 Fu Y et al. N6-methyldeoxyadenosine marks active transcription start sites in Chlamydomonas. Cell 2015 May;161(4):879-892
Fu Y et al
2015/01/01
application: IP PubMed
46 Wen J et al. Zc3h13 Regulates Nuclear RNA m<sup>6</sup>A Methylation and Mouse Embryonic Stem Cell Self-Renewal. Mol. Cell 2018 03;69(6):1028-1038.e6
Wen J et al
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application: IP, species: mouse PubMed
47 Weng YL et al. Epitranscriptomic m<sup>6</sup>A Regulation of Axon Regeneration in the Adult Mammalian Nervous System. Neuron 2018 Jan;97(2):313-325.e6
Weng YL et al
2018/01/01
application: IP, species: mouse PubMed
48 Wang Y et al. N6-adenine DNA methylation is associated with the linker DNA of H2A.Z-containing well-positioned nucleosomes in Pol II-transcribed genes in Tetrahymena. Nucleic Acids Res. 2017 Nov;45(20):11594-11606
Wang Y et al
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application: DOTBLOT, ICC PubMed
49 Huang H et al. Recognition of RNA N<sup>6</sup>-methyladenosine by IGF2BP proteins enhances mRNA stability and translation. Nat. Cell Biol. 2018 Mar;20(3):285-295
Huang H et al
2018/01/01
application: DOTBLOT, IP PubMed
50 Tan B et al. Viral and cellular N<sup>6</sup>-methyladenosine and N<sup>6</sup>,2&quot;-O-dimethyladenosine epitranscriptomes in the KSHV life cycle. Nat Microbiol 2018 Jan;3(1):108-120
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application: IP PubMed
51 Wang Y et al. N<sup>6</sup>-methyladenosine RNA modification regulates embryonic neural stem cell self-renewal through histone modifications. Nat. Neurosci. 2018 Feb;21(2):195-206
Wang Y et al
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application: DOTBLOT, IP PubMed
52 Zhang M et al. The Demethylase Activity of FTO (Fat Mass and Obesity Associated Protein) Is Required for Preadipocyte Differentiation. PLoS ONE 2015;10(7):e0133788
Zhang M et al
2015/01/01
application: DOTBLOT, species: mouse PubMed
53 Yang D et al. N6-Methyladenosine modification of lincRNA 1281 is critically required for mESC differentiation potential. Nucleic Acids Res. 2018 May;46(8):3906-3920
Yang D et al
2018/01/01
application: IP, species: mouse PubMed
54 Du Y et al. SUMOylation of the m6A-RNA methyltransferase METTL3 modulates its function. Nucleic Acids Res. 2018 Jun;46(10):5195-5208
Du Y et al
2018/01/01
application: IP, species: human PubMed
55 Knuckles P et al. Zc3h13/Flacc is required for adenosine methylation by bridging the mRNA-binding factor Rbm15/Spenito to the m<sup>6</sup>A machinery component Wtap/Fl(2)d. Genes Dev. 2018 03;32(5-6):415-429
Knuckles P et al
2018/01/01
application: IP, species: mouse PubMed
56 Wang CX et al. METTL3-mediated m6A modification is required for cerebellar development. PLoS Biol. 2018 Jun;16(6):e2004880
Wang CX et al
2018/01/01
application: IP, species: mouse PubMed
57 Merkurjev D et al. Synaptic N<sup>6</sup>-methyladenosine (m<sup>6</sup>A) epitranscriptome reveals functional partitioning of localized transcripts. Nat. Neurosci. 2018 Jul;21(7):1004-1014
Merkurjev D et al
2018/01/01
application: DOTBLOT, IP, species: mouse PubMed
58 Liu B et al. A potentially abundant junctional RNA motif stabilized by m<sup>6</sup>A and Mg<sup>2</sup>. Nat Commun 2018 07;9(1):2761
Liu B et al
2018/01/01
application: DOTBLOT PubMed
59 Koranda JL et al. Mettl14 Is Essential for Epitranscriptomic Regulation of Striatal Function and Learning. Neuron 2018 Jul;99(2):283-292.e5
Koranda JL et al
2018/01/01
application: IP, species: mouse PubMed
60 Li Z et al. Suppression of m<sup>6</sup>A reader Ythdf2 promotes hematopoietic stem cell expansion. Cell Res. 2018 Sep;28(9):904-917
Li Z et al
2018/01/01
application: IP, species: mouse PubMed
61 Zhou C et al. Identification and analysis of adenine N<sup>6</sup>-methylation sites in the rice genome. Nat Plants 2018 Aug;4(8):554-563
Zhou C et al
2018/01/01
application: IP PubMed
62 Yao B et al. Active N<sup>6</sup>-Methyladenine Demethylation by DMAD Regulates Gene Expression by Coordinating with Polycomb Protein in Neurons. Mol. Cell 2018 Sep;71(5):848-857.e6
Yao B et al
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63 Mendel M et al. Methylation of Structured RNA by the m<sup>6</sup>A Writer METTL16 Is Essential for Mouse Embryonic Development. Mol. Cell 2018 Sep;71(6):986-1000.e11
Mendel M et al
2018/01/01
application: IP, species: mouse PubMed
64 Zeng Y et al. Refined RIP-seq protocol for epitranscriptome analysis with low input materials. PLoS Biol. 2018 Sep;16(9):e2006092
Zeng Y et al
2018/01/01
application: IP, species: human PubMed
65 Liu J et al. Abundant DNA 6mA methylation during early embryogenesis of zebrafish and pig. Nat Commun 2016 10;7:13052
Liu J et al
2016/01/01
application: IP, ICC, species: zebrafish PubMed
66 Yan F et al. A dynamic N<sup>6</sup>-methyladenosine methylome regulates intrinsic and acquired resistance to tyrosine kinase inhibitors. Cell Res. 2018 Nov;28(11):1062-1076
Yan F et al
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67 Martin Carli JF et al. FTO mediates cell-autonomous effects on adipogenesis and adipocyte lipid content by regulating gene expression via 6mA DNA modifications. J. Lipid Res. 2018 Aug;59(8):1446-1460
Martin Carli JF et al
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68 Jiang Q et al. MTCH2 promotes adipogenesis in intramuscular preadipocytes via an m<sup>6</sup>A-YTHDF1-dependent mechanism. FASEB J. 2018 Oct;:fj201801393RRR
Jiang Q et al
2018/01/01
application: IP, species: pig PubMed
69 Anderson SJ et al. N<sup>6</sup>-Methyladenosine Inhibits Local Ribonucleolytic Cleavage to Stabilize mRNAs in Arabidopsis. Cell Rep 2018 Oct;25(5):1146-1157.e3
Anderson SJ et al
2018/01/01
application: IP PubMed
70 Xie Q et al. N<sup>6</sup>-methyladenine DNA Modification in Glioblastoma. Cell 2018 Nov;175(5):1228-1243.e20
Xie Q et al
2018/01/01
application: DOTBLOT, IP PubMed
71 Koh CWQ et al. Single-nucleotide-resolution sequencing of human N6-methyldeoxyadenosine reveals strand-asymmetric clusters associated with SSBP1 on the mitochondrial genome. Nucleic Acids Res. 2018 Dec;46(22):11659-11670
Koh CWQ et al
2018/01/01
application: IP, species: human PubMed
72 Zhong X et al. Circadian Clock Regulation of Hepatic Lipid Metabolism by Modulation of m<sup>6</sup>A mRNA Methylation. Cell Rep 2018 Nov;25(7):1816-1828.e4
Zhong X et al
2018/01/01
application: IP, species: mouse PubMed
73 Wu Y et al. Mettl3-mediated m<sup>6</sup>A RNA methylation regulates the fate of bone marrow mesenchymal stem cells and osteoporosis. Nat Commun 2018 11;9(1):4772
Wu Y et al
2018/01/01
application: IP, species: mouse PubMed
74 Luo GZ et al. N<sup>6</sup>-methyldeoxyadenosine directs nucleosome positioning in Tetrahymena DNA. Genome Biol. 2018 11;19(1):200
Luo GZ et al
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application: IP PubMed
75 Sobecki M et al. MadID, a Versatile Approach to Map Protein-DNA Interactions, Highlights Telomere-Nuclear Envelope Contact Sites in Human Cells. Cell Rep 2018 Dec;25(10):2891-2903.e5
Sobecki M et al
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application: DOTBLOT, IP PubMed
76 Zhang P et al. m<sup>6</sup>A-mediated ZNF750 repression facilitates nasopharyngeal carcinoma progression. Cell Death Dis 2018 Dec;9(12):1169
Zhang P et al
2018/01/01
application: DOTBLOT, IP, species: human PubMed
77 Boileau E et al. RNA Modification Level Estimation with pulseR. Genes (Basel) 2018 Dec;9(12)
Boileau E et al
2018/01/01
application: IP, species: human PubMed
78 Mishima E et al. Immuno-Northern Blotting: Detection of Modified RNA Using Gel Separation and Antibodies to Modified Nucleosides. Methods Mol. Biol. 2019;1870:179-187
Mishima E et al
2019/01/01
application: WB PubMed
79 Su R et al. R-2HG Exhibits Anti-tumor Activity by Targeting FTO/m<sup>6</sup>A/MYC/CEBPA Signaling. Cell 2018 01;172(1-2):90-105.e23
Su R et al
2018/01/01
PubMed
80 Tirumuru N et al. HIV-1 envelope proteins up-regulate <i>N</i> <sup>6</sup>-methyladenosine levels of cellular RNA independently of viral replication. J Biol Chem 2019 03;294(9):3249-3260
Tirumuru N et al
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PubMed
81 Engel M et al. The Role of m<sup>6</sup>A/m-RNA Methylation in Stress Response Regulation. Neuron 2018 07;99(2):389-403.e9
Engel M et al
2018/01/01
PubMed
82 Zhou J et al. N<sup>6</sup>-Methyladenosine Guides mRNA Alternative Translation during Integrated Stress Response. Mol Cell 2018 02;69(4):636-647.e7
Zhou J et al
2018/01/01
PubMed
83 Cheng M et al. The m<sup>6</sup>A methyltransferase METTL3 promotes bladder cancer progression via AFF4/NF-&#x3BA;B/MYC signaling network. Oncogene 2019 05;38(19):3667-3680
Cheng M et al
2019/01/01
PubMed
84 Liang Z et al. DNA N<sup>6</sup>-Adenine Methylation in Arabidopsis thaliana. Dev Cell 2018 05;45(3):406-416.e3
Liang Z et al
2018/01/01
PubMed
85 Xiao CL et al. N<sup>6</sup>-Methyladenine DNA Modification in the Human Genome. Mol Cell 2018 07;71(2):306-318.e7
Xiao CL et al
2018/01/01
PubMed
86 Pendleton KE et al. The U6 snRNA m<sup>6</sup>A Methyltransferase METTL16 Regulates SAM Synthetase Intron Retention. Cell 2017 May;169(5):824-835.e14
Pendleton KE et al
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PubMed
87 McIntyre ABR et al. Single-molecule sequencing detection of N6-methyladenine in microbial reference materials. Nat Commun 2019 02;10(1):579
McIntyre ABR et al
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PubMed
88 Legnini I et al. Circ-ZNF609 Is a Circular RNA that Can Be Translated and Functions in Myogenesis. Mol Cell 2017 Apr;66(1):22-37.e9
Legnini I et al
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89 Zhang S et al. m<sup>6</sup>A Demethylase ALKBH5 Maintains Tumorigenicity of Glioblastoma Stem-like Cells by Sustaining FOXM1 Expression and Cell Proliferation Program. Cancer Cell 2017 04;31(4):591-606.e6
Zhang S et al
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PubMed
90 Tsai K et al. Addition of m6A to SV40 late mRNAs enhances viral structural gene expression and replication. PLoS Pathog 2018 02;14(2):e1006919
Tsai K et al
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PubMed
91 Mauer J et al. FTO controls reversible m<sup>6</sup>Am RNA methylation during snRNA biogenesis. Nat Chem Biol 2019 04;15(4):340-347
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PubMed
92 Zhuang M et al. The m6A reader YTHDF1 regulates axon guidance through translational control of Robo3.1 expression. Nucleic Acids Res. 2019 May;47(9):4765-4777
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PubMed
93 Yoon KJ et al. Temporal Control of Mammalian Cortical Neurogenesis by m<sup>6</sup>A Methylation. Cell 2017 Nov;171(4):877-889.e17
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94 Song H et al. METTL3 and ALKBH5 oppositely regulate m<sup>6</sup>A modification of <i>TFEB</i> mRNA, which dictates the fate of hypoxia/reoxygenation-treated cardiomyocytes. Autophagy 2019 Aug;15(8):1419-1437
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95 Wang Y et al. Genome-wide screening of altered m6A-tagged transcript profiles in the hippocampus after traumatic brain injury in mice. Epigenomics 2019 May;11(7):805-819
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PubMed
96 Selberg S et al. Discovery of Small Molecules that Activate RNA Methylation through Cooperative Binding to the METTL3-14-WTAP Complex Active Site. Cell Rep 2019 03;26(13):3762-3771.e5
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97 Huang Y et al. Small-Molecule Targeting of Oncogenic FTO Demethylase in Acute Myeloid Leukemia. Cancer Cell 2019 04;35(4):677-691.e10
Huang Y et al
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PubMed
98 Zhang J et al. Excessive miR-25-3p maturation via N<sup>6</sup>-methyladenosine stimulated by cigarette smoke promotes pancreatic cancer progression. Nat Commun 2019 04;10(1):1858
Zhang J et al
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PubMed
99 Wang H et al. Mettl3-mediated mRNA m<sup>6</sup>A methylation promotes dendritic cell activation. Nat Commun 2019 04;10(1):1898
Wang H et al
2019/01/01
PubMed
  • No.: 1
  • 文献情報:
    Karra E et al. A link between FTO, ghrelin, and impaired brain food-cue responsivity. J. Clin. Invest. 2013 Aug;123(8):3539-51
    Karra E et al
    2013/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
  • No.: 2
  • 文献情報:
    Fustin JM et al. RNA-methylation-dependent RNA processing controls the speed of the circadian clock. Cell 2013 Nov;155(4):793-806
    Fustin JM et al
    2013/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
  • No.: 3
  • 文献情報:
    Hess ME et al. The fat mass and obesity associated gene (Fto) regulates activity of the dopaminergic midbrain circuitry. Nat. Neurosci. 2013 Aug;16(8):1042-8
    Hess ME et al
    2013/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
  • No.: 4
  • 文献情報:
    Dominissini D et al. Transcriptome-wide mapping of N(6)-methyladenosine by m(6)A-seq based on immunocapturing and massively parallel sequencing. Nat Protoc 2013 Jan;8(1):176-89
    Dominissini D et al
    2013/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
  • No.: 5
  • 文献情報:
    Meyer KD et al. Comprehensive analysis of mRNA methylation reveals enrichment in 3&quot; UTRs and near stop codons. Cell 2012 Jun;149(7):1635-46
    Meyer KD et al
    2012/01/01
  • 備考:
    application: DOTBLOT, IP
  • 参照:
    PubMed
  • No.: 6
  • 文献情報:
    Dominissini D et al. Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq. Nature 2012 May;485(7397):201-6
    Dominissini D et al
    2012/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
  • No.: 7
  • 文献情報:
    Jia G et al. N6-methyladenosine in nuclear RNA is a major substrate of the obesity-associated FTO. Nat. Chem. Biol. 2011 Oct;7(12):885-7
    Jia G et al
    2011/01/01
  • 備考:
    application: DOTBLOT
  • 参照:
    PubMed
  • No.: 8
  • 文献情報:
    Xiao R et al. DamIP: using mutant DNA adenine methyltransferase to study DNA-protein interactions in vivo. Curr Protoc Mol Biol 2011 Apr;Chapter 21:Unit21.21
    Xiao R et al
    2011/01/01
  • 備考:
    application: IP
  • 参照:
    PubMed
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