Page last updated: 2024-08-24

5-methylcytosine and adenosine

5-methylcytosine has been researched along with adenosine in 44 studies

Research

Studies (44)

TimeframeStudies, this research(%)All Research%
pre-19905 (11.36)18.7374
1990's3 (6.82)18.2507
2000's1 (2.27)29.6817
2010's20 (45.45)24.3611
2020's15 (34.09)2.80

Authors

AuthorsStudies
Bourbonnière, M; Nalbantoglu, J1
Aarbakke, J; Loennechen, T; Prytz, PS1
Kerbel, RS; Liteplo, RG1
Granoff, A; Thompson, JP; Willis, DB1
Adams, JK; Allan, RG; Cooper, IA; Woodcock, DM1
Hemavathy, KC; Nagaraja, V1
Bukowska, AM; Kuśmierek, JT1
Gross, HJ; Jank, P1
Okamoto, A; Tainaka, K; Tanaka, K1
Fu, Y; He, C1
Aleksic, J; Blanco, S; Dietmann, S; Frye, M; Hussain, S1
Jaffrey, SR1
Liu, N; Pan, T1
Breuker, K; Clementi, N; Erlacher, MD; Faserl, K; Glasner, H; Hoernes, TP; Hüttenhofer, A; Lindner, H1
Chen, K; He, C; Zhao, BS1
Burgess, A; David, R; Searle, IR1
Bell, TA; Gilbert, WV; Schaening, C1
He, C; Roundtree, IA; Zhao, BS1
Casadesús, J1
Lin, PH; Liu, S; Qu, LH; Sun, WJ; Xuan, JJ; Yang, JH; Zheng, LL; Zhou, KR1
Alata Jimenez, N; Sánchez-Vásquez, E; Strobl-Mazzulla, PH; Vázquez, NA1
Gregory, BD; Vandivier, LE1
Yang, JH; Zhang, XQ1
Erlacher, MD; Faserl, K; Heimdörfer, D; Hoernes, TP; Köstner, D; Kreutz, C; Lindner, H; Nußbaumer, F; Plangger, R1
Branco, MR; Deniz, Ö; Frost, JM1
Haran, V; Lenka, N1
Liu, KF; Yanas, A1
Chen, YB; Gao, YX; Han, Y; He, F; Ji, JC; Liu, B; Sun, PP1
Chachar, S; Ding, Y; Du, H; Gu, X; Liang, Z; Riaz, A1
Bahal, R; Chen, L; Manautou, JE; Wang, P; Zhong, XB1
Lee, SM; Park, CW; Yoon, KJ1
Blanco, S; Miguel-López, B; Nombela, P1
Fan, Y; Kang, S; Lü, X; Xiao, B; Zhang, M1
Gong, S; Ren, Z; Wu, N; Xu, L; Yin, H; Zhang, C; Zhang, Y1
Dao, FY; Lin, H; Lv, H; Yang, H; Zhang, D1
Paolantoni, C; Roignant, JY; Worpenberg, L1
Goetzinger, KR; Harman, C; Ni, J; Reece, EA; Shen, WB; Wang, B; Yang, P; Yao, R1
Angelino, P; Ciuffi, A; Cristinelli, S1
Bao, Z; Chu, Q; Jiang, S; Li, L; Lu, J; Su, Y; Xue, C; Zheng, Q1
Cheng, X; Wang, JL; Zha, LF1
Cai, J; Chen, Z; Cui, L; Fan, R; Guo, C; Ma, R; Shi, Y; Wang, X; Wang, Y; Yao, L1
Apostle, A; Arneson, R; Burke, E; Chillar, K; Eriyagama, AMDN; Fang, S; Yin, Y; Yuan, Y1
Adamopoulos, PG; Athanasopoulou, K; Daneva, GN; Scorilas, A1
Ding, L; Liu, Y; Zhu, J1

Reviews

22 review(s) available for 5-methylcytosine and adenosine

ArticleYear
Nucleic acid modifications with epigenetic significance.
    Current opinion in chemical biology, 2012, Volume: 16, Issue:5-6

    Topics: 5-Methylcytosine; Adenosine; Animals; Cytosine; DNA; Epigenesis, Genetic; Humans; Methylation; RNA

2012
Characterizing 5-methylcytosine in the mammalian epitranscriptome.
    Genome biology, 2013, Nov-29, Volume: 14, Issue:11

    Topics: 5-Methylcytosine; Adenosine; Animals; Cells, Cultured; Epigenesis, Genetic; Humans; Mice; RNA Processing, Post-Transcriptional; RNA, Untranslated; Transcriptome

2013
Nucleic Acid Modifications in Regulation of Gene Expression.
    Cell chemical biology, 2016, Jan-21, Volume: 23, Issue:1

    Topics: 5-Methylcytosine; Adenine; Adenosine; Animals; Cytidine; DNA; DNA Methylation; Gene Expression Regulation; Humans; Pseudouridine; RNA

2016
Deciphering the epitranscriptome: A green perspective.
    Journal of integrative plant biology, 2016, Volume: 58, Issue:10

    Topics: 5-Methylcytosine; Adenosine; Arabidopsis; High-Throughput Nucleotide Sequencing; Pseudouridine; RNA Processing, Post-Transcriptional; Transcriptome

2016
Messenger RNA modifications: Form, distribution, and function.
    Science (New York, N.Y.), 2016, Jun-17, Volume: 352, Issue:6292

    Topics: 5-Methylcytosine; Adenosine; Animals; Epigenesis, Genetic; Gene Expression Regulation, Developmental; Humans; Methylation; Methyltransferases; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Messenger; Transcriptome

2016
Post-transcriptional gene regulation by mRNA modifications.
    Nature reviews. Molecular cell biology, 2017, Volume: 18, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Animals; Cell Cycle; Cell Differentiation; Circadian Rhythm; Gene Expression Regulation; Humans; Methylation; Nucleic Acid Conformation; Protein Biosynthesis; RNA Processing, Post-Transcriptional; RNA Stability; RNA, Messenger

2017
Bacterial DNA Methylation and Methylomes.
    Advances in experimental medicine and biology, 2016, Volume: 945

    Topics: 5-Methylcytosine; Adenine; Adenosine; Alphaproteobacteria; Cell Lineage; DNA Methylation; DNA Replication; Gammaproteobacteria; Gene Expression Regulation, Bacterial; Genome, Bacterial

2016
Emerging role of dynamic RNA modifications during animal development.
    Mechanisms of development, 2018, Volume: 154

    Topics: 5-Methylcytosine; Adenosine; Animals; Gene Expression; Humans; Pseudouridine; RNA

2018
New insights into the plant epitranscriptome.
    Journal of experimental botany, 2018, 09-14, Volume: 69, Issue:20

    Topics: 5-Methylcytosine; Adenosine; Plants; Transcriptome

2018
Regulation of transposable elements by DNA modifications.
    Nature reviews. Genetics, 2019, Volume: 20, Issue:7

    Topics: 5-Methylcytosine; Adenosine; Animals; Biological Evolution; DNA (Cytosine-5-)-Methyltransferases; DNA Methylation; DNA Transposable Elements; Epigenesis, Genetic; Gene Transfer, Horizontal; Genetic Drift; Humans; Plants; RNA, Small Interfering

2019
Deciphering the Epitranscriptomic Signatures in Cell Fate Determination and Development.
    Stem cell reviews and reports, 2019, Volume: 15, Issue:4

    Topics: 5-Methylcytosine; Adenosine; Cell Differentiation; Epigenesis, Genetic; Humans; RNA; RNA Processing, Post-Transcriptional; Transcriptome

2019
RNA modifications and the link to human disease.
    Methods in enzymology, 2019, Volume: 626

    Topics: 5-Methylcytosine; Adenosine; Animals; Guanosine; Humans; Methylation; Nucleic Acid Conformation; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Messenger; RNA, Ribosomal; RNA, Transfer; Uridine

2019
Epigenetic Modifications of mRNA and DNA in Plants.
    Molecular plant, 2020, 01-06, Volume: 13, Issue:1

    Topics: 5-Methylcytosine; Adenosine; DNA Methylation; Epigenesis, Genetic; Plants; RNA, Messenger

2020
Epitranscriptomic regulation of transcriptome plasticity in development and diseases of the brain.
    BMB reports, 2020, Volume: 53, Issue:11

    Topics: 5-Methylcytosine; Adenosine; Brain; Epigenesis, Genetic; Gene Expression; Gene Expression Regulation; Humans; Neurogenesis; Neuronal Plasticity; Neurons; Pseudouridine; RNA; RNA, Messenger; Transcriptome

2020
The role of m
    Molecular cancer, 2021, 01-18, Volume: 20, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Humans; Neoplasms; Pseudouridine; RNA; RNA Processing, Post-Transcriptional

2021
RNA modifications act as regulators of cell death.
    RNA biology, 2021, Volume: 18, Issue:12

    Topics: 5-Methylcytosine; Adenosine; Animals; Cell Death; Humans; RNA Processing, Post-Transcriptional; RNA Stability; RNA, Messenger; Signal Transduction

2021
Advances in mapping the epigenetic modifications of 5-methylcytosine (5mC), N6-methyladenine (6mA), and N4-methylcytosine (4mC).
    Biotechnology and bioengineering, 2021, Volume: 118, Issue:11

    Topics: 5-Methylcytosine; Adenosine; Animals; DNA; DNA Methylation; Epigenesis, Genetic; Humans; Sequence Analysis, DNA

2021
Functional interplay within the epitranscriptome: Reality or fiction?
    BioEssays : news and reviews in molecular, cellular and developmental biology, 2022, Volume: 44, Issue:2

    Topics: 5-Methylcytosine; Adenosine; RNA; RNA Processing, Post-Transcriptional; RNA, Messenger

2022
Role of main RNA modifications in cancer: N
    Signal transduction and targeted therapy, 2022, 04-28, Volume: 7, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Humans; Neoplasms; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Untranslated

2022
The effects of RNA methylation on immune cells development and function.
    FASEB journal : official publication of the Federation of American Societies for Experimental Biology, 2022, Volume: 36, Issue:10

    Topics: 5-Methylcytosine; Adenosine; Methylation; Methyltransferases; RNA

2022
RNA modifications: importance in immune cell biology and related diseases.
    Signal transduction and targeted therapy, 2022, 09-22, Volume: 7, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Humans; Inosine; Pseudouridine; RNA

2022
The Repertoire of RNA Modifications Orchestrates a Plethora of Cellular Responses.
    International journal of molecular sciences, 2023, Jan-25, Volume: 24, Issue:3

    Topics: 5-Methylcytosine; Adenosine; High-Throughput Nucleotide Sequencing; Humans; RNA; RNA Processing, Post-Transcriptional; Vision Disorders

2023

Other Studies

22 other study(ies) available for 5-methylcytosine and adenosine

ArticleYear
The restriction enzyme AlwNI is blocked by overlapping methylation.
    Nucleic acids research, 1991, Sep-11, Volume: 19, Issue:17

    Topics: 5-Methylcytosine; Adenosine; Amyloid beta-Peptides; Amyloid beta-Protein Precursor; Base Sequence; Chromosome Deletion; Cloning, Molecular; Cytosine; Deoxyribonucleases, Type II Site-Specific; DNA; DNA Mutational Analysis; Methylation; Molecular Sequence Data; Plasmids; Protein Precursors

1991
DNA-methylation in HL-60 cells treated with 3-deaza-(+/-)-aristeromycin and 3-deazaadenosine.
    Biochemical pharmacology, 1989, Aug-15, Volume: 38, Issue:16

    Topics: 5-Methylcytosine; Adenosine; Aminoglycosides; Anti-Bacterial Agents; Cell Count; Cell Line; Chromatography, High Pressure Liquid; Cytosine; DNA; Enzyme Inhibitors; Humans; Stereoisomerism; Tubercidin

1989
Periodate-oxidized adenosine induction of murine thymidine kinase: role of DNA methylation in the generation of tumor cell heterogeneity.
    Cancer research, 1986, Volume: 46, Issue:2

    Topics: 5-Methylcytosine; Adenosine; Animals; Cells, Cultured; Cytosine; DNA, Neoplasm; Enzyme Induction; Hydroxyurea; Methylation; Mice; Oxidation-Reduction; Periodic Acid; Thymidine Kinase

1986
Infection with frog virus 3 allows transcription of DNA methylated at cytosine but not adenine residues.
    Virology, 1987, Volume: 160, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Cytosine; DNA (Cytosine-5-)-Methyltransferases; DNA, Recombinant; Gene Expression Regulation; Iridoviridae; Methylation; Promoter Regions, Genetic; RNA Polymerase II; Transcription, Genetic; Viral Proteins

1987
Effect of several inhibitors of enzymatic DNA methylation on the in vivo methylation of different classes of DNA sequences in a cultured human cell line.
    Nucleic acids research, 1983, Jan-25, Volume: 11, Issue:2

    Topics: 5-Methylcytosine; Adenosine; Azacitidine; Brain Neoplasms; Cell Division; Cell Line; Cycloleucine; Cytosine; Deoxyadenosines; DNA; DNA Replication; Ethionine; Homocysteine; Humans; Methylation; Thionucleosides; Tubercidin

1983
DNA methylation in mycobacteria: absence of methylation at GATC (Dam) and CCA/TGG (Dcm) sequences.
    FEMS immunology and medical microbiology, 1995, Volume: 11, Issue:4

    Topics: 5-Methylcytosine; Adenosine; Base Sequence; Cytosine; Deoxyribonucleases, Type II Site-Specific; DNA (Cytosine-5-)-Methyltransferases; DNA-Cytosine Methylases; DNA, Bacterial; Methylation; Molecular Sequence Data; Mycobacterium; Mycobacterium tuberculosis; Site-Specific DNA-Methyltransferase (Adenine-Specific); Species Specificity; Substrate Specificity; Virulence

1995
Miscoding properties of isoguanine (2-oxoadenine) studied in an AMV reverse transcriptase in vitro system.
    Acta biochimica Polonica, 1996, Volume: 43, Issue:1

    Topics: 5-Methylcytosine; Adenosine; Avian Myeloblastosis Virus; Base Composition; Cytosine; Deoxyribonucleotides; Guanosine; Kinetics; Polydeoxyribonucleotides; RNA-Directed DNA Polymerase; Substrate Specificity; Templates, Genetic; Thymine

1996
Methyl-deficient mammalian transfer RNA: II. Homologous methylation in vitro of liver tRNA from normal and ethionine-fed rats: ethionine effect on 5-methyl-cytidine synthesis in vivo.
    Nucleic acids research, 1974, Volume: 1, Issue:10

    Topics: 5-Methylcytosine; Adenosine; Administration, Oral; Animals; Cadaverine; Cytosine; Ethionine; Liver; Magnesium; Methylation; Nucleic Acid Conformation; Rats; RNA, Transfer; tRNA Methyltransferases

1974
Development of bipyridine-modified nucleobase for methylcytosine-selective crosslink reaction.
    Nucleic acids symposium series (2004), 2006, Issue:50

    Topics: 5-Methylcytosine; Adenosine; Cross-Linking Reagents; DNA Methylation; Oligodeoxyribonucleotides; Osmium

2006
An expanding universe of mRNA modifications.
    Nature structural & molecular biology, 2014, Volume: 21, Issue:11

    Topics: 5-Methylcytosine; Adenosine; Humans; Inosine; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Messenger; Saccharomyces cerevisiae

2014
Probing RNA Modification Status at Single-Nucleotide Resolution in Total RNA.
    Methods in enzymology, 2015, Volume: 560

    Topics: 5-Methylcytosine; Adenosine; Base Pairing; DNA, Complementary; Humans; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Long Noncoding; RNA, Messenger

2015
Nucleotide modifications within bacterial messenger RNAs regulate their translation and are able to rewire the genetic code.
    Nucleic acids research, 2016, Jan-29, Volume: 44, Issue:2

    Topics: 5-Methylcytosine; Adenosine; Codon; Escherichia coli; Methyltransferases; Protein Biosynthesis; Pseudouridine; RNA; RNA, Bacterial; RNA, Messenger

2016
RMBase v2.0: deciphering the map of RNA modifications from epitranscriptome sequencing data.
    Nucleic acids research, 2018, 01-04, Volume: 46, Issue:D1

    Topics: 5-Methylcytosine; Adenosine; Animals; Binding Sites; Databases, Genetic; Disease; Gene Expression Profiling; Genetic Variation; High-Throughput Nucleotide Sequencing; Humans; Mice; MicroRNAs; Molecular Sequence Annotation; Polymorphism, Single Nucleotide; Pseudouridine; Rats; RNA Processing, Post-Transcriptional; RNA-Binding Proteins; RNA, Long Noncoding; Sequence Analysis, RNA; User-Computer Interface

2018
Decoding the Atlas of RNA Modifications from Epitranscriptome Sequencing Data.
    Methods in molecular biology (Clifton, N.J.), 2019, Volume: 1870

    Topics: 5-Methylcytosine; Adenosine; Binding Sites; Computational Biology; Databases, Nucleic Acid; High-Throughput Nucleotide Sequencing; Humans; Methylation; MicroRNAs; Polymorphism, Single Nucleotide; RNA Processing, Post-Transcriptional; Software; Transcriptome; User-Computer Interface; Web Browser

2019
Eukaryotic Translation Elongation is Modulated by Single Natural Nucleotide Derivatives in the Coding Sequences of mRNAs.
    Genes, 2019, 01-25, Volume: 10, Issue:2

    Topics: 5-Methylcytosine; Adenosine; Animals; Cell Line, Tumor; HEK293 Cells; Humans; Mice; Peptide Chain Elongation, Translational; Pseudouridine; RNA Processing, Post-Transcriptional; RNA, Messenger

2019
DeepMRMP: A new predictor for multiple types of RNA modification sites using deep learning.
    Mathematical biosciences and engineering : MBE, 2019, 07-04, Volume: 16, Issue:6

    Topics: 5-Methylcytosine; Adenosine; Algorithms; Animals; Computational Biology; Deep Learning; Humans; Machine Learning; Mice; Pseudouridine; RNA; RNA Processing, Post-Transcriptional; Saccharomyces cerevisiae; Species Specificity

2019
Ontogenic mRNA expression of RNA modification writers, erasers, and readers in mouse liver.
    PloS one, 2019, Volume: 14, Issue:12

    Topics: 5-Methylcytosine; Adenosine; AlkB Homolog 5, RNA Demethylase; Animals; Animals, Newborn; Embryo, Mammalian; Epigenesis, Genetic; Gene Expression Regulation, Developmental; Guanosine; Liver; Male; Methyltransferases; Mice; Pseudouridine; RNA Helicases; RNA Processing, Post-Transcriptional; RNA-Seq; RNA, Messenger

2019
RNA methylation and neurovascular unit remodeling.
    Zhong nan da xue xue bao. Yi xue ban = Journal of Central South University. Medical sciences, 2021, May-28, Volume: 46, Issue:5

    Topics: 5-Methylcytosine; Adenosine; Methylation; Methyltransferases; RNA

2021
Maternal obesity increases DNA methylation and decreases RNA methylation in the human placenta.
    Reproductive toxicology (Elmsford, N.Y.), 2022, Volume: 107

    Topics: 5-Methylcytosine; Adenosine; DNA Methylation; Female; Humans; Methyltransferases; Obesity, Maternal; Placenta; Pregnancy; RNA

2022
Exploring m6A and m5C Epitranscriptomes upon Viral Infection: an Example with HIV.
    Journal of visualized experiments : JoVE, 2022, 03-05, Issue:181

    Topics: 5-Methylcytosine; Adenosine; Epigenesis, Genetic; HIV Infections; Humans; Methylation; RNA; RNA, Messenger; Transcriptome; Virus Diseases

2022
Effects of Epitranscriptomic RNA Modifications on the Catalytic Activity of the SARS-CoV-2 Replication Complex.
    Chembiochem : a European journal of chemical biology, 2023, 04-17, Volume: 24, Issue:8

    Topics: 5-Methylcytosine; Adenosine; COVID-19; Humans; RNA; RNA, Viral; SARS-CoV-2

2023
Involvement of RNA methylation modification patterns mediated by m7G, m6A, m5C and m1A regulators in immune microenvironment regulation of Sjögren's syndrome.
    Cellular signalling, 2023, Volume: 106

    Topics: 5-Methylcytosine; Adenosine; Eukaryotic Initiation Factor-3; Humans; Methylation; RNA; Sjogren's Syndrome

2023