Home LiteratureArticle Details
PMID: 27237585 Published · ppublish English Journal Article Review

ALKBHs-facilitated RNA modifications and de-modifications.

DNA repair ·Vol. 44 ·2016-00-00 ·Pages 87-91

A Alemu E, He C, Klungland A

Abstract

The AlkB gene that protects E.coli against methylation damage to DNA was identified more than 3 decades ago. 20 years later, the AlkB protein was shown to catalyze repair of methylated DNA base lesions by oxidative demethylation. Two human AlkB homologs were characterized with similar DNA repair activities and seven additional human AlkB homologs were identified based on sequence homology. All these dioxygenases, ALKBH1-8 and FTO, contain a conserved α-ketoglutarate/iron-dependent domain for methyl modifications and de-modifications. Well-designed research over the last 10 years has identified unforeseen substrate heterogeneity for the AlkB homologs, including novel reversible methyl modifications in RNA. The discoveries of RNA demethylation catalyzed by AlkB family enzymes initiated a new realm of gene expression regulation, although the understanding of precise endogenous activities and roles of these RNA demethylases are still undeveloped. It is worth mentioning that the AlkB mechanism and use of α-ketoglutarate have also emerged to be essential for many enzymes in epigenetic reprogramming that modify and de-modify methylated bases in DNA and methylated amino acids in histones.

Keywords
AlkB homologs DNA repair Oxidative demethylation RNA metabolisms YTH domain proteins
MeSH Terms
AlkB Enzymes/genetics,metabolism DNA/genetics,metabolism DNA Damage DNA Methylation DNA Repair Epigenesis, Genetic Escherichia coli/genetics,metabolism Histones/genetics,metabolism Humans Iron/metabolism Ketoglutaric Acids/metabolism Multigene Family RNA/genetics,metabolism
Chemicals
Histones Ketoglutaric Acids RNA DNA Iron AlkB Enzymes
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
A Alemu Endalkachew
Department of Microbiology, Division of Diagnostics and Intervention, Institute of Clinical Medicine, Oslo University Hospital, Rikshospitalet, Oslo NO-0027, Norway; Department of Molecular Medicine, Faculty of Medicine, Institute of Basic Medical Sciences, University of Oslo, Oslo NO-0027, Norway.
He Chuan
Department of Chemistry, Department of Biochemistry and Molecular Biology, and Institute for Biophysical Dynamics, Howard Hughes Medical Institute, The University of Chicago, 929 East 57th Street, Chicago, IL 60637, USA. Electronic address: chuanhe@uchicago.edu.
Klungland Arne
Department of Microbiology, Division of Diagnostics and Intervention, Institute of Clinical Medicine, Oslo University Hospital, Rikshospitalet, Oslo NO-0027, Norway; Department of Molecular Medicine, Faculty of Medicine, Institute of Basic Medical Sciences, University of Oslo, Oslo NO-0027, Norway. Electronic address: arne.klungland@medisin.uio.no.
Conflict of Interest

The authors declare no conflict of interest.

References (52)
52 references, click to expand
  1. N(6)-methyladenosine Modulates Messenger RNA Translation Efficiency.
    Cell. 2015 Jun 4;161(6):1388-99 PMID: 26046440
  2. Nucleosomes suppress the formation of double-strand DNA breaks during attempted base excision repair of clustered oxidative damages.
    J Biol Chem. 2014 Jul 18;289(29):19881-93 PMID: 24891506
  3. N6-methyladenine DNA modification in Drosophila.
    Cell. 2015 May 7;161(4):893-906 PMID: 25936838
  4. Single-nucleotide-resolution mapping of m6A and m6Am throughout the transcriptome.
    Nat Methods. 2015 Aug;12(8):767-72 PMID: 26121403
  5. m(6)A RNA modification controls cell fate transition in mammalian embryonic stem cells.
    Cell Stem Cell. 2014 Dec 4;15(6):707-19 PMID: 25456834
  6. Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB.
    BMC Genomics. 2003 Dec 10;4(1):48 PMID: 14667252
  7. N6-methyldeoxyadenosine marks active transcription start sites in Chlamydomonas.
    Cell. 2015 May 7;161(4):879-92 PMID: 25936837
  8. RNA biochemistry. Transcriptome-wide distribution and function of RNA hydroxymethylcytosine.
    Science. 2016 Jan 15;351(6270):282-5 PMID: 26816380
  9. Comprehensive analysis of mRNA methylation reveals enrichment in 3' UTRs and near stop codons.
    Cell. 2012 Jun 22;149(7):1635-46 PMID: 22608085
  10. Human ALKBH7 is required for alkylation and oxidation-induced programmed necrosis.
    Genes Dev. 2013 May 15;27(10 ):1089-100 PMID: 23666923
  11. Histone demethylation by a family of JmjC domain-containing proteins.
    Nature. 2006 Feb 16;439(7078):811-6 PMID: 16362057
  12. Tet-mediated formation of 5-carboxylcytosine and its excision by TDG in mammalian DNA.
    Science. 2011 Sep 2;333(6047):1303-7 PMID: 21817016
  13. A new gene (alkB) of Escherichia coli that controls sensitivity to methyl methane sulfonate.
    J Bacteriol. 1983 Mar;153(3):1301-7 PMID: 6337994
  14. ALKBH5 is a mammalian RNA demethylase that impacts RNA metabolism and mouse fertility.
    Mol Cell. 2013 Jan 10;49(1):18-29 PMID: 23177736
  15. AlkB restores the biological function of mRNA and tRNA inactivated by chemical methylation.
    Mol Cell. 2004 Oct 8;16(1):107-16 PMID: 15469826
  16. N6-methyladenosine in nuclear RNA is a major substrate of the obesity-associated FTO.
    Nat Chem Biol. 2011 Oct 16;7(12 ):885-7 PMID: 22002720
  17. Transcriptome-wide mapping reveals reversible and dynamic N(1)-methyladenosine methylome.
    Nat Chem Biol. 2016 May;12 (5):311-6 PMID: 26863410
  18. N6-methyladenosine-dependent regulation of messenger RNA stability.
    Nature. 2014 Jan 2;505(7481):117-20 PMID: 24284625
  19. ALKBH8-mediated formation of a novel diastereomeric pair of wobble nucleosides in mammalian tRNA.
    Nat Commun. 2011 Feb 01;2:172 PMID: 21285950
  20. Induction of sporulation in Saccharomyces cerevisiae leads to the formation of N6-methyladenosine in mRNA: a potential mechanism for the activity of the IME4 gene.
    Nucleic Acids Res. 2002 Oct 15;30(20):4509-18 PMID: 12384598
  21. Oxidative demethylation by Escherichia coli AlkB directly reverts DNA base damage.
    Nature. 2002 Sep 12;419(6903):174-8 PMID: 12226667
  22. Reversal of DNA alkylation damage by two human dioxygenases.
    Proc Natl Acad Sci U S A. 2002 Dec 24;99(26):16660-5 PMID: 12486230
  23. Human AlkB homolog ABH8 Is a tRNA methyltransferase required for wobble uridine modification and DNA damage survival.
    Mol Cell Biol. 2010 May;30(10 ):2449-59 PMID: 20308323
  24. HNRNPA2B1 Is a Mediator of m(6)A-Dependent Nuclear RNA Processing Events.
    Cell. 2015 Sep 10;162(6):1299-308 PMID: 26321680
  25. A METTL3-METTL14 complex mediates mammalian nuclear RNA N6-adenosine methylation.
    Nat Chem Biol. 2014 Feb;10(2):93-5 PMID: 24316715
  26. N(6)-methyladenosine-dependent RNA structural switches regulate RNA-protein interactions.
    Nature. 2015 Feb 26;518(7540):560-4 PMID: 25719671
  27. Mammalian ALKBH8 possesses tRNA methyltransferase activity required for the biogenesis of multiple wobble uridine modifications implicated in translational decoding.
    Mol Cell Biol. 2010 Apr;30(7):1814-27 PMID: 20123966
  28. Dynamic m(6)A mRNA methylation directs translational control of heat shock response.
    Nature. 2015 Oct 22;526(7574):591-4 PMID: 26458103
  29. High-Resolution Mapping of N⁶-Methyladenosine in Transcriptome and Genome Using a Photo-Crosslinking-Assisted Strategy.
    Methods Enzymol. 2015;560:161-85 PMID: 26253971
  30. Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq.
    Nature. 2012 Apr 29;485(7397):201-6 PMID: 22575960
  31. Tet oxidizes thymine to 5-hydroxymethyluracil in mouse embryonic stem cell DNA.
    Nat Chem Biol. 2014 Jul;10(7):574-81 PMID: 24838012
  32. AlkB-mediated oxidative demethylation reverses DNA damage in Escherichia coli.
    Nature. 2002 Sep 12;419(6903):178-82 PMID: 12226668
  33. The dynamic N(1)-methyladenosine methylome in eukaryotic messenger RNA.
    Nature. 2016 Feb 25;530(7591):441-6 PMID: 26863196
  34. FTO-mediated formation of N6-hydroxymethyladenosine and N6-formyladenosine in mammalian RNA.
    Nat Commun. 2013;4:1798 PMID: 23653210
  35. Histone demethylation mediated by the nuclear amine oxidase homolog LSD1.
    Cell. 2004 Dec 29;119(7):941-53 PMID: 15620353
  36. The DNA-repair protein AlkB, EGL-9, and leprecan define new families of 2-oxoglutarate- and iron-dependent dioxygenases.
    Genome Biol. 2001;2(3):RESEARCH0007 PMID: 11276424
  37. ALKBH4-dependent demethylation of actin regulates actomyosin dynamics.
    Nat Commun. 2013;4:1832 PMID: 23673617
  38. The AlkB domain of mammalian ABH8 catalyzes hydroxylation of 5-methoxycarbonylmethyluridine at the wobble position of tRNA.
    Angew Chem Int Ed Engl. 2010 Nov 15;49(47):8885-8 PMID: 20583019
  39. Drosophila Inducer of MEiosis 4 (IME4) is required for Notch signaling during oogenesis.
    Proc Natl Acad Sci U S A. 2011 Sep 6;108(36):14855-60 PMID: 21873203
  40. DNA Methylation on N6-Adenine in C. elegans.
    Cell. 2015 May 7;161(4):868-78 PMID: 25936839
  41. Deletion of mouse Alkbh7 leads to obesity.
    J Mol Cell Biol. 2013 Jun;5(3):194-203 PMID: 23572141
  42. Defective processing of methylated single-stranded DNA by E. coli AlkB mutants.
    Genes Dev. 2000 Aug 15;14(16):2097-105 PMID: 10950872
  43. A majority of m6A residues are in the last exons, allowing the potential for 3' UTR regulation.
    Genes Dev. 2015 Oct 1;29(19):2037-53 PMID: 26404942
  44. Human and bacterial oxidative demethylases repair alkylation damage in both RNA and DNA.
    Nature. 2003 Feb 20;421(6925):859-63 PMID: 12594517
  45. AlkB mystery solved: oxidative demethylation of N1-methyladenine and N3-methylcytosine adducts by a direct reversal mechanism.
    Trends Biochem Sci. 2003 Jan;28(1):2-5 PMID: 12517444
  46. Obesity-associated variants within FTO form long-range functional connections with IRX3.
    Nature. 2014 Mar 20;507(7492):371-5 PMID: 24646999
  47. Stem cells. m6A mRNA methylation facilitates resolution of naïve pluripotency toward differentiation.
    Science. 2015 Feb 27;347(6225):1002-6 PMID: 25569111
  48. RNA-methylation-dependent RNA processing controls the speed of the circadian clock.
    Cell. 2013 Nov 7;155(4):793-806 PMID: 24209618
  49. MTA is an Arabidopsis messenger RNA adenosine methylase and interacts with a homolog of a sex-specific splicing factor.
    Plant Cell. 2008 May;20(5):1278-88 PMID: 18505803
  50. Biochemical reconstitution of TET1-TDG-BER-dependent active DNA demethylation reveals a highly coordinated mechanism.
    Nat Commun. 2016 Mar 02;7:10806 PMID: 26932196
  51. Loss-of-function mutation in the dioxygenase-encoding FTO gene causes severe growth retardation and multiple malformations.
    Am J Hum Genet. 2009 Jul;85(1):106-11 PMID: 19559399
  52. Grand challenge commentary: RNA epigenetics?
    Nat Chem Biol. 2010 Dec;6(12):863-5 PMID: 21079590
Article Info
Journal
DNA repair
Abbr.
DNA Repair (Amst)
ISSN
1568-7856
Published
2016-00-00
Epub
2016-00-17
Pages
87-91
Language
English
Region
Netherlands
NLM ID
101139138
PMCID
PMC5120542
Subset
IM
Grants
NIGMS NIH HHS · R01 GM071440 · United States
Howard Hughes Medical Institute · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com