Human and bacterial oxidative demethylases repair alkylation damage in both RNA and DNA

被引:0
|
作者
Per Arne Aas
Marit Otterlei
Pål Ø. Falnes
Cathrine B. Vågbø
Frank Skorpen
Mansour Akbari
Ottar Sundheim
Magnar Bjørås
Geir Slupphaug
Erling Seeberg
Hans E. Krokan
机构
[1] Norwegian University of Science and Technology,Institute of Cancer Research and Molecular Biology
[2] University of Oslo,Centre of Molecular Biology and Neuroscience, and Institute of Medical Microbiology
[3] The National Hospital,undefined
来源
Nature | 2003年 / 421卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Repair of DNA damage is essential for maintaining genome integrity, and repair deficiencies in mammals are associated with cancer, neurological disease and developmental defects1. Alkylation damage in DNA is repaired by at least three different mechanisms, including damage reversal by oxidative demethylation of 1-methyladenine and 3-methylcytosine by Escherichia coli AlkB2,3. By contrast, little is known about consequences and cellular handling of alkylation damage to RNA4. Here we show that two human AlkB homologues, hABH2 and hABH3, also are oxidative DNA demethylases and that AlkB and hABH3, but not hABH2, also repair RNA. Whereas AlkB and hABH3 prefer single-stranded nucleic acids, hABH2 acts more efficiently on double-stranded DNA. In addition, AlkB and hABH3 expressed in E. coli reactivate methylated RNA bacteriophage MS2 in vivo, illustrating the biological relevance of this repair activity and establishing RNA repair as a potentially important defence mechanism in living cells. The different catalytic properties and the different subnuclear localization patterns shown by the human homologues indicate that hABH2 and hABH3 have distinct roles in the cellular response to alkylation damage.
引用
收藏
页码:859 / 863
页数:4
相关论文
共 50 条
  • [31] Oxidative DNA damage and expression of DNA repair enzymes
    Loft, S
    Vogel, U
    Risom, L
    Moller, P
    Dybdal, M
    Jensen, BR
    Dragsted, L
    Poulsen, HE
    Sandström, B
    Pedersen, A
    Wallin, H
    FREE RADICAL BIOLOGY AND MEDICINE, 2002, 33 : S248 - S249
  • [32] Charge transfer in DNA and repair of oxidative damage
    Meczynska, Sylwia
    Szumiel, Irena
    NUKLEONIKA, 2009, 54 (01) : 11 - 16
  • [33] Oxidative DNA damage and repair: Significance and biomarkers
    Ferguson, Lynnette R.
    Philpott, Martin
    Karunasinghe, Nishi
    JOURNAL OF NUTRITION, 2006, 136 (10): : 2687S - 2689S
  • [34] Repair of oxidative DNA damage by amino acids
    Milligan, JR
    Aguilera, JA
    Ly, A
    Tran, NQ
    Hoang, O
    Ward, JF
    NUCLEIC ACIDS RESEARCH, 2003, 31 (21) : 6258 - 6263
  • [35] Oxidative DNA Damage and Nucleotide Excision Repair
    Melis, Joost P. M.
    van Steeg, Harry
    Luijten, Mirjam
    ANTIOXIDANTS & REDOX SIGNALING, 2013, 18 (18) : 2409 - 2419
  • [36] Measuring oxidative DNA damage and monitoring repair
    Collins, AR
    Harrington, V
    Dusinská, M
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2003, 367 : R2 - R2
  • [37] Repair and tolerance of oxidative DNA damage in plants
    Roldan-Arjona, Teresa
    Ariza, Rafael R.
    MUTATION RESEARCH-REVIEWS IN MUTATION RESEARCH, 2009, 681 (2-3) : 169 - 179
  • [38] Repair mechanisms and mutagenesis of oxidative DNA damage
    Fortini, P
    Simonelli, V
    Parlanti, E
    Dogliotti, E
    TOXICOLOGY AND APPLIED PHARMACOLOGY, 2004, 197 (03) : 154 - 154
  • [39] Oxidative DNA Damage and Repair at Telomeres.
    Opresko, P. L.
    ENVIRONMENTAL AND MOLECULAR MUTAGENESIS, 2017, 58 : S33 - S33
  • [40] Repair and prevention of oxidative DNA damage.
    Demple, B
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1998, 216 : U570 - U570