Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB

<p>Abstract</p> <p>Background</p> <p>Combination of biochemical and bioinformatic analyses led to the discovery of oxidative demethylation – a novel DNA repair mechanism catalyzed by the <it>Escherichia coli </it>AlkB protein and its two human homologs, hABH...

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Main Authors: Papaj Grzegorz, Bhagwat Ashok S, Kurowski Michal A, Bujnicki Janusz M
Format: Article
Language:English
Published: BMC 2003-12-01
Series:BMC Genomics
Subjects:
Online Access:http://www.biomedcentral.com/1471-2164/4/48
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spelling doaj-599a719ab7794750bdf114b83c837bc02020-11-24T21:44:58ZengBMCBMC Genomics1471-21642003-12-01414810.1186/1471-2164-4-48Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkBPapaj GrzegorzBhagwat Ashok SKurowski Michal ABujnicki Janusz M<p>Abstract</p> <p>Background</p> <p>Combination of biochemical and bioinformatic analyses led to the discovery of oxidative demethylation – a novel DNA repair mechanism catalyzed by the <it>Escherichia coli </it>AlkB protein and its two human homologs, hABH2 and hABH3. This discovery was based on the prediction made by Aravind and Koonin that AlkB is a member of the 2OG-Fe<sup>2+ </sup>oxygenase superfamily.</p> <p>Results</p> <p>In this article, we report identification and sequence analysis of five human members of the (2OG-Fe<sup>2+</sup>) oxygenase superfamily designated here as hABH4 through hABH8. These experimentally uncharacterized and poorly annotated genes were not associated with the AlkB family in any database, but are predicted here to be phylogenetically and functionally related to the AlkB family (and specifically to the lineage that groups together hABH2 and hABH3) rather than to any other oxygenase family. Our analysis reveals the history of ABH gene duplications in the evolution of vertebrate genomes.</p> <p>Conclusions</p> <p>We hypothesize that hABH 4–8 could either be back-up enzymes for hABH1-3 or may code for novel DNA or RNA repair activities. For example, enzymes that can dealkylate N3-methylpurines or N7-methylpurines in DNA have not been described. Our analysis will guide experimental confirmation of these novel human putative DNA repair enzymes.</p> http://www.biomedcentral.com/1471-2164/4/48phylogenomicsbioinformaticsdealkylationdemethylationdioxygenases
collection DOAJ
language English
format Article
sources DOAJ
author Papaj Grzegorz
Bhagwat Ashok S
Kurowski Michal A
Bujnicki Janusz M
spellingShingle Papaj Grzegorz
Bhagwat Ashok S
Kurowski Michal A
Bujnicki Janusz M
Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
BMC Genomics
phylogenomics
bioinformatics
dealkylation
demethylation
dioxygenases
author_facet Papaj Grzegorz
Bhagwat Ashok S
Kurowski Michal A
Bujnicki Janusz M
author_sort Papaj Grzegorz
title Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
title_short Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
title_full Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
title_fullStr Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
title_full_unstemmed Phylogenomic identification of five new human homologs of the DNA repair enzyme AlkB
title_sort phylogenomic identification of five new human homologs of the dna repair enzyme alkb
publisher BMC
series BMC Genomics
issn 1471-2164
publishDate 2003-12-01
description <p>Abstract</p> <p>Background</p> <p>Combination of biochemical and bioinformatic analyses led to the discovery of oxidative demethylation – a novel DNA repair mechanism catalyzed by the <it>Escherichia coli </it>AlkB protein and its two human homologs, hABH2 and hABH3. This discovery was based on the prediction made by Aravind and Koonin that AlkB is a member of the 2OG-Fe<sup>2+ </sup>oxygenase superfamily.</p> <p>Results</p> <p>In this article, we report identification and sequence analysis of five human members of the (2OG-Fe<sup>2+</sup>) oxygenase superfamily designated here as hABH4 through hABH8. These experimentally uncharacterized and poorly annotated genes were not associated with the AlkB family in any database, but are predicted here to be phylogenetically and functionally related to the AlkB family (and specifically to the lineage that groups together hABH2 and hABH3) rather than to any other oxygenase family. Our analysis reveals the history of ABH gene duplications in the evolution of vertebrate genomes.</p> <p>Conclusions</p> <p>We hypothesize that hABH 4–8 could either be back-up enzymes for hABH1-3 or may code for novel DNA or RNA repair activities. For example, enzymes that can dealkylate N3-methylpurines or N7-methylpurines in DNA have not been described. Our analysis will guide experimental confirmation of these novel human putative DNA repair enzymes.</p>
topic phylogenomics
bioinformatics
dealkylation
demethylation
dioxygenases
url http://www.biomedcentral.com/1471-2164/4/48
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AT bhagwatashoks phylogenomicidentificationoffivenewhumanhomologsofthednarepairenzymealkb
AT kurowskimichala phylogenomicidentificationoffivenewhumanhomologsofthednarepairenzymealkb
AT bujnickijanuszm phylogenomicidentificationoffivenewhumanhomologsofthednarepairenzymealkb
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