Abstract
Uracil DNA glycosylases (UDGs) are major repair enzymes that protect DNA from mutational damage caused by uracil incorporated as a result of a polymerase error or deamination of cytosine. Four distinct families of UDGs have been identified, which show very limited sequence similarity to each other, although two of them have been shown to possess the same structural fold. The structural and evolutionary relationships between the rest of the UDGs remain uncertain. Using sequence profile searches, multiple alignment analysis and protein structure comparisons, we show here that all known UDGs possess the same fold and must have evolved from a common ancestor. Although all UDGs catalyze essentially the same reaction, significant changes in the configuration of the catalytic residues were detected within their common fold, which probably results in differences in the biochemistry of these enzymes. The extreme sequence divergence of the UDGs, which is unusual for enzymes with the same principal activity, is probably due to the major role of the uracil-flipping caused by the conformational strain enacted by the enzyme on uracil-containing DNA, as compared with the catalytic action of individual polar residues. We predict two previously undetected families of UDGs and delineate a hypothetical scenario for their evolution. UDGs form a single protein superfamily with a distinct structural fold and a common evolutionary origin. Differences in the catalytic mechanism of the different families combined with the construction of the catalytic pocket have, however, resulted in extreme sequence divergence of these enzymes.
MeSH Terms
Amino Acid Sequence
Animals
Archaea/enzymology
Bacteria/enzymology
Binding Sites
Catalysis
Computational Biology
Computer Simulation
Conserved Sequence
DNA Glycosylases
Databases as Topic
Evolution, Molecular
Expressed Sequence Tags
Humans
Models, Molecular
Molecular Sequence Data
N-Glycosyl Hydrolases/chemistry,classification,metabolism
Phylogeny
Protein Folding
Protein Structure, Secondary
Protein Structure, Tertiary
Sequence Alignment
Software
Uracil-DNA Glycosidase
Viruses/enzymology
Chemicals
DNA Glycosylases
N-Glycosyl Hydrolases
Uracil-DNA Glycosidase
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Aravind L
National Center for Biotechnology Information, National Institutes of Health, Bethesda, MD 20894, USA. aravind@ncbi.nlm.nih.gov
Koonin E V
References (23)
23 references, click to expand
-
Thermostable uracil-DNA glycosylase from Thermotoga maritima a member of a novel class of DNA repair enzymes.
Curr Biol. 1999 May 20;9(10):531-4
PMID: 10339434
-
Identification of a new uracil-DNA glycosylase family by expression cloning using synthetic inhibitors.
Curr Biol. 1999 Feb 25;9(4):174-85
PMID: 10074426
-
Role of electrophilic and general base catalysis in the mechanism of Escherichia coli uracil DNA glycosylase.
Biochemistry. 1999 Sep 14;38(37):11866-75
PMID: 10508389
-
Heteronuclear NMR and crystallographic studies of wild-type and H187Q Escherichia coli uracil DNA glycosylase: electrophilic catalysis of uracil expulsion by a neutral histidine 187.
Biochemistry. 1999 Sep 14;38(37):11876-86
PMID: 10508390
-
Uracil-DNA glycosylase in the extreme thermophile Archaeoglobus fulgidus.
J Biol Chem. 2000 Jun 23;275(25):19146-9
PMID: 10777501
-
A workbench for multiple alignment construction and analysis.
Proteins. 1991;9(3):180-90
PMID: 2006136
-
CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice.
Nucleic Acids Res. 1994 Nov 11;22(22):4673-80
PMID: 7984417
-
Unified catalytic mechanism for DNA glycosylases.
J Biol Chem. 1994 Dec 30;269(52):32709-12
PMID: 7806489
-
The structural basis of specific base-excision repair by uracil-DNA glycosylase.
Nature. 1995 Feb 9;373(6514):487-93
PMID: 7845459
-
Crystal structure and mutational analysis of human uracil-DNA glycosylase: structural basis for specificity and catalysis.
Cell. 1995 Mar 24;80(6):869-78
PMID: 7697717
-
Gibbs motif sampling: detection of bacterial outer membrane protein repeats.
Protein Sci. 1995 Aug;4(8):1618-32
PMID: 8520488
-
Excision of cytosine and thymine from DNA by mutants of human uracil-DNA glycosylase.
EMBO J. 1996 Jul 1;15(13):3442-7
PMID: 8670846
-
A new class of uracil-DNA glycosylases related to human thymine-DNA glycosylase.
Nature. 1996 Oct 24;383(6602):735-8
PMID: 8878487
-
DNA glycosylases in the base excision repair of DNA.
Biochem J. 1997 Jul 1;325 ( Pt 1):1-16
PMID: 9224623
-
Gapped BLAST and PSI-BLAST: a new generation of protein database search programs.
Nucleic Acids Res. 1997 Sep 1;25(17):3389-402
PMID: 9254694
-
Crystal structure of a G:T/U mismatch-specific DNA glycosylase: mismatch recognition by complementary-strand interactions.
Cell. 1998 Jan 9;92(1):117-29
PMID: 9489705
-
SWISS-MODEL and the Swiss-PdbViewer: an environment for comparative protein modeling.
Electrophoresis. 1997 Dec;18(15):2714-23
PMID: 9504803
-
3,N4-ethenocytosine, a highly mutagenic adduct, is a primary substrate for Escherichia coli double-stranded uracil-DNA glycosylase and human mismatch-specific thymine-DNA glycosylase.
Proc Natl Acad Sci U S A. 1998 Jul 21;95(15):8508-13
PMID: 9671708
-
Base excision repair initiation revealed by crystal structures and binding kinetics of human uracil-DNA glycosylase with DNA.
EMBO J. 1998 Sep 1;17(17):5214-26
PMID: 9724657
-
AT-hook motifs identified in a wide variety of DNA-binding proteins.
Nucleic Acids Res. 1998 Oct 1;26(19):4413-21
PMID: 9742243
-
Profile hidden Markov models.
Bioinformatics. 1998;14(9):755-63
PMID: 9918945
-
Conserved domains in DNA repair proteins and evolution of repair systems.
Nucleic Acids Res. 1999 Mar 1;27(5):1223-42
PMID: 9973609
-
A read-ahead function in archaeal DNA polymerases detects promutagenic template-strand uracil.
Proc Natl Acad Sci U S A. 1999 Aug 3;96(16):9045-50
PMID: 10430892