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InterPro: IPR014711 DNA topoisomerase I, catalytic core, alpha-helical subdomain, eukaryotic-type
Protein matches
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UniProtKB Matches: 500 proteins |
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Accession
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IPR014711 TopoI_cat_a-hlx-sub_euk |
Type
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Domain |
Signatures
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InterPro Relationships
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Found in
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IPR001631 DNA topoisomerase I, C-terminal
IPR011010 DNA breaking-rejoining enzyme, catalytic core
IPR013499 DNA topoisomerase I, C-terminal, eukaryotic-type
IPR013500 DNA topoisomerase I, catalytic core, eukaryotic-type
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GO Term annotation
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Process
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GO:0006265 DNA topological change
GO:0006268 DNA unwinding during replication
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Function
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GO:0003677 DNA binding
GO:0003917 DNA topoisomerase type I activity
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Component
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GO:0005694 chromosome
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InterPro annotation
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Entry Details in BioMart
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Abstract
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DNA topoisomerases regulate the number of topological links between two DNA strands (i.e. change the number of superhelical turns) by catalysing transient single- or double-strand breaks, crossing the strands through one another, then resealing the breaks. These enzymes have several functions: to remove DNA supercoils during transcription and DNA replication; for strand breakage during recombination; for chromosome condensation; and to disentangle intertwined DNA during mitosis [1, 2]. DNA topoisomerases are divided into two classes: type I enzymes (EC:5.99.1.2; topoisomerases I, III and V) break single-strand DNA, and type II enzymes (EC:5.99.1.3; topoisomerases II, IV and VI) break double-strand DNA [3]. Type I topoisomerases are ATP-independent enzymes (except for reverse gyrase), and can be subdivided according to their structure and reaction mechanisms: type IA (bacterial and archaeal topoisomerase I, topoisomerase III and reverse gyrase) and type IB (eukaryotic topoisomerase I and topoisomerase V). These enzymes are primarily responsible for relaxing positively and/or negatively supercoiled DNA, except for reverse gyrase, which can introduce positive supercoils into DNA. This entry represents the alpha-helical subdomain that comprises part of the catalytic core of eukaryotic and viral topoisomerase I (type IB) enzymes, which occurs near the C-terminal region of the protein.
Human topoisomerase I has been shown to be inhibited by camptothecin (CPT), a plant alkaloid with antitumour activity [4]. The crystal structures of human topoisomerase I comprising the core and carboxyl-terminal domains in covalent and noncovalent complexes with 22-base pair DNA duplexes reveal an enzyme that "clamps" around essentially B-form DNA. The core domain and the first eight residues of the carboxyl-terminal domain of the enzyme, including the active-site nucleophile tyrosine-723, share significant structural similarity with the bacteriophage family of DNA integrases. A binding mode for the anticancer drug camptothecin has been proposed on the basis of chemical and biochemical information combined with the three-dimensional structures of topoisomerase I-DNA complexes [5].
Vaccinia virus, a cytoplasmically-replicating poxvirus, encodes a type I DNA topoisomerase that is biochemically similar to eukaryotic-like DNA topoisomerases I, and which has been widely studied as a model topoisomerase. It is the smallest topoisomerase known and is unusual in that it is resistant to the potent chemotherapeutic agent camptothecin. The crystal structure of an amino-terminal fragment of vaccinia virus DNA topoisomerase I shows that the fragment forms a five-stranded, antiparallel beta-sheet with two short alpha-helices and connecting loops. Residues that are conserved between all eukaryotic-like type I topoisomerases are not clustered in particular regions of the structure [6].
More information about this protein can be found at Protein of the Month: DNA Topoisomerase [7].
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Structural links
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Database links
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Example proteins
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O17966 DNA topoisomerase 1
P04786 DNA topoisomerase 1
P11387 DNA topoisomerase 1
P30189 DNA topoisomerase 1
Q8R4U6 DNA topoisomerase I, mitochondrial
More proteins
Example Proteins Key
| InterPro entry accession number/name and structure databases |
Colour code |
| IPR014727 |
DNA topoisomerase I, catalytic core, alpha/beta subdomain, eukaryotic-type |
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| IPR011010 |
DNA breaking-rejoining enzyme, catalytic core |
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| IPR008336 |
DNA topoisomerase I, DNA binding, eukaryotic-type |
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| IPR018521 |
DNA topoisomerase I, active site |
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| IPR001631 |
DNA topoisomerase I, C-terminal |
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| IPR013030 |
DNA topoisomerase I, DNA binding, mixed alpha/beta motif, eukaryotic-type |
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| IPR013500 |
DNA topoisomerase I, catalytic core, eukaryotic-type |
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| IPR009054 |
DNA topoisomerases I, dispensable insert, eukaryotic-type |
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| IPR013499 |
DNA topoisomerase I, C-terminal, eukaryotic-type |
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| IPR014711 |
DNA topoisomerase I, catalytic core, alpha-helical subdomain, eukaryotic-type |
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PDB Chain |
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ModBase |
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CATH Domain |
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SWISS-MODEL |
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SCOP Domain |
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Publications
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1.
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Wang JC.
Cellular roles of DNA topoisomerases: a molecular perspective.
Nat. Rev. Mol. Cell Biol. 3 430-40 2002
[PubMed: 12042765]
http://dx.doi.org/10.1038/nrm831
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2.
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Champoux JJ.
DNA topoisomerases: structure, function, and mechanism.
Annu. Rev. Biochem. 70 369-413 2001
[PubMed: 11395412]
http://dx.doi.org/10.1146/annurev.biochem.70.1.369
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3.
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Gadelle D, Filee J, Buhler C, Forterre P.
Phylogenomics of type II DNA topoisomerases.
Bioessays 25 232-42 2003
[PubMed: 12596227]
http://dx.doi.org/10.1002/bies.10245
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4.
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Tamura H, Kohchi C, Yamada R, Ikeda T, Koiwai O, Patterson E, Keene JD, Okada K, Kjeldsen E, Nishikawa K.
Molecular cloning of a cDNA of a camptothecin-resistant human DNA topoisomerase I and identification of mutation sites.
Nucleic Acids Res. 19 69-75 1991
[PubMed: 1849260]
http://dx.doi.org/10.1093/nar/19.1.69
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5.
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Redinbo MR, Stewart L, Kuhn P, Champoux JJ, Hol WG.
Crystal structures of human topoisomerase I in covalent and noncovalent complexes with DNA.
Science 279 1504-13 1998
[PubMed: 9488644]
http://dx.doi.org/10.1126/science.279.5356.1504
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6.
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Sharma A, Hanai R, Mondragon A.
Crystal structure of the amino-terminal fragment of vaccinia virus DNA topoisomerase I at 1.6 A resolution.
Structure 2 767-77 1994
[PubMed: 7994576]
http://dx.doi.org/10.1016/S0969-2126(94)00077-8
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7.
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McDowall J.
Protein of the Month: DNA Topoisomerase.
2006
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Additional Reading
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Chrencik JE, Burgin AB, Pommier Y, Stewart L, Redinbo MR.
Structural impact of the leukemia drug 1-beta-D-arabinofuranosylcytosine (Ara-C) on the covalent human topoisomerase I-DNA complex.
J. Biol. Chem. 278 2003 12461-6
[PubMed: 12533542]
http://dx.doi.org/10.1074/jbc.M212930200
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Interthal H, Quigley PM, Hol WG, Champoux JJ.
The role of lysine 532 in the catalytic mechanism of human topoisomerase I.
J. Biol. Chem. 279 2004 2984-92
[PubMed: 14594810]
http://dx.doi.org/10.1074/jbc.M309959200
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Chrencik JE, Staker BL, Burgin AB, Pourquier P, Pommier Y, Stewart L, Redinbo MR.
Mechanisms of camptothecin resistance by human topoisomerase I mutations.
J. Mol. Biol. 339 2004 773-84
[PubMed: 15165849]
http://dx.doi.org/10.1016/j.jmb.2004.03.077
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Ioanoviciu A, Antony S, Pommier Y, Staker BL, Stewart L, Cushman M.
Synthesis and mechanism of action studies of a series of norindenoisoquinoline topoisomerase I poisons reveal an inhibitor with a flipped orientation in the ternary DNA-enzyme-inhibitor complex as determined by X-ray crystallographic analysis.
J. Med. Chem. 48 2005 4803-14
[PubMed: 16033260]
http://dx.doi.org/10.1021/jm050076b
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Staker BL, Feese MD, Cushman M, Pommier Y, Zembower D, Stewart L, Burgin AB.
Structures of three classes of anticancer agents bound to the human topoisomerase I-DNA covalent complex.
J. Med. Chem. 48 2005 2336-45
[PubMed: 15801827]
http://dx.doi.org/10.1021/jm049146p
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