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InterPro: IPR002205 DNA topoisomerase, type IIA, subunit A or C-terminal

Protein matchesHelp
UniProtKB
Matches:
5055 proteins
AccessionHelp IPR002205 Topo_IIA_A/C
TypeHelp Domain
SignaturesHelp
InterPro RelationshipsHelp
Found in IPR001154 DNA topoisomerase II, eukaryotic-type
IPR005741 DNA topoisomerase IV, subunit A, Gram-positive
IPR005742 DNA topoisomerase IV, subunit A, Gram-negative
IPR005743 DNA gyrase, subunit A
IPR013760 DNA topoisomerase, type IIA, central
Contains IPR006691 DNA gyrase/topoisomerase IV, subunit A, C-terminal beta-pinwheel
IPR013757 DNA topoisomerase, type IIA, subunit A, alpha-helical
IPR013758 DNA topoisomerase, type IIA, subunit A or C-terminal, alpha-beta
GO Term annotationHelp
Process GO:0006265 DNA topological change
Function GO:0003677 DNA binding
GO:0003918 DNA topoisomerase (ATP-hydrolyzing) activity
GO:0005524 ATP binding
Component GO:0005694 chromosome
InterPro annotation
BioMart Logo Entry Details in BioMart
AbstractHelp

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 II topoisomerases are ATP-dependent enzymes, and can be subdivided according to their structure and reaction mechanisms: type IIA (topoisomerase II or gyrase, and topoisomerase IV) and type IIB (topoisomerase VI). These enzymes are responsible for relaxing supercoiled DNA as well as for introducing both negative and positive supercoils [4].

Type IIA topoisomerases together manage chromosome integrity and topology in cells. Topoisomerase II (called gyrase in bacteria) primarily introduces negative supercoils into DNA. In bacteria, topoisomerase II consists of two polypeptide subunits, gyrA and gyrB, which form a heterotetramer: (BA)2. In most eukaryotes, topoisomerase II consists of a single polypeptide, where the N- and C-terminal regions correspond to gyrB and gyrA, respectively; this topoisomerase II forms a homodimer that is equivalent to the bacterial heterotetramer. There are four functional domains in topoisomerase II: domain 1 (N-terminal of gyrB) is an ATPase, domain 2 (C-terminal of gyrB) is responsible for subunit interactions (differs between eukaryotic and bacterial enzymes), domain 3 (N-terminal of gyrA) is responsible for the breaking-rejoining function through its capacity to form protein-DNA bridges, and domain 4 (C-terminal of gyrA) is able to non-specifically bind DNA [5].

Topoisomerase IV primarily decatenates DNA and relaxes positive supercoils, which is important in bacteria, where the circular chromosome becomes catenated, or linked, during replication [6]. Topoisomerase IV consists of two polypeptide subunits, parE and parC, where parC is homologous to gyrA and parE is homologous to gyrB.

This entry represents subunit A (gyrA and parC) of bacterial gyrase and topoisomerase IV, and the equivalent C-terminal region in eukaryotic topoisomerase II composed of a single polypeptide. This subunit has DNA-binding capacity.

More information about this protein can be found at Protein of the Month: DNA Topoisomerase [7].

Structural linksHelp
SCOP: b.86.1.2 , e.11.1.1
Database linksHelp
Enzyme: EC:5.99.1
PANDIT: PF00521
Blocks: IPB002205

Taxonomic coverageHelp

Overlapping InterPro entriesHelp
IPR002205 Numbers of overlapping proteins Average numbers of overlapping amino acids

Example proteinsHelp
P06786 DNA topoisomerase 2

P11388 DNA topoisomerase 2-alpha

P15348 DNA topoisomerase 2

P34534 Putative DNA topoisomerase 2, mitochondrial

Q01320 DNA topoisomerase 2-alpha

More proteins


Example Proteins Key


InterPro entry accession number/name and structure databases Colour code
IPR001241 DNA topoisomerase, type IIA, subunit B or N-terminal
IPR020568 Ribosomal protein S5 domain 2-type fold
IPR001154 DNA topoisomerase II, eukaryotic-type
IPR013506 DNA topoisomerase, type IIA, subunit B, region 2
IPR003594 ATPase-like, ATP-binding domain
IPR013760 DNA topoisomerase, type IIA, central
IPR018522 DNA topoisomerase, type IIA, conserved site
IPR012542 DTHCT
IPR013758 DNA topoisomerase, type IIA, subunit A or C-terminal, alpha-beta
IPR013757 DNA topoisomerase, type IIA, subunit A, alpha-helical
IPR013759 DNA topoisomerase, type IIA, subunit B or N-terminal, alpha-beta
IPR002205 DNA topoisomerase, type IIA, subunit A or C-terminal
IPR014721 Ribosomal protein S5 domain 2-type fold, subgroup
PDB Chain
ModBase
CATH Domain
SWISS-MODEL
SCOP Domain

PublicationsHelp
1. 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
2. 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
3. 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
4. Watt PM, Hickson ID.
Structure and function of type II DNA topoisomerases.
Biochem. J. 303 ( Pt 3) 681-95 1994 [PubMed: 7980433]
http://www.pubmedcentral.nih.gov/articlerender.fcgi?tool=EBI&pubmedid=7980433
5. Huang WM.
Bacterial diversity based on type II DNA topoisomerase genes.
Annu. Rev. Genet. 30 79-107 1996 [PubMed: 8982450]
http://dx.doi.org/10.1146/annurev.genet.30.1.79
6. Corbett KD, Schoeffler AJ, Thomsen ND, Berger JM.
The structural basis for substrate specificity in DNA topoisomerase IV.
J. Mol. Biol. 351 545-61 2005 [PubMed: 16023670]
http://dx.doi.org/10.1016/j.jmb.2005.06.029
7. McDowall J.
Protein of the Month: DNA Topoisomerase.
2006

Additional ReadingHelp
Dong KC, Berger JM.
Structural basis for gate-DNA recognition and bending by type IIA topoisomerases.
Nature 450 2007 1201-5 [PubMed: 18097402]
http://dx.doi.org/10.1038/nature06396
Klabunde T, Sharma S, Telenti A, Jacobs WR Jr, Sacchettini JC.
Crystal structure of GyrA intein from Mycobacterium xenopi reveals structural basis of protein splicing.
Nat. Struct. Biol. 5 1998 31-6 [PubMed: 9437427]
http://dx.doi.org/10.1038/nsb0198-31
Morais Cabral JH, Jackson AP, Smith CV, Shikotra N, Maxwell A, Liddington RC.
Crystal structure of the breakage-reunion domain of DNA gyrase.
Nature 388 1997 903-6 [PubMed: 9278055]
http://dx.doi.org/10.1038/42294
Dao-Thi MH, Van Melderen L, De Genst E, Afif H, Buts L, Wyns L, Loris R.
Molecular basis of gyrase poisoning by the addiction toxin CcdB.
J. Mol. Biol. 348 2005 1091-102 [PubMed: 15854646]
http://dx.doi.org/10.1016/j.jmb.2005.03.049
Fass D, Bogden CE, Berger JM.
Quaternary changes in topoisomerase II may direct orthogonal movement of two DNA strands.
Nat. Struct. Biol. 6 1999 322-6 [PubMed: 10201398]
http://dx.doi.org/10.1038/7556
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InterPro 23.1