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InterPro: IPR017871 ABC transporter, conserved site

Protein matchesHelp
UniProtKB
Matches:
99720 proteins
AccessionHelp IPR017871 ABC_transporter_CS
TypeHelp Conserved_site
SignaturesHelp
InterPro RelationshipsHelp
Found in IPR000844 Sulphonylurea receptor, type 1, N-terminal
IPR003593 ATPase, AAA+ type, core
IPR004602 Excinuclease ABC, A subunit
IPR005283 Peroxysomal long chain fatty acyl transporter
IPR005284 Pigment precursor permease
IPR005285 Pleiotropic drug resistance protein PDR
IPR005286 Cell division ATP-binding protein FtsE
IPR005291 Cyclic AMP-dependent chloride channel
IPR005292 Multi drug resistance-associated protein
IPR005293 Antigen peptide transporter 2
IPR005666 Sulphate transport system permease protein 1
IPR005670 Phosphate transport system permease protein 1
IPR005876 Cobalt transport protein ATP-binding subunit
IPR005890 Nitrate transport ATP-binding subunit C/D
IPR005892 Glycine betaine/L-proline transport ATP-binding subunit
IPR005893 Spermidine/putrescine ABC transporter ATP-binding subunit
IPR005894 Daunorubicin resistance ABC transporter ATP-binding subunit
IPR005895 ABC transporter, haem export, CcmA
IPR005896 Glucan exporter ATP-binding protein
IPR005897 Peptidase C39, ABC-type bacteriocin transporter
IPR005898 Cyclic peptide transporter
IPR005951 Rim ABC transporter
IPR005968 ABC transporter, thiamine, ATP-binding protein
IPR005978 Nodulation ABC transporter, NodI
IPR009147 Cystic fibrosis transmembrane conductance regulator
IPR010128 ATPase, type I secretion system, PrtD
IPR010132 ATPase, type I secretion system, HlyB
IPR010230 ATPase SufC, SUF system FeS cluster assembly
IPR011868 Molybdate ABC transporter, ATP-binding protein
IPR011917 ABC transporter, lipid A export, MsbA
IPR011918 ABC transporter, ATP-binding/permease protein
IPR011924 Lipoprotein releasing system, ATP-binding protein
IPR012692 ABC transporter, methionine import, ATP-binding protein, MetN
IPR012693 ABC transporter, phosphonate import, PhnC
IPR012700 Phosphonate C-P lyase system, PhnK
IPR012701 Phosphonate C-P lyase system, PhnL
IPR013305 ABC transporter, ABCB2
IPR013455 ABC transporter, D-xylose, ATP-binding protein
IPR013505 Cell division protein FtsE
IPR014137 Nickel import ATP-binding protein NikE
IPR014138 Nickel import ATP-binding protein NikD
IPR014216 ABC transporter, CydDC cysteine exporter (CydDC-E) family, permease/ATP-binding protein CydD
IPR014223 ABC transporter, CydDC cysteine exporter (CydDC-E) family, permease/ATP-binding protein CydC
IPR014324 ABC transporter ATP-binding subunit, DevA type
IPR014343 Ectoine/hydroxyectoine ABC transporter, ATP-binding protein
IPR015688 Elongation Factor 3
IPR015851 ABC transporter, NodI
IPR015856 ABC transporter, cobalt import, CbiO
IPR015860 ABC transporter, teichoic acids export, TagH
IPR015861 ABC transporter, ribose import, RbsA
IPR015862 ABC transporter, galactose import, MglA
IPR015863 ABC transporter, hemin import, HmuV
IPR017662 2-aminoethylphosphonate ABC transport system, ATP-binding component PhnT
IPR017666 2-aminoethylphosphonate ABC transport system, ATP-binding component PhnT2
IPR017669 Methyl coenzyme M reductase system, component A2
IPR017750 ATPase, type I secretion system
IPR017875 ABC transporter, aliphatic sulphonate import, ATP-binding protein
IPR017879 Spermidine/putrescine import ATP-binding protein, potA
IPR017882 ABC transporter, zinc import, ATP-binding protein ZnuC
IPR017902 Beta-glucan export ATP-binding/permease, ndvA
IPR017911 ABC transporter, macrolide export, ATP-binding domain
IPR017917 ABC transporter, arabinose import, ATP-binding protein, AraG
IPR017922 Glycerol-3-phosphate import ATP-binding protein
IPR019895 ABC transporter, bacteriocin export, ATP-binding subunit, predicted
IPR020064 ABC transporter G1-like
GO Term annotationHelp
Function GO:0005524 ATP binding
GO:0016887 ATPase activity
InterPro annotation
BioMart Logo Entry Details in BioMart
AbstractHelp

ABC transporters belong to the ATP-Binding Cassette (ABC) superfamily, which uses the hydrolysis of ATP to energise diverse biological systems. ABC transporters minimally consist of two conserved regions: a highly conserved ATP binding cassette (ABC) and a less conserved transmembrane domain (TMD). These can be found on the same protein or on two different ones. Most ABC transporters function as a dimer and therefore are constituted of four domains, two ABC modules and two TMDs.

ABC transporters are involved in the export or import of a wide variety of substrates ranging from small ions to macromolecules. The major function of ABC import systems is to provide essential nutrients to bacteria. They are found only in prokaryotes and their four constitutive domains are usually encoded by independent polypeptides (two ABC proteins and two TMD proteins). Prokaryotic importers require additional extracytoplasmic binding proteins (one or more per systems) for function. In contrast, export systems are involved in the extrusion of noxious substances, the export of extracellular toxins and the targeting of membrane components. They are found in all living organisms and in general the TMD is fused to the ABC module in a variety of combinations. Some eukaryotic exporters encode the four domains on the same polypeptide chain [1].

The ABC module (approximately two hundred amino acid residues) is known to bind and hydrolyse ATP, thereby coupling transport to ATP hydrolysis in a large number of biological processes. The cassette is duplicated in several subfamilies. Its primary sequence is highly conserved, displaying a typical phosphate-binding loop: Walker A, and a magnesium binding site: Walker B. Besides these two regions, three other conserved motifs are present in the ABC cassette: the switch region which contains a histidine loop, postulated to polarise the attaching water molecule for hydrolysis, the signature conserved motif (LSGGQ) specific to the ABC transporter, and the Q-motif (between Walker A and the signature), which interacts with the gamma phosphate through a water bond. The Walker A, Walker B, Q-loop and switch region form the nucleotide binding site [2, 3, 4].

The 3D structure of a monomeric ABC module adopts a stubby L-shape with two distinct arms. ArmI (mainly beta-strand) contains Walker A and Walker B. The important residues for ATP hydrolysis and/or binding are located in the P-loop. The ATP-binding pocket is located at the extremity of armI. The perpendicular armII contains mostly the alpha helical subdomain with the signature motif. It only seems to be required for structural integrity of the ABC module. ArmII is in direct contact with the TMD. The hinge between armI and armII contains both the histidine loop and the Q-loop, making contact with the gamma phosphate of the ATP molecule. ATP hydrolysis leads to a conformational change that could facilitate ADP release. In the dimer the two ABC cassettes contact each other through hydrophobic interactions at the antiparallel beta-sheet of armI by a two-fold axis [5, 6, 7, 8, 9, 10].

The ATP-Binding Cassette (ABC) superfamily forms one of the largest of all protein families with a diversity of physiological functions [1]. Several studies have shown that there is a correlation between the functional characterisation and the phylogenetic classification of the ABC cassette [1, 11]. More than 50 subfamilies have been described based on a phylogenetic and functional classification [1, 2, 11]; (for further information see http://www.tcdb.org/tcdb/index.php?tc=3.A.1).

On the basis of sequence similarities a family of related ATP-binding proteins has been characterised [12, 13, 14, 15, 16].

The proteins belonging to this family also contain one or two copies of the 'A' consensus sequence [17] or the 'P-loop' [18] (see IPR001687).

Structural linksHelp
PDB - click here
SCOP: c.37.1.12
CATH: 3.40.50.300
Database linksHelp
PDBe-motif: PS00211
Enzyme: EC:3.6.3

Taxonomic coverageHelp

Overlapping InterPro entriesHelp
IPR017871 Numbers of overlapping proteins Average numbers of overlapping amino acids

Example proteinsHelp
P10090 Protein white

P13569 Cystic fibrosis transmembrane conductance regulator

P16521 Elongation factor 3A

P21447 Multidrug resistance protein 3

P34358 ABC transporter ced-7

More proteins


Example Proteins Key


InterPro entry accession number/name and structure databases Colour code
IPR013525 ABC-2 type transporter
IPR001140 ABC transporter, transmembrane domain
IPR000357 HEAT
IPR017940 ABC transporter integral membrane type 1
IPR003593 ATPase, AAA+ type, core
IPR003439 ABC transporter-like
IPR016024 Armadillo-type fold
IPR015688 Elongation Factor 3
IPR005284 Pigment precursor permease
IPR017871 ABC transporter, conserved site
IPR005291 Cyclic AMP-dependent chloride channel
IPR011989 Armadillo-like helical
IPR011527 ABC transporter, transmembrane domain, type 1
IPR009147 Cystic fibrosis transmembrane conductance regulator
PDB Chain
ModBase
CATH Domain
SWISS-MODEL
SCOP Domain

PublicationsHelp
1. Saurin W, Hofnung M, Dassa E.
Getting in or out: early segregation between importers and exporters in the evolution of ATP-binding cassette (ABC) transporters.
J. Mol. Evol. 48 22-41 1999 [PubMed: 9873074]
http://dx.doi.org/10.1007/PL00006442
2. Higgins CF.
ABC transporters: physiology, structure and mechanism--an overview.
Res. Microbiol. 152 205-10 2001 [PubMed: 11421269]
http://dx.doi.org/10.1016/S0923-2508(01)01193-7
3. Higgins CF.
ABC transporters: from microorganisms to man.
Annu. Rev. Cell Biol. 8 67-113 1992 [PubMed: 1282354]
http://dx.doi.org/10.1146/annurev.cb.08.110192.000435
4. Schneider E, Hunke S.
ATP-binding-cassette (ABC) transport systems: functional and structural aspects of the ATP-hydrolyzing subunits/domains.
FEMS Microbiol. Rev. 22 1-20 1998 [PubMed: 9640644]
http://dx.doi.org/10.1016/S0168-6445(98)00002-3
5. Kerr ID.
Structure and association of ATP-binding cassette transporter nucleotide-binding domains.
Biochim. Biophys. Acta 1561 47-64 2002 [PubMed: 11988180]
http://dx.doi.org/10.1016/S0304-4157(01)00008-9
6. Karpowich N, Martsinkevich O, Millen L, Yuan YR, Dai PL, MacVey K, Thomas PJ, Hunt JF.
Crystal structures of the MJ1267 ATP binding cassette reveal an induced-fit effect at the ATPase active site of an ABC transporter.
Structure 9 571-86 2001 [PubMed: 11470432]
http://dx.doi.org/10.1016/S0969-2126(01)00617-7
7. Yuan YR, Blecker S, Martsinkevich O, Millen L, Thomas PJ, Hunt JF.
The crystal structure of the MJ0796 ATP-binding cassette. Implications for the structural consequences of ATP hydrolysis in the active site of an ABC transporter.
J. Biol. Chem. 276 32313-21 2001 [PubMed: 11402022]
http://dx.doi.org/10.1074/jbc.M100758200
8. Hung LW, Wang IX, Nikaido K, Liu PQ, Ames GF, Kim SH.
Crystal structure of the ATP-binding subunit of an ABC transporter.
Nature 396 703-7 1998 [PubMed: 9872322]
http://dx.doi.org/10.1038/25393
9. Diederichs K, Diez J, Greller G, Muller C, Breed J, Schnell C, Vonrhein C, Boos W, Welte W.
Crystal structure of MalK, the ATPase subunit of the trehalose/maltose ABC transporter of the archaeon Thermococcus litoralis.
EMBO J. 19 5951-61 2000 [PubMed: 11080142]
http://dx.doi.org/10.1093/emboj/19.22.5951
10. Gaudet R, Wiley DC.
Structure of the ABC ATPase domain of human TAP1, the transporter associated with antigen processing.
EMBO J. 20 4964-72 2001 [PubMed: 11532960]
http://dx.doi.org/10.1093/emboj/20.17.4964
11. Dassa E, Bouige P.
The ABC of ABCS: a phylogenetic and functional classification of ABC systems in living organisms.
Res. Microbiol. 152 211-29 2001 [PubMed: 11421270]
http://dx.doi.org/10.1016/S0923-2508(01)01194-9
12. Higgins CF, Hyde SC, Mimmack MM, Gileadi U, Gill DR, Gallagher MP.
Binding protein-dependent transport systems.
J. Bioenerg. Biomembr. 22 571-92 1990 [PubMed: 2229036]
http://dx.doi.org/10.1007/BF00762962
13. Higgins CF, Gallagher MP, Mimmack ML, Pearce SR.
A family of closely related ATP-binding subunits from prokaryotic and eukaryotic cells.
Bioessays 8 111-6 1988 [PubMed: 3288195]
http://dx.doi.org/10.1002/bies.950080406
14. Higgins CF, Hiles ID, Salmond GP, Gill DR, Downie JA, Evans IJ, Holland IB, Gray L, Buckel SD, Bell AW.
A family of related ATP-binding subunits coupled to many distinct biological processes in bacteria.
Nature 323 448-50 1986 [PubMed: 3762694]
http://dx.doi.org/10.1038/323448a0
15. Doolittle RF, Johnson MS, Husain I, Van Houten B, Thomas DC, Sancar A.
Domainal evolution of a prokaryotic DNA repair protein and its relationship to active-transport proteins.
Nature 323 451-3 1986 [PubMed: 3762695]
http://dx.doi.org/10.1038/323451a0
16. Blight MA, Holland IB.
Structure and function of haemolysin B,P-glycoprotein and other members of a novel family of membrane translocators.
Mol. Microbiol. 4 873-80 1990 [PubMed: 1977073]
http://dx.doi.org/10.1111/j.1365-2958.1990.tb00660.x
17. Walker JE, Saraste M, Runswick MJ, Gay NJ.
Distantly related sequences in the alpha- and beta-subunits of ATP synthase, myosin, kinases and other ATP-requiring enzymes and a common nucleotide binding fold.
EMBO J. 1 945-51 1982 [PubMed: 6329717]
http://ukpmc.ac.uk/picrender.cgi?tool=EBI&pubmedid=6329717&action=stream&blobtype=pdf
18. Saraste M, Sibbald PR, Wittinghofer A.
The P-loop--a common motif in ATP- and GTP-binding proteins.
Trends Biochem. Sci. 15 430-4 1990 [PubMed: 2126155]
http://dx.doi.org/10.1016/0968-0004(90)90281-F

Additional ReadingHelp
Gerber S, Comellas-Bigler M, Goetz BA, Locher KP.
Structural basis of trans-inhibition in a molybdate/tungstate ABC transporter.
Science 321 2008 246-50 [PubMed: 18511655]
http://dx.doi.org/10.1126/science.1156213
Kadaba NS, Kaiser JT, Johnson E, Lee A, Rees DC.
The high-affinity E. coli methionine ABC transporter: structure and allosteric regulation.
Science 321 2008 250-3 [PubMed: 18621668]
http://dx.doi.org/10.1126/science.1157987
Dawson RJ, Locher KP.
Structure of the multidrug ABC transporter Sav1866 from Staphylococcus aureus in complex with AMP-PNP.
FEBS Lett. 581 2007 935-8 [PubMed: 17303126]
http://dx.doi.org/10.1016/j.febslet.2007.01.073
Oswald C, Jenewein S, Smits SH, Holland IB, Schmitt L.
Water-mediated protein-fluorophore interactions modulate the affinity of an ABC-ATPase/TNP-ADP complex.
J. Struct. Biol. 162 2008 85-93 [PubMed: 18155559]
http://dx.doi.org/10.1016/j.jsb.2007.11.006
Oldham ML, Khare D, Quiocho FA, Davidson AL, Chen J.
Crystal structure of a catalytic intermediate of the maltose transporter.
Nature 450 2007 515-21 [PubMed: 18033289]
http://dx.doi.org/10.1038/nature06264
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InterPro 23.1