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InterPro: IPR002942 RNA-binding S4

Protein matchesHelp
UniProtKB
Matches:
18958 proteins
AccessionHelp IPR002942 S4_RNA_bd
TypeHelp Domain
SignaturesHelp
InterPro RelationshipsHelp
Found in IPR000876 Ribosomal protein S4e
IPR002307 Tyrosyl-tRNA synthetase, class Ib, bacterial/mitochondrial
IPR004538 Haemolysin A
IPR005709 Ribosomal protein S4, bacterial-type
IPR005710 Ribosomal protein S4/S9, eukaryotic/archaeal
IPR006225 Pseudouridine synthase, RluC/RluD
IPR014330 YaaA protein, S4 domain-containing
IPR017506 Photosystem II S4 domain protein
Contains IPR018079 Ribosomal protein S4, conserved site
GO Term annotationHelp
Function GO:0003723 RNA binding
InterPro annotation
BioMart Logo Entry Details in BioMart
AbstractHelp

Ribosomes are the particles that catalyse mRNA-directed protein synthesis in all organisms. The codons of the mRNA are exposed on the ribosome to allow tRNA binding. This leads to the incorporation of amino acids into the growing polypeptide chain in accordance with the genetic information. Incoming amino acid monomers enter the ribosomal A site in the form of aminoacyl-tRNAs complexed with elongation factor Tu (EF-Tu) and GTP. The growing polypeptide chain, situated in the P site as peptidyl-tRNA, is then transferred to aminoacyl-tRNA and the new peptidyl-tRNA, extended by one residue, is translocated to the P site with the aid the elongation factor G (EF-G) and GTP as the deacylated tRNA is released from the ribosome through one or more exit sites [1, 2]. About 2/3 of the mass of the ribosome consists of RNA and 1/3 of protein. The proteins are named in accordance with the subunit of the ribosome which they belong to - the small (S1 to S31) and the large (L1 to L44). Usually they decorate the rRNA cores of the subunits.

Many of ribosomal proteins, particularly those of the large subunit, are composed of a globular, surfaced-exposed domain with long finger-like projections that extend into the rRNA core to stabilise its structure. Most of the proteins interact with multiple RNA elements, often from different domains. In the large subunit, about 1/3 of the 23S rRNA nucleotides are at least in van der Waal's contact with protein, and L22 interacts with all six domains of the 23S rRNA. Proteins S4 and S7, which initiate assembly of the 16S rRNA, are located at junctions of five and four RNA helices, respectively. In this way proteins serve to organise and stabilise the rRNA tertiary structure. While the crucial activities of decoding and peptide transfer are RNA based, proteins play an active role in functions that may have evolved to streamline the process of protein synthesis. In addition to their function in the ribosome, many ribosomal proteins have some function 'outside' the ribosome [2, 3].

The S4 domain is a small domain consisting of 60-65 amino acid residues that was detected in the bacterial ribosomal protein S4, eukaryotic ribosomal S9, two families of pseudouridine synthases, a novel family of predicted RNA methylases, a yeast protein containing a pseudouridine synthetase and a deaminase domain, bacterial tyrosyl-tRNA synthetases, and a number of uncharacterised, small proteins that may be involved in translation regulation [4]. The S4 domain probably mediates binding to RNA.

Structural linksHelp
PDB - click here
Database linksHelp
PROSITE doc: PDOC50889
PANDIT: PF01479
Blocks: IPB002942

Taxonomic coverageHelp

Overlapping InterPro entriesHelp
IPR002942 Numbers of overlapping proteins Average numbers of overlapping amino acids

Example proteinsHelp
O01513 Putative 40S ribosomal protein S4-like

O13516 40S ribosomal protein S9-A

P41042 40S ribosomal protein S4

P62702 40S ribosomal protein S4, X isoform

Q9NV31 U3 small nucleolar ribonucleoprotein protein IMP3

More proteins


Example Proteins Key


InterPro entry accession number/name and structure databases Colour code
IPR013845 Ribosomal protein S4e, central
IPR000876 Ribosomal protein S4e
IPR013843 Ribosomal protein S4e, N-terminal
IPR005824 KOW
IPR018199 Ribosomal protein S4e, N-terminal, conserved site
IPR001912 Ribosomal protein S4
IPR002942 RNA-binding S4
IPR018079 Ribosomal protein S4, conserved site
IPR005710 Ribosomal protein S4/S9, eukaryotic/archaeal
SWISS-MODEL
PDB Chain
ModBase

PublicationsHelp
1. Ramakrishnan V, Moore PB.
Atomic structures at last: the ribosome in 2000.
Curr. Opin. Struct. Biol. 11 144-54 2001 [PubMed: 11297922]
http://dx.doi.org/10.1016/S0959-440X(00)00184-6
2. Maguire BA, Zimmermann RA.
The ribosome in focus.
Cell 104 813-6 2001 [PubMed: 11290319]
http://dx.doi.org/10.1016/S0092-8674(01)00278-1
3. Chandra Sanyal S, Liljas A.
The end of the beginning: structural studies of ribosomal proteins.
Curr. Opin. Struct. Biol. 10 633-6 2000 [PubMed: 11114498]
http://dx.doi.org/10.1016/S0959-440X(00)00143-3
4. Aravind L, Koonin EV.
Novel predicted RNA-binding domains associated with the translation machinery.
J. Mol. Evol. 48 291-302 1999 [PubMed: 10093218]
http://dx.doi.org/10.1007/PL00006472

Additional ReadingHelp
Laurberg M, Asahara H, Korostelev A, Zhu J, Trakhanov S, Noller HF.
Structural basis for translation termination on the 70S ribosome.
Nature 454 2008 852-7 [PubMed: 18596689]
http://dx.doi.org/10.1038/nature07115
Kurata S, Weixlbaumer A, Ohtsuki T, Shimazaki T, Wada T, Kirino Y, Takai K, Watanabe K, Ramakrishnan V, Suzuki T.
Modified uridines with C5-methylene substituents at the first position of the tRNA anticodon stabilize U.G wobble pairing during decoding.
J. Biol. Chem. 283 2008 18801-11 [PubMed: 18456657]
http://dx.doi.org/10.1074/jbc.M800233200
Kaminishi T, Wilson DN, Takemoto C, Harms JM, Kawazoe M, Schluenzen F, Hanawa-Suetsugu K, Shirouzu M, Fucini P, Yokoyama S.
A snapshot of the 30S ribosomal subunit capturing mRNA via the Shine-Dalgarno interaction.
Structure 15 2007 289-97 [PubMed: 17355865]
http://dx.doi.org/10.1016/j.str.2006.12.008
Borovinskaya MA, Shoji S, Fredrick K, Cate JH.
Structural basis for hygromycin B inhibition of protein biosynthesis.
RNA 14 2008 1590-9 [PubMed: 18567815]
http://dx.doi.org/10.1261/rna.1076908
Bingel-Erlenmeyer R, Kohler R, Kramer G, Sandikci A, Antolic S, Maier T, Schaffitzel C, Wiedmann B, Bukau B, Ban N.
A peptide deformylase-ribosome complex reveals mechanism of nascent chain processing.
Nature 452 2008 108-11 [PubMed: 18288106]
http://dx.doi.org/10.1038/nature06683
Guijarro JI, Pintar A, Prochnicka-Chalufour A, Guez V, Gilquin B, Bedouelle H, Delepierre M.
Structure and dynamics of the anticodon arm binding domain of Bacillus stearothermophilus Tyrosyl-tRNA synthetase.
Structure 10 2002 311-7 [PubMed: 12005430]
http://dx.doi.org/10.1016/S0969-2126(02)00699-8
Sivaraman J, Sauve V, Larocque R, Stura EA, Schrag JD, Cygler M, Matte A.
Structure of the 16S rRNA pseudouridine synthase RsuA bound to uracil and UMP.
Nat. Struct. Biol. 9 2002 353-8 [PubMed: 11953756]
Davies C, Gerstner RB, Draper DE, Ramakrishnan V, White SW.
The crystal structure of ribosomal protein S4 reveals a two-domain molecule with an extensive RNA-binding surface: one domain shows structural homology to the ETS DNA-binding motif.
EMBO J. 17 1998 4545-58 [PubMed: 9707415]
http://dx.doi.org/10.1093/emboj/17.16.4545
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InterPro 23.1