Abstract
The ribosome is a molecular machine that converts genetic information in the form of RNA, into protein. Recent structural studies reveal a complex set of interactions between the ribosome and its ligands, mRNA and tRNA, that indicate ways in which the ribosome could avoid costly translational errors. Ribosomes must decode each successive codon accurately, and structural data provide a clear indication of how ribosomes limit recruitment of the wrong tRNA (sense errors). In a triplet-based genetic code there are three potential forward reading frames, only one of which encodes the correct protein. Errors in which the ribosome reads a codon out of the normal reading frame (frameshift errors) occur less frequently than sense errors, although it is not clear from structural data how these errors are avoided. Some mRNA sequences, termed programmed-frameshift sites, cause the ribosome to change reading frame. Based on recent work on these sites, this article proposes that the ribosome uses the structure of the codon-anticodon complex formed by the peptidyl-tRNA, especially its wobble interaction, to constrain the incoming aminoacyl-tRNA to the correct reading frame.
MeSH Terms
Protein Biosynthesis
Protein Conformation
RNA, Ribosomal/genetics
Ribosomes/chemistry
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Stahl Guillaume
Dept of Biological Sciences and Program in Molecular and Cell Biology, University of Maryland, Baltimore County, Baltimore, MD 21250, USA.
McCarty Gregory P
Farabaugh Philip J
References (32)
32 references, click to expand
-
Codon-anticodon interaction at the ribosomal P site improves the accuracy of the decoding process.
Biochem Int. 1984 Jan;8(1):121-6
PMID: 6383396
-
Translational accuracy and the fitness of bacteria.
Annu Rev Genet. 1992;26:29-50
PMID: 1482115
-
A novel programed frameshift expresses the POL3 gene of retrotransposon Ty3 of yeast: frameshifting without tRNA slippage.
Cell. 1993 Jul 16;74(1):93-103
PMID: 8267715
-
Decoding with the A:I wobble pair is inefficient.
Nucleic Acids Res. 1995 Feb 25;23(4):683-8
PMID: 7534909
-
Structure of the 30S ribosomal subunit.
Nature. 2000 Sep 21;407(6802):327-39
PMID: 11014182
-
Kinetic amplification of enzyme discrimination.
Biochimie. 1975;57(5):587-95
PMID: 1182215
-
RASMOL: biomolecular graphics for all.
Trends Biochem Sci. 1995 Sep;20(9):374
PMID: 7482707
-
Decoding fidelity at the ribosomal A and P sites: influence of mutations in three different regions of the decoding domain in 16S rRNA.
Nucleic Acids Res. 1997 Mar 15;25(6):1185-93
PMID: 9092628
-
tRNA-tRNA interactions within cellular ribosomes.
Proc Natl Acad Sci U S A. 1989 Jun;86(12):4397-401
PMID: 2499882
-
Frameshift suppression.
Cell. 1981 Jun;24(3):601-2
PMID: 6166384
-
A conformational switch in Escherichia coli 16S ribosomal RNA during decoding of messenger RNA.
Science. 1997 Aug 29;277(5330):1262-7
PMID: 9271564
-
Kinetic proofreading: a new mechanism for reducing errors in biosynthetic processes requiring high specificity.
Proc Natl Acad Sci U S A. 1974 Oct;71(10):4135-9
PMID: 4530290
-
Recognition of cognate transfer RNA by the 30S ribosomal subunit.
Science. 2001 May 4;292(5518):897-902
PMID: 11340196
-
The path of messenger RNA through the ribosome.
Cell. 2001 Jul 27;106(2):233-41
PMID: 11511350
-
Ribosomal frameshifting in the yeast retrotransposon Ty: tRNAs induce slippage on a 7 nucleotide minimal site.
Cell. 1990 Jul 27;62(2):339-52
PMID: 2164889
-
Crystal structure of the ribosome at 5.5 A resolution.
Science. 2001 May 4;292(5518):883-96
PMID: 11283358
-
Characterization of an efficient coronavirus ribosomal frameshifting signal: requirement for an RNA pseudoknot.
Cell. 1989 May 19;57(4):537-47
PMID: 2720781
-
Frameshift suppression: a nucleotide addition in the anticodon of a glycine transfer RNA.
Nat New Biol. 1973 Apr 25;242(121):230-4
PMID: 4573868
-
Programmed translational frameshifting.
Microbiol Rev. 1996 Mar;60(1):103-34
PMID: 8852897
-
A new model for phenotypic suppression of frameshift mutations by mutant tRNAs.
Mol Cell. 1998 Mar;1(4):471-82
PMID: 9660932
-
Transfer RNA gene redundancy and translational selection in Saccharomyces cerevisiae.
J Mol Biol. 1997 May 2;268(2):322-30
PMID: 9159473
-
Conformational switch in the decoding region of 16S rRNA during aminoacyl-tRNA selection on the ribosome.
Nat Struct Biol. 2000 Feb;7(2):104-7
PMID: 10655610
-
General nature of the genetic code for proteins.
Nature. 1961 Dec 30;192:1227-32
PMID: 13882203
-
Induced fit in initial selection and proofreading of aminoacyl-tRNA on the ribosome.
EMBO J. 1999 Jul 1;18(13):3800-7
PMID: 10393195
-
Structure of functionally activated small ribosomal subunit at 3.3 angstroms resolution.
Cell. 2000 Sep 1;102(5):615-23
PMID: 11007480
-
EFTu provides an internal kinetic standard for translational accuracy.
Trends Biochem Sci. 1988 Mar;13(3):91-3
PMID: 3072707
-
The 530 loop of 16S rRNA: a signal to EF-Tu?
Trends Genet. 1994 Jan;10(1):27-31
PMID: 8146911
-
Signals for ribosomal frameshifting in the Rous sarcoma virus gag-pol region.
Cell. 1988 Nov 4;55(3):447-58
PMID: 2846182
-
Genetic probes of ribosomal RNA function.
Biochem Cell Biol. 1995 Nov-Dec;73(11-12):859-68
PMID: 8722001
-
Near-cognate peptidyl-tRNAs promote +1 programmed translational frameshifting in yeast.
Mol Cell. 1999 Dec;4(6):1005-15
PMID: 10635325
-
Programmed +1 frameshifting stimulated by complementarity between a downstream mRNA sequence and an error-correcting region of rRNA.
RNA. 2001 Feb;7(2):275-84
PMID: 11233984
-
Functional insights from the structure of the 30S ribosomal subunit and its interactions with antibiotics.
Nature. 2000 Sep 21;407(6802):340-8
PMID: 11014183