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PMID: 15860778 Published · epublish English Evaluation Study Journal Article Research Support, Non-U.S. Gov't

Dissecting eukaryotic translation and its control by ribosome density mapping.

Nucleic acids research ·Vol. 33 ·No. 8 ·2005-00-00 ·Pages 2421-32

Arava Y, Boas FE, Brown PO, Herschlag D

Abstract

Translation of an mRNA is generally divided into three stages: initiation, elongation and termination. The relative rates of these steps determine both the number and position of ribosomes along the mRNA, but traditional velocity sedimentation assays for the translational status of mRNA determine only the number of bound ribosomes. We developed a procedure, termed Ribosome Density Mapping (RDM), that uses site-specific cleavage of polysomal mRNA followed by separation on a sucrose gradient and northern analysis, to determine the number of ribosomes associated with specified portions of a particular mRNA. This procedure allows us to test models for translation and its control, and to examine properties of individual steps of translation in vivo. We tested specific predictions from the current model for translational control of GCN4 expression in yeast and found that ribosomes were differentially associated with the uORFs elements and coding region under different growth conditions, consistent with this model. We also mapped ribosome density along the ORF of several mRNAs, to probe basic kinetic properties of translational steps in yeast. We found no detectable decline in ribosome density between the 5' and 3' ends of the ORFs, suggesting that the average processivity of elongation is very high. Conversely, there was no queue of ribosomes at the termination site, suggesting that termination is not very slow relative to elongation and initiation. Finally, the RDM results suggest that less frequent initiation of translation on mRNAs with longer ORFs is responsible for the inverse correlation between ORF length and ribosomal density that we observed in a global analysis of translation. These results provide new insights into eukaryotic translation in vivo.

MeSH Terms
DNA-Binding Proteins/biosynthesis,genetics Gene Expression Regulation, Fungal Genetic Techniques Models, Genetic Open Reading Frames Peptide Chain Elongation, Translational Peptide Chain Initiation, Translational Peptide Chain Termination, Translational Protein Biosynthesis Protein Kinases/biosynthesis,genetics RNA, Messenger/chemistry,metabolism Ribosomes/metabolism Saccharomyces cerevisiae/genetics,metabolism Saccharomyces cerevisiae Proteins/biosynthesis,genetics
Chemicals
DNA-Binding Proteins RNA, Messenger Saccharomyces cerevisiae Proteins Protein Kinases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Arava Yoav
Howard Hughes Medical Institute, Stanford, CA 94305-5428, USA.
Boas F Edward
Brown Patrick O
Herschlag Daniel
References (36)
36 references, click to expand
  1. Ribosome structure and the mechanism of translation.
    Cell. 2002 Feb 22;108(4):557-72 PMID: 11909526
  2. A multiple ribosomal structure in protein synthesis.
    Proc Natl Acad Sci U S A. 1963 Jan 15;49:122-9 PMID: 13998950
  3. Toeprint analysis of the positioning of translation apparatus components at initiation and termination codons of fungal mRNAs.
    Methods. 2002 Feb;26(2):105-14 PMID: 12054887
  4. Termination of translation: interplay of mRNA, rRNAs and release factors?
    EMBO J. 2003 Jan 15;22(2):175-82 PMID: 12514123
  5. Identification of eukaryotic mRNAs that are translated at reduced cap binding complex eIF4F concentrations using a cDNA microarray.
    Proc Natl Acad Sci U S A. 1999 Nov 9;96(23):13118-23 PMID: 10557283
  6. Glucose depletion rapidly inhibits translation initiation in yeast.
    Mol Biol Cell. 2000 Mar;11(3):833-48 PMID: 10712503
  7. Isolation of translationally controlled mRNAs by differential screening.
    FASEB J. 2000 Aug;14(11):1641-52 PMID: 10928999
  8. Global and specific translational regulation in the genomic response of Saccharomyces cerevisiae to a rapid transfer from a fermentable to a nonfermentable carbon source.
    Mol Cell Biol. 2001 Feb;21(3):916-27 PMID: 11154278
  9. Physical evidence for distinct mechanisms of translational control by upstream open reading frames.
    EMBO J. 2001 Nov 15;20(22):6453-63 PMID: 11707416
  10. Microarray identification of FMRP-associated brain mRNAs and altered mRNA translational profiles in fragile X syndrome.
    Cell. 2001 Nov 16;107(4):477-87 PMID: 11719188
  11. Gene-specific regulation by general translation factors.
    Cell. 2002 Feb 22;108(4):545-56 PMID: 11909525
  12. Genome-wide analysis of mRNA translation profiles in Saccharomyces cerevisiae.
    Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3889-94 PMID: 12660367
  13. The zipper model of translational control: a small upstream ORF is the switch that controls structural remodeling of an mRNA leader.
    Cell. 2003 May 16;113(4):519-31 PMID: 12757712
  14. Oncogenic Ras and Akt signaling contribute to glioblastoma formation by differential recruitment of existing mRNAs to polysomes.
    Mol Cell. 2003 Oct;12(4):889-901 PMID: 14580340
  15. Genome-wide analysis of mRNA lengths in Saccharomyces cerevisiae.
    Genome Biol. 2003;5(1):R2 PMID: 14709174
  16. Gene expression analyzed by high-resolution state array analysis and quantitative proteomics: response of yeast to mating pheromone.
    Mol Cell Proteomics. 2004 May;3(5):478-89 PMID: 14766929
  17. The molecular mechanics of eukaryotic translation.
    Annu Rev Biochem. 2004;73:657-704 PMID: 15189156
  18. Multiple upstream AUG codons mediate translational control of GCN4.
    Cell. 1986 Apr 25;45(2):201-7 PMID: 3516411
  19. The leader peptide of yeast gene CPA1 is essential for the translational repression of its expression.
    Cell. 1987 Jun 19;49(6):805-13 PMID: 3555844
  20. Ribosome pausing and stacking during translation of a eukaryotic mRNA.
    EMBO J. 1988 Nov;7(11):3559-69 PMID: 2850168
  21. Factors affecting the efficiency of protein synthesis in Escherichia coli. Production of a polypeptide of more than 6000 amino acid residues.
    J Biol Chem. 1989 Mar 15;264(8):4428-33 PMID: 2538444
  22. Extension inhibition analysis of translation initiation complexes.
    Methods Enzymol. 1988;164:419-25 PMID: 2468068
  23. Coupling of GCN4 mRNA translational activation with decreased rates of polypeptide chain initiation.
    Cell. 1989 Jun 16;57(6):947-54 PMID: 2661015
  24. Signal recognition particle mediates a transient elongation arrest of preprolactin in reticulocyte lysate.
    J Cell Biol. 1989 Dec;109(6 Pt 1):2617-22 PMID: 2556403
  25. Processivity errors of gene expression in Escherichia coli.
    J Mol Biol. 1990 Oct 20;215(4):511-21 PMID: 2121997
  26. Suppression of ribosomal reinitiation at upstream open reading frames in amino acid-starved cells forms the basis for GCN4 translational control.
    Mol Cell Biol. 1991 Jan;11(1):486-96 PMID: 1986242
  27. A quantitative model for translational control of the GCN4 gene of Saccharomyces cerevisiae.
    New Biol. 1991 May;3(5):511-24 PMID: 1883814
  28. The influence of 5'-secondary structures upon ribosome binding to mRNA during translation in yeast.
    J Biol Chem. 1993 Dec 15;268(35):26522-30 PMID: 8253781
  29. Ribosomal association of poly(A)-binding protein in poly(A)-deficient Saccharomyces cerevisiae.
    J Biol Chem. 1996 May 3;271(18):10859-65 PMID: 8631901
  30. Defective ribosomal products (DRiPs): a major source of antigenic peptides for MHC class I molecules?
    J Immunol. 1996 Sep 1;157(5):1823-6 PMID: 8757297
  31. Translational regulation of yeast GCN4. A window on factors that control initiator-trna binding to the ribosome.
    J Biol Chem. 1997 Aug 29;272(35):21661-4 PMID: 9268289
  32. Monitoring the Gcn4 protein-mediated response in the yeast Saccharomyces cerevisiae.
    J Biol Chem. 1998 May 22;273(21):12696-702 PMID: 9582292
  33. mRNA translation in yeast during entry into stationary phase.
    Mol Gen Genet. 1998 Aug;259(3):282-93 PMID: 9749671
  34. Posttranscriptional control of gene expression in yeast.
    Microbiol Mol Biol Rev. 1998 Dec;62(4):1492-553 PMID: 9841679
  35. Messenger RNA translation state: the second dimension of high-throughput expression screening.
    Proc Natl Acad Sci U S A. 1999 Sep 14;96(19):10632-6 PMID: 10485877
  36. Precision and functional specificity in mRNA decay.
    Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5860-5 PMID: 11972065
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
1362-4962
Published
2005-00-00
Epub
2005-00-28
Pages
2421-32
Language
English
Region
England
NLM ID
0411011
PMCID
PMC1087779
Subset
IM
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