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PUBMED FOR HANDHELDS

Journal Abstract Search


278 related items for PubMed ID: 32612237

  • 1. Cryo-EM of elongating ribosome with EF-Tu•GTP elucidates tRNA proofreading.
    Loveland AB, Demo G, Korostelev AA.
    Nature; 2020 Aug; 584(7822):640-645. PubMed ID: 32612237
    [Abstract] [Full Text] [Related]

  • 2. Ensemble cryo-EM elucidates the mechanism of translation fidelity.
    Loveland AB, Demo G, Grigorieff N, Korostelev AA.
    Nature; 2017 Jun 01; 546(7656):113-117. PubMed ID: 28538735
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  • 5. Structural dynamics of translation elongation factor Tu during aa-tRNA delivery to the ribosome.
    Kavaliauskas D, Chen C, Liu W, Cooperman BS, Goldman YE, Knudsen CR.
    Nucleic Acids Res; 2018 Sep 19; 46(16):8651-8661. PubMed ID: 30107527
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  • 6. Cryo-EM reveals an active role for aminoacyl-tRNA in the accommodation process.
    Valle M, Sengupta J, Swami NK, Grassucci RA, Burkhardt N, Nierhaus KH, Agrawal RK, Frank J.
    EMBO J; 2002 Jul 01; 21(13):3557-67. PubMed ID: 12093756
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  • 7. Ribosome-induced changes in elongation factor Tu conformation control GTP hydrolysis.
    Villa E, Sengupta J, Trabuco LG, LeBarron J, Baxter WT, Shaikh TR, Grassucci RA, Nissen P, Ehrenberg M, Schulten K, Frank J.
    Proc Natl Acad Sci U S A; 2009 Jan 27; 106(4):1063-8. PubMed ID: 19122150
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  • 8. Codon-dependent conformational change of elongation factor Tu preceding GTP hydrolysis on the ribosome.
    Rodnina MV, Fricke R, Kuhn L, Wintermeyer W.
    EMBO J; 1995 Jun 01; 14(11):2613-9. PubMed ID: 7781613
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  • 9. Intact aminoacyl-tRNA is required to trigger GTP hydrolysis by elongation factor Tu on the ribosome.
    Piepenburg O, Pape T, Pleiss JA, Wintermeyer W, Uhlenbeck OC, Rodnina MV.
    Biochemistry; 2000 Feb 22; 39(7):1734-8. PubMed ID: 10677222
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  • 10. Cryo-EM shows stages of initial codon selection on the ribosome by aa-tRNA in ternary complex with GTP and the GTPase-deficient EF-TuH84A.
    Fislage M, Zhang J, Brown ZP, Mandava CS, Sanyal S, Ehrenberg M, Frank J.
    Nucleic Acids Res; 2018 Jun 20; 46(11):5861-5874. PubMed ID: 29733411
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  • 12. Kinetic determinants of high-fidelity tRNA discrimination on the ribosome.
    Gromadski KB, Rodnina MV.
    Mol Cell; 2004 Jan 30; 13(2):191-200. PubMed ID: 14759365
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  • 13. Visualization of elongation factor Tu on the Escherichia coli ribosome.
    Stark H, Rodnina MV, Rinke-Appel J, Brimacombe R, Wintermeyer W, van Heel M.
    Nature; 1997 Sep 25; 389(6649):403-6. PubMed ID: 9311785
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  • 14. Thiostrepton inhibition of tRNA delivery to the ribosome.
    Gonzalez RL, Chu S, Puglisi JD.
    RNA; 2007 Dec 25; 13(12):2091-7. PubMed ID: 17951333
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  • 15. Distortion of tRNA upon near-cognate codon recognition on the ribosome.
    Mittelstaet J, Konevega AL, Rodnina MV.
    J Biol Chem; 2011 Mar 11; 286(10):8158-8164. PubMed ID: 21212264
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  • 16. Recognition of aminoacyl-tRNA: a common molecular mechanism revealed by cryo-EM.
    Li W, Agirrezabala X, Lei J, Bouakaz L, Brunelle JL, Ortiz-Meoz RF, Green R, Sanyal S, Ehrenberg M, Frank J.
    EMBO J; 2008 Dec 17; 27(24):3322-31. PubMed ID: 19020518
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  • 17. Structural insights into cognate versus near-cognate discrimination during decoding.
    Agirrezabala X, Schreiner E, Trabuco LG, Lei J, Ortiz-Meoz RF, Schulten K, Green R, Frank J.
    EMBO J; 2011 Apr 20; 30(8):1497-507. PubMed ID: 21378755
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  • 18. Induced fit in initial selection and proofreading of aminoacyl-tRNA on the ribosome.
    Pape T, Wintermeyer W, Rodnina M.
    EMBO J; 1999 Jul 01; 18(13):3800-7. PubMed ID: 10393195
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  • 19. Distinct functional classes of ram mutations in 16S rRNA.
    McClory SP, Devaraj A, Fredrick K.
    RNA; 2014 Apr 01; 20(4):496-504. PubMed ID: 24572811
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