Literature DB >> 17062564

Kinetic analysis of interaction of eukaryotic release factor 3 with guanine nucleotides.

Vera P Pisareva1, Andrey V Pisarev, Christopher U T Hellen, Marina V Rodnina, Tatyana V Pestova.   

Abstract

Eukaryotic translation termination is mediated by two release factors: eRF1 recognizes stop codons and triggers peptidyl-tRNA hydrolysis, whereas eRF3 accelerates this process in a GTP-dependent manner. Here we report kinetic analysis of guanine nucleotide binding to eRF3 performed by fluorescence stopped-flow technique using GTP/GDP derivatives carrying the fluorescent methylanthraniloyl (mant-) group, as well as thermodynamic analysis of eRF3 binding to unlabeled guanine nucleotides. Whereas the kinetics of eRF3 binding to mant-GDP is consistent with a one-step binding model, the double-exponential transients of eRF3 binding to mant-GTP indicate a two-step binding mechanism, in which the initial eRF3.mant-GTP complex undergoes subsequent conformational change. The affinity of eRF3 for GTP (K(d), approximately 70 microM) is about 70-fold lower than for GDP (K(d), approximately 1 microM) and both nucleotides dissociate rapidly from eRF3 (k(-1)(mant-GDP) approximately 2.4 s(-1); k(-2)(mant-GTP) approximately 3.3 s(-1)). Whereas not influencing eRF3 binding to GDP, association of eRF3 with eRF1 at physiological Mg(2+) concentrations specifically changes the kinetics of eRF3/mant-GTP interaction and stabilizes eRF3.GTP binding by two orders of magnitude (K(d) approximately 0.7 microM) due to lowering of the dissociation rate constant approximately 24-fold (k(-1)(mant-GTP) approximately 0.14s(-1) approximately 0.14 s(-1)). Thus, eRF1 acts as a GTP dissociation inhibitor (TDI) for eRF3, promoting efficient ribosomal recruitment of its GTP-bound form. 80 S ribosomes did not influence guanine nucleotide binding/exchange on the eRF1 x eRF3 complex. Guanine nucleotide binding and exchange on eRF3, which therefore depends on stimulation by eRF1, is entirely different from that on prokaryotic RF3 and unusual among GTPases.

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Year:  2006        PMID: 17062564     DOI: 10.1074/jbc.M607461200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  39 in total

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4.  Structural insights into eRF3 and stop codon recognition by eRF1.

Authors:  Zhihong Cheng; Kazuki Saito; Andrey V Pisarev; Miki Wada; Vera P Pisareva; Tatyana V Pestova; Michal Gajda; Adam Round; Chunguang Kong; Mengkiat Lim; Yoshikazu Nakamura; Dmitri I Svergun; Koichi Ito; Haiwei Song
Journal:  Genes Dev       Date:  2009-05-01       Impact factor: 11.361

5.  Dissociation by Pelota, Hbs1 and ABCE1 of mammalian vacant 80S ribosomes and stalled elongation complexes.

Authors:  Vera P Pisareva; Maxim A Skabkin; Christopher U T Hellen; Tatyana V Pestova; Andrey V Pisarev
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Review 6.  Fidelity at the molecular level: lessons from protein synthesis.

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8.  Distinct Splice Variants of Dynamin-related Protein 1 Differentially Utilize Mitochondrial Fission Factor as an Effector of Cooperative GTPase Activity.

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Journal:  J Biol Chem       Date:  2015-11-17       Impact factor: 5.157

9.  Recycling of eukaryotic posttermination ribosomal complexes.

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Journal:  Cell       Date:  2007-10-19       Impact factor: 41.582

10.  Elongation factor eEF1B modulates functions of the release factors eRF1 and eRF3 and the efficiency of translation termination in yeast.

Authors:  Igor A Valouev; Gleb V Fominov; Elizaveta E Sokolova; Vladimir N Smirnov; Michael D Ter-Avanesyan
Journal:  BMC Mol Biol       Date:  2009-06-22       Impact factor: 2.946

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