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1.
Nucleic Acids Res ; 50(16): 9490-9504, 2022 09 09.
Article in English | MEDLINE | ID: mdl-35971611

ABSTRACT

Protein synthesis in eukaryotic cell is spatially and structurally compartmentalized that ensures high efficiency of this process. One of the distinctive features of higher eukaryotes is the existence of stable multi-protein complexes of aminoacyl-tRNA synthetases and translation elongation factors. Here, we report a quaternary organization of the human guanine-nucleotide exchange factor (GEF) complex, eEF1B, comprising α, ß and γ subunits that specifically associate into a heterotrimeric form eEF1B(αßγ)3. As both the eEF1Bα and eEF1Bß proteins have structurally conserved GEF domains, their total number within the complex is equal to six. Such, so far, unique structural assembly of the guanine-nucleotide exchange factors within a stable complex may be considered as a 'GEF hub' that ensures efficient maintenance of the translationally active GTP-bound conformation of eEF1A in higher eukaryotes.


Subject(s)
Guanine Nucleotide Exchange Factors , Peptide Elongation Factor 1 , Humans , Peptide Elongation Factor 1/metabolism , Guanine Nucleotide Exchange Factors/genetics , Guanine Nucleotide Exchange Factors/metabolism , Protein Biosynthesis , Nucleotides/metabolism , Guanine
2.
Int J Biol Macromol ; 126: 899-907, 2019 Apr 01.
Article in English | MEDLINE | ID: mdl-30590147

ABSTRACT

Translation elongation factor 1Bß (eEF1Bß) is a metazoan-specific protein involved into the macromolecular eEF1B complex, containing also eEF1Bα and eEF1Bγ subunits. Both eEF1Bα and eEF1Bß ensure the guanine nucleotide exchange on eEF1A while eEF1Bγ is thought to have a structural role. The structures of the eEF1Bß catalytic C-terminal domain and neighboring central acidic region are known while the structure of the protein-binding N-terminal domain remains unidentified which prevents clear understanding of architecture of the eEF1B complex. Here we show that the N-terminal domain comprising initial 77 amino acids of eEF1Bß, eEF1Bß(1-77), is a monomer in solution with increased hydrodynamic volume. This domain binds eEF1Bγ in equimolar ratio. The CD spectra reveal that the secondary structure of eEF1Bß(1-77) consists predominantly of α-helices and a portion of disordered region. Very rapid hydrogen/deuterium exchange for all eEF1Bß(1-77) peptides favors a flexible tertiary organization of eEF1Bß(1-77). Computational modeling of eEF1Bß(1-77) suggests several conformation states each composed of three α-helices connected by flexible linkers. Altogether, the data imply that the protein-binding domain of eEF1Bß shows flexible spatial organization which may be needed for interaction with eEF1Bγ or other protein partners.


Subject(s)
Guanine Nucleotide Exchange Factors/chemistry , Guanine Nucleotide Exchange Factors/metabolism , Peptide Elongation Factor 1/chemistry , Peptide Elongation Factor 1/metabolism , Guanine Nucleotide Exchange Factors/isolation & purification , Humans , Models, Molecular , Peptide Elongation Factor 1/isolation & purification , Peptides/chemistry , Protein Binding , Protein Conformation, alpha-Helical , Protein Domains , Recombinant Proteins/isolation & purification , Reproducibility of Results , Structure-Activity Relationship
3.
FEBS J ; 283(3): 484-97, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26587907

ABSTRACT

Eukaryotic translation elongation factor 1Bα (eEF1Bα) is a functional homolog of the bacterial factor EF-Ts, and is a component of the macromolecular eEF1B complex. eEF1Bα functions as a catalyst of guanine nucleotide exchange on translation elongation factor 1A (eEF1A). The C-terminal domain of eEF1Bα is necessary and sufficient for its catalytic activity, whereas the N-terminal domain interacts with eukaryotic translation elongation factor 1Bγ (eEF1Bγ) to form a tight complex. However, eEF1Bγ has been shown to enhance the catalytic activity of eEF1Bα attributed to the C-terminal domain of eEF1Bα. This suggests that the N-terminal domain of eEF1Bα may in some way influence the guanine nucleotide exchange process. We have shown that full-length recombinant eEF1Bα and its truncated forms are non-globular proteins with elongated shapes. Truncation of the N-terminal domain of eEF1Bα, which is dispensable for catalytic activity, resulted in acceleration of the rate of guanine nucleotide exchange on eEF1A compared to full-length eEF1Bα. A similar effect on the catalytic activity of eEF1Bα was observed after its interaction with eEF1Bγ. We suggest that the non-catalytic N-terminal domain of eEF1Bα may interfere with eEF1A binding to the C-terminal catalytic domain, resulting in a decrease in the overall rate of the guanine nucleotide exchange reaction. Formation of a tight complex between the eEF1Bγ and eEF1Bα N-terminal domains abolishes this inhibitory effect.


Subject(s)
Guanine Nucleotide Exchange Factors/chemistry , Guanine Nucleotide Exchange Factors/metabolism , Nucleotides/metabolism , Peptide Elongation Factor 1/chemistry , Peptide Elongation Factor 1/metabolism , Amino Acid Sequence , Biocatalysis , Humans , Molecular Sequence Data , Nucleotides/chemistry , Protein Isoforms/chemistry , Protein Isoforms/metabolism , Protein Structure, Tertiary , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Sequence Alignment
4.
Nucleic Acids Res ; 42(20): 12939-48, 2014 Nov 10.
Article in English | MEDLINE | ID: mdl-25326326

ABSTRACT

Eukaryotic elongation factor eEF1A transits between the GTP- and GDP-bound conformations during the ribosomal polypeptide chain elongation. eEF1A*GTP establishes a complex with the aminoacyl-tRNA in the A site of the 80S ribosome. Correct codon-anticodon recognition triggers GTP hydrolysis, with subsequent dissociation of eEF1A*GDP from the ribosome. The structures of both the 'GTP'- and 'GDP'-bound conformations of eEF1A are unknown. Thus, the eEF1A-related ribosomal mechanisms were anticipated only by analogy with the bacterial homolog EF-Tu. Here, we report the first crystal structure of the mammalian eEF1A2*GDP complex which indicates major differences in the organization of the nucleotide-binding domain and intramolecular movements of eEF1A compared to EF-Tu. Our results explain the nucleotide exchange mechanism in the mammalian eEF1A and suggest that the first step of eEF1A*GDP dissociation from the 80S ribosome is the rotation of the nucleotide-binding domain observed after GTP hydrolysis.


Subject(s)
Guanosine Diphosphate/chemistry , Guanosine Triphosphate/chemistry , Peptide Elongation Factor 1/chemistry , Animals , Crystallography, X-Ray , Guanosine Diphosphate/metabolism , Guanosine Triphosphate/metabolism , Magnesium/chemistry , Models, Molecular , Peptide Elongation Factor 1/metabolism , Protein Binding , Protein Conformation , Protein Isoforms/chemistry , Protein Isoforms/metabolism , Rabbits
5.
Eur J Biochem ; 269(19): 4811-8, 2002 Oct.
Article in English | MEDLINE | ID: mdl-12354112

ABSTRACT

Multimolecular complexes involving the eukaryotic elongation factor 1A (eEF1A) have been suggested to play an important role in the channeling (vectorial transfer) of tRNA during protein synthesis [Negrutskii, B.S. & El'skaya, A.V. (1998) Prog. Nucleic Acids Res. Mol. Biol. 60, 47-78]. Recently we have demonstrated that besides performing its canonical function of forming a ternary complex with GTP and aminoacyl-tRNA, the mammalian eEF1A can produce a noncanonical ternary complex with GDP and uncharged tRNA [Petrushenko, Z.M., Negrutskii, B.S., Ladokhin, A.S., Budkevich, T.V., Shalak, V.F. & El'skaya, A.V. (1997) FEBS Lett. 407, 13-17]. The [eEF1A.GDP.tRNA] complex has been hypothesized to interact with aminoacyl-tRNA synthetase (ARS) resulting in a quaternary complex where uncharged tRNA is transferred to the enzyme for aminoacylation. Here we present the data on association of the [eEF1A.GDP.tRNA] complex with phenylalanyl-tRNA synthetase (PheRS), e.g. the formation of the above quaternary complex detected by the gel-retardation and surface plasmon resonance techniques. To estimate the stability of the novel ternary and quaternary complexes of eEF1A the fluorescence method and BIAcore analysis were used. The dissociation constants for the [eEF1A.GDP.tRNA] and [eEF1A.GDP.tRNAPhe.PheRS] complexes were found to be 20 nm and 9 nm, respectively. We also revealed a direct interaction of PheRS with eEF1A in the absence of tRNAPhe (Kd = 21 nm). However, the addition of tRNAPhe accelerated eEF1A.GDP binding to the enzyme. A possible role of these stable novel ternary and quaternary complexes of eEF1A.GDP with tRNA and ARS in the channeled elongation cycle is discussed.


Subject(s)
Amino Acyl-tRNA Synthetases/chemistry , Amino Acyl-tRNA Synthetases/metabolism , Guanosine Diphosphate/chemistry , Guanosine Diphosphate/metabolism , Peptide Elongation Factor 1/chemistry , Peptide Elongation Factor 1/metabolism , RNA, Transfer/chemistry , RNA, Transfer/metabolism , Animals , Drug Stability , In Vitro Techniques , Kinetics , Macromolecular Substances , Models, Biological , Peptide Chain Elongation, Translational , Phenylalanine-tRNA Ligase/chemistry , Phenylalanine-tRNA Ligase/metabolism , RNA, Transfer, Phe/chemistry , RNA, Transfer, Phe/metabolism , Rabbits , Surface Plasmon Resonance
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