PubMed HealthSearch

SEARCH · PubMed Health

Results for “Peptide Initiation Factors”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Partial reaction of peptide initiation inhibited by phosphorylation of either initiation factor eIF-2 or 40S ribosomal proteins.

Preparations of the hemin-controlled repressor (HCR) from rabbit reticulocytes contain 3':5'-cyclic-AMP-independent protein kinase activity for the smallest subunit of the peptide initiation factor eIF-2 and for proteins of reticulocyte 40S ribosomal subunits. Binding of the ternary complex formed between Met-tRNAf, GTP, and eIF-2 to 40S ribosomal subunits is shown to be inhibited by phosphorylation of either the ribosomal subunits or eIF-2. The protein kinase activity responsible for phosphorylation of eIF-2 has been separated from the activity for phosphorylation of 40S ribosomal subunits and shown to independently block the same partial reaction of peptide initiation. It appears that different enzymes are involved, each capable of regulating peptide initiation at the same step but by a different mechanism.

Animals

[Peptidyltransferase center of ribosomes. Structure and relationship to other ribosomal functions].

Structural analysis of the ribosomal peptidyl transferase center using model substrates "minimal" peptide acceptors and donors is reported in the present work. Recent data on the ribosomal proteins and rRNA organizing the peptidyl transferase center and other functional centers of the large ribosomal subunits are given and the know facts about the catalytic mechanism of the peptide bond formation are considered. An analysis of the interaction of the peptidyl transferase center and the centers binding the cytoplasmic translocation factors and stringent-factor (for E. coli ribosome) is presented; a possible contribution of the peptidyl transferase center ot the translocation is discussed.

Acyltransferases

Multistep regulatory system for activation of a cyclic AMP-independent eukaryotic initiation factor 2 kinase.

Three functionally related components that block peptide initiation have been identified in lysates of rabbit reticulocytes. The components function consecutively in a cascade type sequence of reactions to cause phosphorylation of eukaryotic peptide initiation factor 2 (eIF-2). The eIF-2 kinase activated as part of this sequence has been tentatively identified as the same protein kinase that is activated by heme deficiency as part of the hemin-controlled repressor (HCR) system. The first component in the sequence is heat stable and can be reversibly activated by heat or pressure. It activates a second, heat-labile, component that in turn directly or indirectly activates the hemin-controlled eIF-2 kinase. This heat-labile component appears to function through proteolysis. This reaction sequence is not detectably affected by heme or cyclic AMP and thus appears to provide an alternative mechanism, independent of heme, for activation of the cyclic AMP-independent eIF-2 kinase of the HCR system.

Animals

Specific hydrolysis of methionyl-tRNA Met f catalyzed by a purified peptide.

A peptide initiation factor purified from rat liver and promoting the binding of initiator tRNA and model initiators to 40S and 80S ribosome at an acid pH liberates methionine and N-acetylmethionine from Trna Met f at neutral reaction. Phenylalanyl-tRNA, N-acetylphenylalanyl-tRNA and methionyl-tRNA Met m are not hydrolyzed under the same conditions. Hydrolysis of methionyl-tRNA Met f is stimulated by the presence of the 40S ribosomal subunit and preceeds at 37 degrees C until all the substrate has been split. No hydrolysis of initiator tRNA or N-acetylmethionyl-tRNA Met f occurs at 0 degrees C. Hydrolysis is slightly stimulated by GTP and MG2+ but not by KCl. The binding and hydrolyzing activity associated with a single protein factor may have an important function in regulating the rate of peptide initiation.

Acetylation

Stimulation, by two Escherichia coli supernatant proteins, of the initiation of polypeptide synthesis.

Two protein factors (A and B) have been partially purified from Escherichia coli supernatant which, in combination, are more effective than 0.5 M NH4Cl in stimulating ribosomes for AcPhe-tRNA and fMet-tRNA binding, for the puromycin reaction, and for incorporating acetylphenylalanine from AcPhe-tRNA into polypeptide. The factors appear to differ from the initiation factors, the elongation factor EF-T, and ribosomal proteins. Some uncertainty exists as to whether factor B is different from EF-G. To maximize the effect of the factors in initiator tRNA binding, we preincubated the ribosomes with the factors and carried out the binding assay for a short period at 15 degrees C. Maximal stimulation of binding occurred after about a 2-min preincubation at 37 degrees C. Longer preincubation times were required at 15 degrees C, and only slight stimulation was observed after preincubation at 0 degrees C. The extent of stimulation by the factors was not affected when the NH4Cl concentration was increased from 40 to 500 mM in the preincubation. The presence of both the 30S and 50S ribosomal subunits is required for the enhancement of AcPhe-tRNA binding. Polyphenylalanine synthesis carried out without AcPhe-tRNA is inhibited by the factors. It is suggested that the factors may act by inducing a structural rearrangement of the ribosomes.

Bacterial Proteins

Regeneration of renal proximal tubules after mercuric chloride injury is accompanied by increased binding of aminoacyl-transfer ribonucleic acid.

Homogenates of rat kidney cortex obtained 1,3 or 14 days after a single injection of HgCl2 were used to prepare the post-microsomal pH5 supernatant fraction. The activity of this fraction for peptide synthesis from [14C]phenylalanyl-tRNA was significantly increased at 1 and 3 days, at which time the proximal tubules are regenerating [Cuppage & Tate (1967) Am. J. Pathol. 51, 405-429]. This increased activity could not be attributed to a decreased inhibitory activity, but was due to an increased aminoacyl-tRNA binding, i.e. elongation-factor-1 activity, in the supernatant fraction.

Animals

Preferential regulation of protein synthesis initiation complex formation by purine nucleotides.

A comparison of the affinities of eukaryotic initiation factor 2 and eukaryotic elongation factor 1 for GTP and GDP, and of the responses of initiation and elongation complex formation to various GTP mol fractions indicated that the initiation reaction was more sensitive to changes in the GTP: GDP ratio. In vitro regulation of the GTP: GDP ratio by the adenylate energy charge, a sensitive control parameter, also demonstrated a preference for regulation of formation of initiation complexes when compared to elongation complexes. These studies suggest that, based on the availability of energy, initiation is the rate-limiting step in the overall protein synthetic process.

Animals

Protein synthesis and aging: studies with cell-free mammalian systems.

A cell-free system devoid of polysomes, which translates natural mRNA, has been prepared from rat liver. It contains ribosomal subunits, ribosomes, aminoacyl-tRNA synthetases, tRNAs, and protein factors necessary for translation. Protein synthesis required an energy-generating system, mRNA, and 3 mM Mg2+ concentration, and it was inhibited by 7-methylguanylic acid. The total extent and the rate of protein synthesis were approximately 30% greater when the translating system was prepared from livers of 3-month-old rats, as compared to 30-month-old rats. A ribosome-free fraction containing the protein factors required for translation was also prepared from 3-month-old and 30-month-old rat livers and brains, by extraction with 0.5 M KCl. The high-salt extracts were analyzed for elongation factors EF-1 and EF-2 in a poly(U) translating system. Although the activity of EF-2 was similar in preparations from young and old rats, the EF-1 activity in the 3-month-old rat livers and brains was 30 to 40% greater than in 30-month-old animals. The protein synthesizing activity of high salt-washed ribosomes stripped of endogenous peptidyl-tRNA and mRNA, from livers and brains of young and old animals, was the same.

Aging

The role of acidic proteins from cytoplasmic fractions of Krebs II ascites cells for efficient translation.

Acidic proteins with affinity to RNA from cytoplasmic fraction of Krebs II Ascites cells were isolated by means of affinity chromatography on RNA-Sepharose CN-Br-columns. Stepwise elution with 350 mM [K+] and 1000 mM [K+] removed two fractions of proteins both of which are required for the formation of 40S- or 80S-initiation complexes and for efficient translation.

Animals

On the mode of action of eucaryotic initiation factor 1.

A factor isolated from the human tonsillar ribosomal wash specifically stimulated the poly (U)-dependent binding of Phe-tRNA to 40S subunits at low Mg2+ concentration and without any requirement for GTP. The stimulated binding of Phe-tRNA to 40S particles was inhibited in proportion to added deacylated tRNA. The factor was inactivated by N-ethylmaleimide, but in the presence of 40S subunits a considerable protection was observed. 40S subunits, incubated with the factor and isolated by centrifugation, carried significant factor activity. The results imply that the human tonsillar factor, which shows a great functional analogy to the eucaryotic initiation factor 1 from other sources, exerts its effect by an initial interaction with the 40S subunit.

Ethylmaleimide