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J Hradec

Publications and source records attributed to J Hradec.

At least 127 records · Page 7Linked to original sources

Decreased activity of peptide-elongation factors after treatment with cholesterol esterase.

1. Peptide-elongation factors were purified from rat liver and treated with cholesterol esterase and phospholipase A2 immobilized on Sepharose 4B. 2. Binding of L-[3H]-phenylalanyl-tRNA to 40S ribosomal subunits was decreased by approx. 70% and to polyribosomes by 30% in the presence of the binding factor incubated with cholesterol esterase. Treatment of this factor with immobilized phospholipase A2 decreased the binding to smaller ribosomal subunits by only about 15%. 3. Poly(U)-dependent phenylalanine polymerization by ribosomal subunits was decreased to approx. 30% of its original value by treatment of both elongation factors with cholesterol esterase. 4. The normal activity of esterase-treated elongation factor in both the binding reaction and peptide-elongation assay was fully recovered by the addition of cholesteryl 14-methyl-hexadecanoate. 5. Different classes of lipids present in peptide-elongation factor 1 have apparently different functions. Whereas phospholipids are required to maintain the strcture of heavy aggregates of this factor, the presence of cholesteryl 14-methylhexadecanoate is obviously necessary for the normal function of peptide-elongation factors.

Animals↗

Protein synthesis in tumor host. II. Increased activity of peptide elongation factor 1 in experimental rat tumors and in host liver.

Both peptide elongation factors were purified from Zajdela and Walker tumors and from the host and normal liver. The activity of peptide elongation factor 1 from tumor tissues in promoting the binding of phenylalanyl-tRNA to ribosomes was significantly higher than that of normal liver. Also preparations from the host liver were markedly more active when compared with the corresponding factor from normal liver. Poly(U)-dependent phenylalanine polymerization was enhanced in subcellular systems containing elongation factor 1 from tumors or host liver. No differences were found between preparations of elongation factor 2 isolated from various sources. Tumor ribosomes showed an increased activity of both the acceptor and donor binding site of peptidyl transferase. In ribosomes from the tumor-host liver the activity of the acceptor site of this enzyme was decreased while that of the donor site remained unaltered. The enhanced activity of peptide elongation factor 1 from tumors and host liver is apparently the main reason of enhanced protein synthesis in these tissues. The enhanced activity of this factor is not specific for tumor growth as it occurs also in other pathological conditions.

Animals↗

[Penile cancer].

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Adult↗

Protein synthesis in tumor host. I. Enhanced peptide elongation in transplantable tumors and host liver.

Protein synthesis was significantly enhanced in subcellular systems containing ribosomes and cytosol from the liver of Walker tumor-bearing rats from the second week following the tumor transplantation and this enhancement persisted for the whole period of tumor growth. Homologous systems from Zajdela hepatoma and host liver showed a markedly increased poly(U)-dependent peptide elongation when compared with normal liver tissue. A stimulation of polyphenylalanine synthesis resulted from the addition of cytosols from tumors or host liver to ribosomes from normal rat liver. Similar results were found for the binding of phenylalanyl-tRNA to ribosomes. Ribosomes from tumors and host liver are more active in peptide elongation than particles from normal liver tissue. A more than 10-fold stimulation of phenylalanine polymerization resulted from the addition of poly(U) to ribosomes from Zajdela hepatoma whereas only less than 2-fold enhancement was found when using ribosomes from normal or host liver. Hepatoma ribosomes apparently contain only a low proportion of polyribosomes carrying natural message. Enhanced protein synthesis in tumors and host liver is apparently due, in particular, to an increased activity of soluble factors required for protein synthesis and less due to an increased activity of ribosomes.

Animals↗

Different binding of poly(A)-containing and poly(A)-free fractions of nuclear ribonucleic acid to ribosomes from rat liver.

Total nuclear RNA extracted from nuclei of rat liver cells by phenol/chloroform in the presence of sodium dodecyl sulphate was separated by combined gel filtration on Sepharose 4 B and affinity chromatography on poly(U) Sepharose into fractions differing in their molecular weights and contents of poly(A) sequences. The poly(A)-containing 45-S RNA became labelled most rapidly if rats were administered [3H] orotic acid. This fraction showed a high template activity when added to postmitochondrial supernatants of the Krebs ascites tumour. Fractions of nRNA, free of poly(A) sequences, had no stimulating effect on protein synthesis in this system. The 45-S RNA-containing poly(A) was readily bound to crude polyribosomes from rat liver at 0 degrees C and both ATP and GTP were necessary for this reaction. Sucrose gradient analyses provided evidence that this RNA species is bound predominantly to 80-S ribosomes. No binding was obtained with polyribosomes washed with 0.5 M KCl. The binding ability of washed polyribosomes was restored by the addition of the ribosomal wash fraction or rat liver cytosol. Crude polyribosomes bound significantly lower quantities of nRNA species free of poly(A) when compared with poly(A)-45-S RNA. The label was scattered through the whole ribosomal sedimentation pattern with no predominant peaks and the binding reaction required neither soluble factors nor nucleotide cofactors. The labelling kinetics and high template activity of poly(A)-45-S nRNA indicate that this fraction contains precursors of cytoplasmic mRNA. Requirements for soluble factors and nucleotide cofactors in the binding of this RNA species to 80-S ribosomes suggest that this binding, unlike that of other nRNA species, has a specific mechanism resembling that of mRNA binding during peptide initiation.

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↗

Ribosome-dependent conversion of polyA-containing heterogenous nuclear RNA into smaller RNA molecules.

The polyA-containing heterogenous nuclear RNA fraction separated from total rat liver nRNA by gel filtration on Sepharose 4B followed by affinity chromatography on polyU-Sepharose and containing predominantly the 45S components becomes enzymatically bound to homologous 80S ribosomes and polyribosomes at 0 degree C. If 80S ribosomes or polyribosomes with bound poly-a-containing HnRNA are subjected to a further incubation at 37 degree C, the original 45S RNA is gradually converted into smaller RNA species of 10- 35S which remain bound to the particle. This ribosome-dependent cleavage of larger HnRNA species into smaller RNA molecules may represent the ultimate step of mRNA maturation.

Adenine Nucleotides↗

Influence of cholesteryl 14-methylhexadecanoate on some ribosomal functions required for peptide elongation.

1. Polyribosomes and ribosomal subunits from rat liver were adsorbed on a cellulosic ion-exchange adsorbent, freeze-dried and extracted with organic solvents. The activity of extracted particles in peptide elongation was tested in the presence of purified peptideelongation factors. 2. Chloroform-methanol mixture (2:1, v/v) extracted 1.87+/-0.15 pmol of cholesteryl 14-methylhexadecanoate/pmol of the smaller ribosomal subunit and 0.92+/-0.11 pmol/pmol of the larger subunit. 3. In the presence of transferase I, extracted polyribosomes and 40S subunits bound more phenylalanyl-tRNA than did control non-extracted particles. The same binding as in control mixtures was obtained with extracted particles supplemented with cholesteryl 14-methylhexadecanoate in quantities corresponding to those extracted. 4. The polymerization of phenylalanine was greatly decreased with extracted polyribosomes and subunits and addition of the cholesteryl ester could not fully restore the original activity. 5. Extraction significantly decreased the activity of the P site of peptidyl transferase and normal activity was recovered after the addition of the ester. The A site of peptidyl transferase in extracted polyribosomes showed an increased activity when compared with non-extracted polyribosomes. 6. Cholesteryl 14-methylhexadecanoate apparently affects the function of the ribosomal A site and peptidyl transferase site and probably also that of the guanosine triphosphatase site and P site. The presence of different amounts of the ester in polyribosomes may be one of the mechanisms modulating peptide elongation at the ribosomal level.

Animals↗