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Biomedical subjects

B Hardesty

Publications and source records attributed to B Hardesty.

At least 91 records · Page 5Linked to original sources

Phosphorylation of glycogen synthase and of the beta subunit of eukaryotic initiation factor two by a common protein kinase.

A protein kinase from rabbit reticulocytes, able to phosphorylate the beta subunit of eukaryotic initiation factor 2 (eIF-2), has been demonstrated to phosphorylate also glycogen synthase. A glycogen synthase kinase (PC0.7) from rabbit skeletal muscle has been shown to phosphorylate the beta subunit of eIF-2. Comparison of highly purified preparations of the two protein kinases has indicated several similarities of properties. 1) Both enzymes were associated with two major polypeptide species, alpha (Mr = 43,000) and beta (Mr = 25,000), and exhibited apparent native molecular weights of 176,000-180,000 by gel filtration and 130,000-140,000 by sucrose density gradient sedimentation. 2) Both enzymes phosphorylated glycogen synthase, eIF-2 beta, phosvitin, and casein and were effective in utilizing GTP and ATP as phosphoryl donors. 3) Both enzymes displayed the same chromatographic behavior on phosvitin-Sepharose, phosphocellulose, and DEAE-cellulose. 4) Both enzymes underwent an autophosphorylation of the beta polypeptide when incubated with ATP and Mg2+. On the basis of these and other properties, we propose that the two protein kinases, if not identical, are very similar enzymes.

Animals↗

Position of transfer ribonucleic acid on Escherichia coli ribosomes. Distance from the 3' end of 16S ribonucleic acid to three points on phenylalanine-accepting transfer ribonucleic acid in the donor site of 70S ribosomes.

Escherichia coli 16S RNA from 30S ribosomal subunits was isolated, oxidized at the 3' end, and labeled with the thiosemicarbazide derivatives of fluorescein or eosin. Labeled 16S RNA was reconstituted into 30S subunits. They were almost fully active compared to 30S subunits reconstituted from unlabeled 16S RNA by using a poly(uridylic acid)-directed polyphenylalanine synthesis assay. Fluorophores were placed at three different positions of tRNAPhe. E. coli and yeast tRNAPhe were oxidized at the 3' end and labeled with the thiosemicarbazide derivative of fluorescein or with the hydrazide of N-methylanthranilic acid. The Y base in the anticodon loop of yeast tRNAPhe was replaced by proflavin or 1-aminoanthracene. Also, E. coli tRNAPhe was photochemically cross-linked between 4-thiouridine at position 8 and cytidine at position 13. After reduction, this site was used as a fluorescent probe. The labeled tRNAs were bound into the peptidyl site of 70S ribosomes, and then the distances from the fluorophore in the modified tRNA to the fluorophore at the 3' end of 16S RNA were measured by nonradiative energy transfer. Calculations were based on measurements of fluorescence lifetimes. The distances to the 3' end of 16S RNA were found to be as follows: 3' end of tRNA, 67-74 A; cross-linked t RNA, 53-60 A; anticodon loop of tRNA, greater than 61 A.

Binding Sites↗

Fluorescence modification of Escherichia coli 5S RNA.

Reaction of 5S RNA with chlorocetaldehyde leads to the conversion of unpaired adenines to the fluorescent 1,N6-etheno-adenine derivatives. Up to 16 of the 23 adenines in free 5S RNA can be modified, the fastest reacting are A29, A34, A57-59. Partial modification of adenines in this area results in a 20% reduction in the efficiency of 5S RNA incorporation into 50S subunits during reconstitution and a 15% reduction in the activity of these subunits in peptide synthesis. Fluorescence from 1,N6-etheno-adenine is quenched in free 5S RNA and is not detectably further influenced by the binding of proteins E-L5, E-L18 and E-L25, nor by the first stage of the two step E. coli 50S subunit reconstitution procedure. However, the fluorescence is further reduced to near zero after the second step of the reconstitution. Thus, 5S RNS free in solution contains 16 unpaired adenines, those in the region between A29 and A59 particularly accessible to modification by chlorocetaldehyde. This portion of the 5S RNA molecule appears to undergo either a conformational change or interacts with other ribosomal components in the last stage of subunit reassembly.

Acetaldehyde↗

Localization of 3' ends of 5S and 23S rRNAs in reconstituted subunits of Escherichia coli ribosomes.

Periodate-oxidized 3' ends of 5S, 23S, and 16S rRNAs from Escherichia coli were allowed to react with fluorescein thiosemicarbazide, then labeled rRNAs were reconstituted into active ribosomal subunits. The fluorescein moiety on each of the rRNAs when reconstituted into ribosomal subunits was accessible to anti-fluorescein IgG as determined by fluorescence quenching and by sucrose gradient centrifugation. The region at which an antibody molecule bond to the labeled ribosomal subunits was determined by immunoelectron microscopy. The 3' end of the 5S RNA was localized on the central protuberance of the 50S subunit. The corresponding region for the 3' end of the 23S RNA was below the stalk on the noninterfacing surface. The 3' end of the 16S RNA was localized to the upper edge of the large lobe of 30S subunits, as reported previously.

Escherichia coli↗

Distances between 3' ends of ribosomal ribonucleic acids reassembled into Escherichia coli ribosomes.

The three ribonucleic acids (RNAs) from Escherichia coli ribosomes were isolated and then labeled at their 3' ends by oxidation with periodate followed by reaction with thiosemicarbazides of fluorescein or eosin. Ribosomal subunits reconstituted with the labeled RNAs were active for polyphenylalanine synthesis. The distances between the 3' ends of the RNAs in 70S ribosomes were estimated by nonradiative energy transfer from fluorescein to eosin. The percentage of energy transfer was calculated from the decrease in fluorescence lifetime of fluorescein in the quenched sample compared to the unquenched sample. Fluorescence lifetime was measured in real time by using a mode-locked laser for excitation and a high-speed electrostatic photomultiplier tube for detection of fluorescence. The distances between fluorophores attached to the 3' ends of 16S RNA and 5S RNA or 23S RNA were estimated to be about 55 and 71 A, respectively. The corresponding distance between the 5S RNA and 23S RNA was too large to be measured reliably with the available probes but was estimated to be greater than 65 A. Comparison of the quantum yields of the labeled RNAs free in solution and reconstituted into ribosomal subunits suggests that the 3' end of 16S RNA does not interact appreciably with other ribosomal components and may be in a relatively exposed position, whereas the 3' ends of the 5S RNA and 23S RNA may be buried in the 70S ribosomal subunit.

Chemical Phenomena↗

Partial purification and characterization of a 90,000-dalton peptide involved in activation of the eIF-2 alpha protein kinase of the hemin-controlled translational repressor.

In the absence of heme, a negative translational control system is activated in reticulocytes or their lysates that causes the phosphorylation of the smallest subunit of peptide initiation factor 2 and the inhibition of peptide initiation. Two partially purified enzyme fractions are shown to give a concerted effect for phosphorylation of this subunit of initiation factor 2 and binding of methionyl-tRNAf to 40S ribosomal subunits. One enzyme fraction contains a 90,000-dalton peptide that functions in activation of an enzyme containing a 100,000-dalton peptide of the other fraction. Phosphorylation of the 100,000-dalton peptide is correlated with activation of the kinase for the smallest subunit of initiation factor 2. Antibodies against the 90,000-dalton peptide decrease phosphorylation of both the 100,000-dalton peptide and the subunit of initiation factor 2. The results indicate that at least two components function in a sequence of reactions that inhibits protein synthesis by phosphorylation of the smallest subunit of eucaryotic initiation factor 2. The same sequence may be activated in the presence of heme by a cascade type of reactions initiated by a heat-stable protein, HS [Henderson, A.B., Miller, A.H., & Hardesty, B. (1979) Proc. Natl. Acad. Sci. U.S.A. 76, 2605-2609].

Animals↗

Partial purification and characterization of reticulocyte phosphatase with activity for phosphorylated peptide initiation factor 2.

An enzyme fraction containing phosphatase activity for phosphorylated eukaryotic peptide initiation factor 2 (eIF-2) has been isolated from rabbit reticulocytes and partially characterized. The enzyme efficiently catalyzes release of phosphate from the small subunit of eIF-2 (eIF-2 alpha) that has been phosphorylated by the hemin-controlled repressor. It is shown to restore activity of this phosphorylated eIF-2 for binding of methionyl-tRNAf to 40 S ribosomal subunits in a partial reaction of peptide initiation. The enzyme fraction also has phosphatase activity for eIF-2 phosphorylated in its largest subunit and for the 100,000-dalton peptide associated with the eIF-2 alpha kinase activity of the hemin-controlled repressor. The phosphoprotein phosphatase has been isolated by a procedure involving precipitation with ethanol at room temperature and has an apparent molecular weight in the order of 76,000. Its phosphatase activity for eIF-2 alpha is stimulated about 3-fold by optimal concentrations of Mn2+, but is not stimulated by Ca2+ or Mg2+. The enzyme is strongly inhibited by Fe2+ and by purine nucleoside diphosphates.

Animals↗

No effect of cAMP on protein synthesis in reticulocyte lysates.

The results of a series of experiments are interpreted to indicate that protein synthesis in reticulocyte lysates is not affected by the reticulocyte cAMP-dependent protein kinase. The catalytic subunit of this enzyme was isolated to apparent homogeneity. Also, the protein inhibitor of this protein kinase was isolated from muscle. Neither physiological concentrations of cAMP nor any of these protein components had a detectable effect on protein synthesis in reticulocyte lysates in the presence or absence of exogenous heme. Phosphorylation of the smallest subunit of eukaryotic initiation factor 2 or the 90,000 to 100,000-dalton peptide associated with eukaryotic initiation factor 2 kinase activity were not affected by the activity of the cAMP-dependent protein kinase under conditions in which exogenous heme has a pronounced effect on these reactions.

Animals↗

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↗