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W C Merrick

Publications and source records attributed to W C Merrick.

At least 91 records · Page 5Linked to original sources

Inhibitor of eukaryotic initiation factor 4F activity in unfertilized sea urchin eggs.

Extracts from unfertilized sea urchin eggs contain an inhibitor of translation that inhibits protein synthesis in cell-free translation systems from sea urchin embryos or rabbit reticulocytes. The inhibitory effects of egg extracts can be reversed by the addition of mammalian eukaryotic initiation factor 4F (eIF-4F) in both sea urchin embryo and reticulocyte systems, suggesting that the inhibitor inactivates this initiation factor. The accumulated data suggest that the ability of eIF-4F to recycle may be compromised. The addition of eIF-4F to cell-free translation systems from unfertilized sea urchin eggs also stimulates protein synthesis. However, the stimulation does not increase protein synthetic activity in the egg cell-free translation system to the levels observed in those produced from 2-hr embryos. This suggests that, although the unfertilized egg contains an inhibitor of eIF-4F and reduced levels of eIF-4F activity, inactivation of this component is only one of the factors involved in the low rate of maternal mRNA utilization found prior to fertilization.

Animals↗

GTP-binding domain: three consensus sequence elements with distinct spacing.

A sequence comparison of nine functionally different GTP-binding protein families has yielded further information on the general characterization of the conservation and importance of amino acid sequences in the GTP-binding domain, including a consensus sequence composed of three consensus elements GXXXXGK, DXXG, and NKXD with consensus spacings of either 40-80 or approximately equal to 130-170 amino acid residues between the first and second elements and approximately 40-80 amino acid residues between the second and third sequence elements; the sequence NKXW in place of NKXD in the sequence element responsible for base specificity allows the use of ITP as well as GTP; dGTP can be used with essentially the same efficiency as GTP; signal transducing proteins and enzymes have been identified in the nine families; and family conservations allow the identification of the most probable consensus sequence element when more than one is present. Employing these features we have screened the protein sequence data base of the Protein Identification Resource and have identified only known GTP-binding proteins with the exception of protein 2C from foot-and-mouth disease virus as matching the consensus sequence. Based on this finding we predict that foot-and-mouth disease virus protein 2C binds GTP and, by analogy, that protein 2C from several related viruses (polio, rhino, encephalomyocarditis, and cowpea mosaic) will bind a nucleotide as part of its biologic activity.

Amino Acid Sequence↗

Influence of 5' proximal secondary structure on the translational efficiency of eukaryotic mRNAs and on their interaction with initiation factors.

The effects of 5' proximal secondary structure in mRNA molecules on their translation and on their interaction with the eukaryotic initiation factors (eIF)-4F, eIF-4A, and eIF-4B have been examined. Secondary structures were generated in the 5' noncoding region of rabbit globin and reovirus mRNAs by means of hybridization with cDNA molecules. cDNAs hybridized to the first 15 bases downstream from the cap inhibited the translation of the mRNAs in both reticulocyte and wheat germ lysates. The degree of inhibition was directly related to the monovalent ion concentration and inversely related to reaction temperature. These hybrid structures also reduced the competitive ability of the messages. Hybrid structures beginning downstream from the first 15 bases did not inhibit the translation of beta-globin mRNA or reovirus s3 mRNA. None of the hybrid structures were detrimental to the interaction of the mRNAs with the 26-kDa cap binding protein of eIF-4F, as determined by chemical cross-linking assays. However, in the presence of ATP, hybrid structures immediately adjacent to the cap severely inhibited the cross-linking to the p46 subunit of eIF-4F or to additional eIF-4A or eIF-4B. In order to account for these observations, a two-step mechanism is proposed for the interaction of eIF-4F with the 5' end of an mRNA molecule. The first step involves a weak initial interaction of the p26 subunit with the cap. The second step requires the hydrolysis of ATP and results in the formation of a stable initiation factor-mRNA complex, which may involve eIF-4A and eIF-4B. This second step is inhibited by the presence of 5' proximal secondary structure. In any event, our results demonstrate that the effect of mRNA structure on translation rate depends strongly on its position with respect to the 5' end and that this effect is due at least in part to an inhibition of the action of initiation factors normally required for the unwinding of structure.

DNA↗

Recycling of messenger RNA cap-binding proteins mediated by eukaryotic initiation factor 4B.

The ability of polypeptide components of eukaryotic initiation factor (eIF) 4F to bind to the m7G cap of an mRNA, to be released from that mRNA, and then to rebind to the cap of a second mRNA has been investigated. The release and rebinding steps have been termed "recycling." It was found that eIF-4B stimulates the recycling of the 24-26 kDa (p24) component of eIF-4F, and perhaps of other components as well. By contrast, eIF-4A seemed to have little or no effect on the recycling of eIF-4F components, either in the presence or absence of eIF-4B. The recycled p24 is capable of cross-linking to oxidized cap structures. The recycled factor is also able to stimulate the cross-linking of added eIF-4A, which cross-links poorly in the absence of eIF-4F. By these criteria it seems likely that the recycled eIF-4F components are active for a second round of translational initiation.

Animals↗

Reductive alkylation with oxidized nucleotides. Use in affinity labeling or affinity chromatography.

A study has been made of the products of a reaction of oxidized ribonucleotides with a primary amine. As a model reaction, periodate-oxidized adenosine was combined with glycine in the presence of NaCNBH3. The purified major product of this reaction, adenine 9,2'-(4'-carboxymethyl-6'-hydroxymethylmorpholine), was characterized by 13C and 1H NMR spectroscopy, ultraviolet spectroscopy, and thin layer chromatography. When used to generate affinity columns, oxidized adenosine or oxidized ATP formed stable products with immobilized diaminohexane when treated with NaCNBH3. Failure to treat with NaCNBH3 yielded an unstable affinity matrix. These results are used in the interpretation of differing results when oxidized nucleotides have been used as affinity labels for different proteins.

Adenosine↗

Mechanism of inhibition of polypeptide chain initiation in heat-shocked Ehrlich cells involves reduction of eukaryotic initiation factor 4F activity.

Almost all living organisms studied respond to elevated temperature with a marked inhibition of overall protein synthesis but increased synthesis of a specific set of proteins, the so-called heat-shock proteins. We have prepared a cell-free protein synthesizing system (lysate) from heat-shocked Ehrlich ascites tumor cells that reflects the inhibition of protein synthesis in intact cells at elevated temperatures. We have isolated and partially purified a stimulator of the heat-shocked cell lysate from Ehrlich cells. Through four purification steps, the stimulator is chromatographically identical to eukaryotic initiation factor 4F (eIF-4F), an initiation factor which specifically binds mRNA cap structure. Therefore, we have tested the effects of highly purified reticulocyte eIF-4F on the heat-shocked cell lysate. Protein synthesis is strongly stimulated by addition of highly purified eIF-4F. Synthesis in the heat-shocked lysate is more inhibited at high (70 mM) KCl concentrations, than at lower concentrations, and stimulation by eIF-4F is correspondingly greater at higher KCl concentrations, so that the rate of protein synthesis is returned to control (non-heat-shocked lysate) levels at all KCl concentrations. Furthermore, at 70 mM KCl, in heat-shocked lysates, synthesis of the 68-kDa heat-shock protein is much less inhibited than synthesis of the bulk of non-heat-shock proteins, and eIF-4F stimulates synthesis of 68-kDa protein to a much lesser extent than non-heat-shock proteins. Thus, addition of purified eIF-4F reverses the effects of elevated temperatures on Ehrlich cells that are reflected in lysates. Therefore, we propose that the inhibition of translation in heat-shocked Ehrlich cells is the result of inactivation of eIF-4F function.

Acetates↗

ATP-dependent unwinding of messenger RNA structure by eukaryotic initiation factors.

Interaction of protein synthesis initiation factors with mRNA has been studied in order to characterize early events in the eukaryotic translation pathway. Individual reovirus mRNAs labeled with 32P in the alpha position relative to the m7G cap and eukaryotic initiation factor (eIF)-4A, -4B, and -4F purified from rabbit reticulocytes were employed. It was found that eIF-4A causes a structural change in mRNA, as evidenced by a nuclease sensitivity test: addition of high concentrations of eIF-4A greatly increase the nuclease sensitivity of the mRNA, suggesting that this factor can melt or "unwind" mRNA structure. ATP is required for this reaction. At low concentrations of eIF-4A, addition of eIF-4B is required for maximal unwinding activity. Thus eIF-4B enhances eIF-4A activity. Addition of eIF-4F also makes the mRNA sensitive to nuclease indicating a similar unwinding role to that of eIF-4A. Stoichiometric comparisons indicate that eIF-4F is more than 20-fold more efficient than eIF-4A in catalyzing this reaction. The unwinding activity of eIF-4F is inhibited by m7GDP, while that of eIF-4A is not. This suggests that eIF-4A functions independent of the 5' cap structure. Our results also suggest that the unwinding activity of eIF-4F is located in the 46,000-dalton polypeptide of this complex, which has shown by others to be similar or identical to eIF-4A.

Adenosine Triphosphate↗

Shutoff of host translation by encephalomyocarditis virus infection does not involve cleavage of the eucaryotic initiation factor 4F polypeptide that accompanies poliovirus infection.

Studies were conducted to determine whether encephalomyocarditis virus infection causes proteolytic cleavage of any of the polypeptides which comprise eucaryotic initiation factor 4F. Since no such alterations in the components of the initiation factor were detected, these observations confirmed that the mechanisms whereby encephalomyocarditis virus and poliovirus shut off host translation are different.

Animals↗

Purification of various forms of elongation factor 1 from rabbit reticulocytes.

Previous studies have indicated that the high-molecular-weight form of elongation factor 1 (EF-1H) contained four subunits (alpha, beta, gamma, and delta). Using the conventional methods of gel-filtration and ion-exchange chromatography, various forms of elongation factor 1 (EF-1 alpha, EF-1 beta delta, EF-1 beta gamma delta) have been purified from rabbit reticulocyte lysate. The procedure described allows one to purify these factors from a single batch of lysate in sufficient amounts for physical and biochemical studies. EF-1 alpha is a single polypeptide of Mr 52,000, and has an isoelectric point of 9.1. EF-1 beta delta and EF-1 beta gamma delta are composed of two and three nonidentical polypeptides, respectively, as judged by polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate. Both proteins can form stable aggregates in native conditions that can reach more than 2,000,000 Da. The isoelectric point for each polypeptide was determined; 5.8 for EF-1 beta, 5.5 for EF-1 gamma, and 4.8 for EF-1 delta. The activity of both proteins was compared on a molecular basis by their ability to stimulate EF-1 alpha in the poly(U)-directed synthesis of polyphenylalanine. On the basis of this assay EF-1 beta gamma delta is slightly more active than EF-1 beta delta. The similarity of the amino acid composition of EF-1 gamma and EF-1 delta and the molar ratio of alpha: beta: gamma: delta in EF-1H of approximately 1:1:0.5:0.5 have led to the conclusion that EF-1 delta is probably a breakdown product of EF-1 gamma, and that the native form of EF-1H probably contains only the alpha, beta, and gamma subunits.

Amino Acids↗

Biological characterization of various forms of elongation factor 1 from rabbit reticulocytes.

Two forms of elongation factor 1 (EF-1) have been tested for a variety of biological functions. One form, EF-1H, is a high-molecular-weight aggregate (Mr greater than 500,000) containing four distinct polypeptides (alpha, beta, gamma, delta). The other form, EF-1 alpha, consists of a single polypeptide which is the same as the alpha subunit of EF-1H. Both EF-1 alpha and EF-1H function catalytically in binding Phe-tRNA to ribosomes, and in poly(U)-directed polyphenylalanine synthesis. The activity of EF-1 alpha is enhanced in polyphenylalanine synthesis by a complementary component, EF-1 beta delta. It is also shown that EF-1 beta delta can facilitate an exchange of EF-1 alpha-bound GDP for GTP. The EF-1 alpha dissociation constants for GDP and GTP were 0.47 and 0.55 microM respectively, while the EF-1H dissociation constants for GDP and GTP were 2.0 and 1.6 microM, respectively. Thus, while EF-1 alpha and EF-1H had approximately the same affinities for GDP and GTP, the EF-1 alpha dissociation constants were about fourfold lower than the EF-1H dissociation constants. Attempts to isolate complexes of EF-1 alpha or EF-1H with GTP and Phe-tRNA or with GTP, Phe-tRNA, and ribosomes were unsuccessful using either Millipore filters, gel filtration, or sucrose density gradients. The results presented in this report, along with studies from other laboratories, strengthen the hypothesis that the general mechanism of the elongation cycle is similar in eucaryotes and procaryotes.

Animals↗

RNA-stimulated ATPase activity of eukaryotic initiation factors.

Previously, we have described an ATP-dependent recognition and binding of mRNA by eukaryotic initiation factors (eIF)-4A, eIF-4B, and eIF-4F (Grifo, J. A., Tahara, S. M., Leis, J. P., Morgan, M. A., Shatkin, A. J., and Merrick, W. C. (1982) J. Biol. Chem. 257, 5246-5252; Grifo, J. A., Tahara, S. M., Morgan, M. A., Shatkin, A. J., and Merrick, W. C. (1983) J. Biol. Chem. 258, 5804-5810). This finding was consistent with other studies which implicated eIF-4A and eIF-4B in binding mRNA to the 40 S ribosomal subunit, an ATP-requiring process. As part of ongoing studies of this step, and, in particular its ATP requirement, we have examined ATPase activity of various initiation factors. In this communication we describe an RNA-dependent ATP hydrolysis catalyzed by eIF-4A and eIF-4F. Although eIF-4B has little or no ATPase activity it can stimulate the RNA-dependent ATPase activity of either eIF-4A or eIF-4F. Similar to the ATP-dependent mRNA binding assay, the RNA-dependent ATPase activity is inhibited by the cap analogue m7GDP when globin mRNA is used as the activator. In addition, a variety of polynucleotides stimulate the ATPase activity of these factors including rRNA, tRNA, poly(U), and poly(A) but not poly(dA). Finally, an attempt has been made to discern whether phosphorylation or ATP hydrolysis is responsible for the ATP-stimulated binding of mRNA by eIF-4A and eIF-4B. We present evidence which is consistent with the interpretation that ATP hydrolysis and not protein phosphorylation correlates with ATP-stimulated binding of mRNA.

Adenosine Triphosphatases↗

Phospholipid-sensitive Ca2+-dependent protein kinase phosphorylates the beta subunit of eukaryotic initiation factor 2 (eIF-2).

The ability of homogeneous phospholipid-sensitive Ca2+-dependent protein kinase (PL-Ca-PK) from pig spleen to phosphorylate eukaryotic initiation factor 2 (eIF-2) was examined. PL-Ca-PK phosphorylated the beta-subunit of eIF-2, whereas myosin light chain kinase (MLCK) and cyclic AMP- and cyclic GMP-dependent protein kinases (cA-PK and cG-PK) did not. PL-Ca-PK could incorporate a maximum of 1.6 mol phosphate/mol eIF-2. The app. Km and Vmax for PL-Ca-PK phosphorylation of eIF-2 were 0.13 microM and 0.02 mumol.min-1.mg enzyme-1, respectively. Phosphoamino acid analysis revealed that incorporation of phosphate into eIF-2 occurred almost exclusively at serine residues. These findings indicate that eIF-2 was an effective substrate for PL-Ca-PK, suggesting that this enzyme may play a role in the regulation of protein synthesis.

Amino Acids↗

Mycoplasma-induced BALB/c 3T3 collagenase is a mammalian enzyme.

A collagenase previously reported to accumulate in the medium of cultures of BALB/c 3T3 cells on infection with Mycoplasma orale [Kluve, Merrick, Stanbridge & Gershman (1981) Nature (London) 292, 855-857] was partially purified and characterized. With regard to purification properties, activation, sensitivity to inhibitors and relative molecular mass the enzyme was similar to previously reported vertebrate collagenases, but could not be unequivocally distinguished from bacterial collagenases. With regard to substrate-specificity and reaction products, however, the collagenase was typical of vertebrate collagenases and distinct from bacterial collagenases. Specifically, the enzyme displayed a preference for type III collagen and type I collagen, a somewhat decreased ability to degrade type II collagen, and a very limited ability to degrade type IV collagen. The initial products of the action of the collagenase on type I collagen were characterized as fragments one-quarter and three-quarters of the length of the intact collagen molecule. Because the properties of the collagenase produced by cultures of mycoplasma-infected BALB/c 3T3 cells are those of a mammalian-type (vertebrate-type) enzyme, we have concluded that the collagenase is a product of the mouse (BALB/c 3T3) genome, and is not produced by the mycoplasma. Therefore it appears that infection of BALB/c 3T3 mouse fibroblasts with Mycoplasma orale induces the mouse cells to produce and secrete collagenase.

Animals↗

Unusual requirements for optimum translation of polio viral RNA in vitro.

The translation of poliovirion RNA (polio RNA) in an in vitro fractionated system was much less efficient than that of encephalomyocarditis virion RNA (EMC RNA). In contrast, when polio and EMC RNAs were added to postmitochondrial cell lysates (S10), they were translated with equal efficiency. However, this equality was observed only when high concentrations of S10 were employed; at lower concentrations, polio RNA translation was reduced relative to that of EMC RNA. These results suggest that both the fractionated and S10 systems are limiting in a component that is required for the optimal translation of polio RNA. The elongation rates for EMC and polio RNA translation in the fractionated system were found to be similar, indicating that this component acts at an initiation step. Various components, including excess ribosomal salt wash and postribosomal supernatant of cell lysate, were added to the fractionated system in an effort to identify the slow step more precisely. Of these, only excess ribosomal salt wash specifically stimulated polio RNA translation, suggesting that one or more initiation factors is necessary in unusually large amounts for this mRNA. Various purified initiation factors were tested for the ability to enhance polio RNA translation. Of these, only purified eukaryotic initiation factor 4A had a specific effect. This suggests that polio RNA, in contrast to other mRNAs tested (EMC, reoviral, and globin), may have an unusually low affinity for this initiation factor. The significance of these results is discussed in terms of the methods picornaviruses have evolved for reprogramming the translational machinery of the host cell.

Animals↗

New initiation factor activity required for globin mRNA translation.

A reconstituted reticulocyte translation system originally designed to be deficient in eukaryotic initiation factor 4B (eIF-4B) was used to identify a new activity required for maximal synthesis of rabbit globin. This new activity purifies as a stable, high molecular weight complex by a variety of chromatographic procedures and is termed eIF-4F. The purified globin stimulatory activity also restores translation of capped mRNAs in extracts of poliovirus-infected HeLa cells. Like restoring activity that was obtained as a protein complex by different procedures (Tahara, S. M., Morgan, M. A. and Shatkin, A. J. (1981) J. Biol. Chem. 256, 791-794), eIF-4F includes the 24,000-dalton cap binding protein and major polypeptides of Mr approximately 200,000 and approximately 46,000. The latter component comigrates with eIF-4A by two-dimensional gel electrophoresis and, like eIF-4A, chemically cross-links to the 5'-end of capped mRNA by an ATP-dependent, m7GDP-sensitive reaction. Unlike eIF-4F, cap binding protein of Mr approximately 24,000 isolated by affinity chromatography on m7GDP-Sepharose does not stimulate globin synthesis in the reconstituted system.

Chromatography, Gel↗

Role of mRNA competition in regulating translation: further characterization of mRNA discriminatory initiation factors.

Host and reovirus mRNAs compete with one another for translation in infected cells. Kinetic analysis has suggested that the site of competition is a message discriminatory initiation factor which must bind to the mRNA before it can interact with the 40S ribosomal subunit. The present communication describes an in vitro assay which can detect message discriminatory activities. A competitive situation is established by using reovirus and globin mRNAs, and then the specificity with which this competition is relieved by added components is measured. Among the various initiation factors surveyed with this assay, two have the properties expected of the mRNA discriminatory factor. These are eukaryotic initiation factor 4A and a "cap binding protein" complex. Inasmuch as the cap binding protein complex contains a subunit similar or identical to the initiation factor eIF-4A, it seems likely that only one form of the latter factor may be active in vivo. In vitro, both factors relieve competition among both capped and uncapped reovirus mRNAs according to similar hierarchies. These results suggest that some feature other than the m7G cap, such as nucleotide sequence or secondary structure, is recognized by the discriminatory factor.

Animals↗

Characterization of eukaryotic initiation factor 4A, a protein involved in ATP-dependent binding of globin mRNA.

Eukaryotic initiation factor 4A (eIF-4A) has been purified (to apparent homogeneity) from rabbit reticulocyte lysate. It is a single polypeptide accounting for at least 90% of the Coomassie blue staining material when subjected to gel electrophoresis in the presence of sodium dodecyl sulfate. The molecular weight was determined by gel electrophoresis under denaturing conditions at two different bisacrylamide to acrylamide ratios, by gel filtration under native conditions and by sedimentation equilibrium at three different protein concentrations. Additional physical properties of the polypeptide were also determined. In an attempt to characterize the function of eIF-4A, a protein specifically required for mRNA translation, an assay was developed which measures the protein-dependent retention of radiolabeled hemoglobin mRNA on nitrocellulose filters. These studies led to the discovery of an ATP-stimulated binding of mRNA which is dependent on the presence of eIF-4A and eIF-4B that also contains the 24,000-dalton cap binding protein. The reaction apparently requires ATP hydrolysis since a nonhydrolyzable analogue of ATP, adenosine 5'-(beta, gamma-imino)triphosphate, does not stimulate mRNA binding and GTP cannot substitute for ATP. In addition, ATP-stimulated binding of mRNA can be inhibited by an analog of the mRNA 5' terminus, m7GMP, suggesting recognition of the capped 5' end of hemoglobin mRNA. Consistent with this suggestion, ATP also stimulated the covalent cross-linking of eIF-4A and eIF-4B to the cap of oxidized reovirus mRNA, an interaction that was inhibited by m7GDP.

Adenosine Triphosphate↗