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Biomedical subjects

I Edery

Publications and source records attributed to I Edery.

At least 19 recordsLinked to original sources

An efficient strategy to isolate full-length cDNAs based on an mRNA cap retention procedure (CAPture).

The ability to generate cDNA libraries is one of the most fundamental procedures in contemporary molecular biology. One of the major drawbacks of current methods is that most cDNAs present in any given library are incomplete, rendering the characterization of genes an inefficient and time-consuming task. We have developed an affinity selection procedure using a fusion protein containing the murine cap-binding protein (eukaryotic initiation factor 4E), coupled to a solid support matrix, that allows for the purification of mRNAs via the 5' cap structure. When combined with a single-strand-specific RNase digestion step, specific retention of complete cDNA-RNA duplexes following first-strand synthesis is achieved. This method can be used to generate cDNA libraries in which polyadenylated and nonpolyadenylated mRNAs are equally represented and to enrich for full-length or 5'-end clones, thus facilitating cDNA cloning and promoter mapping.

Amino Acid Sequence

Temporal phosphorylation of the Drosophila period protein.

The period gene (per) is required for Drosophila melanogaster to manifest circadian (congruent to 24 hr) rhythms. We report here that per protein (PER) undergoes daily oscillations in apparent molecular mass as well as abundance. The mobility changes are largely or exclusively due to multiple phosphorylation events. The temporal profile of the classic short-period form of PER (PERS) is altered in a manner consistent with the mutant strain's behavioral phenotype. As changes in abundance and phosphorylation persist under constant environmental conditions, they reflect or contribute to a free-running rhythm. We suggest that the phosphorylation status of PER is an important determinant in the Drosophila clock's time-keeping mechanism.

Animals

The analysis of new short-period circadian rhythm mutants suggests features of D. melanogaster period gene function.

A number of new period gene (per) mutants were generated by in vitro mutagenesis and germ line transformation. Missense mutations were made at amino acid 589, which is altered in the 19 h short-period (per(s)) mutant, and insertion mutations were generated with peptides commonly used for epitope tagging. Most of these new per mutants had short behavioral rhythms. Flies with heteroallelic combinations of these new mutant per genes were found to have "hybrid" periods, i.e., they had values that were usually in between those of the individual alleles. These findings suggest that short-period per mutants are not unusual gain-of-function mutants but rather more traditional loss-of-function mutants that are unable to influence the circadian pacemaker in a proper manner. The data also suggest that the per protein may engage in important intermolecular interactions.

Animals

Multiple mRNAs encode the murine translation initiation factor eIF-4E.

All eukaryotic cellular mRNAs (except organellar) possess at their 5' end the structure m7GpppX (where X is any nucleotide) termed the "cap." The cap structure facilitates the melting of mRNA 5' secondary structure through the action of initiation factor-4F (eIF-4F) in conjunction with eIF-4B. eIF-4F consists of three subunits of which one, eIF-4E (eIF-4E has recently been designated eIF-4 alpha according to the Nomenclature Committee of the International Union of Biochemistry (NC-IUB) (Safer, B. (1989) Eur. J. Biochem. 186, 1-3)), contains the cap binding site. Several lines of evidence suggest that eIF-4E regulates the rate of translation initiation. Consequently, changes in cellular eIF-4E levels could control growth and differentiation. To investigate the possibility that eIF-4E expression is regulated, we studied the pattern of eIF-4E expression in several cell lines. Here, we show the existence of multiple mRNAs for eIF-4E that are generated by differential polyadenylation. In addition, we show tissue-specific differences in eIF-4E mRNA expression and utilization of polyadenylation sites.

Animals

Control of the interferon-induced 68-kilodalton protein kinase by the HIV-1 tat gene product.

The tat-responsive region (TAR) of the human immunodeficiency virus-1 (HIV-1) exhibits a trans-inhibitory effect on translation in vitro by activating the interferon-induced 68-kilodalton protein kinase (p68 kinase). Productive infection by HIV-1 was shown to result in a significant decrease in the amount of cellular p68 kinase. The steady-state amount of p68 kinase was also reduced in interferon-treated HeLa cell lines stably expressing tat, as compared to the amount of the kinase in interferon-treated control HeLa cells. Thus, the potential translational inhibitory effects of the TAR RNA region mediated by activation of p68 kinase may be downregulated by tat during productive HIV-1 infection.

2',5'-Oligoadenylate Synthetase

Bidirectional RNA helicase activity of eucaryotic translation initiation factors 4A and 4F.

The mechanism of ribosome binding to eucaryotic mRNAs is not well understood, but it requires the participation of eucaryotic initiation factors eIF-4A, eIF-4B, and eIF-4F and the hydrolysis of ATP. Evidence has accumulated in support of a model in which these initiation factors function to unwind the 5'-proximal secondary structure in mRNA to facilitate ribosome binding. To obtain direct evidence for initiation factor-mediated RNA unwinding, we developed a simple assay to determine RNA helicase activity, and we show that eIF-4A or eIF-4F, in combination with eIF-4B, exhibits helicase activity. A striking and unprecedented feature of this activity is that it functions in a bidirectional manner. Thus, unwinding can occur either in the 5'-to-3' or 3'-to-5' direction. Unwinding in the 5'-to-3' direction by eIF-4F (the cap-binding protein complex), in conjunction with eIF-4B, was stimulated by the presence of the RNA 5' cap structure, whereas unwinding in the 3'-to-5' direction was completely cap independent. These results are discussed with respect to cap-dependent versus cap-independent mechanisms of ribosome binding to eucaryotic mRNAs.

Animals

Circular dichroism and fluorescence studies on five mutant forms of protein synthesis initiation factor eIF-4E, from the yeast Saccharomyces cerevisiae.

CD studies have shown that five tryptophan to phenylalanine (W----F) mutants of eukaryotic initiation factor-4E (eIF-4E) contain low amounts of alpha-helix, the main elements of secondary structure being beta-sheets/turns and aperiodic regions. Interactions with the cap analog m7GpppG are accompanied by changes in overall secondary structure which include reductions, and in one case an increase in alpha-helix content, as well as increases in total beta-structure (3 mutant forms) and decreases in total beta-structure (2 mutant forms). These changes may also involve more significant perturbations of localized regions containing phenylalanine residues either involved in nucleotide binding, or close to the nucleotide-binding site. Measurements of intrinsic Trp fluorescence have shown different quantum yields and reduced m7GpppG-induced quenching (with one exception). Acrylamide quenching studies yielded similar parameters for 4 of the mutants but 1 form displayed significantly reduced values. Melting experiments showed that the Trp fluorescence of 4 of the mutants decreased as the temperature was increased, this effect being reduced in 3 cases in the presence of m7GpppG. W 58 F showed an increase in fluorescence as the temperature was raised and this effect was accentuated in the presence of nucleotide. A preliminary attempt has been made to correlate the spectroscopic data with the known biological importance of the individual Trp residues.

Acrylamides

Activation of double-stranded RNA-dependent kinase (dsl) by the TAR region of HIV-1 mRNA: a novel translational control mechanism.

All mRNAs of human immunodeficiency virus 1 (HIV-1) contain in their 5' untranslated region a sequence termed TAR that responds to trans-activation by the tat (trans-activating) protein. This RNA sequence assumes a stable secondary structure, and its cap structure is relatively inaccessible. Here we report that these structural properties of the TAR sequence underlie the ability of TAR to inhibit in trans the translation of other mRNAs. This mechanism of translation inhibition involves the activation of the double-stranded RNA-dependent kinase (dsl), which in turn phosphorylates the protein synthesis initiation factor 2 (eIF-2). Mutations in the TAR region that diminish the stability of the secondary structure cause a significant reduction in the trans-inhibition. A similar reduction in the dsl activation occurs when TAR is placed further downstream of the cap structure. This is a clear demonstration of a specific naturally occurring mRNA sequence that can activate dsl. We suggest a novel translational regulatory mechanism that interdigitates the activities of eIF-2 and eIF-4F.

Animals

High-level synthesis in Escherichia coli of functional cap-binding eukaryotic initiation factor eIF-4E and affinity purification using a simplified cap-analog resin.

Numerous studies have established the important role that eukaryotic initiation factor-4E (eIF-4E) plays during protein biosynthesis. However, biochemical characterization of eIF-4E has proved difficult, mainly because of its low abundance in cells. To facilitate studies on eIF-4E, we have overexpressed Saccharomyces cerevisiae eIF-4E in Escherichia coli. The isolation of eIF-4E was simplified by using a cap-analog affinity matrix (agarose resin) that is considerably less demanding to prepare than those previously reported. We describe a simple and rapid purification scheme that can yield 2-5 micrograms of a homogenous and active preparation of eIF-4E from 1 ml of E. coli culture. E. coli-expressed eIF-4E is active as determined by its ability to bind the cap structure. The results demonstrate that the cap-binding activity of eIF-4E is not dependent on the presence of other proteins that are present at low levels in eIF-4E preparations isolated from eukaryotic cells.

Base Sequence

Site-directed mutagenesis of the tryptophan residues in yeast eukaryotic initiation factor 4E. Effects on cap binding activity.

Initiation factor 4E is a 24-kilodalton polypeptide that binds specifically to the 5' cap structure of eukaryotic mRNAs. Sequence analysis of cDNA clones of initiation factor 4E from several species revealed a high tryptophan content (8 residues). Strikingly, all tryptophans are conserved evolutionarily in number and position between yeast and mammals. Here we show, using site-directed mutagenesis, that two of the tryptophans (those referred to as numbers 1 and 8) are absolutely required for the cap binding activity of an Escherichia coli expressed initiation factor 4E.

Amino Acid Sequence

Circular dichroism and fluorescence studies on protein synthesis initiation factor eIF-4E and two mutant forms from the yeast Saccharomyces cerevisiae.

Circular dichroism studies have shown that eukaryotic initiation factor 4E contains low amounts of alpha-helix; the main elements of secondary structure are beta-sheets/turns and aperiodic regions. Interactions with cap analogs are accompanied by small but reproducible changes in overall secondary structure, which may also involve more significant perturbations of localized regions containing certain phenylalanine residues. Dissociation constants for interactions with nucleotides have been established from fluorescence titrations. Results show that the (N-7) methylated guanosine nucleotides bound more strongly than their nonmethylated counterparts. Involvement of a key tryptophan residue in the cap binding site was suggested. Additional studies with two cap binding mutant forms of the protein, designated SK-4 (W----75----L) and SK-6 (W----115----L), confirmed and extended these observations. Fluorescence melting experiments indicated that binding of cap analogs stabilized the protein against thermal perturbation and demonstrated subtle differences in folding between the wild-type and mutant forms of the protein. These subtle differences in folding may account for the observed loss in cap specificity of both mutant forms.

Amino Acid Sequence

A wheat germ cap-site factor functional in protein chain initiation.

Component C1 from wheat germ, a factor that functions in attaching ribosomes to mRNA, has been resolved into a fraction that does not bind to m7GDP-agarose (referred to as eIF4B) and one that binds and is eluted specifically by m7GDP. Both components are required for the attachment of ribosomes to [3H]methyl-labeled reovirus RNA and for the translation of a number of mRNAs, including the noncapped RNA of satellite tobacco necrosis virus. The component that binds to m7GDP-agarose, referred to as CSF (cap-site factor), contains primarily proteins of Mr 24,000, 26,000, and 75,000. Crosslinking studies with oxidized [3H]methyl-labeled reovirus RNA show that one of the lower molecular weight polypeptides of CSF interacts specifically with the 5'-cap of the mRNA in the absence of any other components. Incubation of component C1 and eIF4A in the presence of ATP results in the additional crosslinking of a 51- and a 65-kDa protein. In the absence of eIF4A, there is only the crosslinking of the lower molecular mass polypeptide (24 or 26 kDa). Attempts to reconstitute the C1 reaction with CSF and eIF4B result in a considerably diminished reaction. Crosslinking of eIF4A, however, is obtained in an incubation containing only CSF and eIF4A, suggesting that CSF may bring about an initial interaction of eIF4A with the 5' end of the mRNA.

Adenosine Triphosphate

Photoaffinity labeling of the cap-binding protein complex with ATP/dATP. Differential labeling of free eukaryotic initiation factor 4A and the eukaryotic initiation factor 4A component of the cap-binding protein complex with [alpha-32P]ATP/dATP.

It has been suggested that the cap-binding protein complex is involved in ATP-mediated melting of 5'-mRNA secondary structure to facilitate ribosome binding during initiation of translation in eukaryotic cells (Edery, I., Lee, K. A. W., and Sonenberg, N. (1984) Biochemistry 23, 2456-2462). Consequently, we have studied the interaction of dATP/ATP with the eukaryotic cap-binding protein complex by UV photoaffinity labeling. UV irradiation of the cap-binding protein complex in the presence of [alpha-32P]dATP/ATP resulted in the cross-linking of this compound to the 50-kDa polypeptide of the complex. This polypeptide is almost identical to the previously characterized eukaryotic initiation factor (eIF) 4A. We examined the ability of dATP/ATP to cross-link to eIF-4A and found that it cross-links less efficiently (approximately 60-fold on a molar basis) compared to the cross-linking obtained for the eIF-4A component of the cap-binding protein complex. Irradiation of purified eIF-4A together with the cap-binding protein complex in the presence of [alpha-32P]dATP resulted in greater than additive labeling of the eIF-4A component of the cap-binding protein complex and purified eIF-4A, suggesting a synergistic interaction between purified eIF-4A, the cap-binding protein complex, and dATP/ATP. We also report that photoaffinity labeling of eIF-4A and the eIF-4A component in the cap-binding protein complex is stimulated by eIF-4B, but not by other initiation factors or mRNA.

Adenosine Triphosphate

Purification and characterization of protein synthesis initiation factor eIF-4E from the yeast Saccharomyces cerevisiae.

A 24 000-dalton protein [yeast eukaryotic initiation factor 4E (eIF-4E)] was purified from yeast Saccharomyces cerevisiae postribosomal supernatant by m7GDP-agarose affinity chromatography. The protein behaves very similarly to mammalian protein synthesis initiation factor eIF-4E with respect to binding to and elution from m7GDP-agarose columns and cross-linking to oxidized reovirus mRNA cap structures. Yeast eIF-4E is required for translation as shown by the strong and specific inhibition of cell-free translation in a yeast extract by a monoclonal antibody directed against yeast eIF-4E.

Animals

Cap-dependent RNA splicing in a HeLa nuclear extract.

We have studied the involvement of the 5' cap structure in the splicing of precursor mRNAs in a HeLa nuclear extract. We show that precursor mRNAs are spliced efficiently only when they possess a cap structure and that preincubation of a HeLa nuclear extract rendered the splicing reaction highly sensitive to inhibition by cap analogues. This sensitization was dependent on exogenous Mg2+ but not exogenous ATP or GTP. These results demonstrate that splicing in a nuclear extract is highly dependent on the cap structure, as was demonstrated for the splicing process in a HeLa whole-cell extract [Konarska, M. M., Padget, R. A. & Sharp, P. A. (1984) Cell 38, 731-736], and thus support the contention that cap recognition is an important feature of eukaryotic mRNA biogenesis.

Adenosine Triphosphate

Isolation and structural characterization of cap-binding proteins from poliovirus-infected HeLa cells.

In poliovirus-infected HeLa cells, poliovirus RNA is translated at times when cellular mRNA translation is strongly inhibited. It is thought that this translational control mechanism is mediated by inactivation of a cap-binding protein complex (comprising polypeptides of 24 [24-kilodalton cap-binding protein], 50, and approximately 220 kilodaltons). This complex can restore the translation of capped mRNAs in extracts from poliovirus-infected cells. We have previously shown that the virally induced defect prevents interaction between cap recognition factors and mRNA. Here, we show that the cap-binding protein complex (and not the 24-kilodalton cap-binding protein) has activity that restores the cap-specific mRNA-protein interaction when added to initiation factors from poliovirus-infected cells. Thus, the activity that restores the cap-specific mRNA-protein interaction and that which restores the translation of capped mRNAs in extracts from poliovirus-infected cells, copurify. The results also indicate, by an alternative assay, that the cap-binding protein complex is the only factor inactivated by poliovirus. We also purified cap-binding proteins from uninfected and poliovirus-infected HeLa cells. By various criteria, the 24-kilodalton cap-binding protein is not structurally modified as a result of infection. However, the 220-kilodalton polypeptide of the cap-binding protein complex is apparently cleaved by a putative viral (or induced) protease. By in vivo labeling and m7GDP affinity chromatography, we isolated a modified cap-binding protein complex from poliovirus-infected cells, containing proteolytic cleavage fragments of the 220-kilodalton polypeptide.

Carrier Proteins

Poliovirus protease 3C (P3-7c) does not cleave P220 of the eucaryotic mRNA cap-binding protein complex.

Infection of HeLa cells by poliovirus results in proteolysis of the large subunit (P220) of the cap-binding protein complex. This is believed to cause the rapid shut-off of host protein synthesis during poliovirus infection. In this communication we examined the possible involvement of poliovirus proteins 3C (a proteinase) and 2C in cleavage of P220. Using antisera against these two viral polypeptides, we were unable to inhibit proteolysis of P220 in an in vitro assay. These results indicate that viral proteins 3C and 2C are not directly involved in cleaving P220 and hence do not cause shut-off of cellular protein synthesis.

Carrier Proteins

Preferential stimulation of rabbit alpha globin mRNA translation by a cap-binding protein complex.

A cap-binding protein complex (Edery et al. (1983) J. Biol. Chem. 258, 11398-11403) is shown here to stimulate preferentially the translation of endogenous alpha versus beta globin mRNA in a rabbit reticulocyte lysate. Several initiation factors (eIF-2, eIF-3, eIF-4A, eIF-4B, eIF-4C, eIF-4E and eIF-5) and elongation factor 1 were found to have no such discriminatory effect. These results are in contrast to several previous reports and demonstrate that the only factor capable of relieving translational competition between alpha and beta globin mRNAs is the cap-binding protein complex.

Animals