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A Fire

Publications and source records attributed to A Fire.

63 records · Page 4Linked to original sources

Dinucleotide priming of transcription mediated by RNA polymerase II.

Mammalian RNA polymerase II was shown to utilize dinucleoside monophosphates for priming of promoter specific RNAs. In a reconstituted system containing purified polymerase and HeLa cell fractions, dinucleotides were incorporated by complementarity with template sequences at the in vivo cap sites of the adenovirus major late and adenovirus early region IV promoters. Incorporation was shown by label transfer experiments and by determining the size of 5'-terminal RNase T1-resistant oligonucleotides. All 16 dinucleotides were tested for priming of RNA chains at the major late promoter. RNA polymerase II initiated with various primers over a contiguous region of 9 bases, centered around the in vivo initiation site. We suggest that the polymerase drifts or oscillates over this region. Using a dinucleotide challenge protocol, the rate of initiation at the major late promoter was measured following preincubation of the template DNA with RNA polymerase II and factors. Initiation with ATP was 90% complete within the 1st min after addition of nucleotide triphosphates. Stimulation of transcription by dinucleotides was not observed, due to this rapid initiation. The 5'-hydroxyl terminus of dinucleotide-primed RNAs remained unmodified. Although transcripts initiated with ATP were rapidly capped in whole cell extracts, ATP-primed RNA synthesized in the reconstituted system retained free 5'-terminal phosphates. Thus, capping was not essential for synthesis of long runoff RNAs.

Adenosine Triphosphate↗

Interactions between RNA polymerase II, factors, and template leading to accurate transcription.

Accurate transcription by RNA polymerase II has been shown to require multiple factors in addition to the purified polymerase. In this study, we use a reconstituted transcription system, consisting of purified RNA polymerase II and three essential HeLa cell chromatographic fractions, to study events leading to transcription from the adenovirus major late promoter. A preincubation-pulse-chase protocol resolves the reaction into events occurring before and after nucleotide addition. Preincubation of template with a mixture of RNA polymerase II and factors allows formation of "activated" complexes, which are defined by the ability to rapidly commence accurate transcription when presented nucleotides. Maximal activation requires that polymerase, template, and each of the three HeLa fractions be present during preincubation. The activated complexes are template associated, as shown by their inability to exchange onto a second template added during further preincubation. Similar protocols are used to define functional intermediates leading to the activated complex. A template-associated functional complex is formed during the preincubation of template with just two of the HeLa fractions. Polymerase can associate with this intermediate complex in the absence of the third HeLa fraction. In the accompanying paper, we describe a direct analysis of initiation by "activated" complexes.

Animals↗

Separation and characterization of factors mediating accurate transcription by RNA polymerase II.

A whole cell extract of HeLa cells was resolved through two successive chromatographic steps using an extension of the procedure of Matsui et al. (Matsui, T., Segall, J., Weil, P. A., and Roeder, R. G. (1980) J. Biol. Chem. 255, 11992-11996). RNA polymerase II and three of the resulting fractions were necessary and sufficient for accurate transcription of the adenovirus major late promoter. This accurate transcription was quantitated as a function of each of the required fractions, polymerase, and DNA. A linear range of response was observed in each case. Using the linear ranges for assay, it was possible to calculate net purifications and yields for each of the required transcriptional activities after chromatography. These activities were each shown to sediment with a distinct peak on sucrose gradients. The effects of variations in salt concentration, magnesium concentration, temperature, and reaction time were determined. High resolution analysis of runoff transcripts showed that the reconstituted system initiated transcription precisely at the adenovirus major late and early region IV promoters.

DNA-Directed RNA Polymerases↗

Inhibition of transcription factor activity by poliovirus.

To study the poliovirus-induced inhibition of host-cell RNA synthesis, we prepared transcription extracts from mock-infected and poliovirus-infected HeLa cells. In contrast with the control extracts, poliovirus-infected cell extracts prepared 3 hr after infection were unable to transcribe specifically DNA templates recognized by RNA polymerase II. Accurate transcription by RNA polymerase III, however, was only slightly reduced. Supplementation of the infected cell extract with a crude preparation of transcription factors (S100) restored its ability to transcribe a polymerase II template specifically; supplementation with purified polymerase II had no effect. When the S100 was fractionated on a phosphocellulose column, the restoration activity eluted between 0.35 M and 1 M KCl. When we tested infected extracts for inhibitory activity by mixing uninfected and infected cell extracts, no in vitro inhibition of polymerase II transcription by the uninfected extract was evident. These results indicate that at least one factor required for specific transcription by polymerase II is deficient in extracts from poliovirus-infected cells.

HeLa Cells↗

In vitro transcription of adenovirus.

A series of recombinants of adenovirus DNA fragments and pBR322 was used to test the transcriptional activity of the nine known adenovirus promoters in a cell-free extract. Specific initiation was seen at all five early promoters as well as at the major late promotor and at the intermediate promoter for polypeptide IX. The system failed to recognize the two other adenovirus promoters, which were prominent in vivo only at intermediate and late stages in infection. Microheterogeneity of 5' termini at several adenovirus promoters, previously shown in vivo, was reproduced in the in vitro reaction and indeed appeared to result from heterogeneous initiation rather than 5' processing. To test for the presence of soluble factors involved in regulation of nRNA synthesis, the activity of extracts prepared from early and late stages of infection was compared on an assortment of viral promoter sites. Although mock and early extracts showed identical transcription patterns, extracts prepared from late stages gave 5- to 10-fold relative enhancement of the late and polypeptide IX promoters as compared with early promoters.

Adenoviruses, Human↗

DNA-dependent transcription of adenovirus genes in a soluble whole-cell extract.

We have developed a cell-free system for studying the synthesis of mRNA in mammalian cells. The system consists of a dialyzed and concentrated whole-cell extract derived from HeLa cells, small molecules and cofactors needed for transcription, and exogenously added DNA. Accurate transcription by RNA polymerase II is entirely dependent upon addition of promoter-containing eukaryotic DNA. At optimal DNA and extract concentrations, transcription initiation from the adenovirus serotype 2 late promoter is readily detectable, and specific transcripts over 4000 nucleotides in length are observed. The RNA synthesized in vitro contains the same 5' capped RNase T1 undecanucleotide as does the in vivo transcript. RNA synthesis also initiates accurately at both an early and an intermediate adenovirus promoter site.

Adenoviruses, Human↗

Regulation of adenovirus mRNA synthesis.

The lytic cycle of adenovirus is a tightly regulated sequence of stages. When this regulation is studied at the level of mRNA production, the most significant step in controlling gene expression is initiation of transcription. Thus in preceding from one stage of expression to another, viral factors seem to turn on transcription of new sets of genes. At the moment, it is thought that viral mRNA synthesis involves initiation of transcription at ten different promoter sites. It is likely that in some manner the frequency of an initiation of transcription at nine of these sites is affected by one or more viral gene products. With the recent development of soluble in vitro transcription systems that respond to exogenously added DNA, it should be possible to begin to study regulation of gene expression at this stage of transcription. At present, these systems yield the paradoxical observation that extracts prepared from uninfected human cells more efficiently recognize the late promoter as compared to the early promoter of adenovirus. As more is learned about regulation of synthesis of viral mRNAs, examples will surely be found where RNA processing and RNA turnover play a critical role in determining the level of mRNAs. Such cases are more likely to appear in the balancing of synthesis of different mRNAs derived from one transcriptional unit. Few experiments have been directed to this possibility and the study of adenovirus molecular biology is only now entering the age of maturity where these experiments are feasible.

Adenoviruses, Human↗

Histochemical techniques for locating Escherichia coli beta-galactosidase activity in transgenic organisms.

Escherichia coli beta-galactosidase is a commonly used reporter molecule for analyzing gene expression. Recently, beta-galactosidase fusions have been applied to a variety of eukaryotic systems. The techniques for constructing and introducing beta-galactosidase fusion constructs as well as soluble assays for total enzyme function have been described in detail elsewhere. This article describes histochemical techniques for analyzing organisms that contain a functional beta-galactosidase fusion construct. The object is to determine semiquantitatively which cells are expressing the beta-galactosidase fusion protein, as well as the subcellular localization of the protein. Due to its prevalence in the author's laboratory, Caenorhabditis elegans is used as a canonical organism for the detailed methods described.

Animals↗