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A Udvardy

Publications and source records attributed to A Udvardy.

At least 55 records · Page 3Linked to original sources

Chromatin fine structure of the histone gene complex of Drosophila melanogaster.

We have used salt extractions of nuclei and long agarose gels to dissect the chromatin fine structure of the histone gene repeat of Drosophila melanogaster. Extraction of nuclei with 0.35 M KCl removes many non-histone chromosomal proteins but does not significantly disturb the overall nucleosome arrangement of the repeat unit. After extraction of nuclei with 0.55 M KCl, which also removes histone Hl, the basic arrangement of nucleosome core particles in the repeat unit is not greatly disturbed and the exposed DNA segments near the 5' ends of the histone genes are also retained. Extraction of nuclei with 0.75 M or higher KCl concentrations causes extensive nucleosome sliding and rearrangement with accompanying changes in the nucleoprotein organization of the histone gene complex and loss of the 5' hypersensitive sites. Our results indicate that the histone gene repeat displays a highly organized chromatin structure in vivo.

Animals↗

RNA-polymerase binding at the promoters of the rRNA genes of Escherichia coli.

The promoter region of two bacterial rRNA genes was investigated by electron-microscopic analysis of polymerase binding, transcription initiation and nitrocellulose filtration of RNA-polymerase-DNA complexes, using restriction endonuclease generated fragments of recombinant plasmids and a transducing phage. The following observations have been made: 1. Two transcription initiation sites have been located approximately 200 and 300 base pairs upstream from the beginning of the sequence coding for mature 16 S rRNA. 2. Polymerase binding at these sites can be observed electronmicroscopically and a 360 base-pair fragment containing these sites binds to nitrocellulose in the presence of RNA-polymerase. This complex dissociates even at moderately high (0.1-0.2 M) salt concentrations. Although transcription initiation is reported to be more frequent at the first of these sites, the binding is much stronger at the second site. 3. In the case of the rrnD gene, BamHI cleaves a few base pairs upstream from the first transcription start site. This cleavage destroys polymerase binding at this site but does not influence binding at the second site. 4. At higher polymerase/DNA ratio four weak but distinct and regularly spaced binding sites can be observed preceding the two initiation sites at approximately 1000, 820, 640 and 440 base pairs before the mature 16 S rRNA sequence. 5. An extremely strong binding site is located about 1300 base pairs upstream from the beginning of the 16 S rRNA sequence. Very little (if any) initiation occurs at this site. The possibility is discussed that the noninitiating binding sites preceding the two transcription start points might functionally belong to the promoter region.

Binding Sites↗

In vitro transscription of ribosomal RNA on phage lambdarifd 18 DNA.

In vitro transcription of ribosomal RNA was studied on the DNA of the transducing bacteriphage lambdarifd 18, which carries an rRNA transcription unit from Escherichia coli. rRNA synthesis was preferential at all polymerase/DNA ratios tested, and at the optimal 0.3 weight ratio nearly 60% of the transcript was rRNA. At this ratio the principal product of transcription comigrated in acrylamide-agarose electrophoresis with authentic 30-S rRNA precursor synthesized in vivo. In the presence of rifampicin more than one equivalent of rRNA was synthesized, thus suggesting the existence of two initiation sites for rRNA on the phage DNA. Similar results were obtained on E. coli DNA. Preincubation with heparin virtually eliminated the transcription of rRNA, in sharp contrast with the results of similar experiments on bacterial DNA where rRNA genes were transcribed 4--5 times in the presence of heparin. The possible explanation of this difference between rRNA promotors on the phage and the bacterial DNA are discussed.

Coliphages↗

Cloning of an E. coli ribosomal RNA gene and its promoter region from lambdarifd18.

The DNA of the specialized transducing phage lambdarifd18, which carries a bacterial rRNA transcription unit, was digested with restriction enzymes EcoRI and/or BamHI. Attempts were made to clone fragments containing the presumed rRNA promoter region or the entire rRNA gene in RSF2124 or pBR313 plasmid vectors with the following results: (1) We failed to clone an EcoRI fragment with the rRNA promoter region in plasmid RSF2124. (2) A smaller EcoRI-BamHI fragment with the rRNA promoter was also unclonable by itself, but one recombinant was found containing this fragment together with another large (7 Mdaltons) fragment, derived from phage lambda. The presence of this large fragment proved to be essential. The identity of these DNA fragments in the recombinant clone was confirmed by redigestion with several restriction enzymes, hybridization with rRNA, and in vitro transcription experiments, which showed preferential rRNA transcription. (3) A BamHI fragment encompassing the entire rRNA gene was easily cloned. Such stable clones carried a doubled number of rRNA genes. In vitro transcription using the recombinant plasmid resulted in 70% rRNA transcription. These recombinant clones allow the easy purification of the relevant DNA fragments for further investigation including sequencing.

Chromosome Mapping↗

In vitro transcription of the ribosomal RNA genes of E. coli DNA.

Bacterial ribosomal RNA synthesis was studied in an in vitro system in which the presence of heparin prevented reinitiation of transcription. The number of heparin-resistant binary complexes of RNA-polymerase and E. coli DNA depended strongly on the quality of the template. High-molecular weight DNA was a much superior template than DNA prepared by conventional techniques. Using this high-molecular weight DNA as template the amount of ribosomal RNA synthetized in one round of transcription was found to be 4-5 fold higher than the amount of rDNA present. Controls have shown that the transcription probably started at the proper initiation sites and no significant read-through form distant promoters contributed to this effect. If the binary polymerase-DNA complexes were dissociated in the presence of 0.5 M KC1 prior to transcription all RNA synthesis was strongly reduced but the proportion of rRNA increased in the transcript. However, in this case the amount of rRNA did not exceed the amount of rDNA. We propose that the promoters of the rRNA genes are complex structures, able to store 4-5 molecules of RNA polymerase and of these several polymerase only one is bound in an extremely salt-resistant form.

DNA, Bacterial↗

Transcription of specific genes in isolated nuclei from HeLa cells in vitro.

Isolated HeLa cell nuclei were employed to catalyze the synthesis of RNA in vitro. In the presence of low concentrations of alpha-amanitin (1 mug/ml), used to suppress the formation heterogeneous nRNA, these nuclei synthesize RNA very efficiently for extended periods of time (at least 60 min) at an elongation rate of about seven nucleotides per second. The product, analyzed on sucrose density gradients and polyacrylamide gels was found to exist of two predominant size classes. Synthesis of the 45-S ribosomal precursor was completely resistant even to high concentrations of alpha-amanitin (150 mug/ml) and hence was catalyzed by enzyme A (or I). A limited degree of processing of the 45-S precursor occurred in vitro. In addition, a second RNA class of low molecular weight (4-8 S) was synthesized by HeLa cell nuclei in the presence of 1 mug/ml alpha-amanitin in vitro. Analysis on 8% polyacrylamide gels resolved the RNA into four distinct components. Their synthesis was resistant to low (1 mug/ml) but clearly sensitive to high (150 mug/ml) concentrations of alpha-amanitin. Consequently the synthesis of all these small-molecular-weight RNA species is catalyzed by RNA polymerase C (or III). For the assessment of the initiation frequency of the individual classes of RNA, a new technique was developed independent of labelling the 5' end of the RNA molecule with the gamma-phosphate of the initiating nucleotide. It employs the double labelling of an RNA molecule with two different isotopes added sequentially at different stages of completion of the chain. From the incorporation ratio of the two isotopes into a particular class of RNA, conclusions can be drawn concerning their initiation frequency. The results obtained have shown a high reinitiation frequency for the small-molecular-weight RNA species at all stages of the incubation reaction. In contrast, reinitiation of the 45-S precursor RNA occurs only to a limited extent in isolated HeLa cell nuclei in vitro.

Amanitins↗