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Activities of DNA polymerases and RNA polymerases detected in situ in growing and differentiating cells of root cortex.

Activities of DNA polymerases and RNA polymerases were studied by autoradiographic methods in growing and differentiating root cortex cells of Zea mays - a species in which endomitosis occurs - and Tulipa kaufmanniana - in which this process does not occur. In Tulipa kaufmanniana, the highest activity of DNA polymerase appears in the nuclei of meristematic zone during the S phase of the cell cycle. In Zea mays, endomitotic replication of DNA occurs in all growth and differentiation zones and the activity of DNA polymerase in the nuclei is similar to that in the meristematic zone. In both species, nuclear RNA synthesis, measured with 3H uridine incorporation, is highest in the meristematic zone and declines steadily with development. Activity of nuclear RNA polymerase is present in all developmental zones in both species and is similar to that in the meristematic zone. 3H uridine incorporation into nucleoli decreases markedly in both species, whereas the activity of nucleolar RNA polymerase remains at a high level in all root segments in Zea mays and decreases slightly in Tulipa kaufmanniana. It is argued that the differences between the incorporation of 3H uridine and that or 3H UMP may be caused by a reduction of the pool of endogenous ribonucleoside triphosphates. Marked activities of DNA polymerase and RNA polymerase in cytoplasm are possibly related to the growth and division of plastids and mitochondria.

Autoradiography

Role of the 21,000 molecular weight polypeptide of Bacillus subtilis RNA polymerase in RNA synthesis.

DNA-dependent RNA polymerase from Bacillus subtilis contains a 21,000 molecular weight (21K) peptide subunit. This subunit was purified and added to 21K-depleted polymerase isolated from both uninfected and SP85-infected B. subtilis. The effect of the subunit on total RNA synthesis, on enzyme-DNA binding, on RNA chain initiation and elongation, and on enzymatic specificity were examined. A comparison was made of the effects of the 21K peptide and NaCl on polymerase activity, RNA chain elongation, and symmetry of transcription of SP82 DNA. The addition of the 21K peptide to enzyme preparations lacking this subunit stimulated total polymerase activity 20 to 40%. In contrast, addition of NaCl at concentrations greater than 0.1 M significantly reduced polymerase activity. The 21K peptide appeared to alter the general affinity of the polymerase for DNA. The rate of RNA chain initiation was not affected by the 21K peptide, but RNA chain elongation was stimulated. Both the 21K peptide and NaCl increased the asymmetry of transcription of SP82 DNA by phage-modified polymerase. The 21K effect was related to the stimulation of elongation while high concentrations of NCl appeared to act at RNA chain initiation. RNAs synthesized in vitro by polymerase lacking and supplemented with the 21K peptide were translated by a Escherichia coli cell-free system. The 21K peptide had little direct effect on the selection of promoters in vitro as measured by this technique, but it dramatically increased the translatability of the product.

Bacillus subtilis

RNA synthesized in vitro by calf thymus RNA polymerase III (C), as well as by E. coli RNA polymerase, is restricted to a subset of calf thymus DNA.

RNA synthesized in vitro from chromatin and DNA by calf thymus RNA polymerase III was evaluated by hybridization in vast DNA excess. The RNA contains RNA complementary to both moderately repeated and unique DNA sequences. Very highly repeated DNA is not transcribed. A greater portion of RNA transcribed from DNA by RNA polymerase III hybridizes to moderately repeated DNA than RNA transcribed by Escherichia coli RNA polymerase. In studies utilizing DNA absorbed to filters, RNA transcribed from chromatin in short incubations hybridized to a greater extent than RNA transcribed for longer times. Similar results were obtained with RNA transcribed from DNA by E. coli RNA polymerase. These results suggest: 1) RNA polymerase III may be responsible for the synthesis of RNA species in addition to tRNA and 5 S ribosomal RNA and a portion of this RNA is transcribed from unique DNA; and 2) in vitro there may be selectivity in the initiation of transcription by both E. coli RNA polymerase and calf thymus RNA polymerase III.

Animals

[Effect of glucocorticoid hormones on nuclear RNA-polymerase activity and RNA metabolizability in rat skeletal muscles].

It has been found that in hypercorticism induced by a prolonged ACTH administration when protein synthesis is inhibited in the skeletal muscles the incorporation of Na2HP32O4 into muscle RNA intensifies by 30% and the RNA-polymerase activity of muscle nuclei is approximately twice as high. In the adrenalectomized rats 3 hours after a single hydrocortisone administration a sharp rise in the RNA-polymerase activity of the skeletal muscle nuclei is observed as well. Such an increase in RNA synthesis is suggested to be a response to the inhibition of protein synthesis through feedback mechanisms.

Adrenalectomy

Transcription of yeast DNA by homologous RNA polymerases I and II: selective transcription of ribosomal genes by RNA polymerase I.

Purified yeast DNA was transcribed by homologous RNA polymerases I and II and Escherichia coli RNA polymerase. Transcripts synthesized in vitro were analyzed by molecular hybridization with complementary DNA (cDNA) synthesized from yeast poly(A)-containing mRNA with viral reverse transcriptase and ribosomal DNA labeled in vitro by nick translation with E. coli DNA polymerase I. RNA synthesized by polymerase I and II in the presence of Mn2+ contained sequences complementary to cDNA and rDNA at a frequency consistent with random transcription of the template. Similarly, E. coli RNA polymerase synthesized an apparently random transcript in the presence of either Mn2+ or Mg2+. In contrast to these results, RNA polymerase I but not polymerase II transcripts were markedly enriched in sequences complementary to rDNA when transcription was carried out in the presence of Mg2+. The observed enrichment was 15-30-fold higher than observed for polymerase II or E. coli polymerase transcripts and is consistent with the transcript being comprised of 6-10% ribosomal sequences. These data strongly suggest that RNA polymerase I plays a critical role in selective transcription of ribosomal cistrons.

DNA-Directed RNA Polymerases

Expression of RNA polymerase and ribosome component genes in Escherichia coli mutants having conditionally defective RNA polymerases.

The expression of the genes coding for the beta and beta' subunits of RNA polymerase, ribosomal RNA, ribosomal proteins, and beta-galactosidase was investigated in strains carrying conditionally lethal mutations affecting either RNA polymerase core assembly or RNA polymerase enzyme activity. The mutant strain XH56 produces a temperature-sensitive beta' subunit and at 42 degrees C is defective in RNA chain initiation; consequently, little or no transcription occurs at the restrictive temperature. A partial restriction, produced by shifting the strain to 39 degrees C, resulted in a rapid fivefold increase in the transcription of the rpoB and C genes and in the synthesis of the beta- and beta'-subunit proteins for which they code. The RNA polymerase assembly-defective strains A2R7 and TS4 exhibited a 1.5- to 2-fold increase in the transcription of the rpoB and C genes and in the synthesis of beta- and beta-subunit proteins after prolonged restriction. These results demonstrate (i) that regulation of the synthesis of the beta- and beta-RNA polymerase subunits is under these conditions primarily transcriptional rather than translational, and (ii) that a stimulation of rpoB and C gene expression results from a restriction on RNA synthesis caused by either RNA polymerase inactivation or inhibition of its assembly. During restriction of the mutant strains, the transcription of the ribosome component genes exhibited patterns which were similar to transcription of the rpoB and C genes, supporting the evidence that genes coding for RNA polymerase are cotranscribed with ribosomal protein genes; transcription of the lacZ gene was observed to decrease concomitant with the stimulation of the rpoB and C genes.

Bacterial Proteins

Termination of transcription by bacteriophage T3 RNA polymerase: homogeneous 3'-terminal oligonucleotide sequence of in vitro T3 RNA polymerase transcripts.

RNA was synthesized in vitro from a T3 DNA template by T3 RNA polymerase and subsequently separated into seven discrete size classes (molecular weights ranging between 0.21 x 10(6) and 6.2 x 10(6)) by electrophoresis in polyacrylamide slab gels. RNase T1-generated 3'-terminal oligonucleotide fragments were then selectively isolated from either the unfractionated total RNA or the gel-purified specific transcripts by chromatography on columns of dihydroxyboryl-cellulose. Sequence analysis of these oligonucleotide products indicated that the unfractionated transcripts as well as all the individual major RNA species examined had a unique sequence, (Gp)UpUpUpUpUpGOH, at their 3' termini. The specificity of this sequence, as well as the total lack of any sequence heterogeneity at the ends of these transcripts, indicates a high degree of specificity of termination during transcription in this system.

Base Sequence

RNA polymerase from the fungus, Aspergillus nidulans. Large-scale purification of DNA-dependent RNA polymerase I (or A).

The DNA-dependent RNA polymerase I (or A) from the lower eukaryote Aspergillus nidulans has been purified on a large scale to apparent homogeneity by homogenizing the fungal hyphae in liquid nitrogen, extraction of the enzyme at high salt concentration, precipitation of RNA polymerase activity with polymin P (a polyethylene imine), elution of the RNA polymerase from the polymin P precipitate, ammonium sulphate precipitation, molecular sieving on Bio-Gel A-1.5m, binding to ion-exchangers and DNA-cellulose affinity chromatography. By this procedure 1.6 mg of RNA polymerase I can be purified over 2000-fold from 500 g wet weight of starting material with a yield of 30--35%. The isolated RNA polymerase I is stable for several months at -20 degrees C. The subunit compostion has been resolved by polyacrylamide gel electrophoresis on two-dimensional gels, using either non-denaturing of 8 M urea (pH 8.7) cylindrical gels in the first dimension and sodium dodecyl sulphate slab gels in the second dimension. The putative subunits have molecular weights of 190,000, 135,000, 63,000, 62,000, 43,000, 29,000, (28,000), 16,000 and probably 13,000 and 12,000. Two distinct forms of RNA polymerase I (Ia and Ib) have been resolved by DEAE-Sephadex A-25 chromatography showing ample differences in enzymatic properties and subunit pattern. Additional information is given on RNA polymerase II (or B) which appears to be highly insensitive to alpha-amanitin at concentrations up to 400 micrograms/ml.

Aspergillus nidulans

Identification of an amber fragment of the beta subunit of Escherichia coli RNA polymerase: a yardstick for measuring controls on RNA polymerase subunit synthesis.

An amber fragment of the beta subunit of Escherichia coli RNA polymerase has been recovered from strains carrying the rpoB12 amber mutation, indicating that the B12 mutation resides in the structural gene for the beta subunit. The fragment is readily assayed and can be used to determine the degree of expression of a single rpoB cistron in strains haploid or diploid for this region. These studies confirm that the bacterial mechanism, which can compensate for reduced translation of the beta message, operates by the co-ordinate induction of rpoB and rpoC. Furthermore, I show that rpo control depends upon cistron(s) located on the F' factor, KLF10, whose product(s) can act negatively in trans on rpoBC expression.

DNA-Directed RNA Polymerases

Interaction between RNA polymerase and a ribosomal RNA promoter of E. coli.

The interaction between RNA polymerase and the E. coli ribosomal (r) RNA promoter(s) of the rrnE operon has been studied by the filter-binding method. The extent of complex formation between RNA polymerase and rrnE promoter(s) is salt-dependent; ppGpp specifically inhibits interaction of RNA polymerase with the rrnE promoter(s). A tentative model is proposed for the molecular events in the early steps of rRNA initiation: a transition of the primarily formed, labile RNA polymerase-rRNA promoter complex to a more stable form is the determining step. This step is salt-sensitive; ppGpp acts on this "isomerization".

DNA-Directed RNA Polymerases

A relationship between DNA helix stability and recognition sites for RNA polymerase.

The RNA polymerase binding sites on the DNA of (i) the aroE-trkA-spc segment of the Escherichia coli genome, (ii) transposon Tn3, (iii) plasmid ColE1, and (iv) coliphage lambda were mapped by electron microscopy, with the use of the BAC technique; these maps were compared with the maps of the early-melting regions for the same genomes. The results indicate that in all these cases the binding sites for the E. coli RNA polymerase lie preferentially in the early melting regions of DNA. These data indicate that helix stability may be an important feature of the multipartite nature of the promoter structure.

DNA, Bacterial

[Role of RNA-polymerase in gene activity regulation of E. coli RNA-polymerase mutants with a pleiotropic effect. I. Physiological and biochemical studies].

Four Rifr-mutants of E. coli B/r (rpo B401, rpo B402, rpo B403, rpo B409) which differ from the wild strain in one or more phenotypic properties besides rifampicin resistance were obtained. Transfer of the mutant Rifr-alleles into the parent strain gives the latter all the properties of the mutant. This indicates that the new properties are due to the pleiotropic effect of Rifr-mutations. Biochemical studies of the properties of RNA-polymerases from the mutants and the parent showed that some new properties of the mutants could not be explained by the appearance of analogous properties in the mutant RNA-polymerase itself. They seem to be caused by alteration in functional activity of the mutant enzyme, particulary, alteration of its control properties during transcription. The function of the beta-subunit in genetic transcription is discussed.

DNA, Bacterial

Altered promoter selection by a novel form of Bacillus subtilis RNA polymerase.

Bacillus subtilis RNA polymerase holoenzyme prepared by several standard methods utilizes bacteriophage T7 DeltaD111 DNA as an efficient template. The major RNA products are specific transcripts from T7 promoters A(1) and C; these promoters are also efficiently utilized by RNA polymerases purified from a wide range of other bacterial species [Wiggs, J., Bush, J. & Chamberlin, M. (1979) Cell 16, 97-109]. In contrast, B. subtilis RNA polymerase preparations purified by a modification of the method of Burgess and Jendrisak (designated fraction 5) utilize T7 DeltaD111 promoters A(1) and C and an additional promoter site, J, which has been located at 90.6% on the standard T7 physical map. This promoter is not used by B. subtilis core RNA polymerase or by RNA polymerase from any other bacterial species we have tested. Sodium dodecyl sulfate/polyacrylamide gel electrophoresis of fraction 5 RNA polymerase shows that it contains B. subtilis components sigma and delta and a polypeptide of M(r) 92,000 in addition to the B. subtilis beta, beta', and alpha subunits. Chromatography of fraction 5 on single-stranded DNA-cellulose gives an enzyme fraction, Bs I, that is indistinguishable from B. subtilis RNA polymerase holoenzyme both in its peptide composition (betabeta'alpha(2)sigma) and in the selective transcription of only T7 RNAs A(1) and C. Chromatography of fraction 5 on phosphocellulose yields an enzyme fraction, Bs II, devoid of sigma subunit but containing the M(r) 92,000 peptide and traces of delta. This fraction synthesizes predominantly T7 J RNA in vitro together with traces of T7 A(1) and C RNAs. Hence, B. subtilis RNA polymerase fraction Bs II appears to contain a form of RNA polymerase that can transcribe selectively without detectable amounts of B. subtilis sigma subunit and that utilizes a promoter site not used by other known bacterial RNA polymerases. The structural basis for this specificity is not yet known.

Bacillus subtilis

Glucocorticoid regulation of rat thymus RNA polymerase activity: the role of RNA and protein synthesis.

Treatment of rat thymus cells with the glucocorticoids cortisol and dexamethasone resulted in the stimulation of RNA polymerase B activity within 10 min of steroid addition. This early effect was followed by the inhibition of both RNA polymerase A and B activities. These effects were glucocorticoid-specific and were inhibited by the antiglucocorticoid cortexolone. The inhibitory effect of dexamethasone on RNA polymerase A activity was abolished by prior treatment of the cells with alpha-amanitin, cordycepin or cycloheximide, but cycloheximide was only capable of inhibiting the steroid effect measured at 3 h if added within 10--20 min after steroid addition. Cycloheximide had no effect on the steroid-mediated inhibition of RNA polymerase B activity. Control RNA polymerase A activities were unaffected by the presence of inhibitors of RNA and protein synthesis. It is concluded that the inhibition of ribosomal RNA synthesis by glucocorticoids is dependent on protein synthesis, but that basal RNA polymerase A activity in rat thymus cells is not stringently coupled to protein synthesis.

Amanitins

Physiochemical studies on interactions between DNA and RNA polymerase. Unwinding of the DNA helix by Escherichia coli RNA polymerase.

In a medium containing 10mM Tris, pH 8, 10 mM MG++, 50 mM K+ and 10 mM NH4, the binding of an E. coli RNA polymerase holoenzyme unwinds the DNA helix by about 240 degrees at 37 degrees C. In this medium the total unwinding of the DNA increases linearly with the molar ratio of polymerase to DNA. The number of binding sites at which unwinding can occur is very large. If the K+ concentration is increased at 200 mM, the enzyme binds to only a limited number of sites, and the bound and free enzyme molecules do not exchange at an appreciable rate. The unwinding angle of the DNA per bound enzyme in this high salt medium is measured to be 140 degrees at 37 degrees C. The total unwinding angle for a fixed number of bound polymerase molecules per DNA is strongly temperature dependent, and decreases with decreasing temperature.

Coliphages