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Analysis of Saccharomyces cerevisiae his3 transcription in vitro: biochemical support for multiple mechanisms of transcription.

The promoter region of the Saccharomyces cerevisiae his3 gene contains two TATA elements, TC and TR, that direct transcription initiation to two sites designated +1 and +13. On the basis of differences between their nucleotide sequences and their responsiveness to upstream promoter elements, it has previously been proposed that TC and TR promote transcription by different molecular mechanisms. To begin a study of his3 transcription in vitro, we used S. cerevisiae nuclear extracts together with various DNA templates and transcriptional activator proteins that have been characterized in vivo. We demonstrated accurate transcription initiation in vitro at the sites used in vivo, transcriptional activation by GCN4, and activation by a GAL4 derivative on various gal-his3 hybrid promoters. In all cases, transcription stimulation was dependent on the presence of an acidic activation region in the activator protein. In addition, analysis of promoters containing a variety of TR derivatives indicated that the level of transcription in vitro was directly related to the level achieved in vivo. The results demonstrated that the in vitro system accurately reproduced all known aspects of in vivo his3 transcription that depend on the TR element. However, in striking contrast to his3 transcription in vivo, transcription in vitro yielded approximately 20 times more of the +13 transcript than the +1 transcript. This result was not due to inability of the +1 initiation site to be efficiently utilized in vitro, but rather it reflects the lack of TC function in vitro. The results support the idea that TC and TR mediate transcription from the wild-type promoter by distinct mechanisms.

Base Sequence

Transcription elongation factor SII (TFIIS) enables RNA polymerase II to elongate through a block to transcription in a human gene in vitro.

Elongation and termination by RNA polymerase II are important regulatory steps for eukaryotic gene expression. We have previously studied the transcription of linear DNA templates where specific initiation of transcription by highly purified RNA polymerase II can be achieved in the absence of promoters and promoter-specific factors. Using these templates we have shown that a human histone gene, H3.3, contains sequences (intrinsic terminators) within which purified RNA polymerase II will efficiently terminate transcription (Reines, D., Wells, D., Chamberlin, M.J., and Kane, C. M. (1987) J. Mol. Biol. 196, 299-312). Curiously, these signals were found within an intron, 3'-untranslated, and protein-encoding regions of the gene suggesting that they might act to attenuate transcription of H3.3 in vivo. Here we show that intrinsic terminator sequences from an H3.3 gene intron also block in vitro transcript elongation by RNA polymerase II when the enzyme has initiated transcription from a promoter using highly purified transcription initiation factors. However, under the conditions used for promoter-specific transcription there is little transcript release. Instead the polymerase can pause at these sites for periods exceeding 60 min. We have identified and partially purified an activity from HeLa cells that causes the transcription complex to read through this block to transcription elongation. This readthrough activity fractionates with a previously characterized elongation factor (SII) over three chromatographic columns. A homogeneous preparation of calf thymus SII can also provide this activity in trans. This factor may facilitate passage of the RNA polymerase II transcription complex through such intragenic sites in cellular genes in vivo.

Animals

Parvovirus H-1 expression: mapping of the abundant cytoplasmic transcripts and identification of promoter sites and overlapping transcription units.

The 5.2-kilobase (kb) genome of the autonomous parvovirus H-1 was transcribed in the rightward direction, yielding steady-state polyadenylated transcripts of 4.8, 3.2, and 2.9 kb. Detailed mapping of these transcripts demonstrated that the H-1 genome contained two overlapping transcription units: the larger unit extended from 4 map units (5' end) to 96 map units (3' end), and the smaller unit extended from 40 map units (5' end) to 96 map units (3' end). The 4.8- and 3.2-kb transcripts were derived from the larger transcription unit and differed by a 1,500-nucleotide segment (10 to 40 map units) which was present in the 4.8-kb transcript but was spliced from the 3.2-kb transcript. The 2.9-kb transcript, the most abundant of the three known H-1 transcripts, was derived from the smaller transcription unit. The sequence at each initiation site was consistent with the presence of a class II (RNA polymerase II) promoter, and cell-free transcription of parvovirus H-1 restriction fragments containing either promoter resulted in transcription of the correct DNA strand and produced 5' ends identical to those seen in vivo. All three transcripts contained a small but heterogeneous splice at 45 to 47 map units. Minor differences in splicing at this site may result in the synthesis of different viral proteins.

DNA Restriction Enzymes

Total synthesis of a tyrosine suppressor transfer RNA gene. XVII. Transcription, in vitro, of the synthetic gene and processing of the primary transcript to transfer RNA.

Primer- and promoter-dependent transcription of the synthesis gene had been studied. Primer-dependent transcription gave, as a major product, an end-to-end transcript which was strand-specific. The transcript was characterized rigorously by two-dimensional separation and analysis of the oligonucleotides formed on digestion with T1-RNase and pancreatic RNase and by nearest neighbor analyses of the oligonucleotides obtained when different alpha-32P-labeled ribonucleoside triphosphates were used as substrates. Minor products accompanying the major transcript were characterized similarly. The major transcript, when treated with an Escherichia coli S-100 extract, was processed to the tRNATyr with correct 5'- and 3'-ends. The nucleolytic cleavages occurring at the 3'-end were characterized. In promoter-dependent transcription, transcription of a restriction fragment containing phi80psu+III gene and the synthetic gene with and without the promoter were compared. Transcription of the synthetic gene was promoter-dependent and strand-specific, the initiation of transcription occurring at the same point as previously found in vivo. Although the synthetic gene contains only 16 base pairs corresponding to the natural sequence following the C-C-A end, processing of the transcript at the 3'-end occurred normally, the endonucleolytic cleavage being followed by exonucleolytic cleavages. The products of promoter-dependent transcription were completely characterized. An examination of the base modifications of the primary transcript during treatment of the latter with E. coli S-100 extract showed couplete modification of uridine to pseudouridine and partial methylation of uridine to ribosylthymine in TpsiCG sequence and partial formation of pseudouridine in the anticodon loop. However, hardly any formation of 2'-O-methylguanosine or of 2-methylthio-6-isopentenyl adenosine could be detected.

Base Sequence

Effect of cytokines on switching to IgA and alpha germline transcripts in the B lymphoma I.29 mu. Transforming growth factor-beta activates transcription of the unrearranged C alpha gene.

H chain isotype switch recombination is preceded by the appearance of RNA initiating 5' of the specific switch region that will undergo recombination. In an effort to understand the potential function of germline transcripts in switch recombination and whether the regulation of germline transcripts correlates with the regulation of switching, we are studying this process in the murine B lymphoma cell line I.29 mu, which switches, after treatment with bacterial LPS, primarily to IgA and less frequently to IgE. Levels of alpha germline transcripts initiating upstream of alpha switch (S alpha) sequences are elevated in clones of this line that switch well, compared with clones that switch less frequently. Transforming growth factor-beta (TGF-beta) has been shown to increase alpha germline transcripts and switching to IgA expression in LPS-stimulated murine splenic B cells. We now demonstrate that TGF-beta increases LPS-induced switching to IgA by 10-fold at optimal doses and increases the level of alpha germline transcripts 5- to 9-fold in I.29 mu cells. Nuclear run-on analysis shows that this increase is at the level of transcription. Thus, TGF-beta appears to direct switching to IgA by inducing transcription from the unrearranged S alpha-C alpha DNA segment. Germline alpha RNA is quite stable in I.29 mu cells, having a half-life of about 5 h, and we find no evidence for further stabilization in the presence of TGF-beta. Levels of epsilon germline transcripts are decreased by TGF-beta treatment. IL-4, which modestly increases switching in I.29 mu cells, slightly increases transcription of alpha germline RNA. IFN-gamma, which reduces switching to IgA in these cells, also reduces the level of alpha germline transcripts. IFN-gamma also reduces the level of epsilon germline transcripts induced by IL-4. Our results support the hypothesis that the regulation of transcription of particular switch sequences by cytokines regulates the specificity of recombination. We also present evidence that IL-4 may provide other signals, distinct from transcriptional targeting, that increase LPS-induced switching to IgA.

Animals

Transcriptional analysis of puf operon expression in Rhodobacter sphaeroides 2.4.1 and an intercistronic transcription terminator mutant.

DNA sequence analysis of the pufX region, the most distal gene of the pufBALMX operon of Rhodobacter sphaeroides, revealed a sequence encoding a putative polypeptide of 82 amino acids with a molecular mass of 9052 Da followed by a puf operon-specific transcription terminator. Analysis of the 5' and 3' termini of the transcripts produced in vivo from the puf operon of R. sphaeroides PUF delta 348-420 (three transcripts; 0.59, 0.64, and 2.63 kilobases) lacking the puf-intercistronic terminator structure were identical to those of the corresponding puf transcripts derived from wild-type R. sphaeroides 2.4.1 (four transcripts; 0.50, 0.66, 0.71, and 2.7 kilobases) showing that the transcripts begin and end at the same sites. However, the absence of the puf intercistronic terminator resulted in both the loss of the smallest transcript found in wild type and increased transcriptional read-through of the mutated region to the more distal pufL gene, supporting our previous contention that the proximal intercistronic stem-loop functions as a transcription terminator. The 5' terminus of the medium sized puf transcript has been localized to the same site as that of the small puf transcript. These analyses also showed conclusively that the puf operon-specific transcripts are not extended transcripts derived from the upstream open reading frame Q. In addition, a 120-nucleotide RNA was detected which encompassed the terminator region downstream of pufX and extended into the next downstream open reading frame. The 120-nucleotide RNA of unknown function was regulated by O2 and is unique in its abundance and stability. By comparison with strain 2.4.1, the mutant PUF delta 348-420 showed an increased amount (1.9-fold) of the 120-nucleotide RNA, suggesting that its synthesis is under the control of the puf operon despite the fact that its sequence appears to overlap the next downstream operon.

Amino Acid Sequence

Plastid run-on transcription. Application to determine the transcriptional regulation of spinach plastid genes.

We have developed a spinach plastid run-on transcription system to determine the extent of transcriptional regulation of chloroplast genes during morphogenetic changes of the organelle. In contrast to transcription in a spinach chloroplast extract, which requires initiation of exogenously added genes (Gruissem, W., Greenberg, B. M., Zurawski, G., and Hallick, R. B. (1983) Cell 35, 815-828), RNA synthesis in the run-on system is not affected by heparin or different salt concentrations. Transcription is asymmetric, and the size of the run-on transcripts varies between 75 nucleotides and 8 kilobases. Quantitative filter hybridization studies included gene-specific probes for the ribosomal RNA genes and nine protein-coding genes. Based on the amounts of hybridizable run-on transcripts, these genes can be ordered according to their respective transcriptional activities. The relative transcriptional activities of psbA, rbcL, and atpB in the run-on assay correlate closely with their reported promoter strengths in vitro. The plastid run-on transcription assay has been applied to determine the transcriptional regulation of plastid genes. Hybridization of run-on transcripts to regions of the spinach chloroplast genome containing at least nine tRNA genes indicates that most or all loci are highly transcribed. No significant qualitative and quantitative differences are detected when run-on transcripts from plastids of etiolated and greening cotyledons are hybridized to total, restriction enzyme-digested chloroplast DNA, demonstrating limited transcriptional regulation during chloroplast development.

Chloroplasts

Alternative transcription of the mouse Gh gene identifies an immune-associated transcript with species-specific structural divergence.

Growth hormone (GH) in mice is primarily expressed in the anterior pituitary, although Gh expression has been reported in extrapituitary tissues, including immune organs. However, the structure of immune-associated Gh transcripts remains poorly characterized. To determine whether splenic Gh transcripts differ from pituitary Gh mRNA, 5'- and 3'-rapid amplification of cDNA ends (RACE) analyses were performed. While 3' RACE showed a shared polyadenylation site, 5' RACE identified a novel exon located approximately 2 kb upstream of the conventional exon 1, generating a transcript (spl-Gh mRNA) with a distinct first exon but shared downstream exons with pituitary Gh mRNA (pit-Gh mRNA). RT-PCR analysis revealed that spl-Gh mRNA is predominantly expressed in immune tissues such as spleen and bone marrow, and its distribution did not correlate with Pit-1 mRNA expression. Quantitative RT-PCR further demonstrated that spl-Gh mRNA was expressed at levels comparable to those of pit-Gh mRNA in the mouse spleen, indicating that spl-Gh is one of the major Gh transcript forms in this tissue. Sequence analysis indicated that spl-Gh mRNA is predicted to retain coding potential for a GH protein. Comparative genomic analyses further demonstrated that genomic features associated with the spl-Gh transcriptional unit are conserved only in a subset of closely related Mus species. In contrast, although a spl-Gh-related transcript was detected in rat spleen, no properly spliced mouse-like transcript was identified under the present experimental conditions. The detected transcript exhibited intron retention and an in-frame stop codon, suggesting that it is unlikely to produce a functional GH protein. These findings identify a distinct immune-associated Gh transcript generated through alternative transcription of the mouse Gh gene and suggest that immune-associated Gh transcriptional mechanisms have undergone species-specific divergence among rodents. Together, these findings reveal previously unrecognized complexity in Gh gene regulation and highlight species-specific differences in immune-associated Gh transcripts.

Animals

In vitro squelching of activated transcription by serum response factor: evidence for a common coactivator used by multiple transcriptional activators.

Low amounts of serum response factor (SRF) activate transcription in vitro from a fos promoter construct containing an SRF binding site. Using this human HeLa cell-derived in vitro transcription system, we have found that high amounts of SRF inhibited, or 'squelched', transcription from this construct. Transcription from several other promoters activated by different gene-specific factors, including CREB and the acidic activator VP16, was also inhibited by high amounts of SRF. Basal transcription, from TATA-only promoters, however, was not inhibited. These results suggest that SRF binds to a common factor(s) (termed coactivator) required for activated transcription by a diverse group of transcriptional activators. Inhibition of transcription by SRF could be blocked by a double stranded oligonucleotide containing an SRF binding site. Mutations in SRF which abolished its DNA binding activity also reduced its ability to inhibit transcription. In addition, a C-terminal truncation of SRF which reduced its ability to activate transcription also reduced SRF's ability to inhibit transcription. These results suggest that activation and inhibition of transcription may be mediated by SRF binding to the same factor and that SRF can only bind to this factor when SRF is bound to plasmid DNA.

Base Sequence

Factors involved in specific transcription by mammalian RNA polymerase II. Role of factors IID and MLTF in transcription from the adenovirus major late and IVa2 promoters.

The role of the adenovirus major late upstream transcription factor (MLTF) in transcription from the adenovirus major late and the IVa2 promoters was studied. The transcription initiation site of the IVa2 promoter is located 210 nucleotides upstream from the CAP site of the major late promoter. Transcription from these two promoters occurs on different DNA strands. Thus, this divergent transcription suggests that the same factor could simultaneously regulate the expression of two different genes. This was investigated utilizing a reconstituted transcription system in vitro. The addition of MLTF to reaction mixtures containing the purified general transcription factors and the major late promoter resulted in a 10-12-fold stimulation of transcription. This stimulation was because of an increase of the stability of the preinitiation complex. MLTF allowed DNA template molecules to undergo multiple rounds of transcription. MLTF also stimulated transcription from the adenovirus-encoded IVa2 promoter. Surprisingly, reconstitution experiments indicated that transcription from the IVa2 promoter which does not have a TATA sequence required all the previously described general transcription factors, including TFIID, the TATA binding protein. The requirement for TFIID was demonstrated by reconstitution experiments as well as by oligonucleotide competition experiments. The implications of this observation are discussed.

Adenoviruses, Human

Transcriptional and post-transcriptional regulation of the genes encoding cytochromes P-450c and P-450d in vivo and in primary hepatocyte cultures.

In both primary cell cultures of rat hepatocytes and in liver, polycyclic aromatic hydrocarbons (PAHs) were found to influence the accumulation of the cytochrome P-450c and P-450d mRNAs by both transcriptional and post-transcriptional mechanisms. Following treatment with PAHs, cytochrome P-450c mRNA levels increased approximately 100-fold in both hepatocyte cultures and in liver, while transcription rates, measured by run-on transcription of isolated nuclei, increased 3-fold in hepatocyte cultures and 10-fold in liver. The difference in the -fold increases of mRNA level and transcription rate suggests that post-transcriptional, as well as transcriptional, mechanisms contributed to the regulation of cytochrome P-450c mRNA levels. Following treatment with PAHs, cytochrome P-450d mRNA levels increased 200-fold in hepatocyte cultures and 70-fold in liver, while transcription rates remained unchanged in hepatocyte cultures and increased only 1.7-fold in liver. This suggests that post-transcriptional mechanisms were of primary importance in regulating cytochrome P-450d mRNA levels. The newly developed hepatocyte primary cell culture system used in these studies differs from previously reported systems in that the cytochrome P-450d gene, as well as the cytochrome P-450c gene, were expressed in response to PAHs. In this cell culture system the regulation of these two genes was quite similar, although not identical, to that found in liver. The mechanisms controlling the tissue-specific expression of the genes encoding cytochromes P-450c and P-450d were also examined. The cytochrome P-450c mRNA was found in kidney, heart, and lung, as well as in liver, of PAH-treated rats, while the mature cytochrome P-450d mRNA was detected only in liver. The substantial increase in cytochrome P-450c mRNA in kidney in response to beta-napthoflavone was not associated with a detectable change in the transcription rate of cytochrome P-450c gene, indicating that cytochrome P-450c mRNA levels must be regulated primarily post-transcriptionally in kidney. Even though mature cytochrome P-450d mRNA could not be detected in kidney, the cytochrome P-450d gene was transcribed at a substantial rate in this tissue; therefore, the lack of accumulation of mature cytochrome P-450d mRNA in kidney must have been due to post-transcriptional control.

Animals

Leaky transcription termination produces larger and smaller than genome size hepatitis B virus X gene transcripts.

The genomic DNA of hepatitis B virus (HBV) is circular and has only one known transcription termination site. The HBV X protein coding sequence is flanked by this transcription termination site at the 3' end and a promoter element at the 5' end. Transcription initiating from the X promoter and terminating at the termination site would produce a transcript 0.7 kb in length, which we have detected in cell lines that produce HBV particles. Unexpectedly, a 3.9-kb transcript containing two copies of the X gene sequence was also detected in these cell lines. Polymerase chain reaction analysis indicates that this 3.9-kb transcript contains sequences from both upstream and downstream of the termination site. Thus, transcription of this 3.9-kb transcript initiates from the X promoter, reads through the termination site, and terminates the second time it encounters the site. Analysis using an SV40-derived vector indicates that the transcription termination site in the HBV genome is also leaky for X gene transcription when a heterologous promoter initiates the transcription. Based on these results, the mechanism of how the transcription termination of HBV mRNA is regulated is discussed.

Animals

A pulsatile gonadotropin-releasing hormone stimulus is required to increase transcription of the gonadotropin subunit genes: evidence for differential regulation of transcription by pulse frequency in vivo.

Previous results have shown that the pattern of GnRH pulses (amplitude and frequency) can differentially regulate expression of gonadotropin subunit cytoplasmic messenger RNA (mRNA) concentrations. The present study examined the effect of GnRH pulses on alpha, LH-beta and FSH-beta transcription rates as determined by nuclear runoff transcription assay. GnRH pulses (saline to controls) were given to castrate, testosterone-replaced male rats, and the rate of subunit gene transcription was measured in isolated pituitary nuclei. The effect of GnRH treatment duration was examined by giving GnRH pulses (25 ng/pulse at 30-min intervals) for 1, 4, or 24 h. The basal transcription rates [expressed as parts per million (ppm)] were 82 +/- 25 for alpha; 39 +/- 19 for LH-beta and 27 +/- 6 ppm for FSH-beta, and transcription rates of all 3 subunits were elevated at 1 h (3-5-fold vs. saline controls). After 4 h of GnRH pulses, alpha and FSH-beta transcription rates were reduced vs. 1 h, but LH-beta mRNA synthesis rate was maintained. At 24 h, the alpha transcription rate was still increased (66%), but LH-beta and FSH-beta transcription rates had fallen to basal levels despite the continuing pulsatile GnRH stimulus. The second experiment investigated the effect of the duration of GnRH pulses (25 ng/pulse, every 30 min for 4 h or 24 h), on cytoplasmic subunit mRNA concentrations to assess if the initial 4-h increase in transcription rate would induce a rise in cytoplasmic mRNAs. After 4 h of GnRH pulses, alpha and LH-beta mRNAs were unchanged, but FSH-beta mRNA had increased by 36% (P less than 0.05) compared to controls. All 3 subunit mRNAs were increased (approximately 2-fold) by 24 h of GnRH pulses. Administering GnRH pulses for 4 h followed by 20 h of saline pulses did not increase alpha mRNA; LH-beta was slightly increased (P less than 0.05), but FSH-beta mRNA concentrations were similar to levels seen after 24 h of continued GnRH pulses. The third experiment examined the effects of a continuous GnRH infusion and different GnRH pulse frequencies on gonadotropin subunit transcription rates. GnRH (25 ng/pulse) was given at intervals of 8, 30, or 120 min for 4 h (saline to controls). The continuous GnRH infusion (200 ng/h) did not increase the transcription rate of any of the three subunit mRNAs. alpha-subunit transcription rate was increased 2.7- or 4-fold by GnRH pulses given every 8 or 30 min, respectively.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Quantitative analysis of transcription and RNA levels of 15 barley chloroplast genes. Transcription rates and mRNA levels vary over 300-fold; predicted mRNA stabilities vary 30-fold.

Higher plant plastid genomes encode rRNAs, tRNAs, and protein subunits of the RNA polymerase, ribosomes, and the photosynthetic apparatus which vary over 1000-fold in abundance. Quantitative analysis of transcription and RNA levels was carried out on 15 plastid genes which are located in 14 different transcription units covering 50% of the barley plastid genome. Transcription of 16S rRNA, trnfM-trnG, and trnK was high relative to most other plastid genes. Transcription of trnfM-trnG was 5 times greater than trnK indicating that differences in tRNA levels in plastids could be due, in part, to differences in transcription. Among the protein coding genes, mRNA levels varied over 900-fold and transcription over 300-fold. The gene showing the lowest transcription rate and mRNA level, rpoB, is located in a gene cluster which encodes subunits of the plastid RNA polymerase (rpoB-rpoC1-rpoC2). RpoA, which encodes the alpha subunit of the RNA polymerase, was located in a gene cluster encoding ribosomal proteins (rpl23, rps19, rpl16) and infA. RNA from this gene cluster is 30-fold more abundant than rpoB mRNA, suggesting that expression of rpoA is regulated at the level of translation or protein stability. Polycistronic operons encoding subunits of the photosynthetic apparatus (psbB-psbH-petB-petD; psbK-psbI-psbD-psbC; atpB-atpE; psaA-psaB) had higher transcription rates and correspondingly higher mRNA levels than genes which encode ribosomal proteins or RNA polymerase subunits. RbcL and psbA, which are located in separate transcription units, exhibited the highest transcription rates and mRNA levels. Correspondence between transcription rate, mRNA level, and protein abundance indicates that transcription is a primary determinant of barley plastid gene expression. In addition, a 30-fold variation in predicted mRNA stability was observed which further increases the dynamic range of plastid mRNA abundance.

Base Sequence

Control of bacteriophage lambda repressor establishment transcription: kinetics of l-strand transcription from the y-cII-oop-O-P region.

The kinetics of lambda l-strand repressor establishment RNA synthesis were measured from the y-cII region of induced tof- prophage. The activity of the repressor is epistatic to the expression of gene tof coding for the antirepressor (Tof). The activity of Tof, is epistatic to the expression of repressor gene cI transcription from Prm and the expression of repressor establishment transcription from a site 600 to 800 nucleotides upstream from Prm. Three modes of l-strand rex-cI-tof-y-cII-oop transcription occur: (a) Prm promoted cI-rex mRNA synthesis from noninduced prophage, (b) coordinate lit and oop synthesis from induced tof+ prophage and (c) establishment transcription from induced tof- prophage. The synthesis or stability of oop RNA is much reduced from induced tof-, compared with tof+ prophage. The oop transcription from tof- prophage is not coordinate with RNA synthesis from the y-cII interval. The y-cII-(oop) portion of the establishment transcript appears more unstable than the translated downstream copy of genes rex-cI. The initiation of any repressor establishment transcription requires the products of lambda genes cIII, cII, P and Escherichia coli genes dnaB, dnaG, but not actual lambda DNA synthesis. This result demonstrates that common factors, i.e. replication gene products, are required for the initiation of establishment transcription, lambda replication and lit, oop RNA synthesis; and explains why cIII+ cI+ cII+ replication defective phage lysogenize poorly at low multiplicities of infection. The cIII and cII products were shown to act after an earlier replication initiation or activation event. Repressor establishment transcription and repressor mRNA synthesis from Prm (from induced cI- tof-, cIII- cI- tof- or cI- tof- cii- prophage) are amplified by gene dosage. The extent of lysogenization of E. coli by lambda cIII-, cII- or replication minus mutants, defective for initiation of establishment synthesis, is attributed to gene dosage dependent transcription from Prm. The mechanism by which Tof inhibits the initiation of establishment transcription does not appear to require repression of RNA synthesis from PL and PR. RNA synthesis from these promoters is blocked by renaturation of the repressor 5 min after induction, before establishment transcription is detected; however, establishment RNA synthesis measured between 12-13 min after induction, i.e. 7 min after renaturation of the repressor, is only partially reduced.

Coliphages

Differential induction of vitellogenin gene transcription and total transcriptional activity by estrogen in Xenopus laevis liver.

The effects of estrogen on liver gene expression in Xenopus laevis were examined using a nuclear transcription "run-on" assay. Vitellogenin transcription was detected 2 h after a single dose of estradiol and reached a maximum on day 4. By 12 days after hormone treatment vitellogenin transcription declined to low levels. Within 3 h after estrogen, total transcriptional activity increased 9-fold relative to control values, reaching a maximum level of 40-fold by 12 h. Total transcription remained elevated throughout the following 12-day time course. These data indicate that changes in vitellogenin transcription and total nuclear transcription are uncoupled. Steady-state levels of vitellogenin mRNA demonstrated a close correlation with the level of vitellogenin gene transcription at all time points. In another series of experiments, animals treated repeatedly with estrogen demonstrated an elevated steady-state level of vitellogenin transcription, an elevated steady-state level of vitellogenin mRNA, and a constant elevated level of total nuclear transcriptional activity. Neither hormonal treatment regimen had an effect on the transcription of actin or induced the embryonic gene DG42. Finally, the increase in total transcriptional activity is associated with increased activities of RNA polymerase I and/or III in addition to stimulation of RNA polymerase II activity.

Animals

Induction of T-cell receptor-alpha and -beta mRNA in SL12 cells can occur by transcriptional and post-transcriptional mechanisms.

Genes encoding the alpha and beta subunits of the T-cell receptor (TCR) for antigen require rearrangement events for functional expression. In the case of the immunoglobin genes, rearrangement events have been shown to be necessary, but they are not sufficient for full gene expression. The regulation of TCR genes, apart from the requirement for rearrangement, remains to be elucidated. The T-lymphoma cell clone SL12.4 actively transcribes both TCR-alpha and -beta genes and the cells contain nuclear TCR precursor transcripts. However, the cells fail to accumulate appreciable quantities of mature TCR-alpha and -beta mRNAs in either the nucleus or the cytoplasm. The protein synthesis inhibitor cycloheximide (CHX) induces a 20-fold increase in mature TCR-alpha transcript accumulation without a concomitant increase in TCR-alpha gene transcription suggesting that CHX reverses the nuclear post-transcriptional events which prevent mature TCR-alpha mRNA accumulation. CHX also induces full length TCR-beta transcripts greater than 90-fold while TCR-beta gene transcription increases only 2- to 4-fold. The calcium ionophore A23187 induces the accumulation of TCR-alpha but not -beta transcripts; and in contrast to CHX, it increases the rate of TCR-alpha gene transcription and the expression of large nuclear TCR-alpha precursor transcripts. Since CHX and A23187 mediated induction of TCR mRNA is both rapid and reversible, it is unlikely that new DNA rearrangements are responsible for the induction. Collectively, the data show that the accumulation of mature TCR-alpha and -beta transcripts in SL12.4 cells can be coordinately or independently induced by nuclear events involving both transcriptional and posttranscriptional mechanisms.

Animals

Transcriptional and post-transcriptional processes regulate expression of RNA encoding the small subunit of ribulose-1,5-biphosphate carboxylase differently in petunia and in soybean.

The effects of white light, far-red light and darkness on the in vitro transcription and RNA levels of the small subunit of ribulose-1,5-bisphosphate carboxylase (rbcS) were investigated in petunia and in soybean. In petunia plants treated with 48 hours of darkness the in vitro transcription rate of two of the rbcS subfamilies of petunia, rbcS A and rbcS C, declined 32- and 8-fold respectively, whereas treatment of dark-adapted plants with light caused the in vitro transcription rate of these subfamilies to return to their light-grown levels. Relative RNA levels of rbcS A and rbcS C declined in parallel with in vitro transcription rate changes upon treatment of petunia plants with darkness. However, while relative RNA levels of rbcS C changed in parallel with in vitro transcription rate under all conditions of far-red light and white light tested, there were differences between the changes in rbcS A in vitro transcription rate and RNA levels which were consistent with post-transcriptional regulation of rbcS A RNA. In addition we observed that nuclei isolated from the leaves of plants which were exposed to darkness for periods of 72 hours or longer were transcriptionally inactive. Similar experiments on the in vitro transcription and relative levels of the rbcS RNA in soybean seedlings have lead to the hypothesis that rbcS RNA is less stable in light than in darkness. In contrast, small decreases in rbcS in vitro transcription rate in mature soybean plants treated with darkness were accompanied by large decreases in rbcS RNA, suggesting that rbcS RNA was degraded more rapidly in darkness than in light in these plants. We have shown that differences in the modulation of rbcS RNA levels by post-transcriptional mechanisms exist between plants which belong to different orders, and between different developmental states of the same plant species.

Gene Expression Regulation