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T Platt

Publications and source records attributed to T Platt.

86 records · Page 5Linked to original sources

Transcription termination: nucleotide sequence at 3' end of tryptophan operon in Escherichia coli.

We have determined the RNA and DNA sequences in the region specifying termination of transcription at the end of the tryptophan (trp) operon of Escherichia coli. A 3'-terminal mRNA fragment of about 150 nucleotides yielded oligonucleotide products that could be assigned to the end of trpA (the last structural gene in the operon) by correlation with the amino acid sequence of the protein product. Analysis of the DNA corresponding to this region served to align the few noncoding RNA oligonucleotide sequences and demonstrated that termination of trp transcription occurs in vivo at a site 36 nucleotides after trpA, with greater than 95% efficiency. In two different strains partially defective in the transcription termination factor rho, the purified transcript is much longer and more complex, suggesting that a significant amount of read-through occurs in these strains. This is consistent with evidence [Guarente, L. P., Mitchell, D. H. & Beckwith, J. (1977) J. Mol. Biol. 112, 423-436] that efficient termination in vivo at the end of the trp operon is a rho-dependent event. The trp terminator (trp t) shares several features with other known sites of transcription termination, including (i) a 3'-terminal RNA sequence of several uridine residues, C-A-U-U-U-U(OH), (ii) a G.C-rich region in the DNA immediately preceding the site of termination, followed by an A.T-rich region, and (iii) a region of dyad symmetry in the DNA which, in the transcript, is capable of forming a stable hairpin containing seven G.C base pairs and one A.U base pair in its stem.

Base Sequence↗

The attenuator of the tryptophan operon in E.coli: rho-mediated release of RNA polymerase from a transcription termination complex in vitro.

In vivo, termination of transcription at the attenuator site of the tryptophan (trp) operon of E. coli is influenced by the protein termination factor rho. In vitro, termination does not depend on rho factor, and is very efficient in a purified system consisting only of RNA polymerase, the DNA template, nucleoside triphosphates, and buffer. The extent of termination in this system is unaffected over a wide range of salt and nucleoside triphosphate concentration. However, there is a 10-fold stimulation of trp leader mRNA synthesis if rho factor is present during the transcription reaction. This stimulation occurs only at low molar ratios of polymerase to template, and can be blocked by rifampicin. It is thus most likely due to the recycling of RNA polymerase molecules that have been released from the attenuator site by rho factor. In fact, transcription of the trp leader region in vitro results in the fomration of a stable termination complex which can be observed on sucrose gradients or by binding to nitrocellulose filters. These data indicate that a major function of rho at the trp attenuator is to release completed transcripts from a pre-formed termination complex, rather than to cause the cessation of elongation.

Base Sequence↗

An intercistronic region and ribosome-binding site in bacterial messenger RNA.

A messenger RNA fragment about 220 nucleotides long has been isolated from 32-P-labeled tryptophan operon mRNA of Escherichia coli. When point mutations at the end of trpB and the beginning of trpA were introduced, the resulting nucleotide changes were found; hence the mRNA fragment must include the trpB-trpA intercistronic region. Most of the nucleotide sequences can be assigned to specific locations in the structural genes, based on the amino-acid sequences of the trpB and trpA proteins. In vitro, ribosomes bind to this piece of mRNA and protect from nuclease attack a region about 40 nucleotides long, containing a central AUG codon. The triplet codons to the 3' side of this AUG correspond to the first seven amino acids of the trpA protein; the codons to the 5' side correspond to the last six amino acids of the trpB protein. Translation of trpB is terminated by single UGA codon, which overlaps the trpA AUG initiation codon: UGAUG. Thus the untranslated "intercistronic" region consists of only two nucleotides. The RNA sequence spanning this region undoubtedly fulfills two functions, specifying ribosome recognition signals as well as encoding amino-acid sequences.

Base Sequence↗

Reinitiation of a lac repressor fragment at a codon other than AUG.

52 Spontaneous nonsense mutants in the lac i gene of Escherichia coli were isolated and characterized. All mutants located early in the gene show negative complementation in vivo with a wild-type i gene in a recA diploid strain. In vitro studies show that those mutants that display negative complementing activity in vivo also make lac repressor fragments retaining inducer binding and immunological crossreactivity with wild-type repressor. Amino-acid sequence analysis of these fragments shows that they arise by reinitiation at internal sities of the i message after chain termination at a prior amber or ochre codon. There are at least two different internal reinitiation sites in the first 200 nucleotides of the translated part of the i message. The first site corresponds to the first internal in phase AUG codon, which specifies the methionine residue at position 42 of the repressor protein. This site can be activated by an amber codon, 45 nucleotides before the AUG codon. The second site is only 60 nucleotides past the first site and can be activated by an amber mutation derived from residue 60 of the protein. The second initiation codon specifies the amino-acid leucine in the wild-type repressor, but the reinitiated fragment shows an amino-terminal methionine residue at this position. Therefore, the second initiation site seems to involve an in vivo ambiguity of the genetic code in that the same codon can be translated into two different amino acids depending on the recognition of this codon during initiation (when methionine is inserted) or elongation of protein synthesis (when leucine is inserted). The possibility that a codon other than AUG can act as an initiation codon in vivo is discussed.

Adenine Nucleotides↗

Altered sequences changing the operator-binding properties of the Lac repressor: colinearity of the repressor protein with the i-gene map.

A technique is described for mapping point mutations in the first 59 amino-acid residues of the lac repressor from Escherichia coli, using less than 0.1 mumol (4 mg) of the purified protein. This technique was used to localize five mutations affecting the ability of the i-gene product to repress in vivo. These alterations are located at four different sites in the amino-terminal region of the repressor molecule. Three of these are missense mutations and result in changes from serine to proline (residue 16), threonine to alanine (residue 19), and alanine to valine (residue 53). Each amino-acid substitution alone is sufficient to eliminate repression in vivo, presumably by altering the operator binding activity. The remaining two independently-isolated mutations are identical, and result in a change from a glutamine codon at position 26 to an amber (UAG) codon. Since suppression of this nonsense mutation with amber suppressors that insert leucine, tyrosine, serine, or glutamine restores repressor activity to the molecule, glutamine(26) cannot be crucial for the operator-binding function. A comparison of the position of each altered residue with the genetic map enabled us to estimate the physical distance between several deletion-group endpoints.

Amino Acid Sequence↗

Translational restarts: AUG reinitiation of a lac repressor fragment.

An early, spontaneous amber mutation in the lac i-gene allows translational reinitiation, which results in a mutant lac repressor. Comparison of the amino-terminal sequence of this mutant repressor with the partial amino-acid sequence of the wild-type lac repressor shows that reinitiation occurs at the first internal AUG codon, and results in a mutant protein lacking 42 residues at the amino-terminal end. This protein binds the inducer isopropyl-beta-D-thiogalactoside with normal affinity, and is capable of maintaining a tetrameric structure; however, it does not repress in vivo. These data suggest that the amino-terminal portion of the wild-type lac repressor is necessary either for direct binding to the lac operator or for the correct conformation for binding to DNA.

Adenine Nucleotides↗

Cellular control of the synthesis and activity of the bacterial luminescent system.

In bioluminescent bacteria growing in shake flasks, the enzyme luciferase has been shown to be synthesized in a relatively short burst during the period of exponential growth. The luciferase gene appears to be completely inactive in a freshly inoculated culture; the pulse of preferential luciferase synthesis which occurs later is the consequence of its activation at the level of deoxyribonucleic acid transcription which is attributed to an effect of a "conditioning" of the medium by the growing of cells. Although cells grown in a minimal medium also exhibit a similar burst of synthesis of the luminescent system, the amount of synthesis is quantitatively less, relative to cell mass. Under such conditions, added arginine results in a striking stimulation of bioluminescence. This is attributed to a stimulation of existing patterns of synthesis and not to induction or derepression per se.

Aldehydes↗