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C Thermes

Publications and source records attributed to C Thermes.

23 records · Page 2Linked to original sources

Salmonella typhimurium cobalamin (vitamin B12) biosynthetic genes: functional studies in S. typhimurium and Escherichia coli.

In order to study the Salmonella typhimurium cobalamin biosynthetic pathway, the S. typhimurium cob operon was isolated and cloned into Escherichia coli. This approach has given the new host of the cob operon the ability to make cobalamins de novo, an ability that had probably been lost by this organism. In total, 20 genes of the S. typhimurium cob operon have been transferred into E. coli, and the resulting recombinant strains have been shown to produce up to 100 times more corrin than the parent S. typhimurium strain. These measurements have been performed with a quantitative cobalamin microbiological assay which is detailed in this work. As with S. typhimurium, cobalamin synthesis is only observed in the E. coli cobalamin-producing strains when they are grown under anaerobic conditions. Derivatives of the cobalamin-producing E. coli strains were constructed in which genes of the cob operon were inactivated. These strains, together with S. typhimurium cob mutants, have permitted the determination of the genes necessary for cobalamin production and classification of cbiD and cbiG as cobl genes. When grown in the absence of endogenous cobalt, the oxidized forms of precorrin-2 and precorrin-3, factor II and factor III, respectively, were found to accumulate in the cytosol of the corrin-producing E. coli. Together with the finding that S. typhimurium cbiL mutants are not complemented with the homologous Pseudomonas denitrificans gene, these results lend further credence to the theory that cobalt is required at an early stage in the biosynthesis of cobalamins in S. typhimurium.

Amino Acid Sequence↗

Prediction of rho-independent Escherichia coli transcription terminators. A statistical analysis of their RNA stem-loop structures.

Escherichia coli rho-independent transcription terminators are characterized by an RNA structure having a G+C-rich stem-loop followed by a series of uridine residues, but they can be only partially predicted by the stability of this structure or by its primary sequence. A large number of such terminators have been identified or proposed in the literature, and we have constituted a list of them (148 found in 1021 x 10(3) base-pairs of E. coli DNA sequences) in order to analyze statistically the corresponding RNA hairpins. We show that the size of the loops presents a narrow distribution, that their sequences are not random, and that most loops are closed by a C.G base-pair. In particular, 55% of the loops are tetranucleotides and the most abundant loop sequences are UUCG and GAAA. These loops are abundant in prokaryotic and eukaryotic RNAs, and are known to enhance the stability of RNA hairpins. We propose that these tetraloops play an important role in the nucleation of the nascent RNA structures, as does also the presence of a C.G base-pair closing a hairpin loop. This analysis allows us to propose a model of formation of an RNA hairpin during the termination process and to construct an algorithm of prediction of the terminators in a given DNA sequence. For the E. coli sequences, it clearly distinguishes inter- from intracistronic terminator-like structures, and selects 141 of the 148 rho-independent terminators given in the literature, with a very low background. It also predicts with reasonable accuracy the in vitro termination efficiency of known rho-independent terminators, as well as predicting the existence of 35 as yet uncharacterized terminators.

Algorithms↗

CUUCGG hairpins: extraordinarily stable RNA secondary structures associated with various biochemical processes.

The mRNA of bacteriophage T4 contains a strikingly abundant intercistronic hairpin. Within the 55 kilobases of known T4 sequence, the hexanucleotide sequence CTTCGG is found 13 times in the DNA strand equivalent to mRNA sequences. In 12 of those occurrences, the sequence is flanked by inverted repeats predictive of RNA hairpins with UUCG in the loop. Avian myeloblastosis virus reverse transcriptase, which can traverse hairpins of larger calculated stability, terminates efficiently at these CUUCGG hairpins. Thermal denaturation studies of model hairpins show that the loop sequence UUCG dramatically stabilizes RNA hairpins when compared to a control sequence. These data, when combined with previously described parameters of helix stability, suggest that T4 has utilized this loop sequence to optimize the stability of intercistronic hairpins. The stability of CUUCGG hairpins is also utilized in the RNAs of many organisms besides T4.

Base Sequence↗

T4-induced antipolarity: temporal heterogeneity in response of early transcription units.

When T4 infects Escherichia coli in the absence of protein synthesis, rho-mediated termination takes place on early polycistronic transcription units. During the early period of development, the appearance of delayed early transcripts becomes insensitive to the inhibition of protein synthesis. In the absence of the T4 gene product mot, an inducer for the middle mode of transcription, only the early polycistronic messengers are synthesized. In mot- -infected cells, the synthesis of the distal transcripts still becomes completely insensitive to the polar effect of chloramphenicol. This happens because potential rho-sensitive termination sites are not used in these cells. In this respect, overcoming polarity induced by chloramphenicol can be called a process of antitermination. The mot-independent antitermination can be studied by addition of chloramphenicol during infections with mot- bacteriophage. The effect is stable; it allows a constant percentage of rho-sensitive termination sites in the cell to be traversed by RNA polymerase for at least 10 min at 42 degrees C. By examining six different transcription units on the T4 genome, we find that each transcription unit has a cis-acting component (or components) which determines when its rho-sensitive termination site stops functioning. In extreme cases, rho acts with 100% efficiency in some transcription units, whereas it is almost inactive in others.

Chloramphenicol↗

In vitro system for induction of delayed early RNA of bacteriophage T4.

Concentrated lysates of Escherichia coli that had been infected with bacteriophage T4 in the presence of chloramphenicol show the same restriction of transcription in vitro as is found in vivo. Restricted lysates can be complemented with lysates from infected cells to induce production of delayed early RNA. Complementation takes place between the RNA polymerase of the restricted lysate and the DNA of the unrestricted lysate. We present evidence that delayed early RNA in these lysates is initiated at quasi-late (middle) promoters, and that such recognition is related to changes in the state of the template DNA.

Cell-Free System↗