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Structural evolution of bacterial plasmids: role of translocating genetic elements and DNA sequence insertions.

Recent evidence suggests that plasmids have evolved by site-specific recombinational events involving translocation and insertion of discretely defined DNA segments. The role of translocating genetic elements and repeated DNA sequences in the formation and structural evolution of bacterial plasmids, and in the control of plasmid gene expression, is the subject of this brief review. Insertion sequence (IS) regions are discrete segments of DNA that are known to cause strongly polar mutations in the genes of Escherichia coli and several bacteriophages as a consequence of their insertion into bacterial or phage genomes. Recent investigations have identified three separate kinds of IS segments on plasmids, and have indicated that such regions may have a role in 1) site-specific reversible dissociation of antibiotic resistance plasmids into their component segments, 2) recombination of certain plasmids with the bacterial chromosome, and 3) translocation of segments of plasmid DNA onto other replicons, or onto different sites of the same replicon. In addition, such DNA sequences, which may be repeated on plasmid genomes in either direct or reverse orientation, are involved in the control of plasmid gene expression. Inverted repeats other than the genetically characterized IS segments also appear to be involved in recA-independent, recombination and translocation of plasmid DNA segments. These inverted repeats contain palindromic nucleotide sequences on each strand of DNA and are detectable as hairpin-loop structures by electron microscope heteroduplex analysis. Such palindromes resemble the recognition sites for restriction endonucleases, some of which are encoded by plasmids, suggesting that similar endonucleolytic enzymes may be involved in the translocation of plasmid DNA segments.

Base Sequence

Genetic translocation in Staphylococcus aureus.

A 5.2-kilobase pair transposon, Tn551, has been found in Staphylococcus aureus, a Gram-positive bacterium. Initially detected on plasmid pI258, it undergoes rec-independent transposition to multiple chromosomal and plasmid sites, sometimes causing insertional inactivation. Unlike most other transposons, Tn551 undergoes apparently precise excision as a rule. The initial observation of Tn551 transition involved UV inactivation of the carrier plasmid; this would appear to be a general means of detecting transposable elements.

Chromosome Deletion

[Molecular-genetic evaluation of translocation of bcl-2 gene and locus bcl-1 in selected lymphoproliferative changes].

In the work it has been decided to evaluate the occurrence of locus bcl-1 rearrangement in type B chronic lymphatic leukemia and that of gene bcl-2 in non-Hodgkin's lymphoma with diffuse morphology, as well as in reactive lymph nodes. The study material comprised DNA isolated from fragments of lymph nodes sent for routine diagnostic examinations at the Institute of Pathology--Pomeranian Medical Academy. Southern's method was used to examine DNA having been cut with restrictive enzymes, estimating the distribution of gene bcl-2 and locus bcl-1. Resorting to Polymerase Chain Reaction (PCR) translocation t (14;18) was assessed by means of short nucleotides hybridizing with 14 and 18 chromosome sequences restricting this translocation. The amplification product was subsequently studied by Southern's method with probe bcl-2. In 1 out of 18 examined cases of type B chronic lymphocyte leukemia it was disclosed that locus bcl-1 had been rearranged. In 45 cases of non-Hodgkin's lymphoma with diffuse morphology the gen bcl-2 was found to display germline arrangement. Germline position of gen bcl-2 was also revealed in 60 cases of reactive lymph nodes.

Blotting, Southern

Allozyme genetics in permanent translocation heterozygotes of the Oenothera biennis complex.

Allozyme inheritance and transmission genetics of 11 enzyme systems were determined in the permanent translocation heterozygotes Oenothera biennis, Oe. strigosa, and Oe. parviflora. Electrophoretic variation was examined first among 164 strains of structural heterozygotes. Allelic configurations were then judged from inheritance patterns in reciprocal F1 hybrids between each of 22 ring-forming strains and tester strains of the related bivalent-formers, Oe. hookeri and Oe. grandiflora. Allozymes are inherited as codominant markers, and, as dictated by the genetic system, within a strain individual allelic variants are generally transmitted through only one germ line. Of the 20 loci resolved, only eight are polymorphic in any species, and, within species, generally only two alleles are present at each polymorphic locus. Despite the relatively meager allelic array, each of the 22 strains whose chromosome complexes were characterized is genotypically unique. Generally, within taxa, alpha (egg) and beta (sperm) complexes differ in allele frequency at several polymorphic loci. Such variability is correlated with differences in the phylogenetic origins of complexes and not with differences in segmental arrangement within a group of related complexes.

Alleles

DNA sequence of the transposable element IS1.

The nucleotide sequence of an IS1 element recently transposed into the lacI gene is reported. This sequence is nearly identical to one previously reported for another IS1 element (Ohtsubo and Ohtsubo, 1978). The implications of this similarity are discussed. The sizes of potential polypeptides encoded in the IS1 DNA have been determined and possible roles for these peptides in the illegitimate recombination events mediated by the element are considered.

Bacterial Proteins

The human leulocyte test system. VII. Further investigations concerning micronucleus-derived premature chromosome condensation.

Premature chromosome condensation (PCC) from X-ray induced micronuclei shows a dose-effect relationship in human leukocytes in vitro. Preparations at different culture times without colcemide treatment reveal complex variations of the frequencies of micronuclei and PCC correlated with the fixation time. The positions of PCC patches in the metaphase plate and the frequencies of different PCC types (S and G2) ar independent on the X-ray dose. The latter indicates that the slowing down of the micronuclei in the cell cycle, which is the reason for the formation of PCC, may be an outcome rather of a regulatory phenomenon than of an unspecific physiological damage of the chromatin included in the micronuclei. This is especially evident from labeling experiments with tritiated thymidine, showing that the extent of asynchrony between main nuclei and micronuclei is independent on the X-ray dose. Labeling experiments with tritiated uridine reveal a X-ray dose dependent suppression of RNA synthesis in cells with main nuclei and micronuclei. THE S-phase nature of "pulverized" PCC patches could be verified by incorporation of tritiated thymidine in aound 50%. Staining of centromeric heterochromatin in micronuclei reveal a frequency of micronuclei with centromeric heterochromatin resembling the frequency of G2-phase PCC found in mitoses.

Cell Nucleus

Deletion mutants of Xenopus laevis 5S ribosomal DNA.

Deletion mutants have been derived from a plasmid-cloned repeating unit of Xenopus laevis oocyte 5S DNA by introducing the transposable chloramphenicol-resistance element Tn9 into the AT-rich spacer sequence near the 5' terminus of the X. laevis 5S rRNA gene in a recombinant plasmid and then selecting plasmids which had lost the transposable element. Plasmids lacking the entire transposable element and various portions of the AT-rich spacer sequence flanking the original site of Tn9 integration have been obtained, and their ability to support transcription of the remaining X. laevis 5S rRNA gene has been tested in X. laevis oocyte nuclei. The deletion mutants analyzed in the present study retain the 49 nucleotide nonrepetitive sequence immediately adjacent to the 5' terminus of the gene, but lack as much as 80% of the repetitive AT-rich spacer sequence (Fedoroff and Brown, 1978). Such deletion mutants are fully active templates for 5S rRNA synthesis. This implies that the AT-rich spacer, which comprises half or more of each repeating unit in X. laevis oocyte 5S DNA, is relatively unimportant for correct initiation of transcription, and that if there are extragenic sequences with promoter function, they are likely to reside in the short nonrepetitive region immediately adjacent to the gene.

Animals