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E. coli ribosomal RNA contains sequences homologous to insertion sequences IS1 and IS2.

The insertion sequence (IS) elements, IS1 and IS2, present in multiple copies in the Escherichia coli chromosome, are transposable genetic elements of known nucleotide sequence. These elements can modulate gene expression, but it is not known whether they normally function in genetic control. To determine whether IS elements could exert control through specific RNA transcripts, we hybridised lambda NNC1857 r14 (carrying IS1) and pBR322 (carrying a portion of IS2) to Northern blots of E. coli RNA. Regions of homology between the IS elements and ribosomal RNA were observed. Computer analysis of reported nucleotide sequences detected large segments of homology between the IS elements and both 23S and 16S rRNA. Additional homologous sequences in phi X174 and a leader region of a ribosomal protein gene cluster were also detected. The homologous sequence between IS2 and 16S rTNA is the same sequence in phi X174 DNA which codes for the ends of the E and D gene and the start of J. The partial IS sequences may represent silent evolutionary remnants or they could modulate the expression of genes carrying these sequences.

Base Sequence

Occurrence of insertion sequence (IS) regions on plasmid deoxyribonucleic acid as direct and inverted nucleotide sequence duplications.

Insertion sequence (IS) regions have been identified previously as a cause of strongly polar mutations in Escherichia coli and several bacteriophages. The present experiments indicate that genetically characterized IS regions occur on bacterial plasmid deoxyribonucleic acid (DNA) as both direct and inverted DNA sequence duplications. The DNA insertion which has been shown previously (Sharp et al., 1973) to control expression of tetracycline resistance in the R6-5 plasmid, and which occurs as directly and inversely repeated DNA sequences adjacent to the region believed to contain the tetracycline resistance gene, has been identified as IS3. A second genetically characterized insertion sequence (IS1) has been identified as a direct DNA duplication occurring at both junctions of the resistance transfer factor and R-determinant components of R6-5 and related plasmids. A model is presented for the reversible dissociation of resistance transfer factor and R-determinant components of co-integrate R plasmids at the sites of DNA sequence homology provided by the repeated IS regions.

Base Sequence

Deoxyribonucleic acid sequence homologies among bacterial insertion sequence elements and genomes of various organisms.

Plasmid and phage deoxyribonucleic acid (DNA) harboring bacterial insertion sequence (IS) elements IS1, IS2, and IS5 were characterized and used as probes to detect homologous sequences in various procaryotic and eucaryotic genomes. The hybridization method used permits the detection of sequences partially homologous to the elements. Hybridization of the IS-containing probes to each other revealed a region of limited homology between IS1 and IS2. Homologous sequences were then detected by computer analysis of the published IS1 and IS2 nucleotide sequences. The homologous sequence contains a tandemly repeated tetranucleotide sequence which resembles the repeated sequence at the hot spot for spontaneous mutations in the lacI gene (P. J. Farabaugh, U. Schmeissner, M. Hofer, and J. Miller, J. Mol. Biol. 126:847-863, 1978). Homology between the IS elements and various genomes was determined by hybridizing labeled DNA containing IS1, IS2, and IS5 sequences to Southern blots of chromosomal DNA cleaved with restriction endonucleases. IS1 and IS5 appear limited to the enteric bacteria, whereas IS2 sequences can also be detected in Pseudomonas putida, Pseudomonas aeruginosa, and Serratia marcescens. Bacteria which appear not to possess extrachromosomal elements, e.g., Caulobacter crescentus, did not show homology with any insertion sequences tested. In addition, sequences homologous to IS1, IS2, or IS5 were not detected in Saccharomyces cerevisiae, Dictyostelium discoideum, or calf thymus DNA.

Bacteria

Electron microscope heteroduplex studies of sequence relations among bacterial plasmids: identification and mapping of the insertion sequences IS1 and IS2 in F and R plasmids.

Heteroduplex experiments between the plasmid R6 and one strand of the deoxyribonucleic acid (DNA) of a lambda phage carrying the insertion sequence IS1 show that IS1 occurs on R6 at the two previously mapped junctions of resistance transfer factor (RTF) DNA with R-determinant DNA. From previous heteroduplex experiments, it then follows that IS1 occurs at the same junctions in R6-5, R100-1, and R1 plasmids. Heteroduplex experiments with the DNA from a lambda phage carrying the insertion sequence IS2 show that one copy of IS2 occurs in R6, R6-5, and R100-1 (but not R1) at a point within the RTF with coordinates 67.5 TO 68.9 kilobase units (kb). In an accompanying paper, Ptashne and Cohen (1975) show that the insertion sequence IS3 occurs on R6 and R6-5. R100-25, a traC mutant, differs from its parent R100-1 only in that it contains an additional copy of IS1 inserted within the tra gene region of 82.1 kb. R100-31, atraX, TC-s mutant of R100-1, is deleted in R100-1 sequences starting at one of the IS3 termini (46.9 kb) and extending with RTF to 61.0 kb. Heteroduplex studies of F plasmids with the DNA of a lambda phage bearing insertion sequence IS2 show that the sequence of F with coordinates 16.3-17.6F is IS2. The occurrence of IS1 at the two junctions of R-determinant DNA and RTF DNA in R plasmids provides a structural basis to explain the mechanism of the previously observed formation of molecules containing one RTF unit and several tandem copies of the R-determinant unit, when R plasmids in Proteus mirabilis are grown in the presence of antibiotics, and the segregation of an R plasmid into an RTF unit and an R-determinant unit. In general, correlation of our results with previous studies shows that insertion sequences play a role in a variety of F- and R-related intra- and intermolecular recombination phenomena.

Base Sequence

Excision of F plasmid sequences by recombination at directly repeated insertion sequence 2 elements: involvement of recA.

The DNA of the F plasmid is joined to bacterial DNA sequences in the F' ORF203 by directly repeated insertion sequence 2 (IS2) elements. The rate of excision of the F plasmid form this F' (presumably by recombination at the directly repeated IS2s) has been estimated in both recA+ and recA- strains. Normal F is produced in the recA+ strain, but is not detected in recA-. The autonomous plasmids produced in the recA- background were F's having deletions. F excision in this particular recA+ case is specific in the sense that the directly repeated IS2s appear to be more active in recombination than similarly disposed IS3 direct repetitions in this F'.

Chromosomes, Bacterial

Characterizing the ecological niche of insertion sequences within prokaryotic genomes.

Insertion sequences (ISs) are widespread prokaryotic transposable elements, often regarded as genomic parasites that primarily cause deleterious mutations. However, they can also promote adaptive changes. These antagonistic properties make their overall impact on prokaryotic evolution difficult to grasp. Here, we address this challenge by leveraging the framework of transposon ecology to analyze IS occurrences across and within 30 499 prokaryotic genomes. Combining phylogenomics with multi-scale genomic analysis, quantitative ecology, and mathematical modeling, we provide evidence that although genomes generally provide sufficient resources for IS coexistence, universal mechanisms shape their occurrence and chromosomal distribution across genomes. These include (i) the preferential localization of ISs within highly variable and GC-heterogeneous chromosomal regions of genomic plasticity, which act as the primary reservoir of IS niches; (ii) a linear scaling between IS abundance and niche size, with an average of $5.4$ additional accessible insertion sites per IS; (iii) a dependence of IS occurrence on the presence of other ISs, suggesting a form of group behavior; (iv) the accumulation of AT-rich sequences in both coding and noncoding regions up to 100 kb around ISs, indicative of ecological isolation; and (v) the spatial partitioning of mobile genetic elements around ISs, reminiscent of ecological niche differentiation. Besides these general principles, we also uncover niche specificities associated with particular IS families, hinting at regulatory mechanisms that modulate IS activity. Altogether, this comprehensive transposon ecology approach offers new insights and avenues for understanding IS-host interactions and genome evolution, moving beyond traditional host-centric perspectives.

DNA Transposable Elements

Applications of transposon-insertion sequencing for understanding bacterial physiology.

Transposon-insertion sequencing (Tn-seq) couples transposon mutagenesis with next-generation sequencing to identify the transposon insertion site for thousands of mutants in parallel. It is a powerful technology with a myriad of uses beyond the identification of essential genes required for a cell to grow and divide. Tn-seq is particularly useful as a high-throughput method to assign function to function-unknown genes, which have increased steadily with the abundance of newly sequenced bacterial genomes. Tn-seq has now been adapted for use in over 100 bacterial species. Here, we summarize the applications of Tn-seq for querying bacterial physiology and discuss some of the possible applications for the future.

DNA Transposable Elements

PCR analysis of insertion sequences leads to the generation of artefact amplicons.

Insertion sequences (ISs) are small, self-mobilizing DNA elements widespread across prokaryotic genomes, including chromosomes and plasmids. IS elements frequently co-localize with antimicrobial resistance (AMR) genes and mediate their mobilization, often as part of larger genomic structures that encompass multiple IS elements and antibiotic resistance genes. In this study, we employed Polymerase Chain Reaction (PCR) to amplify DNA sequences containing two copies of an IS26 element from two Escherichia coli ST131 isolates. While the respective PCRs generated products of the expected size, we also observed multiple amplicons of unexpected sizes, which could be misinterpreted as population heterogeneity attributed to IS mobilization. By extracting, re-amplifying and sequencing individual PCR products, we demonstrate that these amplicons of unexpected sizes were indeed artefact products generated during the PCR reaction, likely mediated by within-PCR recombination of the IS26 sequences. Furthermore, PCRs with equally oriented primers, each located close to an IS26 element, also generated artefact amplicons. This research highlights the limitations of using PCR to assess DNA sequences encoding multiple copies of an IS element and therefore, the presence of these genomic structures or the mobilization of the respective IS elements should not be assessed by diagnostic PCR alone but be corroborated with complementary techniques.

ESBL

Adjacent insertion sequences IS2 and IS5 in bacteriophage Mu mutants and an IS5 in a lambda darg bacteriophage.

Using electron microscopic heteroduplex analysis, we have demonstrated that an insertion found in a Mu prophage and in some infectious. Mu deletion-substitution mutants derived from it consists of bacterial insertion sequence IS2 linked directly to IS5. Other infectious Mu mutants derived from the same lysogen have only IS5 or a portion of IS2. In addition, we have found that an independent insertion in a transducing phage, lambda 13 dargB2, is IS5. The ends of IS5 are short, inverted duplications of each other. These observations support the notion that the DNA insertion previously designated IS5 on the basis of a single example in lambda KH100 is a bona fide bacterial insertion sequence.

Coliphages

Reversion of the gal3 mutation of Escherichia coli: partial deletion of the insertion sequence.

The gal3 mutation of E. coli is an insertion of a DNA sequence, 1,100 base pairs in length, into the operator-promoter region of the galactose operon. This mutation reverts spontaneously to gal+ by excision of the insertion to produce stable, inducible revertants, or by tandem duplications of the gal operon to produce unstable, constitutive revertants. The nature of a third class of revertants, which are stable and constitutive, is the subject of the present study. The stable, constitutive class of revertants included approximately 30% of all gal+ revertants obtained from a gal3 (lambda) strain. Although the constitutive reversions could be transduced by lambda, the efficiency was found to be extremely poor and the rare transductants which did appear seemed to originate from abnormal transducing particles. It was concluded that these reversions were not normally packaged by lambda. In order to facilitate the packaging of these reversions, the chlD-pgl region was deleted from the parent gal3 (lambda) strain. Unexpectedly, the gal3 mutation in the majority of these deletions reverted to produce stable, constitutive reversions exclusively. The explanation proposed was that the chlL-pgl deletions had also removed part of the gal operator-promoter. These revertants were not considered to be true representatives of the stable, constitutive class. The specificity of deletion end-points at the insertion was found only in the gal3 (lambda) strain, and not in gal+, gal+(lambda), or gal3 strains. Moreover, the frequency of spontaneous chlD-pgl deletions increased 10- to 15-fold in presence of the gal3 insertions. A lambdagal phage bearing a true stable, constitutive reversion (galc200) was isolated from the revertant strain by subsequent deletion of the chlD-pgl segment (delta31). Electron micrographs of lambdagal+ and lambdac200 delta31(chlD pgl) DNA heteroduplexes were interpreted to indicate that the stable, constitutive reversion had arisen by a deletion of 3/4 of the gal3 insertion sequence. The main conclusions are: (i) the stable, constitutive reversions of gal3 can arise by partial deletions of the insertion sequence, apparently by elimination of the nucleotide sequence which causes polarity; (ii) the chlD-pgl deletions may exhibit preferential termination at the right extremity of the gal3 insertion in presence of prophage lambda; and (iii) the gal3 insertion appears to inhibit the production of lambdagal particles by providing a nucleotide sequence which is recognized and degraded by a specific endonuclease. It is suggested that inhibition of transducing particle formation by gal3 and the preferred termination of deletions at gal3 might represent related phenomena.

Base Sequence

The occurrence of long transcription units among the X and Y ribosomal genes of Drosophila melanogaster: transcription of insertion sequences.

Most of the ribosomal transcription units (rTUs) in Drosophila melanogaster observed by electron microscopy measure about 8 kb; a length which corresponds to the size of the 38S precursor to ribosomal RNA in D. melanogaster. However, interspersed among these rTUs are transcription units that are much longer (up to 14.6 kb) than the 8 kb expected for rTUs. Some of these larger length estimates can be attributed to stretching but an important fraction is significantly larger and has up to 60 more fibers per gene.--The following evidence suggests that these larger transcription units are ribosomal genes consisting of insertion sequences. The long transcription units are within the sizes expected for rTUs containing insertion sequences as reported by other workers. Their RNP fibers cross-react with antibodies raised against ribosomal proteins in a manner similar to that observed for ribosomal RNP. They are interspersed among rTUs in the X chromosome.--These putative ribosomal genes carrying insertions are present both in the X and, although to a lesser extent, in the Y ribosomal chromatin as is indicated by their existence in nurse cells of both Oregon R females and females of the genotype sc4sc8/sc4sc8/y+ Y. Analysis of the fiber patterns of "long TUs" supports the hypothesis that the insertion region is being transcribed.--"Long TUs" are found in tandem with non-transcribed spacer regions which are heterogeneous in length with a mean of 1.53+/-0.61 micrometers (or 8.5+/-3.4 kb).

Animals

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

Insertion sequence IS2 near the gene for prophage lambda excision.

In this study we characterize a variant of the lambdacI857S7 prophage, designated lambdabi2cI857S7, which carries a DNA insertion. The insertion sequence is IS2, and it resides in the antipolar orientation II just upstream from the gene for prophage excision (xis) at 61.6%lambda. This bi2 insertion mutant could prove valuable for studies on possible recombination functions of IS2 DNA and of its effect on the lambda integration and excision functions.

Chromosome Mapping

Inserted sequence in the mitochondrial 23S ribosomal RNA gene of the yeast Saccharomyces cerevisiae.

The sequence organization of the yeast mit-DNA region carrying the large ribosomal RNA gene and the polar locus omega was examined. Hybridization studies using rho- deletion mutants and electron microscopy of the heteroduplexes formed between 23S rRNA and the appropriate restriction fragments, lead to the conclusion that the 23S rRNA1 gene of the omega+ strains is split by an insertion sequence of 1,000-1,100 bp. In contrast, no detactable insertion was found in the 23S rRNA gene of the omega- strains. The size and the location of the insert found in the 23S rRNA gene of the omega+ strains appear to be identical to those of the sequence delta which had previously been found to characterize the difference (at the omega locus) between the mitDNA of the wild type strains carrying the omega+ or omega- alleles (Jacq et al., 1977).

Base Sequence

Heteroduplex mapping of small plasmids derived from R-factor R12: in vivo recombination occurs at IS1 insertion sequences.

Small, autonomously replicating plasmids derived by in vivo recombination from R-factor R12 (= R100) have been structurally mapped by heteroduplex formation between the plasmids and an R-factor which is structurally closely related to R6-5. Recombination resulting in generation of the small resistance-free plasmids occurs between the (IS1)b insertion sequence and various other sites on the opposite side of an origin of replication. A larger R12-derived plasmid pSM17, carrying streptomycin (Sm), sulfadiazole (Sa), and chloramphenicol (Cm) resistances, has recombined in a similar manner but at the (IS1)a sequence. A new structural coordinate origin for R100 and for partially homologous R-factors is proposed based upon the location of the (IS1)b sequence.

DNA, Bacterial

Insertion sequence IS2 associated with int-constitutive mutants of bacteriophage lambda.

We have examined mutations in bacteriophage lambda called int-c, which confer elevated constitutive expression on the int gene for prophage integration. One class of mutations, which map between the b538 and bio386 endpoints, does not appear to be associated with any major chromosomal modification, whereas the second class has the IS2 insertion sequence in orientation II within the region between gene int and the b538 endpoint, All int-c mutations are within gene xis, with the possible exception of int-c548, which might be located between int and xis. The present data are most consistent with the following notion: (1) the point mutations of class one inactivate the tI terminator signal of the pI-tI leader RNA for gene int and thus render int expression independent of the antiterminating action of the cII and cIII products, and (2) the second class of int-c mutants is constitutive for Int because the IS2 insertion, when strategically located between int and tI, provides a new constitutive promoter for int transciption.

Coliphages

Transposon insertion sequencing of Pseudomonas aeruginosa identifies multiple intersecting pathways essential for extreme colistin resistance.

Colistin is used to treat antibiotic resistant gram-negative infections, including those caused by Pseudomonas aeruginosa (Pa). Using a diverse collection of clinical isolates, we identified BWH047, a colistin-resistant isolate with an extremely high minimum inhibitory concentration (MIC, 1280 µg/mL). To characterize the genes conditionally essential for colistin resistance in BWH047, we employed transposon insertion sequencing and identified 20 gene candidates. In-frame deletion validated 75% of the candidates and identified genes in several new pathways that contribute to colistin resistance in Pa, including algU and wapH. We also identified several candidate genes from previously reported colistin resistance pathways (e.g., arn, pmrAB). We further investigated the impact of a colistin resistance-associated inner membrane DedA-family undecaprenyl phosphate flippase, which we named DpcA (DedA of Pseudomonas necessary for colistin resistance A). Deletion of dpcA in BWH047 restored sensitivity to colistin (MIC = 0.5 µg/mL) and resulted in several unique changes to the structure of lipopolysaccharide (LPS), including production of decreased amounts of the colistin resistance-conferring 4-amino-4-deoxy-L-arabinose (L-Ara4N) modification on lipid A. This work represents a robust analysis of colistin resistance in Pa and identifies intersecting pathways that contribute to extreme phenotypic resistance.

Pseudomonas aeruginosa