Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Inverted Repeat Sequences”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 325 records · Page 18Linked to original sources

The very large amplifiable element AUD2 from Streptomyces lividans 66 has insertion sequence-like repeats at its ends.

In a spontaneous, chloramphenicol-sensitive (Cms), arginine-auxotrophic (Arg-) mutant of Streptomyces lividans 1326, two amplified DNA sequences were found. One of them was the well-characterized 5.7-kb ADS1 sequence, amplified to about 300 copies per chromosome. The second one was a 92-kb sequence called ADS2. ADS2 encoding the previously isolated mercury resistance genes of S. lividans was amplified to around 20 copies per chromosome. The complete ADS2 sequence was isolated from a genomic library of the mutant S. lividans 1326.32, constructed in the phage vector lambda EMBL4. In addition, the DNA sequences flanking the corresponding amplifiable element called AUD2 in the wild-type strain were isolated by using another genomic library prepared from S. lividans 1326 DNA. Analysis of the ends of AUD2 revealed the presence of an 846-bp sequence on both sides repeated in the same orientation. Each of the direct repeats ended with 18-bp inverted repeated sequences. This insertion sequence-like structure was confirmed by the DNA sequence determined from the amplified copy of the direct repeats which demonstrated a high degree of similarity of 65% identity in nucleic acid sequence to IS112 from Streptomyces albus. The recombination event leading to the amplification of AUD2 occurred within these direct repeats, as shown by DNA sequence analysis. The amplification of AUD2 was correlated with a deletion on one side of the flanking chromosomal region beginning very near or in the amplified DNA. Strains of S. lividans like TK20 and TK21 which are mercury sensitive have completely lost AUD2 together with flanking chromosomal DNA on one or both sides.

Amino Acid Sequence↗

Structure of the rat platelet factor 4 gene: a marker for megakaryocyte differentiation.

A rat platelet factor 4 (PF4) cDNA has been isolated by immunoscreening a g lambda 11 rat megakaryocyte cDNA expression library. Sequence analysis of the rat PF4 cDNA revealed that this megakaryocyte protein is composed of a leader sequence of 29 amino acid residues and a mature protein sequence of 76 amino acid residues. The structure of rat PF4 derived from its cDNA shows a marked homology with the amino acid sequence of human PF4 obtained by classical protein chemistry techniques. This observation is particularly striking with regard to the carboxy-terminal region of rat and human PF4, where 28 of the last 31 C-terminal residues are identical. The rat PF4 gene was obtained from a rat genomic library by using rat PF4 cDNA as a hybridization probe. Sequence analysis showed that the gene is constructed of three exons and two short introns. The transcriptional start site is located 73 base pairs upstream of the translational start codon as judged by S1 nuclease mapping and primer extension. The 5' noncoding region of the gene also exhibited a sequence homologous to the TATA box at -31, as well as a series of direct and inverted repeat sequences and a cluster of 26 T residues at -155 to -218. This latter domain may be involved in regulating PF4 gene expression during megakaryocytopoiesis.

Animals↗

Characterization of a family of genes encoding a fruit-specific wound-stimulated protein of bell pepper (Capsicum annuum): identification of a new family of transposable elements.

Using a fruit-specific cDNA as a probe we isolated and sequenced the two corresponding homologous genes (Sn-1 and Sn-2) of the bell pepper (Capsicum annuum) genome. Both genes have a single intron and numerous unusual long inverted repeat sequences. The introns share 87% homology and Sn-2 contains one 450 bp additional sequence with structural features of a transposable element, which is highly repetitive in the bell pepper genome. Surprisingly, analysis in data banks showed that genes encoding the potato starch phosphorylase (EC 2.4.1.1) and patatin contain a similar element, named Alien, in their 5'-upstream region. Alien elements are characterized by a conserved 28 bp terminal inverted repeat (TIR), small size, high AT content, potential to form stable DNA secondary structures and they have probably been inserted in TA target sites. Interestingly, the TIR of the Alien elements shares high homology with sequences existing in the TIR of extrachromosomal linear pSKL DNA plasmid of Saccharomyces kluyveri. Northern blot analyses detected Sn-1 transcripts principally in the red fruit whereas no Sn-2 transcripts were detected in neither of the samples monitored. Western blot analyses detected a 16.8 kDa Sn protein principally in the ripe red fruit and wounded areas of green unripe fruit. A comparison of the deduced amino acid sequence of Sn-1 with protein sequences in data banks revealed a significant homology with proteins likely involved in the plant's disease resistance response. Analyses at the subcellular level showed that Sn-1 is localized in the membrane of vacuoles.

Amino Acid Sequence↗

IS Rm31, a new insertion sequence of the IS 66 family in Sinorhizobium meliloti.

Sinorhizobium meliloti natural populations show a high level of genetic polymorphism possibly due to the presence of mobile genetic elements such as insertion sequences (IS), transposons, and bacterial mobile introns. The analysis of the DNA sequence polymorphism of the nod region of S. meliloti p SymA megaplasmid in an Italian isolate led to the discovery of a new insertion sequence, IS Rm31. IS Rm31 is 2,803 bp long and has 22-bp-long terminal inverted repeat sequences, 8-bp direct repeat sequences generated by transposition, and three ORFs (A, B, C) coding for proteins of 124, 115, and 541 amino acids, respectively. ORF A and ORF C are significantly similar to members of the transposase family. Amino acid and nucleotide sequences indicate that IS Rm31 is a member of the IS 66 family. IS Rm31 sequences were found in 30.5% of the Italian strains analyzed, and were also present in several collection strains of the Rhizobiaceae family, including S. meliloti strain 1021. Alignment of targets sites in the genome of strains carrying IS Rm31 suggested that IS Rm31 inserts randomly into S. meliloti genomes. Moreover, analysis of IS Rm31 insertion sites revealed DNA sequences not present in the recently sequenced S. meliloti strain 1021 genome. In fact, IS Rm31 was in some cases linked to DNA fragments homologous to sequences found in other rhizobia species.

Base Composition↗

Mutagenesis of the Bacillus subtilis "-12, -24" promoter of the levanase operon and evidence for the existence of an upstream activating sequence.

The levanase operon of Bacillus subtilis is controlled by RNA polymerase associated with sigma 54 factor and by the LevR activator that is homologous to the NifA/NtrC family of regulators. A "-12, -24" promoter is present at the appropriate distance from the transcription start site. The drastic down effect of base substitutions in the TGGCAC, TTGCA consensus sequence on the expression of the levanase operon confirmed the involvement of the "-12, -24" region in promoter function. Deletion derivatives of the upstream sequence of the operon promoter were constructed using translational levD'-'lacZ fusions and were integrated as single copies at the amyE locus of the B. subtilis chromosome. A cis-acting DNA sequence that is required for activation of the operon promoter by LevR was identified. This regulatory sequence is about 50 base-pairs long and is centered 125 base-pairs upstream from the transcription start site in a region containing a 16 base-pair palindromic structure. This region of dyad symmetry functions as a regulatory element when placed up to at least 600 base-pairs upstream from the "-12, -24" promoter, although the efficacy of activation is lowered. Thus, in common with most sigma 54-dependent promoters, an upstream activating sequence (UAS) is involved in the control of expression of the levanase operon. The isolation and characterization of eight mutations in the UAS region confirmed the importance of the palindromic structure in promoter activation. Moreover, the expression of the levanase operon was inhibited by placing the UAS in trans on a multicopy plasmid, probably through titration of the LevR polypeptide. In conclusion, the levanase promoter region can be divided into two regulatory sequences: the "-12, -24" promoter recognized by the sigma 54 RNA polymerase holoenzyme and the UAS, an inverted repeat sequence that is probably the LevR binding site.

Amino Acid Sequence↗

Tumorigenic poxviruses: genomic organization of malignant rabbit virus, a recombinant between Shope fibroma virus and myxoma virus.

The genome of malignant rabbit virus (MRV), a newly discovered tumorigenic poxvirus of rabbits, has been analyzed using cloned DNA probes from Shope fibroma virus (SFV) and myxoma virus. Under high stringency conditions for Southern blotting such that SFV probes do not cross-hybridize with myxoma virus DNA, it is demonstrated that greater than 90% of the MRV genome has been derived from myxoma virus, and that approximately 10 kb of SFV-derived sequences have substituted for a similar amount of myxoma sequences. Mapping of the MRV genome indicates that the SFV sequences are present in two regions of the genome, one in each copy of the MRV terminal inverted repeat sequence. Furthermore, fine mapping studies of the integration sites for SFV into the myxoma background show that these SFV sequences are not symmetrical with respect to the left and right genomic termini. At the left end, 4 kb of SFV-derived DNA maps between 6 and 10 kb from the terminus, while at the right end about 5.5 kb of SFV sequences are found to extend at least 1 kb further toward the unique internal sequences. Based on this asymmetrical bipartite distribution of SFV sequences in MRV, a two-stage model to rationalize the origin of MRV is proposed. This model postulates an initial recombination event similar to gene conversion between myxoma and SFV at the right terminus of myxoma, followed by an incomplete transposition of only part of these SFV sequences to the left terminus.

Animals↗

Expression of the testis-specific histone H1t gene: evidence for involvement of multiple cis-acting promoter elements.

The histone H1t gene is expressed exclusively in testis primary spermatocytes. Previous studies indicate that accumulation of H1t mRNA occurs only in primary spermatocytes in normal rats and in transgenic mice bearing the rat H1t transgene. In this study, DNA sequences of human, monkey, mouse, and rat H1t genes were compared and found to be almost identical in the proximal promoter region extending from the H1/AC box through the TATAA box. In addition to conserved elements common to replication-dependent H1 promoters, the H1t promoter contains a unique TE element, and sequences within this element may contribute to enhanced expression of the gene in primary spermatocytes. Two imperfect inverted repeat sequences designated TE1 and TE2, that are located within the larger TE element, overlap a central GC-rich region and bind specifically to nuclear proteins derived from primary spermatocytes. Protein interactions characterized by methylation interference and UV cross-linking experiments indicate that a complex of proteins with a molecular mass of approximately 180 kDa binds TE1. The GC-rich region in H1t and in some replication dependent histone H1 promoters contains an Sp1 consensus sequence. Although the H1t/TE element that contains the GC-rich region binds nuclear proteins, it does not appear to bind Sp1 obtained from cell populations enriched in primary spermatocytes as determined by electrophoretic mobility supershift assays using polyclonal anti-Sp1 antibodies.

Animals↗

ZntR is a Zn(II)-responsive MerR-like transcriptional regulator of zntA in Escherichia coli.

We have identified the promoter/operator region of the zntA gene of Escherichia coli and shown that Zn(II) is the primary inducer of expression of this Zn(II)/Cd(II) export gene. The promoter PzntA shows sequence similarities to the promoters of mercury resistance (mer) operons, including a long spacer region containing an inverted repeat sequence. The gene encoding the transcriptional regulator of PzntA, designated zntR, has been identified from genome sequence data, by expression of the gene product and by insertional inactivation/complementation. The ZntR product is a member of the MerR family of transcriptional regulators and appears to act as a hypersensitive transcriptional switch. A hybrid MerR/ZntR protein has been constructed and indicates that the C-terminal region of ZntR recognizes Zn(II).

Adenosine Triphosphatases↗

Structure of a nuclease-sensitive region inside the immunoglobin kappa gene: evidence for a role in gene regulation.

A discrete chromatin region inside the active immunoglobulin kappa gene is preferentially accessible to cleavage by nucleolytic enzymes. This region comprises 200-250 bp of DNA, and is situated within the large intron of the gene, approximately 600 bp upstream from the constant region coding sequence. The local chromatin structure of this region correlates with tissue-specific kappa gene expression: it is resistant to nucleolytic digestion in the inactive kappa genes of murine brain and liver nuclei, but becomes uniquely sensitive to cleavage by deoxyribonuclease I or by a variety of restriction endonucleases in the chromatin of kappa-producing cells. Nuclease sensitivity at this site occurs in both rearranged and unrearranged kappa alleles, and can be maintained in the absence of ongoing kappa transcription. The nucleotide sequence of the hypersensitive region has been selectively conserved in evolution, and includes both a 7 bp inverted repeat sequence and a short segment homologous to the transcriptional enhancer elements of certain eukaryotic viruses. Molecular events occurring at this locus may play a role in the regulation of kappa gene expression, perhaps by influencing the activity of promoter sequences several kilobases upstream.

Alleles↗

Natural instability of Agrobacterium vitis Ti plasmid due to unusual duplication of a 2.3-kb DNA fragment.

The octopine/cucumopine (o/c) Ti plasmids of Agrobacterium vitis carry two T regions, TA and TB. The TA region resembles the octopine TL region. The TB region contains the auxin synthesis genes TB-iaaM and TB-iaaH and the cucumopine synthesis gene cus. Within the group of o/c isolates, strains 2608 and 2641 are closely related. However, 2641 lacks the TB region. The restriction maps of pTi2608 and pTi2641 were established and showed that the TB deletion resulted from intramolecular recombination between two directly repeated sequences separated by 66 kb in pTi2608. The 2,294-bp repeated sequence lacks inverted repeats and does not duplicate its target site, indicating that it is not a classical bacterial insertion sequence (IS element). It was therefore called an RSAv element (repeated sequence of A. vitis). The RSAv element carries two open reading frames: ORF234 is homologous to the traR gene of the A. tumefaciens nopaline Ti plasmid pTiC58; ORF488 is homologous to the sucrose phosphorylase gene of Leuconostoc mesenteroides and the glucosyl transferase A gene of Streptococcus mutans. The RSAv repeat starts precisely at the start codon of ORF488 and ends two base pairs 3' of the stop codon of ORF234. The structural organization of the RSAv element suggests that the amplification event did not result from a random amplification process. A study of the distribution of the two RSAv copies (RSAv-1 and RSAv-2) in pTi2608 and other o/c isolates indicates that the ancestor o/c Ti plasmid contained only RSAv-1 and that this sequence was duplicated at one point during the divergent evolution of the o/c Ti plasmids.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Overproduction, solubilization, purification and DNA-binding properties of AmpR from Citrobacter freundii.

AmpR belongs to the LysR family of prokaryotic DNA-binding transcriptional regulators and controls induction of the enterobacterial ampC beta-lactamase gene. The ampR gene of Citrobacter freundii was deregulated by employing the polymerase chain reaction to introduce an efficient ribosome-binding sequence and suitable restriction enzyme sites for cloning into a chemically inducible tac-promoter expression vector. When induced in Escherichia coli, the modified ampR gene rapidly overproduced the AmpR protein as an insoluble aggregate. The AmpR protein could be solubilized with 1.32 M guanidine/HCl and remained soluble when dialyzed against 0.5 M NaCl. The solubility properties of AmpR were exploited to selectively precipitate and resolubilize the protein in a nearly homogenous state. AmpR was then purified by a single gel-filtration chromatography step which demonstrated that AmpR exists in solution as a monodisperse homodimeric protein. Several milligrams of purified AmpR could be obtained routinely from a 1-1 culture of induced bacteria. A DNA-binding assay buffer containing 300 mM potassium glutamate and 30% glycerol was found to stabilize AmpR and used to demonstrate sequence-specific DNA-binding. Additionally, purified AmpR binds a half-operator DNA with an inverted-repeat sequence which competes with binding by the wild-type operator. These findings are discussed in terms of the helix-turn-helix DNA-binding motif, whereby AmpR is proposed to interact with its wild-type operator as a dimer of dimers.

Bacterial Proteins↗

Sequence analysis of termini of conjugative transposon Tn916.

Transposon Tn916 is a 16.4-kilobase, broad-host-range, conjugative transposon originally identified on the chromosome of Enterococcus (Streptococcus) faecalis DS16. Its termini have been sequenced along with the junction regions for two different insertions. The ends were found to contain imperfect inverted repeat sequences with identity at 20 of 26 nucleotides. Further in from the ends, imperfect directly repeated sequences were present, with 24 of 27 nucleotides matching. The transposon junction regions contained homologous segments but of a nature not consistent with a direct duplication of the target sequence. Within the right terminus was a potential outwardly reading promoter. Tn916 is believed to transpose via an excision-insertion mechanism; based on the analyses of the termini, as well as two target sequences (before insertion and after excision), a possible model is suggested.

Base Sequence↗

Structure of the genome of equine herpesvirus type 3.

Restriction endonuclease mapping studies were performed to determine the molecular structure of the genome of equine herpesvirus type 3 (EHV-3). Purified EHV-3 DNA, either unlabeled or 32P-labeled, was analyzed using the restriction enzymes BamHI, BclI, BglII, EcoRI, and HindIII. The findings that four 0.5 M (molar) fragments were present, that two of these were terminal fragments, and that all 0.5 M fragments contained homologous DNA sequences as judged by DNA hybridization analyses indicated that DNA sequences located at one terminus are repeated within the molecule and that two populations of molecules exist with regard to the arrangement of this pair of shared sequences. Mapping of BamHI, BclI, BglII, EcoRI, and HindIII fragments by double digestion of intact EHV-3 DNA, reciprocal digestion of isolated restriction enzyme fragments, and blot hybridization experiments revealed that the EHV-3 genome is a linear, double-stranded DNA molecule with a molecular size of 96.2 +/- 0.48 MDa and is comprised of two covalently linked segments, designated L (long) and S (short). The S region is approximately 22.9 MDa in size and consists of a unique segment (Us) of approximately 5.8 MDa bracketed by 8.5 MDa inverted repeat sequences that allow the S region to invert relative to the fixed L region which is approximately 73.3 MDa in size and consists only of unique sequences. Thus, these data confirm that EHV-3 DNA exists in two isomeric forms and has a molecular structure similar to that of the genomes of EHV-1 (B. E. Henry, S. A. Robinson, S. A. Dauenhauer, S. S. Atherton, G. S. Hayward, and D. J. O'Callaghan, Virology 115, 97-114, 1981; D. J. O'Callaghan, G. A. Gentry, and C. C. Randall, "The Herpesvirus," Vol. 2, pp. 215-318, Plenum, New York, 1983; D. J. O'Callaghan, B. E. Henry, J. H. Wharton, S. A. Dauenhauer, R. B. Vance, J. Staczek, and R. A. Robinson, "Developments in Molecular Virology," Vol. 1, pp. 387-418, Nijhoff, The Hague, 1981; W. T. Ruyechan, S. A. Dauenhauer, and D. J. O'Callaghan, J. Virol., 42, 297-300, 1982), pseudorabies virus (W. Stevely, J. Virol., 22, 232-234, 1977; T. Ben-Porat, F. J. Rixon, and M. L. Blankenship, Virology, 95, 285-294, 1979), varicella-zoster virus (A. M. Dumas, J. L. Geelen, M. W. Weststrate, P. Wertheim, and J. Van Der Noordaa, J. Virol., 39, 390-400, 1981; S. E. Straus, H. S. Aulakh, W. T. Ruyechan, J. Hay, T. A. Casey, G. F. Vande Woude, J. Owens, and H. A. Smith, J. Virol., 40, 516-525, 1981.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Physical and gene mapping of chloroplast DNA from Atriplex triangularis and Cucumis sativa.

A rapid and simple method for constructing restriction maps of large DNAs (100-200 kb) is presented. The utility of this method is illustrated by mapping the Sal I, Sac I, and Hpa I sites of the 152 kb Atriplex triangularis chloroplast genome, and the Sal I and Pvu II sites of the 155 kb Cucumis sativa chloroplast genome. These two chloroplast DNAs are very similar in organization; both feature the near-universal chloroplast DNA inverted repeat sequence of 22-25 kb. The positions of four different genes have been localized on these chloroplast DNAs. In both genomes the 16S and 23S ribosomal RNAs are encoded by duplicate genes situated at one end of the inverted repeat, while genes for the large subunit of ribulose-1,5-bisphosphate carboxylase and a 32 kilodalton photosystem II polypeptide are separated by 55 kb of DNA within the large single copy region. The physical and genetic organization of these DNAs is compared to that of spinach chloroplast DNA.

Base Composition↗

The invertible P-DNA segment in the chromosome of Escherichia coli.

In the chromosome of many strains of Escherichia coli K12 the excisable element e14 is found, which contains an invertible DNA region. This invertible P region, and the gene responsible for the inversion (pin) were cloned, together with other e14 sequences. The element e14 contains a gene which kills the host cell. This can be repressed by a function also coded by e14. The kil and repressor genes as well as the attachment site of the element were mapped in different regions of the element. The invertible segment and pin gene were sequenced. The invertible segment is 1794 bp long, and contains one large internal open reading frame of 879 bp and reading frames which overlap the end pont of the invertible segment. Although pin highly homologous to gin of phage Mu, neither the genetic organization of the P segment nor the sequence of the putative proteins resemble the invertible G segment of phage Mu (which codes for genes involved in tail fiber assembly). The complete DNA sequences of both invertible segments were screened for homology. No resemblance was found. The P segment is flanked by inverted repeat sequences of 16 bp. Comparison of these with related inversion systems points out that the recombination site maps probably within a 2-bp region. This cross-over site is contained within a short palindromic sequence (AAACC AA GGTTT) which is more or less conserved in the recombination sites of all related DNA invertases.

Bacterial Proteins↗

Molecular analysis of the macrolide-lincosamide resistance gene region of a novel plasmid from Staphylococcus hyicus.

Resistance to macrolides and lincosamides in Staphylococcus hyicus has been shown to be encoded by a 4.0-kb plasmid designated pSES21. It differed distinctly in its restriction map from all other staphylococcal macrolide resistance plasmids reported so far. Southern blot hybridisation with gene probes specific for staphylococcal erm genes demonstrated that the macrolide resistance gene belonged to hybridisation class C. Analysis of the ermC gene revealed that the deduced amino-acid sequence of the pSES21-encoded ErmC methylase exhibited c. 93% identity with the ErmC methylase encoded by plasmid pE194. The ermC gene of pSES21 was expressed constitutively and sequence analysis of the regulatory region showed multiple base-pair insertions and substitutions in the translational attenuator. As a consequence of these mutations, the reading frame of the small regulatory peptide was destroyed and a novel pair of inverted repeated sequences was generated. Previous studies identified sequence deletions and sequence duplications in the ermC regulatory region as the basis for constitutive ermC gene expression. The multiple point mutations shown in the pSES21-encoded ermC translational attenuator represent a novel kind of structural alteration in this regulatory region and may explain constitutive ermC gene expression by pairing of the newly generated inverted repeated segments in the presence of a functionally deleted reading frame for the small regulatory peptide.

Amino Acid Sequence↗

DNA sequence analysis of an immediate-early gene region of the herpes simplex virus type 1 genome (map coordinates 0.950 to 0.978).

The nucleotide sequence of 4 kilobases of DNA from within the short region of the genome of herpes simplex virus type 1 has been determined. This portion of DNA contains the junctions of the terminal and inverted repeat sequence components with the unique sequence component and the 5'-regions of the genes which encode the Vmw 12, Vmw 68 and Vmw 175 immediate-early polypeptides. The transcription and translation initiation sites of all three genes and the 5' and 3' boundaries of the Vmw 12 and Vmw 68 gene introns have been localized on the DNA sequence and shown to be flanked by sequences which resemble those found in similar positions in other eukaryotic genes. For the Vmw 12 and Vmw 68 genes the promoters, the 5'-non-coding regions of the mRNAs, and the introns lie within the terminal and internal inverted repeats respectively while the polypeptide-coding regions lie in the short unique component. The introns consist largely of tandemly reiterated copies of a 22-nucleotide sequence: the Vmw 12 gene intron contains seven of these and the Vmw 68 gene intron five. The Vmw 175 gene is located entirely within the short repeats, of which those regions sequenced here have the extremely high G + C content of 78%, in marked contrast to the value of 66% obtained for the adjacent region of the unique sequence component. Prediction of the complete amino acid sequence of the Vmw 12 polypeptide, accounting for a mol. wt. of 9830, and of the first 523 amino-terminal amino acids of the Vmw 175 polypeptide has been made from the DNA sequence. The polypeptide-coding region of the Vmw 175 gene has an average G + C content of 80% but nevertheless specifies a wide range of amino acid types because of the maximal assignment of G and C residues to colon third base positions.

Amino Acid Sequence↗

Identification and sequence analysis of IS1297, an ISS1-like insertion sequence in a Leuconostoc strain.

The insertion sequence (IS) ISS1 from Lactococcus lactis was amplified from lactococcal genomic DNA using a primer to the 18-bp inverted repeat sequence. The amplified product hybridized to a single EcoRI fragment in a total genomic DNA digest of Leuconostoc mesenteroides ssp. dextranicum NZDRI 2218. The DNA sequence of this ISS1-like element (IS1297) and the Le. mesenteroides sequences flanking the IS were determined and compared with other iso-ISS1 elements. No direct repeats were found immediately flanking IS1297; however, direct repeats were present approximately 60 bp on either side of the insertion site. IS1297 contained a major open reading frame (ORF) of 681 bp, encoding a putative 226-amino-acid protein with 96.5% homology to the presumed transposase of ISS1. An overlapping ORF of 174 bp in the same orientation was also present. A putative ORF in the opposite orientation to the transposase ORF, which has been shown in some iso-ISS1 elements, was not present in IS1297. IS1297 was shown to hybridize with other dairy Leuconostoc strains. This is the first sequence of an ISS1-like element from a genus other than Lactococcus; however, IS1297 has close similarity to the lactococcal iso-ISS1 elements, especially the iso-ISS1 element from the lactose plasmid, pTD1.

Base Sequence↗