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Simultaneous conjugal transfer in Lactococcus to genes involved in bacteriocin production and reduced susceptibility to bacteriophages.

Conjugal matings were performed between Lactococcus lactis DRC1 (a lactose-fermenting (Lac+), bacteriocin-producing (Bac+) strain) and L. lactis HID113 (Lac- and Bac-). Transconjugant derivatives of HID113 were identified on the basis of lactose fermentation, resistance to the DRC1 bacteriocin (dricin) or reduced sensitivity to phage sk1. Regardless of how they were identified, all transconjugants gave fewer and smaller plaques with phages c2 and sk1 than did HID113. All but one of 275 transconjugants tested also produced dricin, suggesting some functional relationship or close genetic linkage between the reduced phage sensitivity and dricin production and resistance. Some transconjugants were also Lac+, but this property was unstable.

Bacteriocins

A transposon-like element on the lactose plasmid of Lactococcus lactis subsp. lactis Z270.

An inverted repeat previously called IR was identified on the lactose plasmid of Lactococcus lactis subsp. lactis Z270 by self-annealing; it was now named IS1076. The two sequences were 3.3 kb apart. Both copies were cloned in E. coli, sequenced and found to be identical, except for an additional 44 bp direct repeat at the 5' end of the right-hand copy; they were thus respectively 1296 bp (IS1076R) and 1252 bp (IS1076L) long. Both elements end in near-perfect 39 bp inverted repeats, similar to the IS904 termini. Promoter consensus sequences and a RBS site precede an ORF1 of 384 amino acids. Subclones of IS1076R and IS1076L produced a new 44 kDa protein corresponding to the size of the ORF1. The distal part of the ORF1 coding region is very similar to the IS3 ORFI sequence and the IS904 ORF sequence, and the proximal part shows some homologies with IS3 ORFII. A three-base target is present as a direct repeat flanking the 5.9 kb genetic block including IS1076L, IS1076R and the internal region, resulting in a structure similar of that of a transposon.

Amino Acid Sequence

Cloning and partial characterization of genes for ribosomal ribonucleic acid in Lactococcus lactis subsp. lactis.

A cosmid gene library of the genome of Lactococcus lactis subsp. lactis 712 was probed for the presence of 16S rRNA genes, using 32P 5' end-labelled 16S rRNA fragments. Cosmid DNA from positive clones responsible for hybridisation was subcloned into a high copy number vector and a restriction map was constructed. The location of the 16S, 23S and 5S rRNA genes was determined on this map. Transcriptional promoter activity was identified upstream of the 5' end of the 16S rRNA gene. By probing L. lactis 712 chromosomal DNA cut with a range of restriction endonucleases, with a conserved oligonucleotide to the 5' end of the 16S rRNA gene, 6 copies of rRNA genes were identified.

Base Sequence

Plasmid involvement in the formation of a spontaneous bacteriophage insensitive mutant of Lactococcus lactis.

Lactococcus lactis subsp. lactis biovar. diacetylactis DPC721 is a spontaneous bacteriophage insensitive mutant of strain DPC220, isolated after challenge with an industrial bacteriophage, phi D1. Plasmid analysis demonstrated that the bacteriophage insensitivity was associated with the absence of two native DPC220 plasmids (pAH82 and pAH33), and the presence of a novel plasmid (pAH90) in DPC721. The plasmids were transferred by conjugative mobilization to a plasmid free background where it was confirmed by restriction mapping that pAH90 is a co-integrate formed by the precise recombination of pAH82 and pAH33. The resistance phenotype encoded by pAH90 was also active against two bacteriophage homologous for the plasmid-free strain. Plasmid pAH90 was shown to encode at least two independent resistance mechanisms, including an adsorption-inhibition mechanism and a restriction and modification system. The adsorption-inhibition mechanism encoded by the co-integrate plasmid was specific for one of the phage used in this study.

Bacteriophages

The cellular location and effect on nisin immunity of the NisI protein from Lactococcus lactis N8 expressed in Escherichia coli and L. lactis.

Lactococcus lactis cells secreting the lantibiotic nisin, commercially used for food preservation, must protect their cell membrane against the pore-forming activity of extracellular nisin. The nisI gene product has been suggested to be a lipoprotein, which due to the location on the extracellular surface would be an ideal candidate for an immunity protein. In vivo labelling of NisI from L. lactis N8 expressed in Escherichia coli proved that NisI is a lipoprotein. Expression of nisI in the nisin-sensitive L. lactis MG1614 strain resulted in immunologically active protein on the cytoplasmic membrane in comparable amounts to the immune strain L. lactis N8, but only to slightly increased nisin immunity, suggesting that additional proteins are needed for full immunity.

Bacterial Proteins

Cloning and expression of the Lactococcus lactis subsp. cremoris SK11 gene encoding an extracellular serine proteinase.

The Lactococcus lactis subsp. cremoris SK11 plasmid-located prtP gene, encoding a cell-envelope-located proteinase (PrtP) that degrades alpha s1-, beta- and kappa-casein, was identified in a lambda EMBL3 gene library in Escherichia coli using immunological methods. The complete prtP gene could not be cloned in E. coli and L. lactis on high-copy-number plasmid vectors. However, using a low-copy-number vector, the complete prtP gene could be cloned in strains MG1363 and SK1128, proteinase-deficient derivatives of L. lactis subsp. lactis 712 and L. lactis subsp. cremoris SK11, respectively. The proteinase deficiency of these hosts was complemented to wild-type (wt) levels by the cloned SK11 prtP gene. The caseinolytic specificity of the proteinase specified by the cloned prtP gene was identical to that encoded by the wt proteinase plasmid, pSK111. The expression of recombinant plasmids containing 3' and 5' deletions of prtP was analyzed with specific attention directed towards the location of the gene products. In this way the expression signals of prtP were localized and overproduction was obtained in L. lactis subsp. lactis. Furthermore, a region at the C terminus of PrtP was identified which is involved in cell-envelope attachment in lactococci. A deletion derivative of prtP was constructed which specifies a C-terminally truncated proteinase that is well expressed and fully secreted into the medium, and still shows the same capacity to degrade alpha s1-, beta- and kappa-casein.

Cell Membrane

Cloning of usp45, a gene encoding a secreted protein from Lactococcus lactis subsp. lactis MG1363.

We have cloned usp45, a gene encoding an extracellular secretory protein of Lactococcus lactis subsp. lactis strain MG1363. Unidentified secreted 45-kDa protein (Usp45) is secreted by every mesophilic L. lactis strain we tested so far and it is chromosomally encoded. The nucleotide sequence of the usp45 gene revealed an open reading frame of 1383 bp encoding a protein of 461 amino acids (aa), composed of a 27-aa signal peptide and a mature protein initiated at Asp28. The gene contains a consensus promoter sequence and a weak ribosome-binding site; the latter is rather uncommon for Gram-positive bacteria. Expression studies in Escherichia coli showed efficient synthesis and secretion of the protein. Usp45 has an unusual aa composition and distribution, and it is predicted to be structurally homologous with P54 of Enterococcus faecium. Up to now, no biological activity could be postulated for this secreted protein.

Amino Acid Sequence

Identification of a nucleotide sequence conserved in Lactococcus lactis bacteriophages.

A genetic element which is conserved in the genomes of numerous Lactococcus lactis bacteriophage isolates has been identified and its nucleotide sequence determined. Approximately 95-99% of all L. lactis bacteriophages collected over a period of six years from two geographically distinct sources carry this conserved DNA fragment. Genetic variation in other regions of the genomes of these bacteriophages is exhibited by changes in the overall restriction patterns. The complete nt sequence for a 1.6-kb region from nine independent L. lactis bacteriophage isolates was determined and only five changes in the nt sequence were observed within a span of 1536 bp. This region has a single large 1356-bp open reading frame (ORF) coding for a 51-kDa protein. Three out of the five changes occur in a 187-bp region, 5' to this large ORF. The two additional changes are found within the 1356-bp ORF, which results in two amino acid substitutions that do not, however, change the net charge of the protein. The encoded protein is extremely charged and shares some homology with yeast translation initiation factor. In addition, there is a potential zinc-binding domain within this protein, similar to those observed in genes from bacteriophages T4 and T7.

Amino Acid Sequence

Cloning and nucleotide sequence of the major capsid protein from Lactococcus lactis ssp. cremoris bacteriophage F4-1.

The gene (mcp) coding for the major capsid protein (MCP) of the Lactococcus lactis ssp. cremoris bacteriophage F4-1 has been cloned and its nucleotide sequence determined. The mcp gene was localized, by Western blotting with rabbit antiserum against intact bacteriophage, within a 3.3-kb HindIII-Spe I fragment and the sequence of the entire region determined. The 35-kDa MCP is coded for by a 905-bp open reading frame preceded by a putative ribosome-binding site. Deletion analysis and N-terminal sequencing of the MCP confirmed the identification of the gene coding for this bacteriophage MCP.

Amino Acid Sequence

Isolation, sequence and expression in Escherichia coli, Bacillus subtilis and Lactococcus lactis of the DNase (streptodornase)-encoding gene from Streptococcus equisimilis H46A.

A partial library of BclI-generated chromosomal DNA fragments from Streptococcus equisimilis H64A (Lancefield Group C) was constructed in Escherichia coli. Clones displaying either streptokinase or deoxyribonuclease (streptodornase; SDC) activities were isolated. The gene (sdc) expressing the SDC activity was allocated on the 1.1-kb AccI DNA subfragment. Sequence analysis of this DNA fragment revealed the presence of one open reading frame, which could encode a protein of 36.8 kDa. The N-terminal portion of the deduced protein exhibited features characteristic of prokaryotic signal peptides. The sdc gene was expressed in E. coli, Bacillus subtilis and Lactococcus lactis. As observed for S. equisimilis, in the heterologous Gram + hosts, at least part of the SDC protein was secreted into the medium.

Amino Acid Sequence

Cloning and sequence analysis of the gene encoding L-lactate dehydrogenase from Lactococcus lactis: evolutionary relationships between 21 different LDH enzymes.

Lactate dehydrogenase (LDH; EC1.1.1.27) is a key enzyme in the fermentation of milk by lactic acid bacteria used in the dairy industry. An 800-bp DNA fragment containing part of the gene (ldh) encoding LDH was amplified from Lactococcus lactis in a polymerase chain reaction using primers designed from the partial amino acid sequence of a lactococcal LDH. This fragment was radioactively labelled and used to probe a phage lambda library of Lc. lactis genomic DNA. Fragments containing ldh were subcloned from lambda to pUC13 and pUC18 and a 1.2-kb region was sequenced. The deduced aa sequence reveals that the lactococcal LDH is highly homologous to the LDHs of other organisms. The active site and several other domains of unknown function are highly conserved between all LDH enzymes (prokaryotic and eukaryotic). An evolutionary study of LDH sequences clearly divides the prokaryotic from the eukaryotic enzymes except for the Bifidobacterium longum LDH which anomalously groups with the eukaryotic enzymes. The LDHs from Gram-positive bacteria form a separate group from the enzymes from the Gram-negative organisms. The lactococcal LDH is phylogenetically closest to the streptococcal LDH.

Amino Acid Sequence

Sequence encoding ribosomal protein L33 of Lactococcus lactis.

A cloned fragment from Lactococcus lactis chromosome encoding the L33 ribosomal protein was sequenced. Two incomplete open reading frames (ORFs) were also found: the upstream ORF shows similarity to the tetracycline-resistance protein (Tet) of Bacillus stearothermophilus, and the downstream ORF shows homology to a protein of Bacillus subtilis participating in sporulation (SpoVE), and to proteins of Escherichia coli involved in cell division (FtsW) and the maintenance of cell shape (RodA).

Amino Acid Sequence

Transcriptional regulation of the Tn5276-located Lactococcus lactis sucrose operon and characterization of the sacA gene encoding sucrose-6-phosphate hydrolase.

The Lactococcus lactis sucrose operon was located on the conjugative transposon Tn5276 and the nucleotide sequence of the sacA gene, encoding sucrose-6-phosphate hydrolase, and its surrounding regions was determined. Northern blot analysis showed that the sucrose operon contains two divergent transcriptional units of 3.2 and 3.6 kb, the expression of which is considerably higher in cells grown on sucrose than in cells grown on glucose. This was confirmed by primer extension studies which demonstrated that transcription is initiated at two sucrose-inducible promoters with a back-to-back organization. The 3.2-kb transcriptional unit includes the sacB gene which most probably encodes the sucrose-specific enzyme II of the phosphotransferase system, and may contain the gene encoding fructokinase. The 3.6-kb transcriptional unit includes genes sacA and sacR. The protein encoded by the sacR gene is likely to be involved in the regulation of the sac operon expression, since its deduced N terminus is homologous to helix-turn-helix DNA-binding domains found in several regulatory proteins.

Amino Acid Sequence

Nonidentity between plasmid and chromosomal copies of ISS1-like sequences in Lactococcus lactis subsp. lactis CNRZ270 and their possible role in chromosomal integration of plasmid genes.

The nucleotide sequence of an insertion sequence (IS) observed during mating experiments using the lactose-protease plasmid, pUCL22, of Lactococcus (Lc.) lactis subsp. lactis CNRZ270, was found to be similar to that of ISS1 from Lc. lactis subsp. lactis ML3. The IS was named ISS1RS. The chromosome of this strain contains several copies of ISS1-like IS as assessed by hybridization. One of these copies was cloned and named ISS1CH. Its sequence differs from that of the plasmid-borne copy, and appears to be more closely related to ISS1N from Lc. lactis subsp. cremoris SK11. This suggests independent introduction of both ISS1 elements. Moreover, the observation of plasmid genes integrated in the CNRZ270 chromosome near ISS1CH suggests that their presence is the result of integration by a Campbell mechanism using both IS homologies. ISS1-like sequences were also found on plasmids of numerous Lc. lactis strains, as well as one out of seven Lactobacillus (Lb.) casei and one out of three Lb. plantarum strains examined.

Amino Acid Sequence

Location, characterization and expression of lytic enzyme-encoding gene, lytA, of Lactococcus lactis bacteriophage phi US3.

Gene lytA, which encodes lytic enzyme (LytA), of the isometric Lactococcus lactis bacteriophage phi US3, was cloned and expressed in Escherichia coli. The lytA gene was located on the physical map of the phi US3 32-kb DNA that contains cohesive ends. Initial expression of lytA was detected by lysis of an overlay of cells of the phage-sensitive strain, L. lactis SK112. However, LytA appeared to have a broad spectrum and induced lysis in more than 30 different lactococcal strains. The nucleotide sequence of lytA showed a single open reading frame (ORF) of 774 bp encoding a protein of 258 amino acids (aa) with a calculated M(r) of 28,977. This is in agreement with the size of 29 kDa as determined for LytA produced in E. coli using a T7 expression system. The lytA gene is preceded by an ORF that may code for a hydrophobic peptide of 66 aa containing a putative secretion signal, and two putative transmembrane helices. The deduced aa sequence of the phage phi US3 LytA shows similarities to that of the autolysin of Streptococcus pneumoniae which is known to be an amidase.

Amino Acid Sequence

New tools for the physical and genetic mapping of Lactococcus strains.

Tools for the genetic and physical analysis of the Lactococcus lactis subsp. lactis genome were developed. Plasmid pRC1 does not replicate in Gram+ bacteria; it contains unique ApaI, NotI and SmaI restriction sites and an erythromycin-resistance (ErR) encoding gene, ermAM, functional in L. lactis subsp. lactis. When a chromosomal L. lactis subsp. lactis DNA fragment was cloned into this vector, the resulting plasmid became integrated, after transformation, into the bacterial chromosome by homologous recombination in a Campbell-like manner. The integration lead to the generation of new rare restriction sites near to the host fragment. This procedure allows precise mapping of cloned genes onto the chromosomal restriction map. The mapping of the his operon of L. lactis subsp. lactis provides an illustration. The cloning into pRC1 of an IS element able to transpose into the chromosome of the target cell, gave rise to an integration plasmid able to insert randomly rare restriction sites onto the bacterial chromosome. The L. lactis IS element, ISS1RS, was cloned into pRC1, yielding pRL1. Pulsed-field gel electrophoresis analysis of ErR clones obtained after transformation with pRL1, showed that this plasmid was stably integrated at a number of different sites in the L. lactis subsp. lactis chromosome, via transposition. Plasmids pRC1 and pRL1 can greatly facilitate the construction of the physical and genetic map of the chromosome of lactococcal strains.

Cloning, Molecular

Sequence of a gene (lap) encoding a 95.3-kDa aminopeptidase from Lactococcus lactis ssp. cremoris Wg2.

A gene (lap) coding for a Lactococcus lactis ssp. cremoris Wg2 aminopeptidase was cloned from genomic libraries of size-fractionated lactococcal DNA. The 5' end of the lap gene was isolated by using a polymerase chain reaction hybridization probe of 77 nucleotides (nt) synthesized from two degenerate primers derived from the N-terminal amino acid (aa) sequence of the lactococcal lysine-aminopeptidase (LAP). The remaining part(s) of the gene were recovered by a search for overlapping sequences in Southern blots of variably restricted genomic DNA. The complete nt sequence of the lap gene has been determined. A large open reading frame of 2538 nt is predicted to encode a polypeptide of 846 aa (approx. 95.3 kDa; pI, 5.93). A recombinant plasmid containing the lap gene with its flanking sequences was shown to direct in vivo synthesis of LAP activity in Escherichia coli, indicating that the cloned DNA fragment is the lap gene. Primer extension analysis of lap mRNA and Northern blot hybridization indicated the gene transcript to be approx. 3.0 kb in size with a 5'-untranslated region of 19-22 nt. Comparison of the deduced aa sequence indicates that the LAP has extensive homology with the super family of Zn(2+)-metallohydrolases and shows identity in the core deca-peptide consensus sequence for the Zn(2+)-binding motif of these enzymes.

Amino Acid Sequence

The isolation of lactococcal promoters and their use in investigating bacterial luciferase synthesis in Lactococcus lactis.

18 different promoter elements, encompassing a 71-fold range of activity, were isolated from the chromosome of Lactococcus lactis (Ll) MG1363 and from an uncharacterised small isometric bacteriophage of Ll. The Vibrio fischeri (Vf) luciferase-encoding gene (lux) was used as a reporter in Ll, so that the promoters could be identified strictly on the basis of their activity in the homologous host. Sequence and primer extension analysis of six of the promoters has provided a new consensus sequence for the -35 and -10 hexanucleotide motifs present upstream from lactococcal transcription start points. When the nucleotide sequence of the most active promoter (P15) was compared with that of the highly expressed Ll usp45 gene, a novel 8-bp region of homology was identified which corresponded to the newly derived consensus -35 sequence element; this element may therefore be of general importance in Ll gene expression. The isolation of these promoters has also enabled us to investigate the characteristics of the Vf Lux activity in Ll under different physiological conditions using promoters of different strengths. Lux activity in Ll is critically dependent upon the phase of cell growth. Luminescence falls sharply in stationary phase, possibly due to a lack of FMNH2. In contrast to the kinetics of Lux function in Escherichia coli (Ec), Lux activity in Ll declines rapidly after addition of the substrate; the rate of decay is dependent both on the growth phase and on the strength of the promoter. It is apparent that the previously reported thermal instability of Lux is in fact a function of the host organism in which Lux is expressed.(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence