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A variant of the staphylococcal chloramphenicol resistance plasmid pC194 with enhanced ability to transform Lactococcus lactis subsp. lactis.

In our attempts to transform Lactococcus lactis subsp. lactis with pC194, a staphylococcal chloramphenicol resistance plasmid, only a few transformants could be obtained and only when relatively large amounts of plasmid DNA were used. However, when pC194 DNA from lactococcal transformants was introduced back to Staphylococcus aureus and reisolated, it could be retransformed into L. lactis at substantially higher frequencies. It was concluded that pC194 had undergone mutation expanding its host range. By exchanging DNA fragments between the original pC194 and the variant transforming L. lactis (named pVS41), the mutation could tentatively be located within the 1.1-kbp AccI-HaeIII fragment. Comparison of the DNA sequences in the vicinity of the replication plus-origin revealed the formation of an "opal" stop codon (TGA) apparently interrupting the synthesis of the putative protein C for which no function has been described. Cloning this mutation within a 194 bp AccI-MspI fragment on pC194 made this plasmid able to transform L. lactis. Whether the mutation somehow affects functions controlling plasmid host-specificity, or whether the extended host range reflects, for example, mutational inactivation of some lactococcal restriction site, cannot yet be stated on the basis of these data.

Base Sequence↗

Nucleotide sequence of a plasmid pCL2.1 from Lactococcus lactis ssp. lactis ML8.

The nucleotide sequence of a small cryptic plasmid, pCL2.1, from Lactococcus lactis ssp. lactis ML8 was determined. Sequence analysis of the pCL2.1 revealed that it contained 2112 bp, 33.9% GC, and two open reading frames that encoded polypeptides of 26 and 14 kDa. In vitro transcription-translation of the pCL2.1 confirmed the existence of two polypeptides. Based on sequence homology, it is deduced that the ORF2 product functions in plasmid replication by a rolling circle mechanism.

Base Sequence↗

Effects of the generation of single-stranded DNA on the maintenance of plasmid pMV158 and derivatives in Lactococcus lactis.

The effects of the single-strand origins (SSOs) of the broad-host-range streptococcal plasmid pMV158 on (i) the conversion of its single-stranded (ss) DNA replication intermediates to double-stranded (ds) plasmid DNA and (ii) its maintenance were analyzed. pMV158 is distinguished from most other plasmids that replicate by the rolling-circle mechanism by the presence of two single-strand origins of replication, palA and palU. In this paper the results obtained with Lactococcus lactis are presented; complementary studies with Bacillus subtilis are presented in the accompanying paper (Meijer et al., 1995). In the presence of both SSOs, no ss plasmid DNA was observed in L. lactis. The removal of either palA or palU resulted in the appearance of low amounts of ssDNA. High amounts of ssDNA were detected, however, when both SSOs were deleted. The results indicated that both SSOs were active, albeit that palU was the most effective of the two. In the presence of both SSOs, the plasmid was stably maintained in L. lactis under nonselective growth conditions. Also, the derivatives containing only one of the two SSOs were maintained rather stably. In contrast, the derivative devoid of both SSOs was poorly maintained. It was concluded that, in the absence of a functional SSO, the generation of large amounts of ssDNA drastically reduces the maintenance of pMV158 in L. lactis. The results also showed that the presence of the plasmid-located mob gene, required for conjugative mobilization, was involved neither in the accumulation of ssDNA nor in the maintenance of pMV158.

Bacterial Proteins↗

Nucleotide sequence and analysis of pWC1, a pC194-type rolling circle replicon in Lactococcus lactis.

A 2.8-kb cryptic plasmid showing no homology to either pFX3 (rolling circle, pE194-type) or pCI305 (theta-type) lactococcal replicons was identified in Lactococcus lactis subsp. cremoris 2204. The plasmid, pWC1, was compatible with both pCI3340 (a pCI305 derivative) and pFX3 in L. lactis subsp. cremoris 2204. Sequence analysis of pWC1 showed one major ORF encoding a protein with a deduced size of 316 amino acids (aa). Database comparisons showed that the protein was distinct from the pFX- and pCI-type replication proteins (less than 21% aa identity), but shared significant homology (up to 57% aa identity) with the replication proteins from a different group of rolling circle plasmids (pC194-type) commonly found in gram-positive bacteria. A pC194-type rolling circle plasmid has not been previously described in L. lactis. Further sequence analysis showed a conserved double-stranded origin of replication in pWC1 preceded by a large (118-bp) direct repeat. The chloramphenicol-resistance gene from pC194 was inserted into a nonessential region of pWC1 to give pCP12. The host range of pCP12 included Streptococcus thermophilus, Enterococcus faecalis, and Staphylococcus aureus, but not Escherichia coli. Both pCP12 and to a lesser extent pWC1 generated single-stranded DNA (ssDNA) in L. lactis. A possible single-stranded origin of replication was identified by sequence analysis of pWC1 and by comparing levels of ssDNA produced by pCP12 deletion derivatives. The pWC1 replicon may be a useful addition to other replicons currently available for vector construction.

Amino Acid Sequence↗

Molecular analysis of the replication origin of the Lactococcus lactis plasmid pCJ305.

The replication origin region, ori, of the Lactococcus lactis subsp. lactis plasmid pCI305 contains three-and-one-half directly repeated 22-bp sequences and two inverted repeat sequences, IR1 and IR2. These inverted repeat sequences overlap the promoter of the repB gene, which encodes a protein (RepB) essential for plasmid replication. Gel retardation assays, using lactococcal crude cell extracts in which RepB was overproduced, were used to demonstrate that the replication protein interacts with DNA sequences within the origin region. IR1 was identified as a RepB binding site. The -35 region of the repB promoter is contained within the loop of the potential stem-loop structure of IR1, suggesting autoregulation of repB. The pCI305 RepB failed to interact with DNA sequences within the minimal replicons of nine other members of the pCI305 family of plasmids and it was concluded that this DNA-protein interaction was replicon specific. In vivo studies were performed to determine the role of the three-and-one-half copies of the 22-bp sequences. When this sequence was provided in trans on a compatible vector, it resulted in the loss of pCI305 from the cell population (incompatibility).

Bacterial Proteins↗

Genetic analysis of regions involved in replication and cadmium resistance of the plasmid pND302 from Lactococcus lactis.

The 8.8-kb Lactococcus lactis plasmid pND302 encodes resistance to cadmium (CdR). Regions of pND302 involved in replication and CdR were subcloned and sequenced. The replication region is localized on a 1.5-kb region and consists of an open reading frame (repB) preceded by a noncoding AT-rich sequence (ori) which is highly homologous to lactococcal theta-type replicons. The CdR determinant is localized on a 2.9-kb region and encodes putative proteins similar to the Cd(2+)-specific P-type efflux ATPase (CadA) and the transcriptional regulatory repressor (CadC) identified in Staphylococcus aureus, Bacillus firmus, and Listeria monocytogenes. Similar CdR determinants were also detected by PCR in other CdR plasmids isolated from different L. lactis strains.

Adenosine Triphosphatases↗

Characterization of a novel plasmid-encoded HsdS subunit, S.LlaW12I, from Lactococcus lactis W12.

A novel type I restriction-modification specificity subunit, S. LlaW12I, has been identified on the naturally occurring 8.0-kb plasmid pAW122 in the lactic acid bacterium Lactococcus lactis subsp. cremoris W12. Presence of the HsdS protein together with a complete type I restriction-modification system conferred increased phage restriction to the host, indicating exchange of specificity subunits. Sequence analysis showed that the S.LlaW12I subunit is most probably of type IC. Presumably, the hsdS gene is organized together with the repB gene on one transcriptional unit.

Amino Acid Sequence↗

Nucleotide sequence and analysis of pBL1, a bacteriocin-producing plasmid from Lactococcus lactis IPLA 972.

The complete sequence of the 10.9-kbp bacteriocinogenic plasmid pBL1 from Lactococcus lactis subsp. lactis IPLA 972 has been determined. Thirteen ORFs were encountered, of which 5 were incomplete. pBL1 proved to be a narrow-host-range plasmid which replicates neither in Bacilus subtilis nor in Lactobacillus spp. The structural organization of the pBL1 replication region was highly similar to other well-known theta-replicating plasmids of lactococci, at both the untranslated (the replication origin) and the translated (repB and orfX) sequences. As in other plasmids, the product of orfX was not necessary for plasmid replication. However, it was shown to be involved in plasmid stability. Three genes organized in an operon-like structure encompassed, most likely, the bacteriocin-encoding region. Upstream of the origin of replication a nicking site (oriT) was found. This oriT sequence proved to be functional by mobilization of plasmids wearing it. One complete and several partial IS elements were identified on pBL1.

Amino Acid Sequence↗

A highly conserved DNA replication module from Streptococcus thermophilus phages is similar in sequence and topology to a module from Lactococcus lactis phages.

A highly conserved DNA region extending over 5 kb was observed in Streptococcus thermophilus bacteriophages. Comparative sequencing of one temperate and 26 virulent phages demonstrated in the most extreme case an 18% aa difference for a predicted protein, while the majority of the phages showed fewer, if any aa changes. The relative degree of aa conservation was not homogeneous over the DNA segment investigated. Sequence analysis of the conserved segment revealed genes possibly involved in DNA transactions. Three predicted proteins (orf 233, 443, and 382 gene product (gp)) showed nucleoside triphosphate binding motifs. Orf 443 gp showed in addition a DEAH box motif, characteristically found in a subgroup of helicases, and a variant zinc finger motif known from a phage T7 helicase/primase. Tree analysis classified orf 443 gp as a distant member of the helicase superfamily. Orf 382 gp showed similarity to putative plasmid DNA primases. Downstream of orf 382 a noncoding repeat region was identified that showed similarity to a putative minus origin from a cryptic S. thermophilus plasmid. Four predicted proteins showed not only high degrees of aa identity (34 to 63%) with proteins from Lactococcus lactis phages, but their genes showed a similar topological organization. We interpret this as evidence for a horizontal gene transfer event between phages of the two bacterial genera in the distant past.

Amino Acid Sequence↗

Comparative genomics of lactococcal phages: insight from the complete genome sequence of Lactococcus lactis phage BK5-T.

Lactococcus lactis phage BK5-T and Streptococcus thermophilus phage Sfi21, two cos-site temperate Siphoviridae with 40-kb genomes, share an identical genome organization, sequence similarity at the amino acid level over about half of their genomes, and nucleotide sequence identity of 60% over the DNA packaging and head morphogenesis modules. Siphoviridae with similarly organized genomes and substantial protein sequence similarity were identified in several genera of low-GC-content Gram-positive bacteria. These phages demonstrated a gradient of relatedness ranging from nucleotide sequence similarity to protein sequence similarity to gene map similarity over the DNA packaging and head morphogenesis modules. Interestingly, the degree of relatedness was correlated with the evolutionary distance separating their bacterial hosts. These observations suggest elements of vertical evolution in phages. The structural genes from BK5-T shared no sequence relationships with corresponding genes/proteins from lactococcal phages belonging to distinct lactococcal phage species, including phage sk1 (phage species 936) that showed a closely related gene map. Despite a clearly distinct genome organization, lactococcal phages sk1 and c2 showed nine sequence-related proteins. Over the early gene cluster phage BK5-T shared nine regions of high nucleotide sequence similarity, covering at most two adjacent genes, with lactococcal phage r1t (phage species P335). Over the structural genes, the closest relatives of phage r1t were not lactococcal phages belonging to other phage species, but Siphoviridae from Mycobacteria (high-GC-content Gram-positive bacteria). Evidence for recent horizontal gene transfer between distinct phage species was obtained for dairy phages, but these transfers were limited to phages infecting the same bacterial host species.

Computational Biology↗

A study of the substrate specificity of aminopeptidase N from Lactococcus lactis subsp. cremoris Wg2.

A systematic study was made of the ability of aminopeptidase N from Lactococcus lactis subsp. cremoris Wg2 to hydrolyse different peptide substrates. The enzyme showed a marked preference for substrates containing arginine as the N-terminal residue but, to a lesser extent, was also capable of cleaving other residues such as lysine and leucine. There was a tendency for the activity to increase with the hydrophobicity index of the C-terminal residue of dipeptide substrates. It was also observed that the enzyme tended to have higher affinities but lower Vmax values for tripeptides with hydrophobic C-terminal residues. The values determined for Km and Vmax increased with chain length for oligopeptides of the general formula Lys-Phe-(Gly)n, the optimum, as determined from Vmax/Km, being when n = 4. Typical Km values for the most effective substrates were in the range 0.2-0.6 mM.

Amino Acid Sequence↗

Action of a cell-envelope proteinase (CEPIII-type) from Lactococcus lactis subsp. cremoris AM1 on bovine kappa-casein.

The specificity of the cell-envelope proteinase (CEPIII-type) from Lactococcus lactis subsp. cremoris AM1 in its action on bovine kappa-casein was studied. A 4-h digest (pH 6.2, 15 degrees C) of kappa-casein was made with the purified proteinase. The pH-4.6 soluble fraction, representing more than 95% of the whole hydrolysate, was ultrafiltered to obtain a high-molecular-mass (HMM) and a low-molecular-mass (LMM) fraction, which were separately further purified by electrophoretic and chromatographic techniques. Isolated HMM and LMM products were identified by amino acid analysis, end-group determination and mass spectrometry. On-line HPLC/mass spectrometry was also used for the separation of an LMM peptide mixture and the identification of its components. The HMM products formed were the fragments 1-160, 1-151, 1-95 and 1-79 of kappa-casein, whereas the main LMM products found were the 161-169 and 152-160 fragments. The enzyme specificity was concluded to be primarily directed towards the C-terminal region of the substrate molecule by cleavage of the 160-161 and 151-152 peptide bonds. Two minor LMM products were identified as the fragments 96-104 and 103-106, indicating additional cleavage at positions 102-103, 104-105 and 106-107 of the sequence. Also several peptide bonds within the 161-169 sequence were found to be subject to secondary cleavage by the proteinase. From electrophoretic and identification data it is concluded that the lactococcal CEPI, CEPIII and several mixed-type proteinases all act on the peptide bonds at positions 79-80 and 95-96.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Specificity of a cell-envelope-located proteinase (PIII-type) from Lactococcus lactis subsp. cremoris AM1 in its action on bovine beta-casein.

The action of the cell-envelope proteinase (PIII-type) from Lactococcus lactis ssp. cremoris AM1 on bovine beta-casein was studied. The results were compared with those obtained earlier with (PI-type) proteinases from the cell envelope of other L. lactis strains. From a 4-h digest (pH 6.2; 15 degrees C) of beta-casein made with the PIII-type proteinase, 24 peptides were isolated and purified by selective precipitation followed by semi-preparative reversed-phase HPLC. Altogether, these peptides accounted for the preferential splitting of 16 peptide bonds in beta-casein by the PIII-type proteinase. In nine cases the primary cleavage site (P1-P'1) was a Glx-X or X-Glx peptide bond. In ten cases at least one large hydrophobic residue (Met, Leu, Tyr, Phe) formed part of the cleavable bond. The P2-P3 and/or P'2-P'3 regions of the substrate consisted of hydrophobic and/or negatively charged side chains or of side chains potentially involved in hydrogen bonds. Nine of the peptide bonds split were reported previously to be also susceptible to cleavage by PI-type proteinases, although the kinetics may be different. The PIII-type proteinase shows a broader specificity in its initial cleavage of beta-casein than does the PI-type.

Amino Acid Sequence↗

The occurrence of two intracellular oligoendopeptidases in Lactococcus lactis and their significance for peptide conversion in cheese.

Two intracellular oligopeptide-preferring endopeptidases have been detected in Lactococcus lactis. A neutral thermolysin-like oligoendopeptidase (NOP) has been purified to homogeneity and an alkaline oligoendopeptidase has been partially purified. The specificity of the oligoendopeptidases towards important intermediary cheese peptides, produced by chymosin action on the caseins, clearly differs from that of the cell-envelope proteinase (CEP). NOP is active under conditions prevailing in cheese and contributes to initial proteolysis in a young cheese. It probably plays a crucial role in the degradation of an important bitter peptide in cheese, the beta-casein 193-209 fragment. The relatively low activity of the alkaline endopeptidase is further suppressed in cheese by the highly competitive actions of NOP and CEP.

Amino Acid Sequence↗

Lactococcin A overexpression in a Lactococcus lactis subsp. lactis transformant containing a Tn5 insertion in the lcnD gene.

Lactococcin A production in lactococci has recently been linked to a signal-sequence-independent secretory system consisting of a four-gene cluster. Lactococcus lactis subsp. lactis LLM23L-A1 has been obtained after Tn5 mutagenesis of pLLM23, a plasmid containing the gene cluster responsible for lactococcin A production. In contrast to other Tn5-generated mutants, strain LLM23L-Al exhibited a 12-fold increase in lactococcin A production. Overproduction of lactococcin A was not linked to an increased pLLM23 copy number. Restriction-enzyme analysis indicated the site of Tn5 insertion to be at the 3' end of lcnD, and upstream of the lcnA structural gene. From DNA sequencing, the Tn5 insertion was located -79 bp upstream of the transcription start site of the lcnA and lciA genes, eliminating eight amino acids from the C-terminal end of lactococcin D. Northern blots revealed overproduction of a 500-base transcript in strain LLM23L-A1, which corresponded to that predicted from the positions of the lactococcin A operon transcriptional start site and the termination structures. This result suggests that the overproduction of lactococcin A in strain LLM23L-A1 is at the transcriptional level and provides further impetus for elucidating the complete regulatory mechanism for lactococcin A expression.

Bacterial Proteins↗

Antisense RNA directed against the major capsid protein of Lactococcus lactis subsp. cremoris bacteriophage 4-1 confers partial resistance to the host.

Antisense RNA targeted against the major capsid protein (MCP) of Lactococcus lactis subsp. cremoris bacteriophage F4-1 reduced bacteriophage replication by up to 50%. The region containing the mcp gene was oriented to transcribe the antisense strand using a L. lactis subsp. cremoris Wg2 promoter. The size of the mcp insert transcribed affected the level of bacteriophage inhibition and the greatest level of inhibition was achieved using a 301-bp fragment from the 5' end of the mcp. Antisense mcp RNA constructs were stable and did not alter the endogenous plasmid profile in the host, L. lactis subsp. cremoris F4-1. There were, however, some adverse effects on the host during the stationary phase as exhibited by a decline in cell density.

Bacteriophages↗

Lysozyme expression in Lactococcus lactis.

Three lysozyme-encoding genes, one of eukaryotic and two of prokaryotic origin, were expressed in Lactococcus lactis subsp. lactis. Hen egg white lysozyme (HEL) could be detected in L. lactis lysates by Western blotting. No lysozyme activity was observed, however, presumably because of the absence of correctly formed disulphide bonds in the L. lactis product. The functionally related lysozymes of the E. coli bacteriophages T4 and lambda were produced as biologically active proteins in L. lactis. In both cases, the highest expression levels were obtained using configurations in which the bacteriophage lysozyme genes had been translationally coupled to a short open reading frame of lactococcal origin. Both enzymes, like HEL, may prevent the growth of food-spoilage bacteria.

Bacteriophage lambda↗

Action of a cell wall proteinase from Lactococcus lactis subsp. cremoris SK11 on bovine alpha s1-casein.

The cell wall-associated proteinase from Lactococcus lactis subsp. cremoris SK11 was partially purified and incubated with alpha s1-casein for various times up to 48 h. Sixteen trifluoroacetic acid-soluble oligopeptide hydrolysis products were identified by determination of the amino acid sequence. Eleven of these oligopeptides originated from the 78-residue sequence comprising the C-terminal region of alpha s1-casein and were present among the products after the first 60 min of digestion. Three oligopeptides from the N-terminal region and two others from the central region of the alpha s1-casein sequence were also present among the early digestion products although in smaller amounts than most of the oligopeptides from the C-terminal region. No clear consensus sequence of amino acid residues surrounding the cleavage sites could be identified.

Amino Acid Sequence↗