Search PubMed⌕ Search

Biomedical subjects

J Josephsen

Publications and source records attributed to J Josephsen.

At least 19 recordsLinked to original sources

Detection of lactococcal 936-species bacteriophages in whey by magnetic capture hybridization PCR targeting a variable region of receptor-binding protein genes.

AIMS: To develop PCR assays able to distinguish between groups within lactococcal 936-species bacteriophages, as defined by their different receptor-binding protein (RBP) genes. METHODS AND RESULTS: DNA sequences of RBP genes from 17 lactococcal bacteriophages of the 936-species were compared, and six phage groups were identified. For each phage group a specific primer pair targeting a variable region of the RBP genes was designed. In nine of 20 whey samples, from dairies with recorded phage problems, between one and six phage groups were identified by conventional PCR. The sensitivity and specificity of the method was improved by magnetic capture hybridization (MCH)-PCR using a capture probe targeting an 80-bp highly conserved region just upstream from the RBP gene in all the investigated phages. The MCH-PCR was performed on 100 microl whey samples and the detection limit of the assay was 10(2)-10(3) PFU ml(-1) as opposed to the detection limit of 10(4) PFU ml(-1) for conventional PCR performed on 1-microl whey samples. CONCLUSIONS: In this study, PCR assays have been developed to detect six different types of RBP genes in lactococcal 936-species bacteriophages. SIGNIFICANCE AND IMPACT OF THE STUDY: The PCR assays have practical applications at cheese plants for detection of 936-species phages with different RBP and thereby potentially with different host ranges. This knowledge will make it possible to improve starter culture rotation systems in the dairy industry.

Animals↗

Characterization and purification of acidocin CH5, a bacteriocin produced by Lactobacillus acidophilus CH5.

AIMS: To characterize and to purify a bacteriocin produced by Lactobacillus acidophilus strain with its activity restricted to Gram-positive bacteria. METHODS AND RESULTS: Native acidocin CH5, a bacteriocin produced by L. acidophilus CH5 an isolate from a dairy starter culture forms in MRS (Oxoid, Basingstoke, UK) broth high-molecular weight aggregates which can dissociate into smaller units (retained by 5 kDa membrane) with higher activity. Acidocin CH5 was purified using combinations of chromatographic methods based on hydrophobic and cation exchange principles and the N-terminal region was sequenced. CONCLUSIONS: Based on our results it is evident that acidocin CH5 belongs, according to bacteriocin classification, to the class II bacteriocins with identical N-terminal amino acid sequence described in the literature previously. SIGNIFICANCE AND IMPACT OF THE STUDY: The study has provided further data on bacteriocin acidocin CH5 from class II with wide spectrum of antimicrobial activity atypical for bacteriocins produced by L. acidophilus sharing the same homology.

Amino Acid Sequence↗

Improvement of phage defence in Lactococcus lactis by introduction of the plasmid encoded restriction and modification system LlaAI.

AIMS: To study the ability of the plasmid-encoded restriction and modification (R/M) system LlaAI to function as a bacteriophage resistance mechanism in Lactococcus lactis during milk fermentations. METHODS AND RESULTS: Plasmid pAIcat4, carrying the R/M system LlaAI and a chloramphenicol resistance cassette, was introduced into the plasmid-free strain L. lactis MG1614 and the industrial strain L. lactis 964. By measuring changes in conductivity the influence of different phage on the growth was determined. CONCLUSIONS: The plasmid-encoded R/M system LlaAI significantly improves the bacteriophage resistance of L. lactis during milk fermentations. SIGNIFICANCE AND IMPACT OF THE STUDY: It is essential to determine the potential of a phage defence mechanism in L. lactis starter culture strains during growth in milk before steps are taken to improve starter cultures. This study shows that LlaAI is useful for improvement of starter cultures.

Animals↗

The ability of the plasmid-encoded restriction and modification system LlaBIII to protect Lactococcus lactis against bacteriophages.

AIMS: To investigate the potential of the plasmid-encoded restriction and modification (R/M) system LlaBIII to protect Lactococcua lactis against bacteriophages during milk fermentations. METHODS AND RESULTS: The R/M system LlaBIII on plasmid pJW566 was cloned with a chloramphenicol cassette, resulting in plasmid pJK1. When introduced into L. lactis strains, pJK1 conferred increased phage resistance against the three most common lactococcal phage species 936, c2, and P335 and three unclassified industrial phages. The growth of the strains in RSM was not affected by the presence of plasmid pJK1. CONCLUSIONS: The plasmid-encoded R/M system LlaBIII has great ability to protect L. lactis strains against bacteriophages in milk fermentations. SIGNIFICANCE AND IMPACT OF THE STUDY: This study evaluates the ability of the LlaBIII R/M system to function as a phage defence mechanism which is an essential step prior to considering utilizing it for improving starter cultures.

Bacterial Proteins↗

The LlaGI restriction and modification system of Lactococcus lactis W10 consists of only one single polypeptide.

The naturally occurring 12.1-kb plasmid, pEW104, in Lactococcus lactis ssp. cremoris W10 was found to confer decreased bacteriophage sensitivity to its host. Plasmid pEW104 encodes a non-classic restriction and modification (R/M) system, named LlaGI, consisting of only one single polypeptide. Analysis of the amino acid sequence revealed the presence of a catalytic motif and seven helicase-like motifs (DEAD-box motifs) characteristic of type I and III endonucleases, followed by four conserved methylase motifs characteristic of adenine-methylases. A comparison between LlaGI and the very similar R/M system, LlaBIII, suggests that the C-terminal region of LlaGI, apparently containing no known motifs, could possibly specify target DNA recognition. Conceivably, the LlaGI gene is included in the operon of the plasmid replication machinery. Finally, it is proposed that LlaGI represents a variant of the type I R/M systems.

Amino Acid Sequence↗

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↗

TPW22, a lactococcal temperate phage with a site-specific integrase closely related to Streptococcus thermophilus phage integrases.

The temperate phage TPW22, induced from Lactococcus lactis subsp. cremoris W22, and the evolutionarily interesting integrase of this phage were characterized. Phage TPW22 was propagated lytically on L. lactis subsp. cremoris 3107, which could also be lysogenized by site-specific integration. The attachment site (attP), 5'-TAAGGCGACGGTCG-3', of phage TPW22 was present on a 7.5-kb EcoRI fragment, a 3.4-kb EcoRI-HindIII fragment of which was sequenced. Sequence information revealed the presence of an integrase gene (int). The deduced amino acid sequence showed 42 and 28% identity with integrases of streptococcal and lactococcal phages, respectively. The identities with these integrase-encoding genes were 52 and 45%, respectively, at the nucleotide level. This could indicate horizontal gene transfer. A stable integration vector containing attP and int was constructed, and integration in L. lactis subsp. cremoris MG1363 was obtained. The existence of an exchangeable lactococcal phage integration module was suggested. The proposed module covers the phage attachment site, the integrase gene, and surrounding factor-independent terminator structures. The phages phiLC3, TP901-1, and TPW22 all have different versions of this module. Phylogenetically, the TPW22 Int links the phiLC3 lactococcal integrase with known Streptococcus thermophilus integrases.

Attachment Sites, Microbiological↗

The antimicrobial activity of acidocin CH5 in MRS broth and milk with added NaCl, NaNO3 and lysozyme.

The ability of acidocin CH5, a bacteriocin from Lactobacillus acidophilus CH5 in the form of neutralized and heated supernatant, to prevent the growth of the indicator Lactobacillus delbrueckii subsp. lactis LTI 30 alone or together with other antimicrobials was investigated. The inhibitory activity of acidocin CH5 was higher in MRS broth than in reconstituted skim milk (RSM). In MRS broth and RSM, 1.92 and 32 AU acidocin CH5/ml, respectively, caused 97 and 89% inhibition of the indicator Lactobacillus delbrueckii subsp. lactis LTI 30. The presence of 5 and 10% milk fat in RSM decreased the inhibitory activity of acidocin CH5 to 20 and 11%, respectively. The inhibitory activity of acidocin CH5 was also reduced in the presence of NaCl, NaNO3 and lysozyme. In RSM the inhibition was weaker with both acidocin CH5 and NaCl added compared with NaCl alone. In MRS broth the inhibition was stronger with both acidocin CH5 and NaCl added compared with NaCl alone. The inhibition of the indicator Lactobacillus delbrueckii subsp. lactis LTI 30 was stronger with both NaNO3 and acidocin CH5 in MRS broth (but not in RSM) than with only NaNO3 present, but the strongest level was obtained with acidocin CH5 alone. Addition of acidocin CH5 and more than 30 mg/ml lysozyme to MRS broth increased the level of inhibition above the level obtained by acidocin CH5 alone. The indicator Lactobacillus delbrueckii subsp. lactis LTI 30 was also sensitive to NaCl, NaNO3 and lysozyme in both MRS broth and RSM.

Animals↗

Cloning and characterization of the lactococcal plasmid-encoded type II restriction/modification system, LlaDII.

The LlaDII restriction/modification (R/M) system was found on the naturally occurring 8.9-kb plasmid pHW393 in Lactococcus lactis subsp. cremoris W39. A 2.4-kb PstI-EcoRI fragment inserted into the Escherichia coli-L. lactis shuttle vector pCI3340 conferred to L. lactis LM2301 and L. lactis SMQ86 resistance against representatives of the three most common lactococcal phage species: 936, P335, and c2. The LlaDII endonuclease was partially purified and found to recognize and cleave the sequence 5'-GC decreases NGC-3', where the arrow indicates the cleavage site. It is thus an isoschizomer of the commercially available restriction endonuclease Fnu4HI. Sequencing of the 2.4-kb PstI-EcoRI fragment revealed two open reading frames arranged tandemly and separated by a 105-bp intergenic region. The endonuclease gene of 543 bp preceded the methylase gene of 954 bp. The deduced amino acid sequence of the LlaDII R/M system showed high homology to that of its only sequenced isoschizomer, Bsp6I from Bacillus sp. strain RFL6, with 41% identity between the endonucleases and 60% identity between the methylases. The genetic organizations of the LlaDII and Bsp6I R/M systems are identical. Both methylases have two recognition sites (5'-GCGGC-3' and 5'-GCCGC-3') forming a putative stemloop structure spanning part of the presumed -35 sequence and part of the intervening region between the -35 and -10 sequences. Alignment of the LlaDII and Bsp6I methylases with other m5C methylases showed that the protein primary structures possessed the same organization.

Amino Acid Sequence↗

Replication regions of two pairs of incompatible lactococcal theta-replicating plasmids.

Incompatibility tests were performed employing 12 replicons belonging to a family of homologous lactococcal theta-replicating plasmids. Two pairs of incompatible plasmids were found, namely, pFV1001 and pFV1201, and pJW565 and pFW094. The replicons of plasmids pFV1001, pFV1201, pJW565, pJW566, and pFW094 were sequenced. Alignments were made of the replicational origins (repA) and putative replication proteins (RepB) of these and 11 related plasmid sequences. Comparison of the alignments with the incompatibility data indicated that the incompatibility determinant could be contained within the 22-bp tandem repeats DRII and/or the inverted repeat IR1 in repA. In support, the incompatibility determinant of pJW563 was localized to a 743-bp fragment encompassing repA. A stretch of 13 amino acids of RepB was proposed to be responsible for the plasmid-specific initiation of replication. This stretch is part of a domain containing features that are highly conserved within the proposed DNA binding regions of the initiation proteins from several well-characterized plasmids from Gram-negative bacteria, including pSC101, R6K, and mini-F.

Amino Acid Sequence↗

Cloning and analysis of the restriction-modification system LlaBI, a bacteriophage resistance system from Lactococcus lactis subsp. cremoris W56.

The genes coding for the type II restriction-modification (R/M) system LlaBI, which recognized the sequence 5'-C decreases TRYAG-3', have been cloned from a plasmid in Lactococcus lactis subsp. cremoris W56 and sequenced. The DNA sequence predicts an endonuclease of 299 amino acids (33 kDa) and a methylase of 580 amino acids (65 kDa). A 4.0-kb HindIII fragment in pSA3 was able to restrict bacteriophages, showing that the cloned R/M system can function as a phage defense mechanism in L. lactis.

Amino Acid Sequence↗

Restriction-modification systems in Lactococcus lactis.

Several restriction-modification (R-M) systems have been identified in Lactococcus lactis. Most of the systems have been plasmid encoded and function as phage-resistance mechanisms. At least five different type-II R-M systems, LlaAI, LlaBI, LlaCI, LlaDI and LlaEI, were identified in isolates from a mixed Cheddar starter culture. LlaAI and LlaBI recognized the DNA sequences 5'- decreases GATC-3' and 5'-C decreases TRYAG-3', respectively. The genes coding for the LlaAI and LlaBI R-M systems have been cloned and sequenced. The LlaAI R-M system had two genes coding for methyltransferases (MTases) and one gene coding for a restriction endonuclease (ENase). The MTases showed high homology to the MTases from DpnII. The LlaBI R-M system had one gene coding for a MTase and one gene coding for an ENase.

Base Sequence↗

Characterization of the replicon from the lactococcal theta-replicating plasmid pJW563.

The replication region of the lactococcal plasmid pJW563 was localized to a 2.3-kb EcoRI fragment. This DNA fragment was sequenced ans a 1155-bp open reading frame, repB563, encoding a putative protein RepB563 of 385 amino acids was found. An AT-rich noncoding region, repA563, was found upstream of repB563. This segment included several direct and inverted repeats. A downstream 591-bp open reading frame, ORF X, which was not necessary for replication, was putatively translationally coupled to repB563, RepB563 supplied in trans could support replication of a plasmid containing repA563 and a truncated repB563. This observation suggests that RepB563 is a trans-acting replication protein, and repA563 the cis-acting origin of replication, repA563, repB563, and the beginning of ORF X showed high homology to similar regions in a family of lactococcal theta-replicating plasmids. The repA DNA sequences and the RepB amino acid sequences of the plasmids were aligned and the consensus sequences generated. The comparison revealed highly conserved areas among this family of plasmids. In addition, variable domains emerged, presumably having a plasmid specific function, pVS40 and pC1305 were plasmids with replication proteins showing high homology to RepB563. Despite this homology, replication from repA563 could not be supported by the pVS40 or pC1305 replication protein supplied in trans. Likewise the pJW563 protein could not support replication from the pVS40 origin. pJW563 was found to be compatible with the pVS40 and pC1305 replicons. The results indicate that pJW563 belongs to the widespread family of lactococcal theta-replicating pladmids. Despite the high homology between their replicons, the interaction between the replication origin and the protein is highly specific in many cases rendering the plasmids compatible.

Amino Acid Sequence↗

LlaAI and LlaBI, two type-II restriction endonucleases from Lactococcus lactis subsp. cremoris W9 and W56 recognizing, respectively, 5'-/GATC-3' and 5'-C/TRYAG-3'.

Two type-II restriction endonucleases have been purified from Lactococcus lactis subsp. cremoris W9 and W56, the strains isolated from a mixed Cheddar starter. Their characterization showed that LlaAI was an isoschizomer of MboI from Morexella bovis with the cleaving sequence, 5'/GATC-3', being sensitive to methylation of the adenine residue; LlaBI was an isoschizomer to SfcI from Streptococcus faceium with the cleaving sequence, 5'-C/TRYAG-3'. Both LlaAI and LlaBI restriction-modification (R-M) systems are encoded by the plasmids, respectively, pFW094 and pJW563, protecting the harboring strain against phage attack.

Deoxyribonucleases, Type II Site-Specific↗

Antimicrobial activity of lactic acid bacteria isolated from sour doughs: purification and characterization of bavaricin A, a bacteriocin produced by Lactobacillus bavaricus MI401.

Three hundred and thirty-five lactic acid bacteria were isolated from sour doughs and screened for antagonistic activity. Of these 145 showed activity against one or several of the indicator strains used in the screening. The antimicrobial activity of 18 isolates were due to a proteinaceous compound. These 18 isolates belonged to three different Lactobacillus species: Lactobacillus bavaricus, Lactobacillus curvatus and Lactobacillus plantarum. The spectrum of antimicrobial activity for the three species suggested that the inhibitory components were different. The inhibitory compound from Lact. bavaricus MI401 was chosen for further study. The proteinaceous nature, antimicrobial activity against closely-related species, heat resistance and sensitivity to alkaline treatment strongly indicated that this substance was a bacteriocin, which we designated bavaricin A. The bacteriocin was purified to homogeneity by ammonium sulphate precipitation, ion exchange, hydrophobic interaction and reverse-phase chromatography. The purification resulted in 193,000-fold increase in specific activity. SDS-PAGE of bavaricin A showed a molecular weight of 3500-4000 Da. By amino acid sequencing 41 amino acids were determined. Bavaricin A had a bactericidal mode of action and inhibited nine out of 10 Listeria monocytogenes. Lactobacillus bavaricus MI401 produced bavaricin A at temperatures from 4 degrees C to 30 degrees C. The production of active bavaracin A was inhibited at increasing sodium chloride concentration. In the presence of 3% sodium chloride at 4 degrees C no active bavaricin A could be detected. Nitrite (100 ppm) did not affect the production of active bavaricin A.

Amino Acid Sequence↗

Stacking of three different restriction and modification systems in Lactococcus lactis by cotransformation.

Four plasmids encoding restriction and modification (R/M) systems are described that are different in the specificity of their restrictive activity toward the small isometric phage p2 and prolate phage c2. The R/M plasmids were cotransformed into Lactococcus lactis MG1363 with pVS2, encoding resistance to chloramphenicol and erythromycin, to indicate successful transformation events. Analysis of cotransformants showed that three different R/M plasmids could be combined in L. lactis MG1363. The efficiency at which phage plaqued on the transformants decreased as the number of R/M plasmids increased. Some plasmid combinations were unstable suggesting replicon incompatibility.

Chloramphenicol Resistance↗

CRP/cAMP- and CytR-regulated promoters in Escherichia coli K12: the cdd promoter.

Transcriptional regulation of the deoP2 promoter by the cyclic AMP/cyclic AMP receptor protein complex (cAMP/CRP) and the CytR repressor requires two high-affinity CRP targets located around -41 and -93 bp preceding the start site for transcription. Here we report the structure of cddP, another CRP/CytR-regulated promoter. In common with what was found in deo, the cdd promoter also contains multiple CRP targets. Thus, using the DNasel footprinting procedure, tandem CRP binding sites were identified around -41 and -93. These findings support a general model for CytR binding and CytR regulation, in which (i) CytR and the CRP/cAMP complex bind to similar or identical targets, (ii) two or more targets are necessary for proper binding of CytR to a promoter region, and (iii) CytR represses transcription by antagonizing cAMP/CRP activation.

Base Sequence↗