Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “LEPTOSPIRA”

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 379 records · Page 21Linked to original sources

Biotinylated probes to detect Leptospira interrogans on dot blot hybridization or by in situ hybridization.

Total genomic biotinylated probes which can identify leptospires by hybridization on filters or by in situ hybridization are described in this study. According to the weak G + C content of the strains studied (35-39%) and owing to the decreasing melting temperature (Tm) due to overbiotinylation, hybridization and wash temperatures were optimized at 33 degrees C and at 42 degrees C respectively. Fourteen serovars of Leptospira interrogans belonging to 11 different serogroups and three serovars of Leptospira biflexa were used in this study. Cross-hybridization results show that it is possible, by means of such probes, specifically to recognize pathogenic strains. These probes did not hybridize with the three saprophytic strains: L. buenos-aires, L. patoc and L. andamana. We also ran a total genomic probe, specific to the serovar buenos-aires which hybridizes only with homologous DNA.

Biotin↗

A clone of Leptospira interrogans sensu stricto is the major cause of leptospirosis in the archipelago of Andaman and Nicobar Islands, India.

AIMS: Andaman and Nicobar Islands in India has a century long history of human leptospirosis. Several isolates have been recovered over the years from different locations. The present study was undertaken to understand the clonal relationship between all these pathogenic leptospires recovered from these islands. METHODS AND RESULTS: Arbitrarily primed polymerase chain reaction (AP-PCR) was employed to genetically characterize 40 isolates recovered during 1995--2001 and their fingerprints were compared with those of 26 reference strains of known genetic and serological affinities. Sequences of PCR-amplified products from representative isolates were compared with those of different strains belonging to seven genospecies. AP-PCR fingerprints revealed that 32 of the 40 isolates were clonal in nature and fingerprints of all the isolates matched with known reference strains of pathogenic Leptospira interrogans sensu stricto. Comparison of sequence data of PCR amplified products of reference strains and isolates also corroborated these findings. CONCLUSIONS: The study revealed that 80% of the isolates recovered from these islands were clonal in nature and all the isolates taken in the study belonged to Leptospira interrogans sensu stricto. SIGNIFICANCE AND IMPACT OF THE STUDY: An extension of the study in animal population would help in understanding the transmission dynamics of this commonly circulating clone in these islands, which in turn might help in effective control of this public health problem.

Base Sequence↗

First human isolate of Leptospira interrogans as serovar bratislava in Italy.

A strain of Leptospira interrogans was isolated from a patient suffering from leptospirosis and was typed by the Cross Agglutination Absorption test using monoclonal antibodies prepared against different serovars of the Australis serogroup. This newly isolated strain belonged to serovar bratislava. It is the first reported isolation from man, in Italy, of Leptospira bratislava, thus supporting the emerging role of this serovar in human leptospirosis.

Agglutination Tests↗

Rapid distinction between Leptonema and Leptospira by PCR amplification of 16S-23S ribosomal DNA spacer.

The PCR amplification of the genomic DNA of Leptonema illini strain 3055 using primers directed against conserved regions of the rRNA operon provided evidence that the 16S and 23S rRNA genes were linked via an intergenic spacer region. The sequencing of the intergenic spacer region indicated that it was 435 nucleotides in length and sequence similarity searches revealed that it bore no homology to any known sequences including tRNA available in databases. Further investigations using Southern blot hybridization revealed that there were two copies of these linked genes in the genome. However, similar PCR studies on a representative strain from each of the 23 serogroups of Leptospira interrogans, which are pathogenic, and eight strains from the 6 serogroups of Leptospira biflexa, which are non-pathogenic, revealed that the 16S and 23S rRNA genes were not linked.

Base Sequence↗

Localization of the Leptospira interrogans metF gene on the CII secondary chromosome.

An open reading frame of 885 nucleotides was identified as the Leptospira interrogans metF gene. The deduced amino acid sequence (294 amino acids) showed similarities with Escherichia coli methylene tetrahydrofolate reductase (MetF or MTHFR) (33% identity) and with the N-terminal part of human MTHFR (33% identity). The L. interrogans metF gene complements an E. coli metF mutant to prototrophy, suggesting the functionality of the folate branch converging to form methionine. In addition, the L. interrogans MetF was found to be thermolabile. The metF gene belonged to the CII secondary chromosome, in contrast to the previously isolated metY and metX genes, which have been localized to the CI chromosome of Leptospira sp.

5,10-Methylenetetrahydrofolate Reductase (FADH2)↗

First evidence for a restriction-modification system in Leptospira sp.

The LE1 leptophage exhibited a host range restricted to the saprophytic Leptospira biflexa [Saint Girons et al., Res. Microbiol. 141 (1990) 1131-1133] and mainly to the Patoc 1 strain (hereafter called PFRA) kept in the Paris, France collection. Results of titration of LE1 lysates indicated the presence of a host-controlled modification and restriction system within PUSA (Patoc 1 strain maintained in the Morgantown, WV, USA collection) that was absent in PFRA. Because genomic DNA of PITAL (Patoc 1 strain maintained in Trieste, Italy) appeared smeared in pulsed field gel electrophoresis (PFGE), this strain is likely to contain nucleases that are activated upon DNA isolation. Moreover, comparative NotI digestions of PUSA and PFRA DNAs, as visualized by PFGE, indicated that PUSA belonged to a different serovar than PFRA. Finally, 16S ribosomal sequence analysis indicated that PUSA belonged to the saprophytic Leptospira meyeri species, while PITAL and PFRA appertained to L. biflexa. The evolutionary significance and the importance of the restriction and modification enzymes or non-specific nucleases within strains for genetic experiments are discussed.

Amino Acid Sequence↗

Leptospira serology in small ruminants on St. Croix, U.S. Virgin Islands.

A serological survey of 16 serovars of Leptospira interrogans, previously reported in tropical small ruminants, was undertaken to determine the serovars involved and the prevalence of these antibodies in sheep and goats on St. Croix, U. S. Virgin Islands (USVI). Seven of eight goat herds (108 animals) had at least two seropositive animals in each herd with an individual animal seroprevalence of 26%. The 53 sheep tested (one flock only) showed a 32% seroprevalence. Antibodies against seven serovars were detected in goats (autumnalis, ballum, bataviae, bratislava, canicola, icterohemorrhagiae, and pyrogenes). In addition, hardjo antibodies were detected in sheep. Serovar autumnalis accounted for about 30% of seropositive animals in each species. Many animals showed titers against more than one serovar. The number of seropositive animals suggests Leptospira may be a factor in the health of small ruminants on St. Croix.

Agglutination Tests↗

Evaluation of a hardjo-pomona vaccine to prevent leptospiruria in cattle exposed to a natural challenge with Leptospira interrogans serovar hardjo.

The efficacy of a vaccine against Leptospira interrogans serovar pomona and Leptospira interrogans serovar hardjo was evaluated in a group of dairy heifers that were serologically negative at the time of vaccination and later subjected to natural challenge with L. interogans serovar hardjo. Thirty-nine heifers were vaccinated twice, at a one-month interval, with a commercially prepared bivalent vaccine, while 43 unvaccinated heifers were used as controls. After vaccination, microscopic agglutination (MA) titres of serums to L. interrogans serovar hardjo ranged from 32 to 512, and those to L. interrogans serovar pomona ranged from 32 to 2048. Titres resulting from vaccination were short-lived and after the first vaccination the serums of 95% of vaccinated heifers did not react in the MA test by 24 weeks. The first indication of infection in the heifers was noted at week 6, and by week 16, elevated MA titres (greater than or equal to 128) to L. interrogans serovar hardjo had occurred in 62% of unvaccinated heifers and had increased to 85% by week 24. At week 18, 18% of the vaccinated heifers and 56% of the unvaccinated heifers had leptospiruria (p less than 0.01); after 22 weeks, 13% of the vaccinated heifers and 58% of the unvaccinated heifers showed evidence of leptospiruria (p less than 0.01).

Agglutination Tests↗

Prevalence of antibodies of Leptospira serovars in beef cattle in central Queensland.

OBJECTIVE: To obtain up-to-date data on the prevalence of antibodies to Leptospira serovars in central Queensland beef herds preliminary to assessing their role in bovine subfertility and the role of cattle as a zoonotic reservoir. DESIGN: Sera from 2857 female cattle in 68 central Queensland beef herds were tested for antibodies to 14 Leptospira serovars using the microscopic agglutination test. Vaccination use and age of cattle were collected to enable the calculation of crude and age-stratified seroprevalences. RESULTS: The most commonly detected antibodies were to serovars hardjo (15.8% crude seroprevalence), tarassovi (13.9%), pomona (4.0%) and szwajizak (2.2%). Vaccinates were omitted from the hardjo and pomona seroprevalence data. The seroprevalence for hardjo and pomona tended to increase with age of the animals. CONCLUSION: These results are broadly similar to those of previous serological surveys. The data suggest that serovars other than hardjo, pomona and tarassovi, are unlikely to have a significant role in bovine subfertility and that cattle are unlikely to be a source of human infection with them in central Queensland.

Agglutination Tests↗

Determination of susceptibilities of 26 Leptospira sp. serovars to 24 antimicrobial agents by a broth microdilution technique.

The MICs of 24 antimicrobials for 26 Leptospira spp. serovars were determined using a broth microdilution technique. The MICs at which 90% of isolates tested were inhibited (MIC(90)s) of cefepime, imipenem-cilastatin, erythromycin, clarithromycin, and telithromycin were all </=0.01 microg/ml. The MIC(90)s of amoxicillin, aztreonam, cefdinir, chloramphenicol, and penicillin G were >/=3.13 microg/ml. Many antimicrobials have excellent in vitro activity against Leptospira.

Anti-Bacterial Agents↗

Selective isolation of leptospiras from contaminated material by incorporation of neomycin to culture media.

Incorporation of neomycin to the culture medium was found to be effective in inhibiting Escherichia coli contaminants without interfering with the growth of serotype L. autumnalis. The growth of 12 other Leptospira serotypes was unaffected by the addition of 300 mug of neomycin per ml to Ellinghausen medium or 5 mug/ml to Fletcher medium. Neomycin-containing medium was found to be of value in the isolation of leptospiras from cultures of blood from infected laboratory animals. A higher percentage of isolates was obtained in swine kidneys from an abattoir in medium containing neomycin than resulted from the same medium without antibiotic or with 5-fluorouracil. Contaminated leptospiral cultures growing in media with 5-fluorouracil were purified by subculturing into neomycin-containing media.

Animals↗

Death and lysis of leptospirae when cultured in asbestos-filtered growth media.

Death and lysis of leptospirae, when cultured in asbestos-filtered bovine albumin polysorbate 80 media, was quantitated. The pathogens (virulent and avirulent) required 2 x 10(6) cells/ml to initiate growth in such media, whereas inocula of 2 to 20 cells/ml grew in control medium. Saprophytic leptospirae initiated growth from 2 cells/ml in asbestos-filtered medium as well as control medium. The adverse action of asbestos-filtered medium was not removed by storage of medium for 2 years at 25 C and was not diminished when such medium was frozen at -80 C. Washing with water, HCl and NaHCO(3)-NaCl, citric acid, and medium components did not remove the lytic activity associated with asbestos-filtered culture medium. Continuous subculture in asbestos-filtered medium was possible from large inocula; however, upon subsequent dilution and reinoculation into asbestos-filtered media, there was no evidence of acquired resistance, and all pathogens failed to grow.

Agglutination Tests↗

Limited diagnostic capacities of two commercial assays for the detection of Leptospira immunoglobulin M antibodies in Laos.

The diagnostic utility of immunochromatographic (Leptotek) and enzyme-linked immunosorbent assay (ELISA; Panbio) tests for the detection of Leptospira immunoglobulin M antibodies was assessed in febrile adults admitted in Vientiane, Laos. Both tests demonstrated poor diagnostic accuracy using admission serum (Leptotek sensitivity of 47.3% and specificity of 75.5%: ELISA sensitivity of 60.9% and specificity of 65.6%) compared to the Leptospira "gold standard" microscopic agglutination test.

Chromatography↗

Protein-free and low-protein media for the cultivation of Leptospira.

A protein-free medium composed of charcoal-detoxified Tweens (polysorbates), vitamins B12 and B1, inorganic salts, and organic buffer is described that supports the growth and subculture of pathogenic and saprophytic Leptospira. Growth was initiated from small inocula, and cell densities of 10(9) organisms per ml were attained. Antigenicity and immunogenicity of Leptospira cultivated in this medium were similar to those of cells cultivated in serum-containing media. The protein-free medium was converted to a low-protein medium by the addition of 0.1% bovine serum albumin.

Antigens, Bacterial↗

Molecular cloning and sequence analysis of the gene encoding LipL41, a surface-exposed lipoprotein of pathogenic Leptospira species.

We report the cloning of the gene encoding a surface-exposed leptospiral lipoprotein, designated LipL41. In a previous study, a 41-kDa protein antigen was identified on the surface of Leptospira kirschneri (D. A. Haake, E. M. Walker, D. R. Blanco, C. A. Bolin, J. N. Miller, and M. A. Lovett, Infect. Immun. 59:1131-1140, 1991). We obtained the N-terminal amino acid sequence of a staphylococcal V8 proteolytic-digest fragment in order to design an oligonucleotide probe.A Lambda ZAP II library containing EcoRI fragments of L. kirschneri DNA was screened, and a 2.3-kb DNA fragment which contained the entire structural lipL41 gene was identified. The deduced amino acid sequence of LipL41 would encode a 355-amino-acid polypeptide with a 19-amino-acid signal peptide, followed by an L-X-Y-C lipoprotein signal peptidase cleavage site. A recombinant His6-LipL41 fusion protein was expressed in Escherichia coli in order to generate specific rabbit antiserum. LipL41 is solubilized by Triton X-114 extraction of L. kirschneri; phase separation results in partitioning of LipL41 exclusively into the detergent phase. At least eight proteins, including LipL41 and the other major Triton X-114 detergent phase proteins, are intrinsically labeled during incubation of L. kirschneri in media containing [3H] palmitate. Processing of LipL41 is inhibited by globomycin, a selective inhibitor of lipoprotein signal peptidase. Triton X-100 extracts of L. kirschneri contain immunoprecipitable OmpL1 (porin), LipL41, and another lipoprotein, LipL36. However, in contrast to LipL36, only LipL41 and OmpL1 were exposed on the surface of intact organisms. Immunoblot analysis of a panel of Leptospira species reveals that LipL41 expression is highly conserved among leptospiral pathogens.

Amino Acid Sequence↗

Functional analysis of genes in the rfb locus of Leptospira borgpetersenii serovar Hardjo subtype Hardjobovis.

Lipopolysaccharide (LPS) is a key antigen in immunity to leptospirosis. Its biosynthesis requires enzymes for the biosynthesis and polymerization of nucleotide sugars and the transport through and attachment to the bacterial membrane. The genes encoding these functions are commonly clustered into loci; for Leptospira borgpetersenii serovar Hardjo subtype Hardjobovis, this locus, named rfb, spans 36.7 kb and contains 31 open reading frames, of which 28 have been assigned putative functions on the basis of sequence similarity. Characterization of the function of these genes is hindered by the fact that it is not possible to construct isogenic mutant strains in Leptospira. We used two approaches to circumvent this problem. The first was to clone the entire locus into a heterologous host system and determine if a "recombinant" LPS or polysaccharide was synthesized in the new host. The second approach used putative functions to identify mutants in other bacterial species whose mutations might be complemented by genes on the leptospiral rfb locus. This approach was used to investigate the function of three genes in the leptospiral rfb locus and demonstrated function for orfH10, which complemented a wbpM strain of Pseudomonas aeruginosa, and orfH13, which complemented an rfbW strain of Vibrio cholerae. However, despite the similarity of OrfH11 to WecC, a wecC strain of E. coli was not complemented by orfH11. The predicted protein encoded by orfH8 is similar to GalE from a number of organisms. A Salmonella enterica serovar Typhimurium strain producing no GalE was used as a background in which orfH8 produced detectable GalE enzyme activity.

Animals↗

Molecular characterization of thermoinduced immunogenic proteins Q1p42 and Hsp15 of Leptospira interrogans.

Leptospira interrogans is a mammalian pathogen which must adapt to a range of new environmental conditions including temperature change when it infects new hosts. In vitro studies of organisms cultured at 30 degrees C and shifted to 37 degrees C for 5 to 7 days have confirmed that synthesis of several proteins involved in equine infection is regulated in response to temperature change (J. E. Nally, J. F. Timoney, and B. Stevenson, Infect. Immun. 69:400-404, 2001). In order to specifically identify antigenic proteins upregulated at 37 degrees C, groups of three ponies were immunized with organisms shifted to 37 degrees C for 5 to 7 days or with organisms maintained at 30 degrees C. A lambda ZAP II genomic DNA library was screened with the pool of antisera to organisms shifted to 37 degrees C. Clones reactive with this pool but unreactive with the pool of pony antisera to organisms cultured at 30 degrees C were selected for further analysis. Sequence analysis of the first two clones identified open reading frames for proteins designated Qlp42 and Hsp15. Qlp42 is predicted to be an outer membrane lipoprotein. Its synthesis was upregulated when cultures were shifted from 30 to 37 degrees C and downregulated when cultures were shifted from 37 to 30 degrees C. Although the predicted molecular mass of Qlp42 is 39.8 kDa for the mature protein, Qlp42-specific equine antiserum was reactive with two bands of 30 and 29.5 kDa. Hsp15 is a stress response protein and a member of the Hsp20/alpha-crystallin family. PCR detected homologues of qlp42 and hsp15 in pathogenic serovars of L. interrogans but not in the nonpathogenic Leptospira biflexa. Enzyme-linked immunosorbent assays of antibody in convalescent sera from mares naturally infected with L. interrogans suggest that Qlp42 is expressed during leptospiral infection.

Amino Acid Sequence↗