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Transduction of a Proteus vulgaris strain by a Proteus mirabilis bacteriophage.

Only Proteus vulgaris strain PV127 out of many P. vulgaris, P. morganii and Providence strains was transduced to kanamycin resistance by high-frequency transducing variants, 5006MHFTk and 5006MHFTak, of phage 5006M, a general transducing phage for P. mirabilis strain PM5006. The phages adsorbed poorly to strain PV127 and did not form plaques. The transduction frequency of PV127 by these phages was 5 x 10(-8)/p.f.u. adsorbed. Phage 5006M increased the transduction frequencies. Abortive transductants were not detected. Transductants segregated kanamycin-sensitive clones at high frequency and this, together with data from the inactivation of transducing activity of lysates by ultraviolet irradiation, indicated that transduction was by lysogenization. The general transducing property of the phages was not expressed in transductions to auxotrophs of PV127. Transductants (type I) resulting from low multiplicities of phage input adsorbed phage to the same extent as PV127. This suggested a defect in the transducing particles (or host) because single phage 5006M infection converted strain PM5006 to non-adsorption of homologous phage. Type I transductants did not liberate phage, suggesting a defective phage maturation function. Transductants (type II) which arose from higher multiplicities of phage input did not adsorb phage, indicating possible heterogeneity among transducing particles. Phage derived from type II transductants adsorbed poorly to PV127 and transduced it to kanamycin resistance at frequencies similar to those of phages 5006MHFTk and 5006MHFTak, ruling out host-controlled modification as a cause of the low transduction frequencies. This phage transduced PM5006 to antibiotic resistance at high frequencies but generalized transduction was again not detected. It was suggested that general transduction could be performed by particles which, due to a different composition and/or mode of chromosomal integration, made material they carried susceptible to host-cell modification.

Bacteriophages↗

A highly discriminatory multi-typing scheme for Proteus mirabilis and Proteus vulgaris.

Strains of Proteus mirabilis and P. vulgaris isolated in England, Scotland and Sweden were characterised by proticine production-proticine sensitivity (P-S) typing, O serotyping and Dienes typing methods. The determinants of O antigenicity were independent of those determining proticine production and proticine sensitivity. Because of this independence, the combination of P-S typing and O serotyping for the analysis of the 133 serotypable strains separated them into 81 distinct types whereas P-S typing and O serotyping methods alone separated them into only 56 and 19 types respectively. There was a relationship between the Dienes type and the P-S type; the determinants of Dienes compatibility were the proticine production-proticine sensitivity characters. The determinants of O antigenicity appeared to play no role in the Dienes reaction. Some strains that were indistinguishable by P-S typing and O serotyping methods were distinguished by Dienes typing.

Antibiosis↗

Proteus morgani is less frequently associated with urinary tract infections than Proteus mirabilis--an explanation.

The metabolic activities of faecal and urinary strains of Proteus morgani and P. mirabilis were compared. Regardless of origin, the generation time of P. morgani strains in urine was approximately twice as long as that of the P. mirabilis strains. Urease synthesis was constitutive in P. morgani strains but required induction with urea in the P. mirabilis strains. In the presence of urea, the P. mirabilis strains liberated ammonia more rapidly and produced alkaline conditions more quickly than P. morgani strains, although they synthesized much less urease. These characteristics may place P. morgani strains at a disadvantage in comparison with P. mirabilis strains in their ability to cause urinary tract infections.

Ammonia↗

Uropathogenic properties of Proteus mirabilis and Proteus vulgaris.

A group of faecal isolates of Proteus vulgaris and P. mirabilis was studied for the presence of possible virulence factors such as growth rates in urine and broth, haemolysin production, hydrophobicity, sensitivity to the bactericidal activity of human serum and cell invasiveness. Differences were found in haemolysin production, cell invasiveness and experimental virulence in a mouse model. These differences might explain why P. mirabilis is much more common in human urinary-tract infections than P. vulgaris.

Animals↗

Efficacy of a Proteus mirabilis outer membrane protein vaccine in preventing experimental Proteus pyelonephritis in a BALB/c mouse model.

A BALB/c mouse model of nonobstructive, ascending Proteus mirabilis pyelonephritis was characterized bacteriologically, histologically, and serologically from 3 to 28 days. Intravesicular administration of 2 X 10(8) P. mirabilis K7 resulted in the septic death of 9 (16%) of 57 mice by day 15. Among the survivors, K7 colonized the kidneys in great numbers until day 21. Histological examination of the kidneys revealed acute inflammation which was characterized by neutrophil infiltration by day 3, renal necrosis by day 7, and fibroblastic infiltration by day 14 which persisted at least until day 28. The immunoglobulin G response to the outer membrane proteins (OMP) was assessed by enzyme-linked immunosorbent assay and Western blotting (immunoblotting). Anti-OMP immunoglobulin G antibodies were detected as early as day 7, and the reciprocals of their titers rose progressively up to day 28 (i.e., greater than or equal to 500). This model was also used to assess the efficacy of OMP and lipopolysaccharide (LPS) immunization in preventing renal infection. K7 OMP or LPS (100 micrograms) preparations were administered intramuscularly in Freund's complete adjuvant. After 2 weeks, mice were intravesicularly challenged with 2 X 10(8) bacteria of the homologous K7 strain or one of four heterologous strains. Compared with the saline-immunized control group and K7 LPS-immunized mice, K7 OMP recipients were protected from death when challenged by homologous or heterologous strains. In addition, K7 OMP recipients were protected (P less than 0.003) from subsequent renal infection when challenged by the K7 strain and had more rapid bacterial renal clearance when challenged by three of four heterologous strains. OMP recipients produced antibodies which bound major OMP moieties (viz., 36- to 39-kDa cell wall constituents) as assessed by Western blotting. These results support the concept that immunization with selected bacterial protein surface coat constituents can prevent uromucosal infection by interfering with colonization or renal injury.

Animals↗

Inhibition of growth and swarming of Proteus mirabilis and Proteus vulgaris by triclosan.

The MICs of triclosan (2,4,4'-trichloro-2'-hydroxydiphenyl ether) and the effect on swarming were determined for 35 isolates of Proteus mirabilis and 7 isolates of P. vulgaris of animal origin. Both species were susceptible to the antimicrobial agent, and growth of all but one isolate was inhibited by less than 1 microgram/ml in broth and on agar without blood. Swarming was inhibited at triclosan concentrations two- to fourfold less than the MICs. Higher concentrations were required with blood agar than with plain agar for inhibition of growth and swarming.

Cell Movement↗

Adhesion of Proteus mirabilis and Proteus vulgaris to uroepithelial cells following exposure to various antimicrobial agents.

The effect of subinhibitory concentrations of netilmicin, ceftriaxone, cefotaxime, aztreonam and piperacillin on the adherence of Proteus species to uroepithelial cells was examined. Bacterial adhesion to human uroepithelial cells, measured microscopically, was affected by all five antibiotics but to different extents. The most effective was netilmicin. There was a correlation between the decreased rate of bacterial attachment and morphological changes in the drug-exposed bacteria.

Anti-Bacterial Agents↗

[Species-specific detection of Proteus vulgaris and Proteus mirabilis by the polymerase chain reaction].

Sets of primers for the species-specific detection of P. mirabilis and P. vulgaris by the polymerase chain reaction (PCR) were developed. As targets for these primers beta-lactamase and 16S rRNA gene fragments were chosen on the basis of the multiple leveling of the sequences of the DNA of all known P. mirabilis and P. vulgaris isolates. For differential detection oligonucleotides were selected in such a way that primers, specific for P. vulgaris, contained the non-paired nucleotide for P. mirabilis isolate at the 3'-end, and all other nucleotides were complementary to the beta-lactamase gene fragment. Primers, specific for gene 16S rRNA of P. mirabilis, contained the non-paired nucleotide for P. vulgaris isolates at the 3'-end. Standard PCR was carried out for 6 P. mirabilis and P. vulgaris strains. The use of PCR species-specific primers to P. vulgaris DNA made it possible to amplify the DNA fragment of the expected length only for P. vulgaris isolates, while the result of PCR for P. mirabilis was negative. PCR with primers specific to P. mirabilis permitted the detection of amplicon sized 101 nucleotides pairs only for P. mirabilis strains. These primers were optimized so as to use them in the specific differentiation of closely related P. mirabilis and P. vulgaris species by multiplex PCR. Genus-specific primers permitted the detection of bacterial gyrB gene of the genus Proteus were developed also.

Bacteriological Techniques↗

[Serodiagnosis and immunological aspects of Proteus infection. III. Immunological, bacteriological and pathomorphological parallels in experimental Proteus intestinal infections, mono- and mixed].

The intraintestinal infection of 76 rabbits with P. mirabilis in a dose of 10(9) cells/kg, alone or in combination with Sh. sonnei, by the method modified by the authors caused a pathological process in the intestine, which was indicative of Proteus playing an independent role in the etiology of diarrheas. The process had its pronounced clinical, microbiological and immunological characteristics. Specific immunoglobulins, mainly H-antibodies, could be detected in different serological tests with the corresponding antigens, their pattern, level and avidity objectively reflecting the development of the infectious process. In mixed infections the pattern of the contamination of feces with the infective agents and their ability to form colonies after the inoculation of fecal samples were changed, while the level of antibodies to the associates was lower than in monoinfections.

Animals↗

Structure of the O-specific polysaccharide of Proteus mirabilis O11, another Proteus O-antigen containing an amide of D-galacturonic acid with L-threonine.

The O-specific polysaccharide of Proteus mirabilis O11 was studied by sugar analysis, Smith degradation, 1H and 13C NMR spectroscopy, including two-dimensional COSY, TOCSY, NOESY, and 1H-detected 1H, 13C HMQC experiments. The following structure of a pentasaccharide repeating unit of the polysaccharide was established: [formual: see text] where D-GalA6LThr is N-(D-galacturonoyl)-L-threonine. ELISA with anti-P. mirabilis O11 serum showed that D-GalA6LThr is of minor importance for manifesting the O11 immunospecificity.

Amides↗

Structure of the O-polysaccharide and classification of Proteus mirabilis strain G1 in Proteus serogroup O3.

The O-chain polysaccharide of the lipopolysaccharide (LPS) of a previously nonclassified strain of Proteus mirabilis termed G1 was studied by sugar analysis and 1H and 13C NMR spectroscopy, including 2D COSY, TOCSY, rotating-frame NOE (ROESY), H-detected 1H,13C HMQC, and heteronuclear multiple-bond correlation (HMBC) experiments. The following structure of the polysaccharide was established: [carbohydrate structure: see text] where D-GalA6(L-Lys) stands for N(alpha)-(D-galacturonoyl)-L-lysine. The structure of the O-polysaccharide of P. mirabilis G1 is similar, but not identical, to that of P. mirabilis S1959 and OXK belonging to serogroup O3. Immunochemical studies with P. mirabilis G1 and S1959 anti-(O-polysaccharide) sera revealed close LPS-based serological relatedness of P. mirabilis G1 and S1959, and therefore it was suggested to classify P. mirabilis G1 in serogroup O3 as a subgroup. P. mirabilis G1 and S1959 anti-(O-polysaccharide) sera also cross-reacted with LPS of P. mirabilis strains from two other serogroups containing D-GalA6(L-Lys) in the O-polysaccharide or in the core region.

Animals↗

Proteus syndrome: a natural clinical course of Proteus syndrome.

A 16-year-old Korean male patient presented with macrodactyly, hemihypertrophy of the face and extremities, plantar cerebriform hyperplasia, a subcutaneous mass of the left chest, macrocephaly and verrucous epidermal nevi. These findings are consistent with Proteus Syndrome. The clinical features, etiology, management, natural course and differential diagnosis of this case are discussed.

Adolescent↗

Human anti-scrub typhus rickettsia and rabbit anti-Proteus antibodies recognize similar epitope in the O-polysaccharide part of Proteus mirabilis OXK lipopolysaccharide.

In the Weil-Felix test, sera from patients infected with Orientia tsutsugamushi reacted with lipopolysaccharide (LPS) from Proteus mirabilis OXK strains. The O-polysaccharide of P. mirabilis OXK LPS consisted of pentasaccharide repeating units, with amidically-linked lysine residues. The lysine, linked to galacturonic residues, which plays an important role in the reaction with rabbit anti-OXK antibodies, was revealed with the aid of synthetic antigens. Using ELISA, immunoglobulin M antibodies from scrub typhus patients reacted with the O-specific polysaccharide of strain OXK LPS only. This reaction was inhibited by rabbit antibodies specific to the O-antigen of strain OXK LPS. Both human and rabbit antibodies may bind to similar epitopes on the O-polysaccharide part of P. mirabilis OXK LPS.

Acrylic Resins↗