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Department of Microbiology, Panjab University, Chandigarh, India
Correspondence Sonia B. Bhardwaj sbbhardwaj2002{at}yahoo.com
Received July 7, 2003
Accepted February 13, 2004
Vi polysaccharide and iron-regulated outer-membrane proteins (IROMPs) were extracted and purified from the standard strain of Salmonella typhi, Ty2. These were then conjugated by chemical coupling using the carbodimide method. ViIROMP conjugate was tested for its ability to protect against colonization by S. typhi in different organs. Mice immunized with 2.5 µg ViIROMP conjugate showed the most protection, as the least bacterial colonization of spleen, liver and Peyer's patches was observed. Peritoneal macrophages obtained from conjugate-treated mice phagocytosed bacteria efficiently. Circulating antibodies and the delayed type hypersensitivity response elucidated by mouse foot-pad swelling was significantly higher in conjugate-treated animals. These results clearly demonstrate that an IROMP and polysaccharide conjugate of S. typhi prepared from the same strain has the potential to protect animals against challenge.
Present address: Dept of Gastroenterology, PGIMER, Chandigarh, India (160012). Abbreviations: DTH, delayed type hypersensitivity; IROMP, iron-regulated outer-membrane protein.
| INTRODUCTION |
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The bacterial envelope of the micro-organism is always exposed to a particular environment. There is now much evidence that the composition and related biological properties of the bacterial surface are largely determined by the growth environment. Besides many factors, iron is one of the essential nutrients for all bacteria. In most enteric organisms, including S. typhi, expression of the iron-uptake system is characterized by the secretion of siderophores and expression of a number of new proteins on the cell surface (Guerinot, 1994; Reissbrodt et al., 1997). These proteins are referred to as iron-regulated outer-membrane proteins (IROMPs). The potential of IROMPs as candidate vaccine components has been reported, as these have been found to be immunogenic and protective against typhoid fever as well as other Gram-negative bacterial infections (Chibber & Bajaj, 1995).
To develop a more effective antigen for protection against S. typhi-mediated infections, we attempted to couple the Vi antigen to purified fractions of IROMPs from the same strain.
| METHODS |
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Animals.
BALB/c male mice weighing 2025 g were obtained from the central animal house, Panjab University, Chandigarh. All the animals were given an antibiotic-free diet (Hindustan Lever, Mumbai) and water ad libitum.
Extraction of Vi polysaccharide.
Vi polysaccharide from S. typhi Ty2 was prepared by the cold ethanol extraction method of Gotschlich (1975) (Fig. 1). The production/seed medium was used and prepared according to the modified method of Frantz (1942). Seed culture was prepared by inoculating a single colony of S. typhi Ty2 into 100 ml nutrient broth.
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Extraction of outer-membrane proteins (OMPs) and IROMPs.
OMPs and IROMPs were isolated using the method of Filip et al. (1973) as modified by Williams et al. (1983). To create iron-deficient medium, 150 µM 2,2'-dipyridyl was used. S. typhi Ty2 was grown at 37 °C for 18 h with shaking. The cells were harvested by centrifugation (3500 g, 20 min, 4 °C), washed twice in PBS (pH 7.2) and suspended in 10 ml of 50 mM Tris/HCl (pH 7.8). Cells were broken by sonication (3 x 60 s pulses) at 4 °C, centrifuged (900 g, 15 min, 4 °C) and the OMPs pelleted by ultracentrifugation (30 000 g, 60 min, 4 °C); OMPs were then suspended in 1 ml of 2 mM Tris/HCl (pH 7.2). The same procedure was followed for isolating IROMPs. The OMPs/IROMPs were further purified on a Sephadex G-150 column and eluted with 0.1 M Tris/HCI (pH 8.0) buffer containing 0.05 % sodium azide. The 3.0 ml fractions were collected and monitored for absorption at 280 nm on a spectrophotometer. The first two peaks obtained were collected separately, pooled and dialysed extensively against distilled water, and the purity and identity were checked by SDS-PAGE.
Preparation of conjugate.
Chemical coupling of IROMPs to Vi polysaccharide was carried out using the method of Beuvery et al. (1982) using [1-ethyl-3-(dimethyl-aminopropyl) carbodiimide] (EDAC). Gel filtration of ViIROMP conjugate on a Sephadex G-150 column was performed using 0.1 M Tris/HCl (pH 8.0). The fractions were monitored at 280 nm, pooled and concentrated by acetone precipitation. Precipitates of conjugate were then removed, dissolved in 2 mM Tris/HCl (pH 7.2) and stored at 20 °C.
Protection studies.
For active immunization studies, mice were divided into three different groups of 12 animals each. The animals in different groups were immunized with 5 µg Vi ml1, 50 µg IROMP ml1 or 2.5 µg ViIROMP ml1 antigens in isotonic saline on day 0. The animals were given a second dose of antigen after 14 days. These immunized animals were challenged intraperitoneally with 109 organisms ml1 of S. typhi Ty2 with 5 % hog gastrin mucin. The surviving mice were sacrificed 7 days post-challenge. In each group an equal number of untreated mice were used as controls. These were given 0.1 ml of untreated saline.
The number of viable bacteria in the organs was assessed. Organs (Peyer's patches, spleen, liver) were excised aseptically from each animal in different groups, homogenized and serial tenfold dilutions were made in PBS (pH 7.2) under aseptic conditions. These were plated on MacConkey agar, viable counts were determined and results expressed as c.f.u. (g tissue)1.
Toxicity studies.
Lethal toxicity of each antigen preparation was assessed. The mice were sensitized by injecting 18 µg D-galactosamine intraperitoneally followed within 30 min by intravenous injection of the preparation to be checked (5 µg Vi antigen, 50 µg IROMP, 5 µg ViIROMP conjugate).
Immune response studies.
Phagocytosis studies were performed according to the method of Allen et al. (1987). Mice were sacrificed and peritoneal macrophages collected (107 cells ml1). A bacterial suspension of the overnight culture was made in saline (pH 7.2) and the count was adjusted to 1 x 109 c.f.u. ml1. To measure uptake and killing of bacteria by macrophages, a mixture of 0.5 ml macrophages (107 cells ml1), 0.4 ml diluted serum and 0.1 ml bacterial suspension (1 x 109 c.f.u. ml1) was prepared. The mixture was gently vortexed and incubated at 37 °C in a 5 % CO2 atmosphere. Samples (20 µl) were taken after 0, 30 and 60 min and suspended in cold RPMI 1640 (2 ml) for the uptake assay. The number of viable bacteria in the supernatant was determined by plating serial dilutions in triplicate on MacConkey agar plates.
Delayed type hypersensitivity (DTH) was checked using the method of Desiderio & Campbell (1985). The mice were divided into different groups: control (untreated saline); immunized (days 0 and 14) with 50 µg IROMP, with 2.5 µg ViIROMP conjugate or with 5 µg Vi polysaccharide; immunized-infected, immunized as above and then infected with S. typhi Ty2, 7 days after immunization.
Mice were examined for DTH response to S. typhi Ty2 with the antigens as the test inoculum on days 7, 20 and 60 after the second dose of immunization. Each animal received 0.025 ml antigen intradermally to the left hind foot pad and the same volume of PBS to the right hind foot pad. Foot-pad thickness was measured with vernier callipers calibrated to 0.01 mm.
The level of IgG antibodies was measured in the serum of different groups of animals by ELISA (Kussi et al., 1979). One hundred microlitres of antigen (2 µl/100 µl) in bicarbonate buffer was added to each well of a 96-well propylene plate. Plates were incubated at 4 °C overnight and then washed with PBS-I (washing buffer) three times, treated with PBS-II (washing buffer containing 3 % BSA and 0.05 % Tween 20) and incubated at 37 °C for 2 h before washing with PBS-I. Antiserum (100 µl) was added to each well and the plate incubated at 37 °C for 2 h before being washed three times with PBS-I. Conjugate (100 µl) was added and the plate was incubated at 37 °C for 1 h, and then washed with PBS-I thrice. Finally, 100 µl substrate mixture (80 mg ortho-phenylene diamine; 0.1 M citric acid phosphate buffer, pH 5.0; 5 µl 30 % hydrogen peroxide) was added. The reaction was stopped by adding H2SO4 (0.6 %). Absorbance was measured at 490 nm on an ELISA reader (LX-800; Wiprotech). SDS-PAGE was performed according to the standard method of Laemmli (1970).
Statistical analysis.
Student's t-test was applied for statistical evaluation of the results.
| RESULTS |
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A comparative analysis of the lethal toxicity of Vi, IROMP and ViIROMP conjugate showed that Vi-polysaccharide (5 µg), IROMP (50 µg), ViIROMP (5 µg) when injected intravenously into mice were non-toxic in control as well as sensitized mice. The quantitative bacterial counts determined in the spleen, Peyer's patches and liver from mice immunized with ViIROMP showed a fourfold decrease in the bacterial counts compared with controls. The decrease in bacterial number was almost two log units in conjugate-immunized animals compared with Vi- and IROMP-treated animals (Fig. 3).
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The underlying mechanism of protection to S. typhi Ty2 infection in terms of phagocytic uptake and killing ability showed that peritoneal macrophages from the ViIROMP conjugate-treated animals were remarkably more efficient in engulfing the bacteria compared with those obtained from Vi polysaccharide or IROMP-treated animals at 30 and 60 min (Fig. 4).
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Pooled antisera from a group of four animals each treated with Vi, IROMP or ViIROMP were screened for the presence of antibodies by ELISA. The highest titre was found for the ViIROMP group with a mean ELISA value of 0.586 ± 0.14 (not significant, NS), IROMP 0.410 ± 0.15 (NS) and Vi 0.39 ± 0.08 (NS) compared with Vi group (each ELISA value represents the mean ± SD of triplicate samples).
The DTH response indicated by mouse foot-pad swelling was significantly higher in the immunized-infected group of mice at 20 days post-infection and no significant increase in the response was observed at 60 days (Table 1). Vi-IROMP-immunized mice showed the highest DTH response.
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| DISCUSSION |
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In an earlier study, a conjugate of Vi bound to porin was shown to induce both systemic and mucosal immune responses, which were protective against challenge with S. typhi (Singh et al., 1999). A higher level of anti-Vi IgG on coupling of Vi to rEPA was noticed in 5- to 14-year-old children (Kossaczka et al., 1999). In our study as well, the conjugate was found to elicit both humoral and cell-mediated immune response. The higher antibody levels in mice immunized with conjugate, coupled with efficient phagocytic uptake by peritoneal macrophages and a higher DTH response, might have contributed towards protection against challenge. Antibodies against IROMPs have been shown to interfere with iron uptake, leading to protection of mice against infections (Banerjee-Bhatnagar & Frasch, 1990; Lucier et al., 1996).
The results of this study clearly indicate that Vi antigen bound to IROMPs, both isolated from the same organism, was able to elicit protection in mice. This observation favours coupling of Vi antigen to the high molecular mass IROMP, as both types of antigens are expressed on the cell surface, which is likely to come into contact with the immune system in an infection process.
| REFERENCES |
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