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Infection and Immunity, July 2006, p. 4124-4132, Vol. 74, No. 7
0019-9567/06/$08.00+0 doi:10.1128/IAI.00133-06
Copyright © 2006, American Society for Microbiology. All Rights Reserved.
Institute for Microbiology, Department of Infectious Diseases, University of Veterinary Medicine Hannover, Foundation, 30173 Hannover, Germany
Received 26 January 2006/ Returned for modification 2 March 2006/ Accepted 2 May 2006
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Due to an increasing consumer demand concerning food safety, vaccination is an adequate way to decrease the use of antibiotic drugs by decreasing morbidity and mortality in infected herds (52, 54). Vaccination against A. pleuropneumoniae infection is hampered by the occurrence of different serotypes and the finding that commonly used whole-cell bacterin vaccines neither induce cross-serotype immunity nor prevent development of the carrier state. Furthermore, the differentiation between vaccinated and infected animals is not possible (14, 24).
Since pigs surviving natural or experimental infections with A. pleuropneumoniae are at least partially protected from clinical symptoms upon infection with another serotype (10, 22, 36, 37), Tonpitak et al. (49) proposed the use of an A. pleuropneumoniae serotype 2 prototype live marker vaccine constructed by deletion of apxIIA and ureC genes. This double mutant protected pigs from homologous challenge upon a single aerosol application. Furthermore, it follows the differentiating infected and vaccinated animals (DIVA) concept (53), which is based on the absence of one immunogenic protein (ApxII) in the vaccine strain. However, this prototype marker vaccine strain was still able to cause clinical disease in a small proportion of pigs.
In the study presented here, we set out to gradually increase the attenuation of the prototype live negative marker vaccine strain by deleting newly identified virulence-associated genes using an established single-step transconjugation system (39). We initially focused on enzymes involved in anaerobic respiration to impair the survival of the mutant strain under conditions found in sequestered lung tissue and on epithelial surfaces (2, 3, 29) and subsequently on the ferric uptake regulator protein Fur, which is known to play an important role in A. pleuropneumoniae virulence (28). Furthermore, we investigated the properties of the resulting sixfold mutant strain as a live negative marker vaccine to induce a protective immune response upon challenge with a heterologous A. pleuropneumoniae serotype 9 strain.
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dapA), diaminopimelic acid (1 mM; Sigma-Aldrich, Munich, Germany) was added. A. pleuropneumoniae strains were cultured in PPLO medium (Difco GmbH, Augsburg, Germany) supplemented with nicotinamide dinucleotide (NAD; 10 µg/ml; Merck, Darmstadt, Germany), L-cysteine-hydrochloride (260 µg/ml; Sigma-Aldrich), L-cystine-dihydrochloride (10 µg/ml; Sigma-Aldrich), dextrose (1 mg/ml), and Tween 80 (0.1%) at 37°C in a shaking incubator at 180 rpm. A. pleuropneumoniae transconjugants (single crossovers) and transformants were grown in supplemented PPLO medium containing chloramphenicol (5 µg/ml) or kanamycin (25 µg/ml), and the medium for counterselection was prepared as described previously (49). Iron restriction was induced by addition of diethylentriamine-pentaacetic acid calcium trisodium salt hydrate (Na3CaDTPA; Fluka Chemika and BioChemika, Buchs, Switzerland) at a final concentration of 150 µM. Anaerobic cultures used for determination of aspartase activity and DmsA expression were first cultured to an optical density at 600 nm of 0.3 under aerobic conditions and then placed into an anaerobic jar without shaking at 37°C for 3 h. |
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TABLE 1. Characteristics of bacterial strains, plasmids, primers, and sera used in this study
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Cloning of plasmids and construction of unmarked isogenic mutants.
Constructions of transconjugation plasmids were performed as described in Table 1. Plasmid pDM800 was used to introduce the dmsA deletion into A. pleuropneumoniae
apxIIA
ureC via the single-step transconjugation system as described previously (6, 39), resulting in A. pleuropneumoniae
apxIIA
ureC
dmsA. This threefold mutant provided the basis for the construction of the fourfold mutant using transconjugation plasmid pHYB700, resulting in A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB. For the construction of the fivefold mutant A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB
aspA, pAS700 was used to delete the aspA gene in the fourfold mutant A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB. For generation of the sixfold mutant strain A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB
aspA
fur, transconjugation plasmid pFUR702 was used.
Preparation of whole-cell lysates. Bacteria were cultured, centrifuged (7,000 x g, 5 min), resuspended in 50 mM Tris (pH 7.3), and stored at 70°C overnight. Cells were thawed and then ruptured using the Fast Prep Instrument (Qbiogene, Heidelberg, Germany) three times for 40 s on intensity setting 5.0. Protein concentration was determined using a MicroBC assay (Uptima Interchim, Montlucon Cedex, France).
Aspartase assay. Aspartase activity was measured spectrophotometrically at 240 nm by determination of fumarate formation (48) as described previously (29). Briefly, the assay buffer contained 3 mM MgCl2, 0.1 M L-aspartate (Sigma), and 0.1 M Tris-HCl (pH 9.0). The reaction was initiated by addition of 100 µg protein of whole-cell lysates of cultures grown under anaerobic conditions.
Western blot analysis. For Western blot analysis of the DmsA and TbpB protein content, whole-cell lysates were analyzed by discontinuous sodium dodecyl sulfate-polyacrylamide gel electrophoresis (12.5% or 10.8% acrylamide and 0.3% bisacrylamide) according to standard procedures (45) using a Protean II Minigel system (Bio-Rad, Munich, Germany) as described previously (2, 5). The sera used are listed in Table 1.
Serology.
For serological examinations, different enzyme-linked immunosorbent assays (ELISAs) were used. In the ApxII-ELISA, the recombinant ApxII protein functions as the solid-phase antigen as described previously (35). The response is quantified in ELISA units (EU) based on an external standard. For this standardized ELISA, activities of
10 EU in the sera are considered negative, 11 to 25 EU are intermediate, and >25 EU are positive. In the detergent extract ELISA (deELISA), a detergent extract of A. pleuropneumoniae
apxIIA
ureC containing outer membrane-associated proteins was used as a solid-phase antigen (21), and the immune response was quantified by determining the antibody titer in comparison to that of an internal negative control. The negative control consisted of an equal mixture of all serum samples taken at the arrival of the pigs, and the positive control consisted of an equal mixture of all serum samples of infected pigs taken 21 days postinfection. The titer in the deELISA was defined as the highest serum dilution resulting in an optical density twice as high as that of the negative control serum at a dilution of 1:100. To quantify the humoral immune response against the TbpB protein, recombinant TpbB of A. pleuropneumoniae serotype 7 was used as a solid-phase antigen (20), and the titer was determined in comparison to an internal negative control as described for the deELISA. Finally, a commercial ApxIV-ELISA was employed detecting antibodies directed against the ApxIV toxin, which is produced only in vivo by all A. pleuropneumoniae serotypes (13). In this standardized ELISA, activities of
30% compared to a positive control are considered negative, 30% to 40% are intermediate, and activities of
40% are positive.
Blood samples were taken 1 week prior to infection to confirm the absence of A. pleuropneumoniae-specific antibodies and at necropsy on day 7 or day 21 postinfection to determine the serological response to challenge with the different A. pleuropneumoniae mutant strains.
Virulence studies. For virulence studies, outbred pigs (8 to 9 weeks of age) were purchased from an A. pleuropneumoniae-free herd (no clinical symptoms and no serological responses in the ApxII-ELISA and the deELISA) and randomly assigned to different groups. They were cared for in accordance with the principles outlined in the European Convention for the Protection of Vertebrate Animals Used for Experimental and Other Scientific Purposes (European Treaty Series, no. 123; http://conventions.coe.int/treaty/EN/V3menutraites.asp; permit nos. 01/471 and 05/984). Virulence of the A. pleuropneumoniae mutant strains was assessed in an aerosol infection model that has been described previously (5, 31). Clinical examinations were performed daily or as needed. Body temperature and clinical symptoms were recorded daily for each individual pig in the 2 days before and 7 days after infection or as needed. A clinical scoring system based on the directive in the European Pharmacopoeia for testing A. pleuropneumoniae vaccines (porcine actinobacillosis vaccine [inactivated]) was employed to assess the clinical condition of each individual animal as follows. A score of 1 was given for each case of coughing, dyspnea, and vomitus, resulting in a minimum clinical score of 0 and a maximum score of 3 per day; pigs dying from the disease were assigned a score of 4. The added daily clinical scores of days 1 to 7 were designated the total clinical score. Statistical analysis of the total clinical score was performed using the Wilcoxon signed-rank test. Pigs were euthanized by intravenous injection of pentobarbital. Post mortem analysis was performed as described previously (5). Briefly, lung lesion scores were determined as described by Hannan et al. (23) and statistically analyzed using the Wilcoxon signed-rank test.
The bacteriological examination included surface swabs of palatine tonsils, of bronchial lymph nodes, and of defined positions located in the outer third of each of the seven lung lobes; an additional swab of diseased lung tissue was taken if it was not covered by any of the defined lung locations. Plating was done on Columbia sheep blood agar to exclude other bacterial infections, as well as on selective meat blood agar (30), and fractionated twice. Due to growth deficiencies of A. pleuropneumoniae
fur deletion mutants, the sixfold mutant was cultured on modified selective meat blood agar lacking bacitracin (28). A score for reisolation of 0 was given for either no growth or if A. pleuropneumoniae colonies grew only in the directly swabbed area; a score of 1 was given if colonies were present in the fractionated streaks. The reisolation score was determined by adding these numbers for each pig in the respective group, and the arithmetic means and standard deviations were determined. Several individual A. pleuropneumoniae-like colonies were subcultured on supplemented PPLO agar and confirmed by CAMP test and PCR analyses using primers oAPX2A1 and oAPX2A2.
In a preliminary experiment performed in order to assess the necessity of introducing additional mutations, nine pigs (German Landrace and Pietrain) were infected with the threefold mutant (A. pleuropneumoniae
apxIIA
ureC
dmsA); pigs were euthanized and necropsied on day 21 postinfection. Due to high residual virulence of the threefold mutant, controlled infection experiments were performed with the fivefold (A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB
aspA) and the sixfold (A. pleuro-pneumoniae
apxIIA
ureC
dmsA
hybB
aspA
fur) mutant strains in comparison to the A. pleuropneumoniae parent strain. Nine pigs (German Landrace) were infected with the fivefold mutant and the parent strain, respectively, and five pigs were infected with the sixfold mutant. In the groups infected with the fivefold mutant and the parent strain, four pigs each were randomly assigned and euthanized 7 days postinfection, and all remaining pigs as well as pigs infected with the sixfold mutant strain were euthanized 21 days postinfection.
Protection studies. Protection experiments were performed by using the A. pleuropneumoniae sixfold mutant as a live vaccine in a single aerosol immunization. Fifteen pigs 7 weeks of age were used. They were randomly assigned to two groups of 10 and 5 pigs, respectively. The 10 pigs in group 1 were vaccinated in a single aerosol application of the sixfold mutant, and the 5 pigs in group 2 were given a NaCl solution (150 mM) by aerosol application (control group). Three weeks after immunization, all pigs were challenged with a heterologous A. pleuropneumoniae serotype 9 strain in the aerosol chamber with five pigs at a time. Clinical examinations were performed as described above. Four vaccinated pigs were euthanized on day 7 postinfection, and the remaining pigs as well as the control pigs were euthanized on day 21 postinfection. Mortality was compared using Fisher's exact test, and post mortem analysis as well as serological and bacteriological examinations were performed as described above.
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apxIIA
ureC strain (49), a threefold mutant was constructed using transconjugation plasmid pDM800. In the next step an isogenic fourfold mutant was constructed using plasmid pHYB700. Transconjugation plasmid pASP700 was then used to delete the aspA gene in the fourfold mutant A. pleuropneumoniae
apxIIA
ureC
dmsA
hybB, resulting in the fivefold mutant. Finally, a sixfold mutant was constructed by deleting the fur gene with transconjugation plasmid pFUR702 in the fivefold mutant. All mutant strains were verified using PCR (Fig. 1) as well as Southern blotting, pulsed-field gel electrophoresis, and nucleotide sequencing (data not shown).
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FIG. 1. PCR analyses of A. pleuropneumoniae wild-type and isogenic mutant strains. Lanes: 1, A. pleuropneumoniae serotype 2 wild type; 2, A. pleuropneumoniae apxIIA ureC dmsA; 3, A. pleuropneumoniae apxIIA ureC dmsA hybB; 4, A. pleuropneumoniae apxIIA ureC dmsA hybB aspA; 5, A. pleuropneumoniae apxIIA ureC dmsA hybB aspA fur. Lanes M, size marker. The numbers to the left indicate the size of the PCR products obtained. Primers used were oDMSAdel1 and oDMSAdel2 (for the dmsA gene), o34-1f and 034-1r (for the hybB gene), oASPX and oASPY (for the aspA gene), and oFURX and oFURY (for the fur gene).
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Virulence studies. In order to investigate the residual virulence of the threefold mutant, pigs were infected with an aerosolized dose of 1.2 x 105 CFU per five pigs. All pigs developed fever (body temperature, >40.5°C) 1 day postinfection, accompanied by anorexia, lethargy, and vomiting in some pigs. One pig died 2 days postinfection, and a second pig died 9 days postinfection. At necropsy, these pigs had severe lung lesions. The remaining pigs survived infection and, at necropsy on day 21 postinfection, all but one pig also showed lung lesions (Fig. 2). As this residual virulence is unacceptable for a live vaccine, five- and sixfold mutants were constructed as described above.
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FIG. 2. Lung lesion score upon challenge with different mutant strains of A. pleuropneumoniae serotype 2. The central symbol within the hourglass shape represents the geometric mean, the hinges present the values in the middle of each half of data, and the top and bottom symbols mark the minimum and maximum value. The asterisk denotes statistical significance (P < 0.05) in the Wilcoxon signed-rank test.
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No apparent differences were observed with respect to the reisolation of the challenge strains, determined as the reisolation score between the groups infected with the parent strain and the fivefold mutant strain on day 7 postinfection. On day 21 postinfection, reisolation of the fivefold and the sixfold mutant from intact lung tissue was reduced (isolation in one of five animals) compared to that of the wild-type strain (four of five animals). Looking at intact and altered lung tissue, the sixfold mutant could only be reisolated from two of five pigs in small numbers (2 to 10 colonies in the directly swabbed area of the plate), whereas the wild-type strain could be isolated from all pigs in large numbers (confluent growth in the first fractionation and single colonies in the second fractionation) 21 days postinfection.
Pigs infected with either of the mutant strains had no titer in the ApxII-ELISA at any time after infection but showed a detectable response in the deELISA 21 days postinfection. Four of five pigs infected with the wild-type strain were positive in the ApxII-ELISA 21 days postinfection, and all had titers in the deELISA comparable to those of pigs infected with the fivefold mutant (Table 2).
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TABLE 2. Virulence of A. pleuropneumoniae mutant strains
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TABLE 3. Protective effect of live negative marker vaccine upon A. pleuropneumoniae serotype 9 challenge
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FIG. 3. Antibody titer upon heterologous challenge. Shown are humoral immune responses of control and vaccinated pigs on the day before and 21 days after infection, assessed using a detergent extract (deELISA), recombinant TbpB protein of A. pleuropneumoniae serotype 7 (TbpB-ELISA), recombinant ApxIV protein (ApxIV-ELISA), and the recombinant ApxIIA protein (ApxII-ELISA) as solid-phase antigen. The immune response was expressed in ELISA units (based on an external standard) for the standardized ApxII-ELISA, with activities of 25 ELISA units considered positive. Using the standardized ApxIV-ELISA, activities of 40% in comparison to an external control were considered positive; for the deELISA and the TbpB-ELISA, the immune response was expressed as a serum titer in comparison to that of an internal negative control.
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Therefore, we set out to construct a highly attenuated defined multiple A. pleuropneumoniae mutant with residual colonizing ability, enabling it on the one hand to consistently induce an immune response upon a single aerosol application but, on the other hand, rendering it unable to cause clinical disease. As starting material, we chose a double mutant constructed previously which already fulfills the DIVA principle but which was still able to cause disease (49). In order to further attenuate this strain, we initially focused on enzymes involved in anaerobic respiration which have been shown to facilitate the pathogen's persistence in the reducing environment of the epithelial lining fluid as well as in necrotic lung tissue with reduced oxygen tension (4). To avoid problems with antibiotic resistance and undefined mutations present in experimental live attenuated A. pleuropneumoniae vaccines described previously (17, 27, 40), the single-step transconjugation system was employed, as it allows the construction of strains with multiple isogenic mutations not containing foreign DNA as shown in this study.
Since the sole deletion of the dmsA gene coding for the DMSO reductase had only slightly attenuating effects (2), we deleted two additional enzymes involved in anaerobic metabolism, namely the aspartate-ammonia lyase and the [NiFE] hydrogenase, which were shown to be associated with A. pleuropneumoniae virulence (3, 29). The resulting fivefold mutant was significantly attenuated but was still able to cause disease. Based on the findings of Baltes et al. (4) that a complete impairment of the anaerobic metabolism by deletion of the global anaerobic regulator HlyX renders A. pleuropneumoniae unable to reliably colonize the respiratory tract (4), we saw the necessity of impairing a second metabolic pathway and decided on the iron uptake pathway. As iron uptake-associated proteins, e.g., TbpA and TbpB, are important protective antigens (1, 19, 20, 44), we set out to delete the fur gene, thereby causing impairment by constitutive expression of highly immunogenic proteins (28, 47). Following the hypothesis that impairment of both anaerobic and iron uptake pathways should render A. pleuropneumoniae very highly attenuated but still able to colonize, we constructed a sixfold mutant lacking a functional fur gene.
Since an ideal live vaccine should still be able to colonize the respiratory tract but should show only limited survival within the host to prevent unwanted spread of the vaccine strain, we thoroughly investigated the ability of the sixfold mutant to persist in the host. We took seven swab samples from defined localizations of each lung as well as from tonsils and bronchial lymph nodes at necropsy and used a semiquantitative reisolation score for the lung samples to compare the quantity of reisolated bacteria. The results of this study and the comparison with previous studies using single and double mutants of A. pleuropneumoniae serotype 7 (2, 28, 29) indicate that the two major metabolic functionalities impaired (the anaerobic metabolism with deletion of dmsA, hybB, and aspA and the ferric uptake pathway with deletion of fur) are equally important for the high degree of attenuation and the decreased persistence within the host. Thus, a fur single mutant as well as the fivefold mutant are still able to cause clinical disease, whereas the sixfold mutant does not cause clinical disease but is still able to persist in intact lung tissue over a period of 6 weeks in small numbers.
Since pigs asymptomatically carrying A. pleuropneumoniae on the tonsils do not generally develop measurable antibody titers, a colonization of the lower respiratory tract appears to be required for a humoral immune response (8, 9). Consequently, an A. pleuropneumoniae vaccine strain devised for single aerosol application must be able to colonize the lower respiratory tract and express protective antigens. Due to the ability of the sixfold mutant to colonize and consistently induce a humoral immune response without occurrence of severe clinical disease, we used it as a vaccine strain in a protection experiment, although the short rise in body temperature observed upon vaccination is not in accordance with current licensing rules for commercial vaccines. In previous studies using highly attenuated A. pleuropneumoniae single mutants as experimental live vaccines, a certain degree of cross-serotype protection could be observed, but at least two applications of a high dose (
109 CFU) were required (27, 40). Since it is known that animals convalescent from A. pleuropneumoniae infection with one serotype are at least partially protected from clinical disease upon infection with other serotypes (10), we investigated the protective efficacy of the sixfold mutant upon challenge with an A. pleuropneumoniae serotype 9 strain. This strain is antigenically highly distinct from A. pleuropneumoniae serotype 2. Thus, the serotype 9 strain belongs to the 1, 9, and 11 groups (26), and A. pleuropneumoniae serotype 2 is not assigned to any group (37) expressing other Apx toxins (16) and a different OmlA protein (18) than that of A. pleuropneumoniae serotype 9. However, A. pleuropneumoniae serotypes 2 and 9 carry the same tbpBA operon (11), and immunization with both recombinant TbpB and TbpA proteins has been shown to be protective (20, 55).
Pigs vaccinated with the sixfold mutant were significantly protected from clinical disease upon infection with A. pleuropneumoniae serotype 9, thereby supporting the concept of an attenuated A. pleuropneumoniae live vaccine providing cross-serovar protection. Here, antibodies directed against the TbpB protein might be one important factor. Thus, although not all animals had detectable TbpB-specific titers prior to infection, vaccinated animals, in contrast to the nonvaccinated controls, all had detectable titers after infection, thereby supporting the occurrence of a booster reaction upon infection (Fig. 3). Further, a cellular Th1-type immune response causing cross-serovar protection may have been induced by the live vaccine strain. This, as well as the possible role of additional antigens possibly expressed only upon entry of the host, needs to be determined in future studies.
Vaccination via aerosol is currently not being used in pigs. However, in the past vaccination of pigs via aerosol has been used successfully in the field (33, 46). Also, the principle feasibility of live aerosol vaccines under current legislation has been documented recently by the licensing of a Mycoplasma gallisepticum live vaccine for hens (Nobilis MG 6/85; Intervet, Unterschleissheim, Germany) to be applied via spray aerosolization. Thus, although the efficacy of conventional application strategies like intramuscular injection should be elucidated, licensing of a live A. pleuropneumoniae aerosol vaccine might be feasible if the initial rise in temperature observed upon vaccination can be reduced. Even the apparent lack of protection from airway colonization might be acceptable, since this disadvantage would be compensated for by the advantage of a single application and the discrimination between infected and vaccinated-plus-infected groups (DIVA function).
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