Eimeria gruis and E. reichenowi are common coccidial parasites of a number of crane species. In the present study, monoclonal antibodies (McAbs), elicited against Eimeria spp. of chickens and turkeys, cross-reacted with sporozoites and developmental stages of E. gruis in the tissues of Florida sandhill cranes. These McAbs were used to define the area of the intestine that was invaded by sporozoites of E. gruis and to demonstrate the feasibility of using McAbs to study the early development of E. gruis in the intestines and visceral organs of cranes. At 6 hr postinoculation (PI), E. gruis sporozoites were found primarily from just proximal to Meckle's diverticulum in the jejunum to the ileocecal juncture. Fewer sporozoites were found in the ceca and rectum, and none were found in the duodenum. Most of the sporozoites were in the middle third of the villi and within the lamina propria. At 14 days PI, developmental stages were detected in the ceca, jejunum, liver, and lungs but not in the heart, kidney, or brain. In the ceca and jejunum, the number, location, and maturity of the stages differed markedly.
The effect of betaine and salinomycin on absorption of methionine and glucose in tissue from the duodenal loops of Eimeria acervulina-infected chicks was determined. Differences in the ultrastructure of the intestinal cells and parasite developmental stages were also examined. With a drug-resistant isolate of E. acervulina, methionine absorption was significantly higher in chicks fed a basal diet supplemented with 0.15% betaine as compared with absorption in chicks fed the unsupplemented basal diet. Addition of 66 ppm salinomycin to the diet containing betaine did not further enhance absorption. Conversely, with a drug-sensitive isolate, methionine absorption was significantly higher in chicks fed a diet supplemented with both betaine and salinomycin than in chicks fed the unsupplemented basal diet. Tissue from chicks fed any of the supplemented diets was usually significantly heavier than that from chicks fed the unsupplemented diet, even when weight gains of the birds were similar. Glucose absorption was similar in all diet groups. Epithelial cells in coccidia-infected and uninfected chicks fed diets supplemented with betaine or betaine plus salinomycin were less electron dense than cells from chicks fed diets that were not supplemented with betaine. Merozoites of E. acervulina in chicks fed diets supplemented with salinomycin had extensive membrane disruption and vacuolization, but the damage was prevented when betaine was added to the diet. Numerous merozoites and intact schizonts were seen in the intestinal lumen of chicks fed the diet containing betaine plus salinomycin.
Repeated oral inoculation of turkey poults with large doses (1 x 10(6) oocysts) of the chicken coccidia, Eimeria tenella or E. acervulina, failed to prevent weight loss, poor feed conversion, and intestinal pathology in turkeys challenged with the turkey coccidium, E. adenoeides. Invasion by E. tenella in turkeys was significantly greater than invasion by E. adenoeides in chickens; by 24 hr postinoculation (PI), the numbers of E. tenella and E. adenoeides sporozoites in the ceca had decreased markedly as compared with the numbers that initially invaded, and they did not differ significantly from each other. At 24 hr PI, however, transfer of cecal scrapings from chickens or turkeys inoculated with E. adenoeides produced infection in 53% of the recipient turkeys, but transfer of scrapings from either chickens or turkeys inoculated with E. tenella failed to produce infection in 20 attempts with recipient chickens. Cultured chicken peripheral blood monocytes (PBMs) that were inoculated with E. adenoeides sporozoites contained numerous vesicles that were recognized by the refractile body-specific monoclonal antibody 1209; the number of vesicles was markedly decreased in PBM cultures inoculated with gamma-irradiated E. adenoeides sporozoites. Very few vesicles were detected in the cytoplasm of turkey PBMs that contained E. tenella sporozoites, and none were detected in turkey PBMs containing E. adenoeides sporozoites. The survival of infective sporozoites, along with the secretion of refractile body antigen, may be more critical to the development of cross-species immunity than the number of sporozoites that initially invade the foreign host.
Eimeria maxima oocysts were exposed to various doses of gamma radiation that did not affect sporozoite invasion of intestinal epithelium but did prevent subsequent merogonic development therein. Although merogony and oocyst formation were inhibited, parasites exposed to 12 kRad radiation induced a level of immunity against E- maxima challenge equivalent to that induced by non-irradiated oocysts. Chickens immunized per os with 20 kRad-treated E. maxima oocysts were not protected against coccidial challenge. Immunization of chickens with a single low dose (five oocysts) of non-irradiated (0 kRad) or irradiated (12 kRad) E. maxima was effective in preventing weight depression after coccidial challenge. Immunofluorescence staining of intestinal tissue from chickens infected with irradiated (12 or 20 kRad) or non-irradiated (0 kRad) E maxima oocysts with developmental stage-specific monoclonal antibodies showed that sporozoite invasion was similar in all groups. However, merogonic development was not observed at any time postinfection in chickens infected with irradiated oocysts, unlike the case with chickens infected with non-irradiated parasites. These results suggest that sporozoite infected host cells are capable of eliciting complete protection against E. maxima challenge.
Freshly excysted sporozoites (SZ) of the turkey coccidia Eimeria meleagrimitis and Eimeria adenoeides were incubated at 41 C in concentrations of monensin from .01 to 1.0 μg/mL, washed free of the drug, and either processed for phase, fluorescence, and transmission electron microscopy or inoculated into cultures of turkey kidney cells. Phase microscopy indicated that after 1.5 h incubation in 1.0 μg/mL monensin, about 60% of the SZ of E. meleagrimitis had become notably rounded or displayed localized protrusions. These alterations were accompanied by ultrastrucrural abnormalities (in 90% of the SZ) including vacuoles in the cytoplasm, bulging and separation of plasma membrane layers, and dense bands in the refractile bodies that extended toward the periphery of the refractile body. Similar morphological and ultrastrucrural changes were observed in over half of the E. adenoeides SZ after 2 h incubation in 1.0 μg/mL monensin. Additionally, some specimens contained a pycnotic nucleus that was usually surrounded by a large vacuole. After 4 h incubation, almost all of the SZ displayed some degree of ultrastrucrural damage. Indirect fluorescent antibody labeling with parasite-specific monoclonal antibodies demonstrated clouds of antigen surrounding the monensin-treated but not the untreated SZ, suggesting an increase in permeability with incubation in monensin. With both E. meleagrimitis and E. adenoeides, the structural changes were reflected in a significant inhibition of cellular invasion. The inhibitory activity of monensin was concentration- and time-dependent in that the greatest inhibition of invasion was observed in SZ incubated for 4 h in 1.0 μg/mL of monensin; shorter incubation times or lower concentrations of monensin having less effect.
In the present study, we wished to demonstrate the ability of surface gametocyte antigens to induce protective immunity against Eimeria maxima infections in chickens. In order to accomplish this goal, we employed maternal immunization as a means of providing large amounts of specific antibodies to offspring chicks. Upon challenge with sporulated E. maxima oocysts, chicks from hens immunized with affinity-purified gametocyte antigens showed greatly reduced oocyst production compared with chicks from sham-immunized hens. These results suggest that maternal immunization with gametocyte antigens can be used as a means to provide transmission-blocking immunity against E. maxima infections.
The gene encoding an immunodominant Eimeria acervulina merozoite surface antigen (EAMZ250) was expressed in bacteria as a fusion peptide with the galactose-binding protein (GBP) of Escherichia coli. Recombinant and control antigens were administered to 1-wk-old chickens by peroral inoculation with live nonpathogenic bacteria that were expressing GBP-EAMZ250 or GBP protein. The immunization elicited antigen-specific humoral and cellular immune responses as measured by ELISA and T-cell blastogenesis assay. In addition, chickens immunized with recombinant GBP-EAMZ250 exhibited significant protection against weight loss and intestinal lesions after E. acervulina challenge. Bacterial transformants were recoverable from the upper and middle intestine of inoculated chickens for various times after immunization. These data indicate that oral administration of live E. coli expressing a recombinant E. acervulina antigen is an effective means of inducing resistance to coccidiosis.
The immunogenicity of a recombinant Eimeria tenella coccidial antigen was studied in 6(1).B congenic chickens derived from B2B2 and B5B5 parents segregating for haplotypes B2 and B5. Five-week-old chickens were immunized with 2.4 micrograms of recombinant protein (designated 5401) in Freund complete adjuvant and challenged with 75,000 oocysts at 28 days postimmunization (DPI) to determine the degree of elicited protective immunity. Serum samples were collected weekly for 5 weeks postimmunization for analysis by enzyme-linked immunosorbent assay, immunofluorescence assay, and Western blotting. Lesion scores following oocyst challenge were significantly reduced in B5B5 chickens compared with those in B2B2 chickens. Immunization induced a sporozoite-specific immunoglobulin G (IgG) titer in serum detected by the enzyme-linked immunosorbent assay that peaked at 28 DPI, the day of challenge, in B5B5 chickens and at 42 DPI in B2B2 chickens. After challenge, this titer declined for each genotype. Anti-sporozoite IgG detected by the immunofluorescence assay attained a peak titer at 21 DPI in B2B2 chickens and 28 DPI in B5B5 chickens. Serum from immunized B5B5 chickens reacted strongly in Western blots with several high-molecular-weight (greater than 100,000), soluble proteins prepared from sporozoites. Serum from B2B2 chickens reacted with similar proteins as well as with a 51- to 53-kilodalton protein that was not labeled by serum from B5B5 chickens. These results demonstrate further the role of host genetics on anticoccidial immunity and suggest that a peak anti-sporozoite IgG titer in B5B5 chickens on the day of challenge may signal a state of immunocompetence to that challenge.
Monoclonal antibodies were developed against refractile body antigens of 4 species of avian Eimeria, E. meleagrimitis, E. adenoeides, E. acervulina, and E. tenella. Although antibodies from 8 different cell lines were used in this study, all produced similar fluorescent and gold-labeling patterns. By immunofluorescent antibody techniques, 5 of the 8 antibodies cross-reacted with all 4 of the Eimeria species that were examined; the other 3 antibodies reacted only with the species against which they were produced or with a limited number of species. In Western blot analyses using SDS-solubilized sporozoites as antigen, 4 of the cross-reactive antibodies recognized multiple bands; the predominant bands had molecular weights of approximately 23, 45, and 90 kilodaltons (kDa). Two of the antibodies with more limited reactivity recognized either a single band at 23 kDa (91C7), or bands at 23 and 45 kDa (4115); another reacted only with several bands greater than 100 kDa (4D10). The molecular weights of the antigens did not decrease markedly after digestion with N-glycanase F, indicating that if the refractile body antigens contained significant amounts of N-linked carbohydrate it was refractory to the enzyme. Collectively, the data indicate that antigens of the sporozoite refractile bodies differ among the Eimeria species. Some antigens are conserved, whereas others differ in distribution or frequency among the individual species.
Hybridoma antibodies (HAb) have been raised against the sporozoite stage of 3 species of avian coccidia. These HAb were utilized in Western blot analysis, resulting in the immunoenzymatic detection of sporozoite and merozoite antigens of 1 species, Eimeria tenella. The 5 HAb specific for the sporozoite stage showed either single bands at 22 and 28 kDa or a large diffuse band in the 7-10-kDa range. The 4 HAb that cross-reacted with both asexual stages recognized either a single sporozoite or merozoite antigen of 90 kDa, or multiple antigens (47-69 kDa) for both stages. The 9 HAb demonstrated 5 different immunofluorescent antibody (IFA) patterns, and the 4 cross-reactive HAb showed similar IFA patterns with both asexual stages of E. tenella. The sporozoite-specific HAb which identified the 22, 7-10, and 7-8 kDa antigens showed surface, surface-internal, or internal IFA patterns. The other sporozoite-specific HAb, which labeled the 28-kDa antigen, stained the refractile body. The IFA of the 4 stage-cross-reactive HAb, which recognized the 45-60-kDa and the 90- or 47-69-kDa antigens, localized these antigens to the surface and tip, respectively. Rabbit anti-sporozoite serum appeared to recognize all of the sporozoite and merozoite antigens identified by the HAb as well as a variety of additional stage-cross-reactive antigens.
The use of hybridoma antibodies developed against the sporozoite stage of avian coccidia, coupled with genetic-engineering techniques, has made it possible to begin bird-immunization studies utilizing an Escherichia coli-elicited coccidial protein. The coccidia are currently controlled in the poultry industry by use of anticoccidial compounds, but it now may be possible to use the bird's own immune system for defense against the parasitic infection. Since the sporozoite stage, which initiates the infection in poultry, is quite complex and is made up of hundreds of proteins or antigens, hybridoma antibodies were produced to identify specific antigens. These antigens, once identified, were found in such minute amounts that it became necessary to utilize genetic engineering in order to produce enough protein for immunization studies. One such protein, designated 5401, has been shown to stimulate an antibody response in immunized birds and to impart partial protection against a coccidial challenge infection. The results of these studies indicate that development of a vaccine against coccidial parasites may someday be possible.
Hybridoma antibodies (Hab) produced against sporozoites or merozoites of four species of Eimeria were tested for the ability to inhibit the invasion of cultured primary avian kidney cells by sporozoites of Eimeria. Five of 16 Hab that were tested showed inhibitory activity. All five of these Hab were produced against sporozoites and reacted with sporozoite surface antigens or surface/internal antigens. Four Hab produced against merozoites of E. acervulina cross-reacted with sporozoite surface antigens but failed to inhibit invasion. Similarly, Hab reacting with sporozoite anterior tips or refractile bodies had little effect on invasion. Collectively, the data suggest that surface antigens or surface/internal antigens that are unique to the sporozoite stage may influence or be part of the invasion process. Indirect immunofluorescent-antibody tests and ferritin (Fe) labeling combined with electron microscopy indicated differences in binding of two of the Hab to the sporozoite surface membranes. For example, after exposure to Hab 43A6 and a fluorescein-antimouse IgG conjugate, extracellular sporozoites of E. meleagrimitis fluoresced brightly but intracellular sporozoites exhibited little fluorescent label. Sporozoites labeled with Hab 43A6 plus a ferritin-antimouse IgG conjugate that were observed in the process of cell invasion had ferritin on the extracellular portion of the parasite but not on the intracellular portion. Extracellular aggregates of ferritin were observed near the site of invasion. The data suggested that antigens of the sporozoite surface that are recognized by Hab 43A6 are "scraped off" during the invasion of cells. In contrast, after exposure to Hab E5, both extracellular and intracellular sporozoites of E. tenella fluoresced. However, ferritin label was not observed on viable sporozoites, even when they were fixed immediately after the labeling procedure. The antigens recognized by Hab E5 may be associated with parasite secretory products rather than with an integral part of the sporozoite surface membrane.