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Novel genetic variants of Anaplasma phagocytophilum, Anaplasma bovis, Anaplasma centrale, and a novel Ehrlichia sp. in wild deer and ticks on two major islands in Japan.

Wild deer are one of the important natural reservoir hosts of several species of Ehrlichia and Anaplasma that cause human ehrlichiosis or anaplasmosis in the United States and Europe. The primary aim of the present study was to determine whether and what species of Ehrlichia and Anaplasma naturally infect deer in Japan. Blood samples obtained from wild deer on two major Japanese islands, Hokkaido and Honshu, were tested for the presence of Ehrlichia and Anaplasma by PCR assays and sequencing of the 16S rRNA genes, major outer membrane protein p44 genes, and groESL. DNA representing four species and two genera of Ehrlichia and Anaplasma was identified in 33 of 126 wild deer (26%). DNA sequence analysis revealed novel strains of Anaplasma phagocytophilum, a novel Ehrlichia sp., Anaplasma centrale, and Anaplasma bovis in the blood samples from deer. None of these have been found previously in deer. The new Ehrlichia sp., A. bovis, and A. centrale were also detected in Hemaphysalis longicornis ticks from Honshu Island. These results suggest that enzootic cycles of Ehrlichia and Anaplasma species distinct from those found in the United States or Europe have been established in wild deer and ticks in Japan.

Amino Acid Sequence↗

An Anaplasma centrale DNA probe that differentiates between Anaplasma ovis and Anaplasma marginale DNA.

An Anaplasma centrale genomic library was constructed in pUC13. Two clones pAC5 and pAC137 hybridising to A. centrale and A. marginale DNA were isolated from this library. One of these, pAC5, also hybridised to DNA from A. ovis. The total insert of pAC5 was subcloned into pBR322. This subclone, pAC5-12, could detect 1 ng A. centrale, 0.5 ng A. marginale and 3.9 ng A. ovis DNA. The hybridisation pattern obtained with pAC5-12 on digests of A. centrale, A. marginale and A. ovis DNA suggests that this probe detects EcoR1 and Hind111-polymorphisms. Probe pAC5-12 could detect A. ovis DNA in 36% of blood samples tested compared to the 33% detectability obtained with microscopy.

Anaplasma↗

Characterization of immune responses of cattle to erythrocyte stroma, Anaplasma antigen, and dodecanoic acid-conjugated Anaplasma antigen: humoral immunity.

Normal erythrocyte antigen (sonically disrupted erythrocyte stroma; SES) and two anaplasma antigens (sonically disrupted anaplasma antigen; SAA, and French pressure cell-disrupted anaplasma antigen; FAA) were prepared from normal and Anaplasma marginale-infected blood. Portions of SAA and FAA antigens were chemically modified by conjugation with dodecanoic acid (SAADA and FAADA). Eleven cattle were vaccinated with SES, SAA, SAADA, or FAADA. Five weeks later, the 11 cattle, together with 3 controls, were challenge exposed with A marginale. The anti-anaplasma antibody response and the antierythrocyte-antibody response (including the blood group isoantibody response) were evaluated. Only SAA-vaccinated cattle developed anti-anaplasma antibody before challenge exposure. Isoantibodies were developed by 1 of the 3 SAADA-vaccinated cows and 1 of the 2 FAADA-vaccinated cows, as well as by all 3 SAA-vaccinated cows. After challenge exposure, all cattle developed anti-anaplasma antibody and antierythrocyte autoantibody.

Agglutination Tests↗

Characterization of immune responses of cattle to erythrocyte stroma, Anaplasma antigen, and dodecanoic acid-conjugated Anaplasma antigen: cell-mediated immunity.

Sonically disrupted normal erythrocyte stroma (SES) and two anaplasma antigens (sonically disrupted anaplasma antigen; SAA, and French pressure cell disrupted anaplasma antigen; FAA) were prepared from normal and Anaplasma marginale-infected blood. The SAA and FAA antigens were chemically modified by conjugation with dodecanoic acid (SAADA and FAADA). Significant (P less than or equal to 0.05) anti-anaplasma lymphocyte-transformation responses were obtained from all cattle given SAA, SAADA, or FAADA vaccines. Only cows given SAA developed anti-anaplasma antibody. Mild antierythrocyte lymphocyte-transformation responses were obtained from most vaccinated animals. Delayed hypersensitivity to erythrocyte antigen was not detected. The SAA-vaccinated cows had the highest degree of protection in that they developed a smaller percentage of parasitemia and had less severe anemia than did other cattle in the study. The SAADA- and FAADA-vaccinated cattle developed a good cell-mediated immune response, but poor humoral immune response and had lower parasitemias than did challenge-exposed controls; but they developed severe anemia. It is suggested that cellular and humoral mechanisms are essential for protection in anaplasmosis. Evidence of protection from clinical anaplasmosis was not observed in SES-vaccinated cows.

Anaplasma↗

Molecular epidemiology and phylogenetic analysis of Anaplasma ovis and Anaplasma marginale in Ixodidae infesting livestock in northwestern Iran.

BACKGROUND: Anaplasma marginale and Anaplasma ovis are tick-borne obligate intracellular bacteria causing anaplasmosis in cattle and small ruminants, respectively, with considerable economic losses worldwide. Given the favorable ecological conditions for tick survival and the limitation of data on Anaplasma spp. in local tick populations in northwestern Iran, this study aimed to molecular and phylogenetic analysis of A. ovis and A. marginale in Ixodidae infesting livestock in northwestern Iran. METHODS: In this cross-sectional study, a total of 780 ixodid ticks were collected from livestock across 198 herds in 11 counties of Ardabil Province during 2025. Ticks were morphologically identified and grouped into pools based on species and host type. Genomic DNA was extracted using a commercial kit and molecular detection of A. ovis and A. marginale was performed using PCR assays targeting the 16&#xa0;S rRNA and groEL genes. Positive samples were submitted for Sanger sequencing to confirm the identity of Anaplasma spp., phylogenetic analysis was conducted using reference sequences from GenBank (NCBI) using MEGA software (version 12). Statistical analyses were conducted using SPSS (version 25), and associations between categorical variables were assessed using Fisher's exact test (p < 0.05). RESULTS: Eight tick species belonging to three genera were identified. Among the hosts, sheep exhibited the highest infestation rate (49.3%). Hyalomma anatolicum anatolicum was the most prevalent species (25.3%) and was present in all sampled counties. Tick distribution varied significantly among host species (p = 0.003) and geographic locations (p = 0.002). PCR analysis detected A. ovis DNA in 16.6% (4/24) and A. marginale DNA in 8.3% (2/24) of tick pools. Positive pools were primarily associated with Rhipicephalus spp. and Dermacentor marginatus. According to the results of the statistical analysis a significant association was found between tick species and host type (&#x3c7;&#xb2; = 13.87, p = 0.0031), with Hyalomma anatolicum anatolicum more prevalent in sheep (p = 0.001). Tick abundance varied across counties (&#x3c7;&#xb2; = 16.42, p = 0.002), with highest densities in Nir, Khalkhal, and Kowsar (&#x3c7;&#xb2; = 14.21, p = 0.0028). No significant association was observed between Anaplasma positivity and tick species (p = 0.21) or host type (p = 0.09). CONCLUSIONS: The detection of A. ovis and A. marginale DNA in ixodid tick pools indicates their circulation in Ardabil Province. However, due to pooled sampling and the limited number of positive samples, the infection rate at the individual tick level could not be determined. These findings also highlight the importance of a One Health approach, considering the interconnected roles of animal health, tick vectors, and the environment in the transmission and control of tick-borne diseases.

Animals↗

Comparison of a competitive inhibition ELISA and the card agglutination test for detection of antibodies to Anaplasma marginale and Anaplasma centrale in cattle.

OBJECTIVE: To compare a recently developed recombinant MSP-5 competitive inhibition ELISA with a card agglutination test for detection of antibodies to Anaplasma marginale and Anaplasma centrale in Australian cattle. MATERIALS AND METHODS: The ELISA was compared with the card agglutination test using 208 sera from cattle in Anaplasma-free herds, 86 sera from cattle experimentally infected with A marginale or A centrale and 757 sera from cattle in areas endemic for A marginale. RESULTS: The specificity of the ELISA, based on testing 208 sera from cattle in Anaplasma-free areas, was 99.5%, and the sensitivities for detection of antibodies to A marginale and A centrale in sera from the experimentally infected cattle were 98.0% and 100%, respectively. For the same sets of sera, the specificity of the card agglutination test was 98.6% and the sensitivities for detection of antibodies to A marginale and A centrale were 98.0% and 100%, respectively. For the 757 sera collected from cattle in areas endemic for A marginale, the agreement between the ELISA and the card agglutination test depended on the positive threshold selected for the ELISA. The maximum achievable agreement was 91.5% (kappa = 0.73; 95% confidence interval 0.66, 0.79). CONCLUSION: We conclude that the competitive inhibition ELISA is a useful alternative to the card agglutination test for detection of A marginale or A centrale infection in cattle. The assay should be particularly useful for epidemiological applications such as prevalence studies and control programs.

Agglutination Tests↗

The persistence of colostral Anaplasma antibodies and incidence of in utero transmission of Anaplasma infections in calves under laboratory conditions.

Twenty-six calves, born from 25 Anaplasma-infected, intact and splenectomized cows, from a herd kept under strict tick-free laboratory conditions, were monitored for the presence of Anaplasma antibodies, using the rapid card agglutination test. Serum was collected at birth, weekly for 12 weeks, and then monthly for approximately 6 months. Specific antibodies passively acquired could be detected in calf sera for an average period of 8 weeks after birth. Calves that remained positive for longer than 12 weeks were suspected of having contracted in utero infections. Infection of the calves was confirmed by splenectomy. It was concluded that 4 calves in Group I contracted in utero infections. Two of the dams were chronically infected, whilst the other 2 underwent acute primary reactions during the 1st and 2nd trimesters of gestation, respectively. Subsequently all calves born from infected cows in this tick-free herd were serologically screened before being splenectomized at an average age of 8 months. Out of 50 cows, 8 in utero infected calves were identified serologically and this finding was confirmed through splenectomy or subinoculation of blood. Both Anaplasma centrale and Anaplasma marginale were carried transplacentally. Splenectomized and intact cows, chronically infected or undergoing primary reactions during the 1st, 2nd or 3rd trimester of gestation, produced infected calves. A 15,6% incidence of in utero transmitted infections were observed amongst 77 calves under these conditions. None of the 13 splenectomized cows, undergoing primary A. centrale infections during gestation, aborted. Clinical signs of disease were not observed in any of the 12 in utero infected calves prior to splenectomy. The implications of these findings are discussed.

Anaplasmosis↗

Finite purification of Anaplasma marginale: serologic inactivity of the anaplasma body.

Anaplasma bodies finitely purified by affinity chromatography to eliminate all traces of erythrocytic stromata were not agglutinated by serum from calves having acute anaplasmosis. The stromata which were associated with the anaplasma bodies were also finitely purified and agglutinated with such serum. The evidence indicates that the antibody in anaplasmosis that is detected by agglutination tests is directed against the erythrocytic stromata and not against the finitely purified anaplasma bodies.

Anaplasma↗

Vaccination with Anaplasma centrale: response after an experimental challenge with Anaplasma marginale.

The haematological and clinical responses to vaccination with Anaplasma centrale and to subsequent challenge with Anaplasma marginale were evaluated. Twenty Holstein steers 14 to 16 months of age were divided into two groups of 12 and eight animals respectively (groups I and II). Group I was inoculated on day zero with 10(7) A. centrale-infected erythrocytes and group II was kept as a control. On day 125 both groups were challenged with 5 X 10(7) A. marginale-infected erythrocytes. A. centrale inoculation produced low parasitaemias (maximum mean 2.7%), moderate packed cell volume (PCV) falls (minimum mean 20.5%) and no clinical symptoms. After the challenge group I had significantly lower parasitaemia (maximum mean 2.3%) and higher PCV (minimum mean 20.1%) than group II (7.5% and 14.5% respectively). Four steers from group II developed acute anaplasmosis and required treatment.

Anaplasma↗

Detection of the Anaplasma centralevaccine strain and specific differentiation from Anaplasma marginale in vaccinated and infected cattle.

Bovine anaplasmosis caused by the intraerythrocytic rickettsia Anaplasma marginale is the most prevalent tick-borne disease of cattle worldwide. The most efficient method to control anaplasmosis is by vaccination using live Anaplasma centrale, a closely related species or subspecies of low pathogenicity that is capable of inducing significant protection against the more virulent A. marginale. In the present study, we applied PCR assays to detect and discriminate field infection with A. marginale from A. centrale persistently infected vaccinates. Direct and one-stage nested PCR were based on A. centrale mbp58 specific sequence, with the assay sensitivity level of 0.00001% for nested PCR performed in a single amplification step. Size polymorphism in the A. marginale msp1 alpha gene among strains was used to design a PCR capable of discriminating between the Israel T and NT strains of A. marginale and the encoded MSP1a size polymorphism was confirmed by immunoprecipitation. The detection of A. centrale in 72% of vaccinated field-grazing cattle clearly indicated that the majority of vaccinated cattle remain carriers. A. marginalewas detected in 64% of these vaccinated cattle, demonstrating that, as expected, natural transmission occurs within the endemic region. The lack of severe A. marginaleoutbreaks in this region, despite ongoing transmission, is consistent with protection being provided by widespread vaccination with A. centrale.

Anaplasma↗

Identification of immunodominant polypeptides common between Anaplasma centrale and Anaplasma marginale.

High titered antibody from rabbits immunized with Anaplasma centrale or from cattle recovered from A. centrale infection bound predominantly to several 33-36 kDa polypeptides present in both A. centrale and the Israel-NT isolate of Anaplasma marginale. High titered bovine antibody against the Israel-NT isolate of A. marginale also reacted predominantly with A. centrale polypeptides in this size range. The immunodominance of the 33-36 kDa polypeptides and their cross-reactivity indicate that these shared epitopes may be primarily responsible for the cross-protective immunity between A. centrale and A. marginale.

Anaplasma↗

Identification of antigenic differences that discriminate between cattle vaccinated with Anaplasma centrale and cattle naturally infected with Anaplasma marginale.

Monoclonal antibodies were raised against the vaccine strain of Anaplasma centrale used in Australia. A monoclonal antibody that reacted with an 80 kDa antigen was used to develop an A. centrale-specific fluorescent antibody test that will be useful for confirming species identity in patent infections. Another monoclonal antibody that reacted with a 116 kDa antigen was used to develop an A. centrale-specific competitive inhibition enzyme-linked immunosorbent assay (ELISA) for the serological identification of vaccinated cattle. The sensitivity of the ELISA was 100% in cattle experimentally infected with A. centrale, 97.1% in a vaccinated beef herd and 98.3% in a vaccinated dairy herd. The specificity of the ELISA was 98.6% in non-vaccinated cattle outside the Anaplasma marginale-endemic area, 97.9% in non-vaccinated cattle within the A. marginale-endemic area and 100% in cattle experimentally infected with A. marginale. The ELISA detected antibodies to A. centrale in cattle up to 9 years after vaccination with no apparent decrease in sensitivity. The assay has proved extremely valuable in Australia for investigating reported failures of multivalent live vaccines used to protect cattle against anaplasmosis and babesiosis, and should be similarly useful elsewhere in the world where these types of vaccines are used, e.g. Israel and South America.

Anaplasma↗

The Anaplasma marginale msp5 gene encodes a 19-kilodalton protein conserved in all recognized Anaplasma species.

Immunization with Anaplasma marginale outer membranes induced immunity against clinical disease which correlated with antibody titer to outer membrane proteins, including a 19-kDa protein (N. Tebele, T. C. McGuire, and G. H. Palmer, Infect. Immun. 59:3199-3204, 1991). This 19-kDa protein, designated major surface protein 5 (MSP-5), was encoded by a single-copy 633-bp gene. The molecular mass of MSP-5, defined in immunoblots by binding to monoclonal antibody ANAF16C1, was conserved among all recognized species of Anaplasma: A. marginale, A. centrale, and A. ovis. Recombinant MSP-5, which absorbed the antibody reactivity of bovine immune serum to native MSP-5, was recognized by anti-A. marginale and anti-A. centrale immune sera in a competitive inhibition assay with monoclonal antibody ANAF16C1. The presence of antibody to the epitope defined by monoclonal antibody ANAF16C1 in all postinfection sera tested indicates that this epitope is a potential diagnostic antigen for use in identifying persistently infected cattle.

Amino Acid Sequence↗

Evaluation of a commercially available ELISA kit for detection of antibodies to Anaplasma marginale and Anaplasma centrale in cattle in Australia and Zimbabwe.

A newly available competitive inhibition ELISA kit for the serological diagnosis of anaplasmosis was evaluated in Australia and Zimbabwe. In Australia the performance of the test was compared with the card agglutination test (CAT). The assay was evaluated using negative sera collected from Anaplasma-free herds, positive sera from experimentally infected cattle and sera from Anaplasma marginale-endemic herds. The sensitivity and specificity of the ELISA in Australia were 100 % and 83,3 %, respectively, and the sensitivity and specificity of the CAT were both 100%. The agreement between the ELISA and CAT in the sera from endemic herds was 86,4 % (kappa = 0,718). The specificity of the ELISA in Zimbabwe was 100%. No meaningful estimate of sensitivity was possible in Zimbabwe because few known positive sera were available for testing, but all eight known positive sera that were available were clearly positive. We conclude that the ELISA is a useful alternative to the CAT for epidemiological studies. The ELISA kits have advantages over the CAT in that the ELISA is more robust and reagents are better standardized, but the kits are expensive.

Agglutination Tests↗

DNA probes for the detection of Anaplasma centrale and Anaplasma marginale.

Anaplasmosis can be diagnosed either by immunological techniques or by direct microscopic examination of blood smears. Both methods are time-consuming and labour intensive. The use of DNA probes in an hybridization assay may simplify the diagnosis of anaplasmosis in cattle and sheep. A genomic DNA library of Anaplasma centrale was constructed in an expression vector and screened to detect clones containing A. centrale DNA. Four probes which hybridized to A. centrale and Anaplasma marginale DNA were isolated. One of these (AC-1) hybridized only to A. centrale DNA, whereas AC-2, AC-3 and AC-4 could detect DNA from both A. centrale and A. marginale. Probes AC-1 and AC-2 could detect 127 ng and 8 ng DNA respectively, while AC-3 and AC-4 detected 64 ng A. centrale DNA.

Anaplasma↗

Identification of functional promoters in the msp2 expression loci of Anaplasma marginale and Anaplasma phagocytophilum.

Organisms in the family Anaplasmataceae are important tick-borne pathogens of livestock worldwide and cause recently emergent infections in humans. Despite their medical importance, very little is known about how these organisms regulate gene expression in the mammalian host, the tick vector, or during transition between the host and vector. However, it is clear that gene regulation, in addition to recombinatorial mechanisms, is essential for these small genome pathogens to adapt to distinctly different environments. In this study, we identify and establish the function of three promoter elements in the locus encoding major outer membrane protein expression sites in both Anaplasma marginale and Anaplasma phagocytophilum. Gene expression from this locus involves both classical and atypical polycistronic transcripts. The identified promoter elements have a structure similar to that defined in Escherichia coli and are functional in driving protein expression in a prokaryotic cell-free transcription and translation system and in recombinant E. coli. The two strongest promoters identified in vitro and with recombinant E. coli were also shown to be functional in A. marginale infected cells, as determined by quantification of downstream transcripts. The promoters in both A. marginale and A. phagocytophilum have similar structure and activity, supporting the conclusion that the two loci are syntenic with conservation of function. In addition, they share structural elements within the promoters that appear to be likely sites for regulation. These data enhance our understanding of how expression of these variable outer membrane proteins may be controlled in the key stages of tick-borne transmission and infection.

Animals↗

Serologic cross-reactivity between Anaplasma marginale and Anaplasma phagocytophilum.

In the context of a serosurvey conducted on the Anaplasma marginale prevalence in Swiss cattle, we suspected that a serological cross-reactivity between A. marginale and A. phagocytophilum might exist. In the present study we demonstrate that cattle, sheep and horses experimentally infected with A. phagocytophilum not only develop antibodies to A. phagocytophilum (detected by immunofluorescent-antibody assay) but also to A. marginale (detected by a competitive enzyme-linked immunosorbent assay). Conversely, calves experimentally infected with A. marginale also developed antibodies to A. phagocytophilum using the same serological tests. The identity of 63% determined in silico within a 209-amino-acid sequence of major surface protein 5 of an isolate of A. marginale and one of A. phagocytophilum supported the observed immunological cross-reactivity. These observations have important consequences for the serotesting of both, A. marginale and A. phagocytophilum infection of several animal species. In view of these new findings, tests that have been considered specific for either infection must be interpreted carefully.

Anaplasma marginale↗