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Volume 17, Number 2—February 2011

Letter

Rickettsia aeschlimannii in Hyalomma marginatum Ticks, Germany

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To the Editor: Rickettsia spp. of the spotted fever group cause worldwide emerging human infections known as tick-borne rickettsioses (1). Data on the occurrence and prevalence of Rickettsia in Germany are still limited (2). Six Rickettsia species have been reported to date (2). R. helvetica, R. felis, R. massiliae, and R. monacensis were detected with a relatively low prevalence in Ixodes ricinus ticks collected in southern Germany (2); R. raoultii was identified with high prevalence in the rapidly expanding area where D. reticulatus ticks are found (2). R. raoultii was recently recognized as an agent of tick-borne lymphadenopathy/Dermacentor-borne necrosis and erythema lymphadenopathy (3). Low prevalence of another tick-borne lymphadenopathy agent, R. slovaca, in Dermacentor marginatus ticks collected in southern Germany was recently reported (4).

We report the detection in Germany of the pathogenic SFG species R. aeshlimannii (1), which is phylogenetically close to R. raoultii and causes an infection with clinical signs similar to those of Mediterranean spotted fever (1). To determine the prevalence of R. raoultii in the ticks in Berlin/Brandenburg and neighboring regions, we collected 294 ticks; 288 had been collected either from vegetation or domestic animals and morphologically identified as adult D. reticulatus ticks. The remaining 6 ticks were delivered by an ornithologist who had removed them from a bird (belonging to the Acrocephalus scirpaceus spp.) that he had captured in the reeds near Pakendorf and Zerbst, Saxony-Anhalt, in May 2007. These 6 ticks were reported as D. reticulatus–like adults but were damaged in the collection process, making an exact morphologic evaluation impossible.

Figure

Thumbnail of Illustration of multispacer typing. Amplicons 1–4 result from PCRs on DNA obtained from 1 Rickettsia raoultii–infected Dermacentor reticulatus tick isolate; lanes 5–8 result from PCRs on 1 damaged isolate. PCRs amplifying dksA-xerC (lanes 1 and 5), mppA-purC (lanes 2 and 6), and rpmE-tRNA (lanes 3 and 7) intergenic spacers were performed as described (5). PCR amplifying the entire internal transcribed factor 2 (ITS2) locus of D. reticulatus tick (lanes 4 and 8) was involved in each

Figure. Illustration of multispacer typing. Amplicons 1–4 result from PCRs on DNA obtained from 1 Rickettsia raoultii–infected Dermacentor reticulatus tick isolate; lanes 5–8 result from PCRs on 1 damaged isolate. PCRs amplifying...

DNA was isolated from the complete tick body by homogenization in the SpeedMill (Analytik Jena Biosolutions, Jena, Germany) followed by purification by RapideStripe tick DNA/RNA Extraction Kit (Analytik Jena Biosolutions). Multispacer typing (5) was used for molecular detection and determination of Rickettsia spp. (Figure). DNA sequencing and analysis were performed as described (Figure).

In 51.3% of the intact tick isolates, R. raoultii was detected. In each of the 3 damaged isolates, the multispacer type pattern was detected, which was 100% identical to that of R. aeschlimannii (5) (Figure). Moreover, PCR, which we routinely use as a positive control for molecular identification of D. reticulatus, yielded no product in the damaged isolates (Figure).

To determine the species of the damaged ticks, we used 3 tick-specific PCRs. One amplified a 16S rRNA fragment used for phylogenetic studies of ticks (6). Use of the other 2 PCRs was based on the consideration that R. aeschlimannii is usually found in ticks of the genus Hyalomma, primarily in H. marginatum (1). Therefore, 1 of the PCRs amplified a fragment of the Hyalomma tick mitochondrial cytochrome oxidase I gene and the other a fragment of the internal transcribed spacer 2 (7).

The ITS2 fragment displayed the highest (99%) similarity with the respective fragment of H. marginatum, H. dromedarii, H. truncatum, and H. lusitanicum. Cytochrome oxidase subunit I fragment was 99% identical to H. marginatum, H. dromedarii, and H. truncatum. The 16S RNA fragment was 98% identical to H. marginatum; its identity to the second closest sequence belonging to H. lusitanicum was 96%.

Earlier, R. aeschlimannii had been detected in sub-Saharan and North Africa, southern Europe, and southwestern Russia (8). Therefore, the area of Zerbst, the middle of Germany, marks the northernmost point of R. aeschlimannii detection.

Hyalomma spp. ticks are distributed in Africa, the Mediterranean climatic zone of southern Europe, and in Asia. The only documented Hyalomma spp. tick in Germany was found on a human in the southern part of the country (Lake Constance area) in May 2006, but the possibility of tick transportation from Spain was not ruled out (9).

Acrocephalus scirpaceus birds are migratory birds and live in central Europe from April to October and winter in sub-Saharan Africa in the region inhabited by Hyalomma spp. ticks. Therefore, it is reasonable to suggest that the Hyalomma spp. ticks that we examined had been transported by the birds from Africa. The fact that a randomly caught bird was infested with R. aeshlimannii­–infected ticks is suggestive of the intensive stream of new pathogens transported through Europe by migrating birds. The first possible implication of a bird as a vector of infected ticks was proposed for Hyalomma spp. ticks infected by R. sibirica mongolitimonae (10). Until now, the role of migrating birds in distribution of tick-borne pathogens has been poorly understood (9). The changing climate and environment in central Europe may facilitate the establishment of pathogen-carrying tick species transported by birds. These new pathogens can be directly transmitted from infected birds to the species of the local fauna.

Leonid Rumer, Elmara Graser, Timo Hillebrand, Thomas Talaska, Hans Dautel, Oleg Mediannikov, Panchali Roy-Chowdhury, Olga Sheshukova, Oliver Donoso Mantke, and Matthias NiedrigComments to Author 
Author affiliations: Author affiliations: Robert Koch Institut, Berlin, Germany (L. Rumer, P. Roy-Chowdhury, O. Sheshukova, O. Donoso Mantke, M. Niedrig); AJInnuscreen GmbH, Berlin (E. Graser, T. Hillebrand); Practice for Microbiology and Epidemiology of Infectious Diseases, Lindow, Germany (T. Talaska); IS Insect Services GmbH, Berlin (H. Dautel); Université de la Méditerranée, Marseille, France (O. Mediannikov)

Acknowledgment

We thank Yuliya Dobrydneva for critical reading of the manuscript.

References

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  4. Pluta S, Tewald F, Hartelt K, Oehme R, Kimmig P, Mackenstedt U. Rickettsia slovaca in Dermacentor marginatus ticks, Germany. Emerg Infect Dis. 2009;15:20778. DOIPubMed
  5. Fournier PE, Raoult D. Identification of rickettsial isolates at the species level using multi-spacer typing. BMC Microbiol. 2007;7:72. DOIPubMed
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  7. Rees DJ, Dioli M, Kirkendall LR. Molecules and morphology: evidence for cryptic hybridization in African Hyalomma (Acari: Ixodidae). Mol Phylogenet Evol. 2003;27:13142. DOIPubMed
  8. Shpynov S, Rudakov N, Tohkov Y, Matushchenko A, Tarasevich I, Raoult D, Detection of Rickettsia aeschlimannii in Hyalomma marginatum ticks in western Russia. Clin Microbiol Infect. 2009;15(Suppl 2):S3156. DOIPubMed
  9. Kampen H, Poltz W, Hartelt K, Wölfel R, Faulde M. Detection of a questing Hyalomma marginatum marginatum adult female (Acari, Ixodidae) in southern Germany. Exp Appl Acarol. 2007;43:22731. DOIPubMed
  10. Raoult D, Roux V. Rickettsioses as paradigms of new or emerging infectious diseases. Clin Microbiol Rev. 1997;10:694719.PubMed

Figure

Suggested citation for this article: Rumer L, Graser E, Hillebrand T, Talaska T, Dautel H, Mediannikov O, et al. Rickettsia aeschlimannii in Hyalomma marginatum ticks, Germany [letter]. Emerg Infect Dis [serial on the Internet]. 2011 Feb [date cited]. http://dx.doi.org/10.3201/eid1702.100308

DOI: 10.3201/eid1702.100308

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Table of Contents – Volume 17, Number 2—February 2011

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Matthias Niedrig, Robert Koch Institut, Nordufer 20, 13353 Berlin, Germany





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