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Journal of Clinical Microbiology, February 2008, p. 776-779, Vol. 46, No. 2
0095-1137/08/$08.00+0 doi:10.1128/JCM.01720-07
Copyright © 2008, American Society for Microbiology. All Rights Reserved.

Laboratorio de Espiroquetas y Patógenos Especiales, Servicio de Bacteriología, Centro Nacional de Microbiología, Majadahonda, Madrid, Spain,1 Hospital de Getafe, Getafe, Madrid, Spain,2 Neiker Tecnalia, Vizcaya, Spain3
Received 29 August 2007/ Returned for modification 11 November 2007/ Accepted 9 December 2007
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More than 20 different Bartonella species have been described so far, and 8 of them have been associated with human disease (14). However, new species have been identified recently as human pathogens, such as B. alsatica (13), B. koehlerae (3), and B. rochalimae (5), as a result of the implementation of more efficient molecular tools for diagnosis. Bartonella spp. can produce a wide variety of clinical manifestations, including severe ones such as encephalitis or endocarditis (14). In fact, the species of this genus are a major cause of culture-negative endocarditis, representing in some studies up to 10% of all the cases (12, 16).
The goal in clinical and environmental studies is not only the identification of positive samples but also the identification of the species involved. Therefore, we describe a new molecular method, based on multiplex PCR combined with reverse line blotting (RLB), for the simultaneous detection of 20 different Bartonella species.
The targets selected for the method were the conservative 16S rRNA, as a generic target for detecting any Bartonella species, and the hypervariable intergenic transcribed spacer 16S-23S rRNA (ITS), which allows distinguishing among the different Bartonella species (4, 9). Also, an internal amplification control (IAC), based on delta-9-tetrahydrocannabinolic acid synthase of Cannabis sativa, was added to evaluate the presence of PCR inhibitors (8).
To design primers and probes (Table 1), available sequences were retrieved from GenBank and were aligned by using ClustalX (6). The ITSs of B. chomelii and B. capreoli were sequenced from strains of the collection of the Institute Pasteur, i.e., B. chomelii A828 (GenBank accession no. EU098133) and B. capreoli IBS 193 (GenBank accession no. EU098130 and EU098131). Interestingly, the latter species had two different ITS sequences, which differed in a 12-bp repetition and were determined after cloning the obtained amplicons from a single colony of B. capreoli. Regions of interest, between 18 and 24 bp long and with melting temperatures above 60°C, were identified by visual analysis. Their feasibility for use as primers and probes was checked with Oligo6 software (Molecular Biology Insights, Inc., West Cascade, CO). The Basic Local Alignment Search Tool (BLASTn) (1) was used for a preliminary assessment of the oligonucleotide specificity. A generic probe for all species was designed based on 16S rRNA, and 17 specific probes were selected from ITSs (Table 1). Given the high homology of the ITS sequences between B. chomelii, B. schoenbuchensis, B. capreoli, and B. birtlesii, a common probe for the four species was designed (S-CHOSCA [Table 1]). The probe and primers for the IAC used in this study have been described previously (8).
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TABLE 1. Probes and primers used in the study
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The RLB was performed as previously described (8) with minor modifications as follows: 3.2 or 0.4 pmol/µl of each probe (Table 1) was attached to the membrane, the hybridization was performed at 50°C for 1 h, and the washing steps were done at 44°C. The overall time required for the RLB was 3.5 h.
The species specificity of the probes was tested with genomic DNAs from different Bartonella species (Fig. 1), obtained after purification with the QIAamp DNA minikit (IZASA S.A., Barcelona, Spain). One hundred genomic equivalents (GE) of each species and 102 copies of the cloned IAC were amplified by PCR, and amplicons were analyzed by RLB. Positive hybridization signals were obtained with the IAC and the generic probe for all the samples, as well as for each specific probe (Fig. 1A, lanes 1 to 19). B. vinsonii subspecies (B. vinsonii subsp. arupensis, B. vinsonii subsp. berkhoffii, and B. vinsonii subsp. vinsonii) were differentiated by the pattern of hybridization against three probes (P-VIN-A1, P-VIN-A2, and P-VIN-B) (Fig. 1A, lanes 16 to 18).
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FIG. 1. RLB results for different samples. (A) Positive and negative controls. Lanes: 1, B. alsatica; 2, B. bacilliformis; 3, B. bovis; 4, B. tribocorum; 5, B. capreoli; 6, B. chomelii; 7, B. schoenbuchensis; 8, B. birtlesii; 9, B. clarridgeiae; 10, B. doshiae; 11, B. elizabethae; 12, B. grahamii; 13, B. quintana; 14, B. koehlerae; 15, B. henselae; 16, B. vinsonii subsp. arupensis; 17, B. vinsonii subsp. berkhoffii; 18, B. vinsonii subsp. vinsonii; 19, B taylorii; 20, Bartonella sp. from Talpa europaea (cloned DNA); 21, Brucella melitensis biovar melitensis; 22, B. melitensis biovar suis; 23, B. melitensis biovar canis; 24, B. melitensis biovar abortus; 25, B. melitensis biovar neotomae; 26, Borrelia burgdorferi; 27, Chlamydia psitacii; 28, Anaplasma phagocytophilum; 29, Coxiella burnetii; 30, Rickettsia conorii; 31, Francisella tularensis; 32, negative control; 33, water. (B) Sensitivity assay with clinical and environmental samples. Lanes: 1 to 4, B. schoenbuchensis at 103, 102, 10, and 1 GE, respectively; 5 to 8, 103, 102, 10, and 1 GE, respectively, of B. schoenbuchensis plus human DNA; 9 to 12, 103, 102, 10, and 1 GE, respectively, of B. schoenbuchensis plus Ixodes ricinus DNA; 13 to 17, clinical samples, i.e., blood (lanes 13 and 14) and a valve biopsy (lane 15) from patients with endocarditis and lymph node aspirates (lanes 16 and 17) from patients with cat scratch disease; 18 to 21, cat fleas (Ctenocephalides felis); 22 to 24, cat blood; 25 to 30, small mammal blood, i.e., from Mus domesticus (lane 25), Apodemus sylvaticus (lanes 26, 27, and 30), and T. europaea (lanes 28 to 29); 31 to 33, wild carnivore spleen and liver pool samples, i.e., from Vulpes vulpes (lane 31), Meles meles (lane 32), and Felis silvestris (lane 33).
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Finally, the sensitivity of the technique was determined with 102 copies of IAC plus 103, 102, 10, and 1 GE of B. schoenbuchensis (Fig. 1B, lane 1 to 4). The test was repeated in the presence of foreign DNA free of pathogens (300 ng of human DNA [Fig. 1B, lanes 5 to 8] or 300 ng of DNA from an Ixodes ricinus specimen [Fig. 1B, lanes 9 to 12]). As expected, in all the samples the IAC was amplified, and the sensitivity for B. schoenbuchensis was 10 GE with the 16S rRNA probe and 1 GE with the ITS probe. In the presence of human DNA there was no loss of sensitivity, while with arthropod DNA we lost a logarithmic unit with the ITS probe (Fig. 1B, lane 9 to 12) but still detected until 10 GE with the 16S rRNA probe.
It has been suggested that the simultaneous presence of different Bartonella species in the same sample could be underestimated using the current diagnostic methods (11). Cases of mixed infections with B. vinsonii subsp. berkoffii and B. henselae in patients have been described. Using our method, we have observed a preferential amplification of B. vinsonii subsp. berkoffii, although 10 GE of B. henselae or B. quintana could be amplified and detected in the presence of 100 or 1,000 GE of B. vinsonii subsp. berkoffii (data not shown).
The method was later validated with clinical and environmental samples (Fig. 1). In clinical samples, we detected B. quintana and B. henselae from patients with endocarditis and lymphadenopathies (Fig. 1B, lanes 13 to 17). In environmental samples, we detected B. henselae and B. clarridgeiae in cat fleas (Ctenocephalides felis), cats (Felis felis), and a wild cat (F. silvestris), including a mixed infection of both species in a cat (Fig. 1B, lanes 18 to 24 and 33). In small mammals, B. taylorii was detected (Fig. 1B, lanes 25 to 30). However, when the ITS amplicons were sequenced, an undescribed 452-bp ITS fragment (GenBank accession no. EU098135) different from the sequence of the ITS of B. taylorii was detected in two moles (Talpa europaea) and one house mouse (Mus domesticus). In the BLAST server from the NCBI, this fragment showed an 81% homology with an uncultured Bartonella (accession no. AJ269794) which had been detected in a wood mouse (4). The 16S rRNA amplicons from these samples were also sequenced (GenBank accession no. EU098129) and grouped in the dendrogram in the same clade as B. capreoli, B. taylorii, and B. doshiae (Fig. 2). As it was detected in a mole, it could correspond to B. talpae, although there are currently no available strains or sequences of this species. Consequently, we designed a new probe for this agent, and we cloned the corresponding ITS amplicon to be used as positive control (Fig. 1A, lane 20). We were then able to distinguish this species from B. taylorii in the RLB (Fig. 1B, lanes 25, 27, and 28).
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FIG. 2. Phylogenetic tree built with partial Bartonella 16S rRNA sequences. Tree inference for the phylogeny reconstruction was done with the neighbor-joining method with the interior branch test by using Mega version 4 software (15).
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The molecular method described, which is being patented (2; P. Anda, 29 June 2007, Oficina Española de Patentes y Marcas, pending patent P200701830), has shown an excellent specificity and sensitivity and is a powerful tool for the study of environmental samples and of the etiology of human bartonellosis. Moreover, the technique allows the identification of new Bartonella species and could be updated progressively with the design of probes for new species, as has been done in the case of the Bartonella detected in small mammals. New probes are being tested for new Bartonella species detected in wild carnivores as well as for other species, such B. rattimassiliensis or B. phoceensis.
Nucleotide sequence accession numbers. The sequences obtained in this study has been submitted to GenBank under the following accession numbers: EU098127 and EU98132 (16S rRNA and ITS of a Bartonella sp. detected in M. meles), EU098128 and EU098134 (16S rRNA and ITS of a Bartonella sp. detected in V. vulpes), EU098129 and EU98135 (16S rRNA and ITS of a Bartonella sp. detected in T, europaea), EU098130 and EU098131 (ITSs from B. capreoli), and EU098133 (ITS from B. chomelii).
We thank Santos Jiménez and Azucena Pérez from Consejería de Salud del Gobierno de La Rioja for supplying samples from cats and fleas.
Published ahead of print on 19 December 2007. ![]()
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