High prevalence and two dominant host-specific genotypes of Coxiella burnetii in US milk

被引:54
作者
Pearson, Talima [1 ]
Hornstra, Heidie M. [1 ]
Hilsabeck, Remy [1 ]
Gates, Lauren T. [1 ]
Olivas, Sonora M. [1 ]
Birdsell, Dawn M. [1 ]
Hall, Carina M. [1 ]
German, Sabrina [1 ]
Cook, James M. [1 ]
Seymour, Meagan L. [1 ]
Priestley, Rachael A. [2 ]
Kondas, Ashley V. [2 ]
Clark, Christine L.
Friedman, Christine L. Clark [1 ]
Price, Erin P. [1 ]
Schupp, James M. [3 ]
Liu, Cindy M. [1 ,3 ]
Price, Lance B. [3 ]
Massung, Robert F. [2 ]
Kersh, Gilbert J. [2 ]
Keim, Paul [1 ,3 ]
机构
[1] No Arizona Univ, Ctr Microbial Genet & Genom, Flagstaff, AZ 86011 USA
[2] Ctr Dis Control & Prevent, Rickettsial Zoonoses Branch, Atlanta, GA USA
[3] Translat Genom Res Inst, Pathogen Genom Div, Phoenix, AZ USA
关键词
Coxiella burnetii; Q fever; Environmental detection; Genotyping; Phylogeography; Multispacer typing; SNP typing; Canonical SNP; CanSNP; Q-FEVER OUTBREAK; MOLECULAR EPIDEMIOLOGY; UNITED-STATES; DAIRY-CATTLE; DNA; ABORTION; SAMPLES; SHEEP; PCR; ENVIRONMENT;
D O I
10.1186/1471-2180-14-41
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Background: Coxiella burnetii causes Q fever in humans and Coxiellosis in animals; symptoms range from general malaise to fever, pneumonia, endocarditis and death. Livestock are a significant source of human infection as they shed C. burnetii cells in birth tissues, milk, urine and feces. Although prevalence of C. burnetii is high, few Q fever cases are reported in the U.S. and we have a limited understanding of their connectedness due to difficulties in genotyping. Here, we develop canonical SNP genotyping assays to evaluate spatial and temporal relationships among C. burnetii environmental samples and compare them across studies. Given the genotypic diversity of historical collections, we hypothesized that the current enzootic of Coxiellosis is caused by multiple circulating genotypes. We collected A) 23 milk samples from a single bovine herd, B) 134 commercial bovine and caprine milk samples from across the U. S., and C) 400 bovine and caprine samples from six milk processing plants over three years. Results: We detected C. burnetii DNA in 96% of samples with no variance over time. We genotyped 88.5% of positive samples; bovine milk contained only a single genotype (ST20) and caprine milk was dominated by a second type (mostly ST8). Conclusions: The high prevalence and lack of genotypic diversity is consistent with a model of rapid spread and persistence. The segregation of genotypes between host species is indicative of species-specific adaptations or dissemination barriers and may offer insights into the relative lack of human cases and characterizing genotypes.
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页数:9
相关论文
共 44 条
[1]   Coxiella burnetii associated reproductive disorders in domestic animals-a critical review [J].
Agerholm, Jorgen S. .
ACTA VETERINARIA SCANDINAVICA, 2013, 55 :13
[2]   Molecular characterization of Coxiella burnetii isolates by infrequent restriction site-PCR and MLVA typing [J].
Arricau-Bouvery, Nathalie ;
Hauck, Yolande ;
Bejaoui, Awatef ;
Frangoulidis, Dimitrios ;
Bodier, Christelle C. ;
Souriau, Armel ;
Meyer, Hermann ;
Neubauer, Heinrich ;
Rodolakis, Annie ;
Vergnaud, Gilles .
BMC MICROBIOLOGY, 2006, 6 (1)
[3]   Estimation of Coxiella burnetii prevalence in dairy cattle in intensive systems by serological and molecular analyses of bulk-tank milk samples [J].
Astobiza, I. ;
Ruiz-Fons, F. ;
Pinero, A. ;
Barandika, J. F. ;
Hurtado, A. ;
Garcia-Perez, A. L. .
JOURNAL OF DAIRY SCIENCE, 2012, 95 (04) :1632-1638
[4]   Genotyping of Coxiella burnetii from domestic ruminants in northern Spain [J].
Astobiza, Ianire ;
Tilburg, Jeroen J. H. C. ;
Pinero, Alvaro ;
Hurtado, Ana ;
Garcia-Perez, Ana L. ;
Nabuurs-Franssen, Marrigje H. ;
Klaassen, Corne H. W. .
BMC VETERINARY RESEARCH, 2012, 8
[5]   A survey of Western Australian sheep, cattle and kangaroos to determine the prevalence of Coxiella burnetii [J].
Banazis, Michael Janis ;
Bestall, Abbey Simone ;
Reid, Simon Andrew ;
Fenwick, Stan Gordon .
VETERINARY MICROBIOLOGY, 2010, 143 (2-4) :337-345
[6]  
Cabassi CS, 2006, NEW MICROBIOL, V29, P211
[7]  
Chmielewski T, 2009, POL J MICROBIOL, V58, P9
[8]   Detection of Coxiella burnetii DNA in the environment during and after a large Q fever epidemic in the Netherlands [J].
de Bruin, A. ;
Janse, I. ;
Koning, M. ;
de Heer, L. ;
van der Plaats, R. Q. J. ;
van Leuken, J. P. G. ;
van Rotterdam, B. J. .
JOURNAL OF APPLIED MICROBIOLOGY, 2013, 114 (05) :1395-1404
[9]   Coxiella burnetii DNA, But Not Viable Bacteria, in Dairy Products in France [J].
Eldin, Carole ;
Angelakis, Emmanouil ;
Renvoise, Aurelie ;
Raoult, Didier .
AMERICAN JOURNAL OF TROPICAL MEDICINE AND HYGIENE, 2013, 88 (04) :765-769
[10]   Investigation of Coxiella burnetii occurrence in dairy sheep flocks by bulk-tank milk analysis and antibody level determination [J].
Garcia-Perez, A. L. ;
Astobiza, I. ;
Barandika, J. F. ;
Atxaerandio, R. ;
Hurtado, A. ;
Juste, R. A. .
JOURNAL OF DAIRY SCIENCE, 2009, 92 (04) :1581-1584