Molecular Discrimination of Mycobacterium bovis in Sao Paulo, Brazil

被引:11
作者
Figueiredo Rocha, Vivianne Cambui [1 ]
de Figueiredo, Salomao Cambui [2 ]
Rodriguez Rosales, Cesar Alejandro [1 ]
de Hildebrand e Grisi Filho, Jose Henrique [1 ]
Keid, Lara Borges [1 ]
Soares, Rodrigo Martins [1 ]
Ferreira Neto, Jose Soares [1 ]
机构
[1] Univ Sao Paulo, Fac Med Vet & Zootecn, Sao Paulo, Brazil
[2] Inst Fed Educ Ciencia & Tecnol Paraiba, Fac Med Vet, Sousa, PB, Brazil
基金
巴西圣保罗研究基金会;
关键词
Brazil; Molecular discrimination; Mycobacterium bovis; TUBERCULOSIS COMPLEX STRAINS; FRAGMENT-LENGTH-POLYMORPHISM; POLYMERASE-CHAIN-REACTION; SPOLIGOTYPE DIVERSITY; GENETIC DIVERSITY; CLONAL COMPLEX; EPIDEMIOLOGY; CATTLE; IDENTIFICATION; MARKERS;
D O I
10.1089/vbz.2012.1035
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Mycobacterium bovis, a member of the Mycobacterium tuberculosis complex, is the most common agent of cattle tuberculosis, a zoonosis that causes losses in meat and milk production in several countries. In order to support epidemiological studies aimed at controlling the disease, several methods for molecular discrimination of M. bovis isolates have recently been developed. The most frequently used are spacer oligonucleotide typing (spoligotyping), mycobacterial interspersed repetitive units (MIRU), and exact tandem repeat (ETR), but they all have different discriminatory power. In the present study, allelic diversity was calculated for each MIRU and ETR locus, and the Hunter-Gaston discriminatory index (HGI) was calculated for spoligotyping, 10 MIRUs, and 3 ETRs, in 116 isolates of M. bovis obtained from cattle. The analysis of allelic diversity indicated that MIRUs 16, 26, and 27, and ETRs A, B, and C, showed the greatest diversity between the assayed loci. The HGIs for each of the techniques were: spoligotyping = 0.738381; MIRU = 0.829835; and ETR = 0.825337. The associations of the methods' improved discriminatory power were: spoligotyping + MIRU = 0.930585; spoligotyping + ETR = 0.931034; and MIRU + ETR = 0.953373. The greatest discriminatory power was obtained when the three techniques were associated (HGI = 0.98051). Considering the analyses of the present study, spoligotyping should be the first method to be used because it differentiates M. bovis from the other members of the Mycobacterium tuberculosis complex. As the associations of MIRU and ETR with spoligotyping resulted in nearly identical HGIs, ETR seems to be the best choice after spoligotyping, because it is faster and more economical than MIRU. Finally, MIRU should be the last method used. In spite of this finding, the choice of the method used should be based on the discriminatory power necessary for the objective at hand.
引用
收藏
页码:17 / 21
页数:5
相关论文
共 42 条
[1]   Spacer oligonucleotide typing of Mycobacterium bovis strains from cattle and other animals: A tool for studying epidemiology of tuberculosis [J].
Aranaz, A ;
Liebana, E ;
Mateos, A ;
Dominguez, L ;
Vidal, D ;
Domingo, M ;
Gonzolez, O ;
RodriguezFerri, EF ;
Bunschoten, AE ;
VanEmbden, JDA ;
Cousins, D .
JOURNAL OF CLINICAL MICROBIOLOGY, 1996, 34 (11) :2734-2740
[2]   African 2, a Clonal Complex of Mycobacterium bovis Epidemiologically Important in East Africa [J].
Berg, Stefan ;
Garcia-Pelayo, M. Carmen ;
Mueller, Borna ;
Hailu, Elena ;
Asiimwe, Benon ;
Kremer, Kristin ;
Dale, James ;
Boniotti, M. Beatrice ;
Rodriguez, Sabrina ;
Hilty, Markus ;
Rigouts, Leen ;
Firdessa, Rebuma ;
Machado, Adelina ;
Mucavele, Custodia ;
Ngandolo, Bongo Nare Richard ;
Bruchfeld, Judith ;
Boschiroli, Laura ;
Mueller, Annelle ;
Sahraoui, Naima ;
Pacciarini, Maria ;
Cadmus, Simeon ;
Joloba, Moses ;
van Soolingen, Dick ;
Michel, Anita L. ;
Djonne, Berit ;
Aranaz, Alicia ;
Zinsstag, Jakob ;
van Helden, Paul ;
Portaels, Francoise ;
Kazwala, Rudovick ;
Kallenius, Gunilla ;
Hewinson, R. Glyn ;
Aseffa, Abraham ;
Gordon, Stephen V. ;
Smith, Noel H. .
JOURNAL OF BACTERIOLOGY, 2011, 193 (03) :670-678
[3]   A modified automated high-throughput mycobacterial interspersed repetitive unit method for genotyping Mycobacterium tuberculosis [J].
Chin, PJ ;
Jou, RW .
DIAGNOSTIC MICROBIOLOGY AND INFECTIOUS DISEASE, 2005, 53 (04) :325-327
[4]   Spoligotype analysis of Mycobacterium bovis isolates from northern Mexico [J].
Cobos-Marín, L ;
Montes-Vargas, J ;
Zumarraga, M ;
Cataldi, A ;
Romano, MI ;
Estrada-Garcia, I ;
Gonzalez-y-Merchand, JA .
CANADIAN JOURNAL OF MICROBIOLOGY, 2005, 51 (11) :996-1000
[5]   Zoonotic tuberculosis due to Mycobacterium bovis in developing countries [J].
Cosivi, O ;
Grange, JM ;
Daborn, CJ ;
Raviglione, MC ;
Fujikura, T ;
Cousins, D ;
Robinson, RA ;
Huchzermeyer, HFAK ;
de Kantor, I ;
Meslin, FX .
EMERGING INFECTIOUS DISEASES, 1998, 4 (01) :59-70
[6]   Study of restriction fragment length polymorphism analysis and spoligotyping for epidemiological investigation of Mycobacterium bovis infection [J].
Costello, E ;
O'Grady, D ;
Flynn, O ;
O'Brien, R ;
Rogers, M ;
Quigley, F ;
Egan, J ;
Griffin, J .
JOURNAL OF CLINICAL MICROBIOLOGY, 1999, 37 (10) :3217-3222
[7]   Evaluation of four DNA typing techniques in epidemiological investigations of bovine tuberculosis [J].
Cousins, D ;
Williams, S ;
Liébana, E ;
Aranaz, A ;
Bunschoten, A ;
Van Embden, J ;
Ellis, T .
JOURNAL OF CLINICAL MICROBIOLOGY, 1998, 36 (01) :168-178
[8]   Spoligotype diversity of Mycobacterium bovis and Mycobacterium caprae animal isolates [J].
Duarte, E. L. ;
Domingos, M. ;
Amado, A. ;
Botelho, A. .
VETERINARY MICROBIOLOGY, 2008, 130 (3-4) :415-421
[9]   Genetic diversity in the Mycobacterium tuberculosis complex based on variable numbers of tandem DNA repeats [J].
Frothingham, R ;
Meeker-O'Connell, WA .
MICROBIOLOGY-UK, 1998, 144 :1189-1196
[10]   Cattle movements and bovine tuberculosis in Great Britain [J].
Gilbert, M ;
Mitchell, A ;
Bourn, D ;
Mawdsley, J ;
Cliton-Hadley, R ;
Wint, W .
NATURE, 2005, 435 (7041) :491-496