Whole Genome Sequencing versus Traditional Genotyping for Investigation of a Mycobacterium tuberculosis Outbreak: A Longitudinal Molecular Epidemiological Study

被引:370
作者
Roetzer, Andreas [1 ]
Diel, Roland [2 ]
Kohl, Thomas A. [1 ,3 ]
Rueckert, Christian [3 ]
Nuebel, Ulrich [4 ]
Blom, Jochen [5 ]
Wirth, Thierry [6 ]
Jaenicke, Sebastian [5 ]
Schuback, Sieglinde [7 ]
Ruesch-Gerdes, Sabine [8 ]
Supply, Philip [9 ]
Kalinowski, Joern [3 ]
Niemann, Stefan [1 ]
机构
[1] Forschungszentrum Borstel, Borstel, Germany
[2] Schleswig Holstein Univ Hosp, Inst Epidemiol, Kiel, Germany
[3] Univ Bielefeld, CeBiTec, Inst Genome Res & Syst Biol, D-33615 Bielefeld, Germany
[4] Robert Koch Inst, Wernigerode, Germany
[5] Univ Bielefeld, CeBiTec, D-33615 Bielefeld, Germany
[6] Ecole Prat Hautes Etud, Muse Natl Hist Nat, Dept Systemat & Evolut, Paris, France
[7] Gesundheitsamt Kreises Steinburg, Itzehoe, Germany
[8] Forschungszentrum Borstel, Natl Reference Ctr Mycobacteria, Borstel, Germany
[9] Univ Lille Nord France, CNRS UMR 8204, Inst Pasteur Lille, INSERM,U1019, Lille, France
来源
PLOS MEDICINE | 2013年 / 10卷 / 02期
关键词
EVOLUTION; GERMANY; ALIGNMENT; HAMBURG; STRAINS; TIME;
D O I
10.1371/journal.pmed.1001387
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background: Understanding Mycobacterium tuberculosis (Mtb) transmission is essential to guide efficient tuberculosis control strategies. Traditional strain typing lacks sufficient discriminatory power to resolve large outbreaks. Here, we tested the potential of using next generation genome sequencing for identification of outbreak-related transmission chains. Methods and Findings: During long-term (1997 to 2010) prospective population-based molecular epidemiological surveillance comprising a total of 2,301 patients, we identified a large outbreak caused by an Mtb strain of the Haarlem lineage. The main performance outcome measure of whole genome sequencing (WGS) analyses was the degree of correlation of the WGS analyses with contact tracing data and the spatio-temporal distribution of the outbreak cases. WGS analyses of the 86 isolates revealed 85 single nucleotide polymorphisms (SNPs), subdividing the outbreak into seven genome clusters (two to 24 isolates each), plus 36 unique SNP profiles. WGS results showed that the first outbreak isolates detected in 1997 were falsely clustered by classical genotyping. In 1998, one clone (termed "Hamburg clone'') started expanding, apparently independently from differences in the social environment of early cases. Genome-based clustering patterns were in better accordance with contact tracing data and the geographical distribution of the cases than clustering patterns based on classical genotyping. A maximum of three SNPs were identified in eight confirmed human-to-human transmission chains, involving 31 patients. We estimated the Mtb genome evolutionary rate at 0.4 mutations per genome per year. This rate suggests that Mtb grows in its natural host with a doubling time of approximately 22 h (400 generations per year). Based on the genome variation discovered, emergence of the Hamburg clone was dated back to a period between 1993 and 1997, hence shortly before the discovery of the outbreak through epidemiological surveillance. Conclusions: Our findings suggest that WGS is superior to conventional genotyping for Mtb pathogen tracing and investigating micro-epidemics. WGS provides a measure of Mtb genome evolution over time in its natural host context.
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页数:12
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