High-throughput mycobacterial interspersed repetitive-unit-variable-number tandem-repeat genotyping for Mycobacterium tuberculosis epidemiological studies.

PubWeight™: 0.79‹?›

🔗 View Article (PMC 4298502)

Published in J Clin Microbiol on November 26, 2014

Authors

Marie Gauthier1, Floriane Bidault2, Amandine Mosnier2, Nino Bablishvili3, Nestani Tukvadze3, Silaphet Somphavong4, Phimpha Paboriboune4, Oksana Ocheretina5, Jean William Pape5, Glaucia Paranhos-Baccala2, Jean-Luc Berland2

Author Affiliations

1: Laboratoire des Pathogènes Emergents (LPE), Fondation Mérieux-Centre International de Recherche en Infectiologie (CIRI), Lyon, France marie.gauthier@fondation-merieux.org.
2: Laboratoire des Pathogènes Emergents (LPE), Fondation Mérieux-Centre International de Recherche en Infectiologie (CIRI), Lyon, France.
3: National Center for Tuberculosis and Lung Disease (NCTLD), Tbilisi, Georgia.
4: Centre d'Infectiologie Christophe Mérieux du Laos (CICML), Vientiane, Lao People's Democratic Republic.
5: Les Centres GHESKIO, Port-au-Prince, Haiti.

Articles cited by this

Proposal for standardization of optimized mycobacterial interspersed repetitive unit-variable-number tandem repeat typing of Mycobacterium tuberculosis. J Clin Microbiol (2006) 12.53

Patients with active tuberculosis often have different strains in the same sputum specimen. Am J Respir Crit Care Med (2003) 5.22

Identification of novel intergenic repetitive units in a mycobacterial two-component system operon. Mol Microbiol (1997) 3.99

Evaluation and strategy for use of MIRU-VNTRplus, a multifunctional database for online analysis of genotyping data and phylogenetic identification of Mycobacterium tuberculosis complex isolates. J Clin Microbiol (2008) 3.94

Molecular epidemiology of tuberculosis: current insights. Clin Microbiol Rev (2006) 3.79

Possible underlying mechanisms for successful emergence of the Mycobacterium tuberculosis Beijing genotype strains. Lancet Infect Dis (2010) 3.21

Stability of variable-number tandem repeats of mycobacterial interspersed repetitive units from 12 loci in serial isolates of Mycobacterium tuberculosis. J Clin Microbiol (2002) 2.77

Mixed infection and clonal representativeness of a single sputum sample in tuberculosis patients from a penitentiary hospital in Georgia. Respir Res (2006) 2.15

Evaluation of the epidemiological relevance of variable-number tandem-repeat genotyping of Mycobacterium bovis and comparison of the method with IS6110 restriction fragment length polymorphism analysis and spoligotyping. J Clin Microbiol (2006) 1.97

First worldwide proficiency study on variable-number tandem-repeat typing of Mycobacterium tuberculosis complex strains. J Clin Microbiol (2011) 1.57

Mycobacterium tuberculosis Beijing lineage favors the spread of multidrug-resistant tuberculosis in the Republic of Georgia. J Clin Microbiol (2010) 1.49

Proposal of a consensus set of hypervariable mycobacterial interspersed repetitive-unit-variable-number tandem-repeat loci for subtyping of Mycobacterium tuberculosis Beijing isolates. J Clin Microbiol (2013) 1.39

Optimization of standard in-house 24-locus variable-number tandem-repeat typing for Mycobacterium tuberculosis and its direct application to clinical material. J Clin Microbiol (2014) 1.07

Molecular characterization and drug resistance patterns of strains of Mycobacterium tuberculosis isolated from patients in an AIDS counseling center in Port-au-Prince, Haiti: a 1-year study. J Clin Microbiol (2003) 1.06

One year nationwide evaluation of 24-locus MIRU-VNTR genotyping on Slovenian Mycobacterium tuberculosis isolates. Respir Med (2011) 1.05

Molecular epidemiology of multidrug-resistant strains of Mycobacterium tuberculosis. Clin Microbiol Infect (2011) 0.95

Use of Luminex MagPlex magnetic microspheres for high-throughput spoligotyping of Mycobacterium tuberculosis isolates in Port-au-Prince, Haiti. J Clin Microbiol (2013) 0.92

A novel approach to automated genotyping of Mycobacterium tuberculosis using a panel of 15 MIRU VNTRs. J Microbiol Methods (2013) 0.82