Mycobacterium tuberculosis complex genetic diversity: mining the fourth international spoligotyping database (SpolDB4) for classification, population genetics and epidemiology

Генетическое разнообразие комплекса Mycobacterium tuberculosis: анализ четвертой международной базы данных сполиготипирования (SpolDB4) для классификации, популяционной генетики и эпидемиологии
Karine Brudey, Jeffrey Driscoll, Leen Rigouts, Wolfgang M. Prodinger, Andrea Gori, Sahal Al‐Hajoj, Caroline Allix, Liselotte Aristimuño, Jyoti Arora, Viesturs Baumanis, Lothar Binder, Patrícia Izquierdo Cafrune, Angel Cataldi, Soonfatt Cheong, Roland Diel, C Ellermeier, Jason T. Evans, Maryse Fauville‐Dufaux, Séverine Ferdinand, Darı́o Garcı́a de Viedma, Carlo Garzelli, Lidia Gazzola, Harrison Magdinier Gomes, M Cristina Guttierez, Peter M. Hawkey, Paul D. van Helden, Gurujaj V Kadival, Barry N. Kreiswirth, Kristin Kremer, Milan Kubín, Savita P Kulkarni, Benjamin Liens, Troels Lillebæk, Ho Minh Ly, Carlos Martı́n, Christian Martin, Igor Mokrousov, О. В. Нарвская, Yun Fong Ngeow, Ludmilla Naumann, Stefan Niemann, Ida Parwati, Zeaur Rahim, Voahangy Rasolofo-Razanamparany, T Rasolonavalona, Maria Lúcia Rosa Rossetti, Sabine Rüsch–Gerdes, Anna Sajduda, Sofía Samper, I. G. Shemyakin, Urvashi B. Singh, Ákos Somoskövi, Robin Skuce, Dick van Soolingen, Elizabeth M. Streicher, Philip Noël Suffys, Enrico Tortoli, Tatjana Tračevska, Véronique Vincent, Tommie C. Victor, Robin M. Warren, Sook Fan Yap, Khadiza Zaman, Françoise Portaels, Nalin Rastogi, Christophe Sola
2006-03-06

Mycobacterium tuberculosis complexNaive-Bayes mixture modelSpolDB4 databasepopulation geneticsspoligotyping
BACKGROUND: The Direct Repeat locus of the Mycobacterium tuberculosis complex (MTC) is a member of the CRISPR (Clustered regularly interspaced short palindromic repeats) sequences family. Spoligotyping is the widely used PCR-based reverse-hybridization blotting technique that assays the genetic diversity of this locus and is useful both for clinical laboratory, molecular epidemiology, evolutionary and population genetics. It is easy, robust, cheap, and produces highly diverse portable numerical results, as the result of the combination of (1) Unique Events Polymorphism (UEP) (2) Insertion-Sequence-mediated genetic recombination. Genetic convergence, although rare, was also previously demonstrated. Three previous international spoligotype databases had partly revealed the global and local geographical structures of MTC bacilli populations, however, there was a need for the release of a new, more representative and extended, international spoligotyping database. RESULTS: The fourth international spoligotyping database, SpolDB4, describes 1939 shared-types (STs) representative of a total of 39,295 strains from 122 countries, which are tentatively classified into 62 clades/lineages using a mixed expert-based and bioinformatical approach. The SpolDB4 update adds 26 new potentially phylogeographically-specific MTC genotype families. It provides a clearer picture of the current MTC genomes diversity as well as on the relationships between the genetic attributes investigated (spoligotypes) and the infra-species classification and evolutionary history of the species. Indeed, an independent Naïve-Bayes mixture-model analysis has validated main of the previous supervised SpolDB3 classification results, confirming the usefulness of both supervised and unsupervised models as an approach to understand MTC population structure. Updated results on the epidemiological status of spoligotypes, as well as genetic prevalence maps on six main lineages are also shown. Our results suggests the existence of fine geographical genetic clines within MTC populations, that could mirror the passed and present Homo sapiens sapiens demographical and mycobacterial co-evolutionary history whose structure could be further reconstructed and modelled, thereby providing a large-scale conceptual framework of the global TB Epidemiologic Network. CONCLUSION: Our results broaden the knowledge of the global phylogeography of the MTC complex. SpolDB4 should be a very useful tool to better define the identity of a given MTC clinical isolate, and to better analyze the links between its current spreading and previous evolutionary history. The building and mining of extended MTC polymorphic genetic databases is in progress.
1
Independent Naïve-Bayes mixture-model analysis validated most previous supervised SpolDB3 classifications, supporting complementary supervised and unsupervised approaches to MTC population structure.
2
SpolDB4 adds 26 potentially phylogeographically specific MTC genotype families, improving representation of global MTC genomic diversity.
3
SpolDB4 catalogs 1,939 shared-types representing 39,295 Mycobacterium tuberculosis complex strains from 122 countries.
4
The database provides updated epidemiological status information and genetic prevalence maps for six major MTC lineages.
5
The database tentatively classifies these spoligotypes into 62 MTC clades or lineages using expert knowledge combined with bioinformatics.

Mycobacterium tuberculosis complex (MTC) strains and their Direct Repeat locus spoligotype diversity

Genetic classification, population structure, phylogeographic relationships, evolutionary history, and epidemiological distribution of MTC spoligotypes

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Publication Date
2006-03-06
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Authors
Karine Brudey
Jeffrey Driscoll
Leen Rigouts
Wolfgang M. Prodinger
Andrea Gori
Sahal Al‐Hajoj
Caroline Allix
Liselotte Aristimuño
Jyoti Arora
Viesturs Baumanis
Lothar Binder
Patrícia Izquierdo Cafrune
Angel Cataldi
Soonfatt Cheong
Roland Diel
C Ellermeier
Jason T. Evans
Maryse Fauville‐Dufaux
Séverine Ferdinand
Darı́o Garcı́a de Viedma
Carlo Garzelli
Lidia Gazzola
Harrison Magdinier Gomes
M Cristina Guttierez
Peter M. Hawkey
Paul D. van Helden
Gurujaj V Kadival
Barry N. Kreiswirth
Kristin Kremer
Milan Kubín
Savita P Kulkarni
Benjamin Liens
Troels Lillebæk
Ho Minh Ly
Carlos Martı́n
Christian Martin
Igor Mokrousov
О. В. Нарвская
Yun Fong Ngeow
Ludmilla Naumann
Stefan Niemann
Ida Parwati
Zeaur Rahim
Voahangy Rasolofo-Razanamparany
T Rasolonavalona
Maria Lúcia Rosa Rossetti
Sabine Rüsch–Gerdes
Anna Sajduda
Sofía Samper
I. G. Shemyakin
Urvashi B. Singh
Ákos Somoskövi
Robin Skuce
Dick van Soolingen
Elizabeth M. Streicher
Philip Noël Suffys
Enrico Tortoli
Tatjana Tračevska
Véronique Vincent
Tommie C. Victor
Robin M. Warren
Sook Fan Yap
Khadiza Zaman
Françoise Portaels
Nalin Rastogi
Christophe Sola
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