Showing posts with label spoligotyping. Show all posts
Showing posts with label spoligotyping. Show all posts

Monday, 7 March 2011

TUBERCULOSIS: Molecular Epidemiology of Mycobacterium tuberculosis


Ximena Gonzalo, Marta Ambroggi, Ezequiel Cordova, Tim Brown, Susana Poggi, and Francis Drobniewski

To analyze the molecular epidemiology of Mycobacterium tuberculosis strains at a hospital in Buenos Aires, Argentina, and mutations related to multidrug-resistant and extensively drug-resistant tuberculosis, we conducted a prospective case–control study. Our findings reinforce the value of incorporating already standardized molecular methods for rapidly detecting resistance.
During the 1990s, an outbreak of multidrug-resistant (MDR) tuberculosis (TB) in HIV-positive patients occurred at the Muñiz Hospital in Buenos Aires, Argentina (1). Molecular analysis showed that a member of Haarlem2 family of Mycobacterium tuberculosis was responsible (1).
We conducted a prospective case-control study during June 1, 2006–April 30, 2007, at this 300-bed public hospital, which reports ≈40% of new TB cases in the city (2). Our primary aims were to analyze the molecular epidemiology of M. tuberculosis strains circulating at the hospital and the mutations related to MDR TB and extensively drug-resistant TB.

The Study
The strains were isolated and tested for antimicrobial drug susceptibility according to the proportion method (3) at the Muñiz Hospital Mycobacteria Laboratory. A proportion were tested for reserve drugs at the Health Protection Agency National Mycobacteria Reference Unit Laboratory, London, UK. DNA was extracted from cultures at this UK laboratory; spoligotyping was performed according to the manufacturer's instructions (Isogen Life Science, IJsselstein, the Netherlands); and data were analyzed with SPOTCLUST (http://cgi2.cs.rpi.edu/~bennek/SPOTCLUST.html).
We performed 15-locus variable number tandem repeat (VNTR) using a CEQ 8000 Genetic Analysis System (Beckman Coulter, Inc., Fullerton, CA, USA) (4). Cluster analysis was performed by using Bionumerics software (Applied Maths, St-Martens-Latem, Belgium). Strains lacking a unique pattern were subjected to further analysis with an expanded set of VNTR loci (5).
In-house macroarrays were performed on MDR TB strains (6) to identify mutations in the katG and the inhA genes. Two regions of the rpoB gene of MDR TB strains were sequenced with the CEQ 8000 Genetic Analysis System. Statistical analyses were conducted by using χ2 and Fisher exact tests.



Figure 1

Figure 1.

Figure 1. Multistage cluster sampling method for a study of the molecular epidemiology of Mycobacterium tuberculosis, Buenos Aires, Argentina, June 1, 2006–April 30, 2007...





Figure 2

Figure 2.

Figure 2. Final cluster results in a study of the molecular epidemiology of Mycobacterium tuberculosis, by spoligofamily, Buenos Aires, Argentina, June 1, 2006–April 30, 2007.



After we excluded duplicates, treatment follow-ups, and strains with susceptibility patterns other than MDR TB or susceptibility to all drugs tested, 881 strains were susceptible to all drugs tested. Patients with a minimum dataset (name, sex, date of birth or age, TB presentation [i.e., pulmonary or nonpulmonary], and at least 1 sign or symptom describing TB illness and treatment received) were enrolled: 57 of 62 hospitalized patients with MDR TB cultures (Table) and 100 fully susceptible unmatched inpatient controls, for a total of 157 patients. This convenience sample (Figure 1) included only admitted patients because of the difficulty of obtaining clinical information about outpatients.
The most common spoligofamilies were T1 (18%), Haarlem 1 (10%), 2 (16%), and 3 (11%), LAM 3 (10%), and LAM 9 (13%). Initial 15-loci VNTR analysis showed 73 strains with unique patterns. Further analysis using 7-loci VNTR was performed on those that did not have a unique pattern. Twenty-six isolates remained clustered (Figure 2).
Of the 57 MDR TB strains, 43 had a mutation in the katG315 locus, and 6 had a mutation in the inhA region. No strain had mutations in both genes. In 8 strains, resistance to isoniazid was not mediated by mutations in any of them.
Mutations in the rpoB region were detected by sequencing. The most frequent mutation was the S531L. Mutations at >1 site were rare. In 3 cases, we found 2 point mutations in the same codon. Only 1 MDR TB strain had no mutation in the rpoB segment sequenced; it also had a katG and inhA wild type. Complete susceptibility profile for all 57 MDR TB strains is available in the Appendix Table.
In addition, we detected 5 extensively drug-resistant TB strains. None were clustered by 22-loci VNTR typing.

Conclusions
Spoligotyping identified predominance of the Haarlem family among the MDR TB cases (family responsible for the 1990s [1] outbreak) as well as the LAM and T families. A similar strain family distribution was reported for the French Departments of the Americas (7) and Turkey (8). The Beijing family was seldom encountered in these areas, which is in line with recent observations in 7 countries in South America, including Argentina (9).
The MDR TB Haarlem2 strain appears to be more successful than other circulating MDR TB strains and than its susceptible counterpart (of 25 Haarlem2 strains, 20 were MDR TB). This phenomenon could be associated with a bias in the sample resulting from the specialized nature of the hospital or it could be that the MDR TB version has become predominant in the population because of the low fitness cost of its 2 mutations, katG315 and S531L (10,11). In addition, the presence of clusters suggests that even though new technologies have reduced the time taken to diagnose drug resistance, more rapid initial diagnosis of MDR TB to reduce transmission still is needed (12).
All except 1 of the rpoB mutations in the MDR TB strains were at nt positions 1303–1375. This finding reinforces the value of incorporating already standardized molecular methods for rapidly detecting resistance. Cost is the main reason they are currently not available, but the macroarrays used in this project are inexpensive and have the additional advantage of analyzing katG and inhA mutations independently.
http://www.cdc.gov/eid/content/17/3/528.htm

Monday, 3 January 2011

TUBERCULOSIS: New method for the standardized comparison of the genetic polymorphism within and between members of the Mycobacterium Tuberculosis Complex

Demelash Biffa
As part of his doctoral research at The Norwegian School of Veterinary Science, Demelash Biffa has carried out extensive field and laboratory work on bovine tuberculosis (TB) in Ethiopia since 2007.
The main aims of his study were to investigate risk factors associated with prevalence of the disease and to discover the molecular genetic characteristics of mycobacteria, which cause serious pathologic lesions in cattle. The work has led to the development of a new numeric expression approach known as Spoligotype Evolutionary Index (SEI).
Since Antiquity, tuberculosis has been one of the most ravaging and deadly diseases in both animals and humans worldwide. The main causative agents are Mycobacterium bovis (M. bovis) and Mycobacterium tuberculosis (M. tuberculosis) respectively in animals and humans, though humans are highly susceptible to the bovine strain.
In Ethiopia, bovine TB remains a major threat to animal and human health and an obstacle to international trade. Many aspects of the epidemiology of the disease, particularly of the causative agent M. Bovis, are not known.
Using molecular methods, Biffa has shown that TB in cattle is caused by a heterogeneous population of M. bovis. Some diseased animals were found to harbour multiple genotypes, indicating a high degree of infection pressure. This finding will have useful implications for any livestock vaccination program, as it appears that prior exposure to the pathogen may not provide sufficient resistance to the disease in some animals. This revelation is likely to challenge the paradigm of monoclonal infection of TB recognized in humans, but not yet in animals.
Biffa's research reaffirmed that TB in cattle poses a major threat to humans, animals, and to international trade. The thesis sets out recommendations for policy formulation with a view to achieving proper disease surveillance and control programmes in Ethiopia.
Demelash Biffa presented his doctoral thesis to the public on 7th December 2010 at The Norwegian School of Veterinary Science (NVH). The title of his thesis is “Epidemiological and Molecular Genetic Studies of Mycobacterium bovis Infections in Cattle in Ethiopia”.

Biographical data:
Demelash Biffa was born and brought up in Ethiopia. He took veterinary science at the Faculty of Veterinary Medicine at Addis Ababa University and graduated with a DVM degree in 1994. He won the competitive quota scholarship and joined The Norwegian School of Veterinary Science, obtaining a Master degree in Food Safety in 2007. He then won a scholarship to take a PhD at the same school. Biffa is a member of several professional associations and has also taken international postgraduate courses in different countries. Before commencing his doctoral research, he worked as head of the veterinary service division at the Ministry of Agriculture in Ethiopia, as NGO Project coordinator, and finally as senior lecturer at Hawassa University, Ethiopia.
Contact information: Demelash Biffa E-mail: demelash_b@yahoo.com
Magnhild Jenssen, Information Consultant, NVH: Email: magnhild.jenssen@nvh.no
http://www.nvh.no/en/Home/News/News-stories/New-method-for-the-standardized-comparison-of-the-genetic-polymorphism-within-and-between-members-of-the-Mycobacterium-Tuberculosis-Complex/

Saturday, 18 December 2010

TUBERCULOSIS: Molecular epidemiology of drug-resistant tuberculosis in Sweden

Drug-resistant tuberculosis (TB), including the more severe forms of multidrug- and extensively drug-resistant forms, is an increasing public health concern globally. In Sweden the majority of patients with TB are immigrants from countries with a high incidence of TB including the drug-resistant forms. In this study, the spread of resistant TB in Sweden was investigated by molecular fingerprinting. Isolates resistant to at least one of the drugs, isoniazid, rifampicin, ethambutol or streptomycin, from 400 patients collected between 1994 and 2005, were studied by restriction fragment length polymorphism (RFLP) and by spoligotyping. Thirty-five clusters of patients infected with strains with identical RFLP and spoligotyping patterns (2–96 patients per cluster), comprising a total of 203 patients, were found. One large outbreak of isoniazid resistant tuberculosis was identified, involving 96 patients, mainly from the Horn of Africa. To identify chains of transmission, molecular epidemiological characterization of TB isolates should, if possible, be performed on isolates from all new TB patients.

http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6VPN-4S5FJJT-3&_user=10&_coverDate=05%2F31%2F2008&_rdoc=1&_fmt=high&_orig=search&_origin=search&_sort=d&_docanchor=&view=c&_searchStrId=1583107264&_rerunOrigin=google&_acct=C000050221&_version=1&_urlVersion=0&_userid=10&md5=ca52446010330645997a02e31030ab10&searchtype=a

Friday, 13 August 2010

TUBERCULOSIS: Molecular diversity of Mycobacterium tuberculosis isolates from patients with tuberculosis in Honduras

3 August 2010
Background
Tuberculosis persists as a public health problem in Honduras. A better knowledge of the molecular characteristics of Mycobacterium tuberculosis strains will contribute to understand the transmission dynamics of the disease within the country. The aim of this study was to provide an insight of the genetic biodiversity of M. tuberculosis clinical isolates collected in Honduras between 1994 and 2002. Genotyping was performed using spoligotyping and RFLP. The spoligotypes obtained were compared with the SITVIT2 proprietary database of the Pasteur Institute of Guadeloupe.
Results
Spoligotyping grouped 84% of the isolates into 27 clusters (2 to 43 strains per cluster). Of the 44 shared international types (SITs) identified among the Honduran stains, 8 SITs were newly identified either within the present study or after match with an orphan type previously identified in the SITVIT2 database. In addition, 16 patterns corresponded to orphan, previously unreported isolates. The Latin American Mediterranean (LAM) lineage was the most common in this study; 55% of the strains belonged to this family. Other genotypes found were Haarlem (16%), T (16%), X-clade (6%), Unknown signature (5%) and S (1%). Only one Beijing strain was identified (0.5%). We observed a high degree of diversity after characterizing the 43 isolates belonging to the main spoligotyping cluster (SIT 33, LAM3) with IS6110-RFLP. A total of 35 different RFLP-fingerprints were detected, of which 6 patterns corresponded to the same number of clusters comprising 14 strains.
Conclusions
The findings obtained in this study show that tuberculosis transmission in Honduras is due to modern M. tuberculosis lineages with high level of biodiversity.

http://www.biomedcentral.com/1471-2180/10/208

Monday, 9 August 2010

TUBERCULOSIS: genotyin in Nigeria

Background
Nigeria has a high tuberculosis incidence, and genotyping studies of Mycobacterium tuberculosis Complex (MTC) in the country are necessary in order to improve our understanding of the epidemic.
Methods
Isolates of MTC were isolated from cases of pulmonary tuberculosis in Jos, North Central region of Nigeria during 2006-2008. Drug susceptibility test (DST) was performed on 77 of 111 isolates by proportion method on Lowenstein Jensen (LJ) slope while genotyping of mycobacterial DNA was performed by spoligotyping. The SpolDB4 database and the model-based program 'spotclust' were used to assign isolates to families, subfamilies and variants.
Results
A total of 111 pulmonary isolates from consecutive tuberculosis patients in the city of Jos, Plateau State, Nigeria were spoligotyped. A total of 84 (76%) of the isolates belonged to the Latin American Mediterranean (LAM) family. Of these, 78 isolates were assigned to the LAM10 lineage. Among these, 66 exhibited identical spoligopatterns. Drug susceptibility profiles obtained were not consistently associated with any spoligopattern.
Conclusions
The dominance of few M. tuberculosis lineages suggests either a high rate of transmission, frequent import of closely related strains, or a highly conserved genotype. It remains to be confirmed whether the predominance of identical LAM10 represent an outbreak.
Spoligotyping was useful to gain an overall understanding of the local TB epidemic. This study demonstrated that the incidence of TB in Jos, Nigeria may be caused by a few successful M. tuberculosis families, dominated by the LAM10 family.

http://www.biomedcentral.com/1471-2334/10/189