Burkholderia pseudomallei genome plasticity associated with genomic island variation
Sarinna Tumapa1, Matthew T G Holden, Mongkol Vesaratchavest
1Mahidol-Oxford Tropical Medicine Research Unit, Faculty of Tropical Medicine, Mahidol University, Bangkok, Thailand. jay@tropmedres.ac <jay@tropmedres.ac>
Background:
Burkholderia pseudomallei is a soil-dwelling saprophyte and the cause of melioidosis. Horizontal gene transfer contributes to the genetic diversity of this pathogen and may be an important determinant of virulence potential. The genome contains genomic island (GI) regions that encode a broad array of functions. Although there is some evidence for the variable distribution of genomic islands in B. pseudomallei isolates, little is known about the extent of variation between related strains or their association with disease or environmental survival.
Results:
Five islands from B. pseudomallei strain K96243 were chosen as representatives of different types of genomic islands present in this strain, and their presence investigated in other B. pseudomallei. In silico analysis of 10 B. pseudomallei genome sequences provided evidence for the variable presence of these regions, together with micro-evolutionary changes that generate GI diversity. The diversity of GIs in 186 isolates from NE Thailand (83 environmental and 103 clinical isolates) was investigated using multiplex PCR screening. The proportion of all isolates positive by PCR ranged from 12% for a prophage-like island (GI 9), to 76% for a metabolic island (GI 16). The presence of each of the five GIs did not differ between environmental and disease-associated isolates (p > 0.05 for all five islands). The cumulative number of GIs per isolate for the 186 isolates ranged from 0 to 5 (median 2, IQR 1 to 3). The distribution of cumulative GI number did not differ between environmental and disease-associated isolates (p = 0.27). The presence of GIs was defined for the three largest clones in this collection (each defined as a single sequence type, ST, by multilocus sequence typing); these were ST 70 (n = 15 isolates), ST 54 (n = 11), and ST 167 (n = 9). The rapid loss and/or acquisition of gene islands was observed within individual clones. Comparisons were drawn between isolates obtained from the environment and from patients with melioidosis in order to examine the role of genomic islands in virulence and clinical associations. There was no reproducible association between the individual or cumulative presence of five GIs and a range of clinical features in 103 patients with melioidosis.
Conclusion:
Horizontal gene transfer of mobile genetic elements can rapidly alter the gene repertoire of B. pseudomallei. This study confirms the utility of a range of approaches in defining the presence and significance of genomic variation in natural populations of B. pseudomallei.
Insights
Genomic islands (GIs) in Burkholderia pseudomallei show diversity but are not linked to melioidosis disease. Horizontal gene transfer rapidly alters B. pseudomallei gene content, impacting pathogen evolution.
Area of Science:
- Microbiology
- Genomics
- Pathogen Evolution
Background:
- Burkholderia pseudomallei causes melioidosis.
- Horizontal gene transfer drives genetic diversity and potential virulence.
- Genomic islands (GIs) are key elements in bacterial genomes.
Purpose of the Study:
- Investigate the variability of GIs in B. pseudomallei.
- Determine the association of GIs with melioidosis and environmental survival.
Main Methods:
- In silico analysis of B. pseudomallei genomes.
- Multiplex PCR screening of 186 environmental and clinical isolates.
- Multilocus sequence typing to define bacterial clones.
Main Results:
- Variable presence of five selected GIs observed across isolates.
- No significant difference in GI distribution between environmental and clinical isolates.
- Rapid gain/loss of GIs within bacterial clones was detected.
- No association found between GIs and clinical features of melioidosis.
Conclusions:
- Horizontal gene transfer rapidly modifies B. pseudomallei gene repertoire.
- Genomic variation, including GIs, is significant in natural B. pseudomallei populations.
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