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Multiple Phylogenetically-diverse, Differentially-virulent Burkholderia Pseudomallei Isolated from a Single Soil Sample Collected in Thailand

Abstract

Burkholderia pseudomallei is a soil-dwelling bacterium endemic to Southeast Asia and northern Australia that causes the disease, melioidosis. Although the global genomic diversity of clinical B. pseudomallei isolates has been investigated, there is limited understanding of its genomic diversity across small geographic scales, especially in soil. In this study, we obtained 288 B. pseudomallei isolates from a single soil sample (~100g; intensive site 2, INT2) collected at a depth of 30cm from a site in Ubon Ratchathani Province, Thailand. We sequenced the genomes of 169 of these isolates that represent 7 distinct sequence types (STs), including a new ST (ST1820), based on multi-locus sequence typing (MLST) analysis. A core genome SNP phylogeny demonstrated that all identified STs share a recent common ancestor that diverged an estimated 796-1260 years ago. A pan-genomics analysis demonstrated recombination between clades and intra-MLST phylogenetic and gene differences. To identify potential differential virulence between STs, groups of BALB/c mice (5 mice/isolate) were challenged via subcutaneous injection (500 CFUs) with 30 INT2 isolates representing 5 different STs; over the 21-day experiment, eight isolates killed all mice, 2 isolates killed an intermediate number of mice (1-2), and 20 isolates killed no mice. Although the virulence results were largely stratified by ST, one virulent isolate and six attenuated isolates were from the same ST (ST1005), suggesting that variably conserved genomic regions may contribute to virulence. Genomes from the animal-challenged isolates were subjected to a bacterial genome-wide association study to identify genomic regions associated with differential virulence. One associated region is a unique variant of Hcp1, a component of the type VI secretion system, which may result in attenuation. The results of this study have implications for comprehensive sampling strategies, environmental exposure risk assessment, and understanding recombination and differential virulence in B. pseudomallei.

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References
1.
Singh A, Lai S, Nandi T, Chua H, Ooi W, Ong C . Evolutionary analysis of Burkholderia pseudomallei identifies putative novel virulence genes, including a microbial regulator of host cell autophagy. J Bacteriol. 2013; 195(24):5487-98. PMC: 3889600. DOI: 10.1128/JB.00718-13. View

2.
Stone N, Hall C, Browne A, Sahl J, Hutton S, Santana-Propper E . Burkholderia pseudomallei in Soil, US Virgin Islands, 2019. Emerg Infect Dis. 2020; 26(11):2773-2775. PMC: 7588534. DOI: 10.3201/eid2611.191577. View

3.
McKenna A, Hanna M, Banks E, Sivachenko A, Cibulskis K, Kernytsky A . The Genome Analysis Toolkit: a MapReduce framework for analyzing next-generation DNA sequencing data. Genome Res. 2010; 20(9):1297-303. PMC: 2928508. DOI: 10.1101/gr.107524.110. View

4.
URen J, Hornstra H, Pearson T, Schupp J, Leadem B, Georgia S . Fine-scale genetic diversity among Burkholderia pseudomallei soil isolates in northeast Thailand. Appl Environ Microbiol. 2007; 73(20):6678-81. PMC: 2075045. DOI: 10.1128/AEM.00986-07. View

5.
Sahl J, Pearson T, Okinaka R, Schupp J, Gillece J, Heaton H . A Bacillus anthracis Genome Sequence from the Sverdlovsk 1979 Autopsy Specimens. mBio. 2016; 7(5). PMC: 5050339. DOI: 10.1128/mBio.01501-16. View