Comprehensive identification of virulence factors required for respiratory melioidosis using Tn-seq mutagenesis
Maria G Gutierrez1, Deborah R Yoder-Himes2, Jonathan M Warawa3
1Department of Microbiology and Immunology, University of Louisville Louisville, KY, USA.
Abstract:
Respiratory melioidosis is a disease presentation of the biodefense pathogen, Burkholderia pseudomallei, which is frequently associated with a lethal septicemic spread of the bacteria. We have recently developed an improved respiratory melioidosis model to study the pathogenesis of Burkholderia pseudomallei in the lung (intubation-mediated intratracheal [IMIT] inoculation), which more closely models descriptions of human melioidosis, including prominent septicemic spread from the lung and reduced involvement of the upper respiratory tract. We previously demonstrated that the Type 3 Secretion System cluster 3 (T3SS3) is a critical virulence determinant for B. pseudomallei when delivered directly into the lung. We decided to comprehensively identify all virulence determinants required for respiratory melioidosis using the Tn-seq phenotypic screen, as well as to investigate which virulence determinants are required for dissemination to the liver and spleen. While previous studies have used Tn-seq to identify essential genes for in vitro cultured B. pseudomallei, this represents the first study to use Tn-seq to identify genes required for in vivo fitness. Consistent with our previous findings, we identified T3SS3 as the largest genetic cluster required for fitness in the lung. Furthermore, we identified capsular polysaccharide and Type 6 Secretion System cluster 5 (T6SS5) as the two additional major genetic clusters facilitating respiratory melioidosis. Importantly, Tn-seq did not identify additional, novel large genetic systems supporting respiratory melioidosis, although these studies identified additional small gene clusters that may also play crucial roles in lung fitness. Interestingly, other previously identified virulence determinants do not appear to be required for lung fitness, such as lipopolysaccharide. The role of T3SS3, capsule, and T6SS5 in lung fitness was validated by competition studies, but only T3SS3 was found to be important for respiratory melioidosis when delivered as a single strain challenge, suggesting that competition studies may provide a higher resolution analysis of fitness factors in the lung. The use of Tn-seq phenotypic screening also provided key insights into the selective pressure encountered in the liver.
Insights
This study identifies key virulence factors for Burkholderia pseudomallei in respiratory melioidosis. The Type 3 Secretion System cluster 3 (T3SS3), capsular polysaccharide, and Type 6 Secretion System cluster 5 (T6SS5) are critical for lung infection and bacterial spread.
Area of Science:
- Microbiology
- Pathogenesis
- Bacterial Virulence
Background:
- Respiratory melioidosis, caused by Burkholderia pseudomallei, often leads to lethal septicemic spread.
- An improved intubation-mediated intratracheal (IMIT) inoculation model more accurately reflects human melioidosis, including septicemic dissemination.
- Previous research identified Type 3 Secretion System cluster 3 (T3SS3) as crucial for B. pseudomallei lung pathogenesis.
Purpose of the Study:
- To comprehensively identify all virulence determinants for respiratory melioidosis using Tn-seq.
- To investigate virulence factors essential for bacterial dissemination to the liver and spleen.
- To compare Tn-seq findings with previous in vitro studies and validate key factors.
Main Methods:
- Utilized Tn-seq (transposon sequencing) for the first time to identify in vivo fitness genes in a respiratory melioidosis model.
- Employed an intubation-mediated intratracheal (IMIT) inoculation model for B. pseudomallei.
- Conducted competition studies to validate the roles of identified virulence factors.
Main Results:
- Tn-seq identified T3SS3, capsular polysaccharide, and T6SS5 as major genetic clusters critical for B. pseudomallei lung fitness.
- No additional novel large genetic systems were identified, but smaller gene clusters contributing to lung fitness were found.
- T3SS3 was essential for single-strain challenge respiratory melioidosis, while T3SS3, capsule, and T6SS5 were important in competition studies. Lipopolysaccharide was not required for lung fitness.
Conclusions:
- T3SS3, capsular polysaccharide, and T6SS5 are key virulence determinants in B. pseudomallei respiratory infections.
- Tn-seq is a powerful tool for identifying in vivo fitness factors in bacterial pathogens.
- Competition studies offer higher resolution for analyzing lung fitness factors compared to single-strain challenges.
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