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Trautmann, H. S.

Publications and source records attributed to Trautmann, H. S..

2 recordsLinked to original sources

Regulation of multiple paralogs of a small subunit ribosomal protein in Francisella tularensis

Francisella tularensis is a highly infectious human pathogen that must replicate inside macrophage to cause disease. The ribosomes of F. tularensis can incorporate one of three different paralogs for the small ribosomal subunit protein bS21. One of these paralogs positively impacts translation of key virulence genes and promotes intramacrophage replication. Although ribosomal bS21 content influences F. tularensis virulence, the factors that control bS21 paralog production are not well understood. Here, we reveal that all three bS21 proteins influence the transcript abundance of the paralog important for virulence, bS21-2. In contrast, the other bS21 paralogs (bS21-1 and bS21-3) do not affect their own production. We further determined that the leader sequence of the bS21-2 mRNA is sufficient for bS21-mediated repression of mRNA abundance, suggesting that bS21-2 is autogenously regulated. Yet we determined that the increase in bS21-2-encoding mRNA is not reflected by increased protein production, suggesting that translation of this transcript is controlled by other factors. Finally, we found that bS21-2 exerts at least some of its effects on the bS21-2 transcript by decreasing its stability. Together, our findings suggest that F. tularensis integrates multiple signals into a regulatory network to control the appropriate production of each bS21 paralog, and particularly the paralog important for virulence, bS21-2. This regulatory network in turn may control ribosomal heterogeneity and virulence gene expression.

microbiology↗

Genetic screen identifies cell wall enzyme is key for freshwater survival of Francisella tularensis

Human infection with Francisella tularensis, a potentially lethal bacterial pathogen, typically occurs after exposure to contaminated water, soil, food, or an infected animal. While F. tularensis can persist in environmental sources over long periods of time, the genetic requirements that permit its long-term viability are not understood. To address this question, we developed a laboratory model for persistence of F. tularensis in fresh water, finding that viable cells could be recovered for 3 - 8 weeks after incubation at 4{degrees}C. Using this model, we took an unbiased, transposon insertion sequencing approach to identify genes critical for this persistence of F. tularensis cells. We found that mutants in mpl, a gene encoding murein peptide ligase, are defective for persistence in fresh water. Previous studies had identified mpl as critical for intramacrophage survival. Murein peptide ligase plays a role in peptidoglycan recycling, suggesting that F. tularensis uses this enzyme to maintain cell wall integrity during hypoosmotic and intramacrophage stress conditions. Our results highlight the importance of understanding how bacterial cell envelopes have evolved and adapted to maintain their integrity in a variety of stress conditions.

microbiology↗