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Martinez Aguirre, A.

Publications and source records attributed to Martinez Aguirre, A..

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Clostridioides difficile bile salt hydrolase activity has substrate specificity and affects biofilm formation

The Clostridioides difficile pathogen is responsible for nosocomial infections. Germination is an essential step for the establishment of C. difficile infection (CDI) because toxins that are secreted by vegetative cells are responsible for the symptoms of CDI. Germination can be stimulated by the combinatorial actions of certain amino acids and either conjugated or deconjugated cholic acid-derived bile salts. During synthesis in the liver, cholic acid- and chenodeoxycholic acid-class bile salts are conjugated with either taurine or glycine at the C24 carboxyl. During GI transit, these conjugated bile salts are deconjugated by microbes that express bile salt hydrolases (BSHs). Here, we surprisingly find that several C. difficile strains have BSH activity. We observed this activity in both C. difficile vegetative cells and in spores and that the observed BSH activity was specific to taurine-derived bile salts. Additionally, we find that this BSH activity can produce cholate for metabolic conversion to deoxycholate by C. scindens. The C. scindens-produced deoxycholate signals to C. difficile to initiate biofilm formation. Our results show that C. difficile BSH activity has the potential to influence the interactions between microbes and this could extend to the GI setting. ImportanceBoth primary and secondary bile salts are well-established to impact C. difficile spore germination and vegetative growth. Here, we find that C. difficile vegetative cells, and spores, have bile salt hydrolase activity that is specific to taurine-derived bile salts. When grown in co-culture with the secondary bile salt-producing bacterium, C. scindens, we find that C. difficile-mediated deconjugation of taurocholate, feeds C. scindens cholate. C. scindens 7-dehydroxylates cholate to deoxycholate. The C. scindens-produced deoxycholate then stimulates biofilm formation by C. difficile cells. Thus, this suggests that the bile salt hydrolase activity expressed by several C. difficile strains could be responsible for modulating in vivo biofilm formation and maintenance in a host.

microbiology↗

The selenophosphate synthetase, selD, is important for Clostridioides difficile physiology

The endospore-forming pathogen, Clostridioides difficile, is the leading cause of antibiotic-associated diarrhea and is a significant burden on the community and healthcare. C. difficile, like all forms of life, incorporates selenium into proteins through a selenocysteine synthesis pathway. The known selenoproteins in C. difficile are involved in a metabolic process that uses amino acids as the sole carbon and nitrogen source (Stickland metabolism). The Stickland metabolic pathway requires the use of two selenium-containing reductases. In this study, we built upon our initial characterization of the CRISPR-Cas9-generated selD mutant by creating a CRISPR-Cas9-mediated restoration of the selD gene at the native locus. Here, we use these CRISPR-generated strains to analyze the importance of selenium-containing proteins on C. difficile physiology. SelD is the first enzyme in the pathway for selenoprotein synthesis and we found that multiple aspects of C. difficile physiology were affected (e.g., growth, sporulation, and outgrowth of a vegetative cell post-spore germination). Using RNAseq, we identified multiple candidate genes which likely aid the cell in overcoming the global loss of selenoproteins to grow in medium which is favorable for using Stickland metabolism. Our results suggest that the absence of selenophosphate (i.e., selenoprotein synthesis) leads to alterations to C. difficile physiology so that NAD+ can be regenerated by other pathways. ImportanceC. difficile is a Gram-positive, anaerobic gut pathogen which infects thousands of individuals each year. In order to stop the C. difficile lifecycle, other non-antibiotic treatment options are in urgent need of development. Towards this goal, we find that a metabolic process used by only a small fraction of the microbiota is important for C. difficile physiology - Stickland metabolism. Here, we use our CRISPR-Cas9 system to knock in a copy of the selD gene into the deletion strain to restore selD at its native locus. Our findings support the hypothesis that selenium-containing proteins are important for several aspects of C. difficile physiology - from vegetative growth to spore formation and outgrowth post-germination.

microbiology↗