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Pickelner, S.

Publications and source records attributed to Pickelner, S..

2 recordsLinked to original sources

Phenotypic characterization of Prevotella melaninogenica ATCC 25845

Prevotella melaninogenica is a Gram-negative bacterium that has been implicated in numerous disorders such as chronic obstructive pulmonary disease (COPD) and cystic fibrosis, and despite its abundance in the human microbiome, there is still limited knowledge on the fundamental physiology describing Prevotella melaninogenica. To properly advance Prevotella biology, it is critical to report and document such characterizations of Prevotella; therefore, the purpose of this study is to examine and define the phenotypic and growth characteristics of P. melaninogenica ATCC 25845. In this study, we found that Prevotella melaninogenica ATCC 25845 is a Gram-negative bacterium that is predominantly short and medium rod-shaped, with occasional filamentous rods. SEM imaging revealed that this filamentation may serve as division centers, points from which multiple daughter cells form. We also describe the antibiotic profile, which showed susceptibility to four classes and resistance to six classes of antibiotics. Carbon source growth kinetic characterization revealed a preference for carbohydrate sources.

microbiology↗

Fluoride triggers lysis in Streptococcus mutans by inhibition of Clp protease complex leading to an unabated competence cascade

Fluoride has long been known to possess antimicrobial properties, triggering extensive lysis in diverse bacterial species. Surprisingly, given the ubiquity of fluoride in oral healthcare, the underlying mechanisms by which fluoride kills bacteria remain unknown. Using dental pathogen Streptococcus mutans as a model, we show that fluoride elicits an uncontrolled stress response characterized by upregulation of competence pathways and extensive cell wall degradation. While limited autolysis is adaptive, we show that fluoride subverts the typical tight temporal control of the competence-associated alternative sigma factor ComX by specifically inhibiting assembly and activity of Clp ATPases, thus disrupting proteolytic degradation of ComX. Phenylalanine partially restores Clp protease activity, explaining the frequent presence of a gene encoding chorismate mutase in fluoride-responsive operons. Together, these findings reveal the molecular mechanism that underlie fluoride-dependent lysis in bacteria, and identify new pathways that could be exploited to potentiate the antimicrobial effects of oral fluoride.

microbiology↗