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Wongso, E.

Publications and source records attributed to Wongso, E..

2 recordsLinked to original sources

Characterization of a Novel Cell Wall-Associated Nucleotidase of Enterococcus faecalis that Degrades Extracellular c-di-AMP

Enterococcus faecalis is a prolific opportunistic pathogen responsible for a range of life-threatening infections for which treatment options are increasingly limited due to the high prevalence of multidrug-resistant isolates. Cyclic di-AMP has emerged as an essential bacterial signaling molecule due to its impact on physiological processes, including osmotic adaptation, cell wall homeostasis, antibiotic tolerance, and virulence. In addition, c-di-AMP is a potent pathogen-associated molecular pattern (PAMP) molecule recognized by the host immune system to trigger protective responses. In previous work, we identified and characterized the enzymes responsible for the synthesis and degradation of intracellular c-di-AMP in E. faecalis, demonstrating that maintaining c-di-AMP homeostasis is vital for bacterial fitness and virulence. In addition to the intracellular enzymes that regulate c-di-AMP levels, a limited number of bacteria encode surface-associated nucleotidases capable of cleaving extracellular c-di-AMP, potentially facilitating immune evasion. Here, we characterize a novel and unique cell wall-anchored phosphodiesterase, termed EecP (E. faecalis extracellular c-di-AMP phosphodiesterase), which features duplicated catalytic domains and specifically degrades extracellular c-di-AMP. Deletion of eecP ({Delta}eecP) resulted in a marked accumulation of extracellular c-di-AMP. Although the {Delta}eecP strain exhibited comparable growth and behavior to the parent strain in vitro, it displayed increased susceptibility to killing by phagocytic cells. Using two murine infection models, we show that the impact of eecP deletion and the consequent buildup of extracellular c-di-AMP on E. faecalis pathogenesis may be site-specific. Notably, disseminated infection was more severe in mice infected with the {Delta}eecP strain, suggesting that extracellular c-di-AMP influences infection outcomes, likely through modulation of host immune responses. Author SummaryEnterococcus faecalis is a major opportunistic pathogen and a leading cause of several life-threatening hospital-associated infections. Cyclic di-AMP is a bacterial second messenger nucleotide that regulates essential cellular processes and plays key roles in bacterial pathogenesis and host immune activation. We previously characterized the enzymes responsible for the synthesis and degradation of c-di-AMP in E. faecalis, demonstrating that this signaling molecule is crucial for bacterial fitness and virulence. In this study, we describe the characterization of EecP, a novel cell wall-associated enzyme that degrades c-di-AMP extracellularly. Our findings identify EecP as a new virulence factor in E. faecalis, capable of modulating infection outcomes.

microbiology↗

The catheterized bladder environment induces dysregulation of macrophage polarization exacerbating bacterial UTI

Urinary catheterization causes bladder damage, predisposing hosts to catheter-associated urinary tract infections (CAUTIs). CAUTI pathogenesis is mediated by bladder damage-induced inflammation, resulting in accumulation and deposition of the blood-clotting protein fibrinogen (Fg) and its matrix form fibrin, which are exploited by uropathogens as biofilm platforms to establish infection. Catheter-induced inflammation also results in robust immune cell recruitment, including macrophages (M{phi}s). A fundamental knowledge gap is understanding the mechanisms by which the catheterized-bladder environment suppresses the M{phi} antimicrobial response, allowing uropathogen persistence. Here, we found that Fg and fibrin differentially modulate M1 and M2 M{phi} polarization, respectively. We unveiled that fibrin accumulation in catheterized mice induced an anti-inflammatory M2-like M{phi} phenotype, correlating with pathogen persistence. Even GM-CSF treatment of wildtype mice to promote M1 polarization was not sufficient to reduce bacterial burden and dissemination, indicating that the catheterized-bladder environment provides mixed signals, dysregulating M{phi} polarization, hindering its antimicrobial response against uropathogens.

immunology↗