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Ureaplasma parvum infection alters filamin A dynamics in host cells
Ayman B Allam1, Sophie Alvarez, Mary B Brown
1Department of Infectious Disease & Pathology, College of Veterinary Medicine, University of Florida, Gainesville, FL, USA.
Background:
Ureaplasmas are among the most common bacteria isolated from the human urogenital tract. Ureaplasmas can produce asymptomatic infections or disease characterized by an exaggerated inflammatory response. Most investigations have focused on elucidating the pathogenic potential of Ureaplasma species, but little attention has been paid to understanding the mechanisms by which these organisms are capable of establishing asymptomatic infection.
Methods:
We employed differential proteome profiling of bladder tissues from rats experimentally infected with U. parvum in order to identify host cell processes perturbed by colonization with the microbe. Tissues were grouped into four categories: sham inoculated controls, animals that spontaneously cleared infection, asymptomatic urinary tract infection (UTI), and complicated UTI. One protein that was perturbed by infection (filamin A) was used to further elucidate the mechanism of U. parvum-induced disruption in human benign prostate cells (BPH-1). BPH-1 cells were evaluated by confocal microscopy, immunoblotting and ELISA.
Results:
Bladder tissue from animals actively colonized with U. parvum displayed significant alterations in actin binding proteins (profilin 1, vinculin, α actinin, and filamin A) that regulate both actin polymerization and cell cytoskeletal function pertaining to focal adhesion formation and signal transduction (Fisher's exact test, P < 0.004; ANOVA, P < 0.02). This phenomenon was independent of clinical profile (asymptomatic vs. complicated UTI). We selected filamin A as a target for additional studies. In the BPH-1 model, we confirmed that U. parvum perturbed the regulation of filamin A. Specifically, infected BPH-1 cells exhibited a significant increase in filamin A phosphorylated at serine 2152 (P ≤ 0.01), which correlated with impaired proteolysis of the protein and its normal intracellular distribution.
Conclusion:
Filamin A dynamics were perturbed in both models of infection. Phosphorylation of filamin A occurs in response to various cell signaling cascades that regulate cell motility, differentiation, apoptosis and inflammation. Thus, this phenomenon may be a useful molecular marker for identifying the specific host cell pathways that are perturbed during U. parvum infection.
Insights
Ureaplasma parvum infection alters host cell cytoskeletal proteins, particularly filamin A. This phosphorylation may serve as a marker for understanding host cell pathway disruptions during Ureaplasma infections.
Area of Science:
- Microbiology
- Cell Biology
- Host-Pathogen Interactions
Background:
- Ureaplasmas are common urogenital bacteria causing asymptomatic or inflammatory infections.
- Understanding asymptomatic Ureaplasma infection mechanisms is crucial.
- This study investigates host cell responses to Ureaplasma parvum.
Purpose of the Study:
- To identify host cell processes affected by Ureaplasma parvum colonization.
- To elucidate the mechanisms of Ureaplasma parvum-induced cellular disruption.
- To explore potential molecular markers for Ureaplasma infection.
Main Methods:
- Differential proteome profiling of rat bladder tissues after U. parvum infection.
- Analysis of tissues from control, cleared, asymptomatic UTI, and complicated UTI groups.
- Investigated filamin A disruption in human BPH-1 cells using microscopy, immunoblotting, and ELISA.
Main Results:
- U. parvum infection altered actin-binding proteins regulating cytoskeleton and focal adhesions in rat bladders.
- Filamin A phosphorylation at serine 2152 increased in infected human BPH-1 cells.
- Increased filamin A phosphorylation correlated with impaired proteolysis and altered distribution.
Conclusions:
- Filamin A dynamics are perturbed during U. parvum infection in both animal and cell models.
- Altered filamin A phosphorylation may indicate specific host cell pathway disruptions.
- Filamin A phosphorylation could serve as a molecular marker for U. parvum infection effects.
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