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Published on: May 11, 2020
Piceatannol modulates lung epithelial cellular responses to Pseudomonas aeruginosa
Pouya Sadeghi Aval1, Jeff Werner, Ashley Cerqueira
1Medical Sciences Division, Northern Ontario School of Medicine, Lakehead University Campus, 955 Oliver Rd., Thunder Bay, ON, P7B 5E1, Canada. mulanova@nosm.ca.
Abstract:
Pseudomonas aeruginosa is an opportunistic Gram-negative pathogen, which is the major cause of severe chronic lung infection in cystic fibrosis patients. It is also responsible for systemic infections in immunocompromised individuals and those presenting with significant pulmonary conditions in intensive care units. This microorganism has the capacity to initiate severe inflammation in infected lungs resulting in detrimental tissue damage. We have hypothesized that Syk protein tyrosine kinase mediates lung epithelial cellular responses to P. aeruginosa infection, and that a naturally occurring non-toxic Syk inhibitor piceatannol can protect infected human cells against the deleterious effects associated with this infection. We infected Syk-positive H292 or Syk-negative A549 human lung epithelial cell lines with P. aeruginosa and assessed the resulting cellular responses, i.e. production of proinflammatory cytokines, adhesion molecule expression, generation of reactive oxygen species, and apoptosis of infected cells, utilizing a multiplex bead-based immunoassay and flow cytometry. We also studied the internalization of P. aeruginosa using the gentamicin exclusion assay. We found that the piceatannol treatment significantly suppressed inflammation, oxidative stress and apoptosis in H292, but not in A549 cells implicating Syk participation in the regulation of the pathological processes induced by P. aeruginosa infection. Intriguingly, piceatannol was able to down-regulate the internalization of P. aeruginosa by both Syk-positive and Syk-negative cell lines, implying that the mechanisms of action of this compound extend beyond Syk inhibition. As piceatannol can interfere with several mechanisms of bacterial pathogenesis this natural compound deserves further study as a potential therapeutic option in P. aeruginosa infection.
Insights
Piceatannol, a Syk inhibitor, reduced inflammation and cell death in lung cells infected with Pseudomonas aeruginosa. This natural compound also decreased bacterial entry, suggesting broader therapeutic potential.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Pseudomonas aeruginosa is a major cause of chronic lung infections, particularly in cystic fibrosis patients and immunocompromised individuals.
- P. aeruginosa infection triggers severe lung inflammation and tissue damage.
- Syk protein tyrosine kinase is hypothesized to mediate lung epithelial responses to P. aeruginosa.
Purpose of the Study:
- To investigate the role of Syk protein tyrosine kinase in P. aeruginosa-induced lung epithelial responses.
- To evaluate the protective effects of the Syk inhibitor, piceatannol, against P. aeruginosa infection in human lung cells.
Main Methods:
- Infection of Syk-positive (H292) and Syk-negative (A549) human lung epithelial cells with P. aeruginosa.
- Assessment of proinflammatory cytokine production, adhesion molecule expression, reactive oxygen species generation, and apoptosis using multiplex immunoassay and flow cytometry.
- Evaluation of P. aeruginosa internalization via gentamicin exclusion assay.
Main Results:
- Piceatannol significantly suppressed inflammation, oxidative stress, and apoptosis in Syk-positive H292 cells, but not in Syk-negative A549 cells.
- This suggests Syk plays a role in P. aeruginosa-induced pathological processes.
- Piceatannol reduced P. aeruginosa internalization in both cell lines, indicating mechanisms beyond Syk inhibition.
Conclusions:
- Syk protein tyrosine kinase is involved in regulating lung epithelial responses to P. aeruginosa.
- Piceatannol demonstrates therapeutic potential by mitigating infection-induced inflammation, oxidative stress, and apoptosis.
- The compound's ability to inhibit bacterial internalization warrants further investigation for P. aeruginosa infection treatment.
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