Post-Transcriptional Inflammatory Response to Intracellular Bacterial c-di-AMP

Linah Mahmoud1, Alaa S Abdulkarim1, Shaima Kutbi1

  • 1Molecular BioMedicine Program, King Faisal Specialist Hospital & Research Centre, Riyadh, Saudi Arabia.

Frontiers in Immunology
|February 4, 2020
PubMed

Insights

Cyclic-di-AMP (c-di-AMP), a bacterial molecule, triggers inflammation by affecting inflammatory cytokine mRNA stability. This involves p38 MAPK and TTP, offering potential therapeutic targets against bacterial infections.

Area of Science:

  • Bacterial Pathogenesis
  • Innate Immunity
  • Molecular Biology

Background:

  • Cyclic-di-AMP (c-di-AMP) is a bacterial second messenger produced by intracellular pathogens within host macrophages.
  • Previous studies linked c-di-AMP to innate immune pattern recognition and type I interferon responses.

Purpose of the Study:

  • To investigate the post-transcriptional mechanisms underlying the host inflammatory response to c-di-AMP.
  • To identify key signaling pathways and proteins involved in c-di-AMP-mediated cytokine induction.

Main Methods:

  • Analysis of inflammatory cytokine mRNA levels (IL-6, CXCL2, CCL3, CCL4) containing AU-rich elements (AREs).
  • Assessing the phosphorylation of p38 MAPK and the induction of the ARE-binding protein TTP.
  • Utilizing pharmacological inhibition of p38 and TTP knockdown.
  • Employing a nano-Luciferase reporter assay to measure ARE-containing mRNA expression.

Main Results:

  • c-di-AMP induces inflammatory cytokines by modulating the expression of ARE-containing mRNAs at a post-transcriptional level.
  • c-di-AMP activates the p38 MAPK pathway and induces TTP, a regulator of ARE-mRNA stability.
  • Inhibition of p38 decreased cytokine release, while TTP knockdown increased it, confirming their roles.

Conclusions:

  • A non-canonical p38 MAPK activation pathway is proposed for c-di-AMP signaling.
  • c-di-AMP enhances inflammatory cytokine expression via post-transcriptional regulation of ARE-mRNAs.
  • Understanding these mechanisms may lead to novel therapeutic strategies against intracellular bacterial pathogens.

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