Related Experiment Video
Updated: Dec 29, 2025

Establishment of a High-throughput Setup for Screening Small Molecules That Modulate c-di-GMP Signaling in Pseudomonas aeruginosa
Published on: June 30, 2016
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.
Abstract:
Cyclic-di-AMP (c-di-AMP) is a bacterial second messenger that is produced by intracellular bacterial pathogens in mammalian host macrophages. Previous reports have shown that c-di-AMP is recognized by intracellular pattern recognition receptors of the innate immune system and stimulate type I interferon response. Here we report that the response to c-di-AMP includes a post-transcriptional component that is involved in the induction of additional inflammatory cytokines including IL-6, CXCL2, CCL3, and CCL4. Their mRNAs contain AU-rich elements (AREs) in their 3' UTR that promote decay and repress translation. We show that c-di-AMP leads to the phosphorylation of p38 MAPK as well as the induction of the ARE-binding protein TTP, both of which are components of a signaling pathway that modulate the expression of ARE-containing mRNAs at the post-transcriptional level. Pharmacological inhibition of p38 reduces the c-di-AMP-dependent release of induced cytokines, while TTP knockdown increases their release and mRNA stability. C-di-AMP can specifically increase the expression of a nano-Luciferase reporter that contains AREs. We propose a non-canonical intracellular mode of activation of the p38 MAPK pathway with the subsequent enhancement in the expression of inflammatory cytokines. C-di-AMP is widely distributed in bacteria, including infectious intracellular pathogens; hence, understanding of its post-transcriptional gene regulatory effect on the host response may provide novel approaches for therapy.
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.
Related Concept Videos
Intracellular Signaling Cascades
Inflammatory Response I: Vascular and Cellular
Stringent Response in E. coli
Inflammatory Response
Inflammation can be triggered by various stimuli, such as impact, abrasion, chemical irritation, infections, and extreme hot or cold temperatures. These can damage cells and connective tissue fibers,...
Global Regulatory Systems
IP3/DAG Signaling Pathway

