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Visualization of Inflammatory Caspases Induced Proximity in Human Monocyte-Derived Macrophages
Published on: April 6, 2022
miR-155 targets Caspase-3 mRNA in activated macrophages
Rebecca De Santis1, Anke Liepelt1,2, Jana C Mossanen1
1a Department of Intensive Care and Intermediate Care , University Hospital, RWTH Aachen University , Pauwelsstrasse 30, 52074 , Aachen , Germany.
Abstract:
To secure the functionality of activated macrophages in the innate immune response, efficient life span control is required. Recognition of bacterial lipopolysaccharides (LPS) by toll-like receptor 4 (TLR4) induces downstream signaling pathways, which merge to induce the expression of cytokine genes and anti-apoptotic genes. MicroRNAs (miRNAs) have emerged as important inflammatory response modulators, but information about their functional impact on apoptosis is scarce. To identify miRNAs differentially expressed in response to LPS, cDNA libraries from untreated and LPS-activated murine macrophages were analyzed by deep sequencing and regulated miRNA expression was verified by Northern blotting and qPCR. Employing TargetScan(TM) we identified CASPASE-3 (CASP-3) mRNA that encodes a key player in apoptosis as potential target of LPS-induced miR-155. LPS-dependent primary macrophage activation revealed TLR4-mediated enhancement of miR-155 expression and CASP-3 mRNA reduction. Endogenous CASP-3 and cleaved CASP-3 protein declined in LPS-activated macrophages. Accumulation of miR-155 and CASP-3 mRNA in miRNA-induced silencing complexes (miRISC) was demonstrated by ARGONAUTE 2 (AGO2) immunoprecipitation. Importantly, specific antagomir transfection effectively reduced mature miR-155 and resulted in significantly elevated CASP-3 mRNA levels in activated macrophages. In vitro translation assays demonstrated that the target site in the CASP-3 mRNA 3'UTR mediates miR-155-dependent Luciferase reporter mRNA destabilization. Strikingly, Annexin V staining of macrophages transfected with antagomir-155 and stimulated with LPS prior to staurosporine (SSP) treatment implied that LPS-induced miR-155 prevents apoptosis through CASP-3 mRNA down-regulation. In conclusion, we report that miR-155-mediated CASP-3 mRNA destabilization in LPS-activated RAW 264.7 macrophages suppresses apoptosis, as a prerequisite to maintain their crucial function in inflammation.
Insights
MicroRNA-155 (miR-155) prevents macrophage apoptosis by down-regulating CASPASE-3 (CASP-3) mRNA. This regulation is essential for maintaining macrophage function during innate immune responses to bacterial lipopolysaccharides (LPS).
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Activated macrophages are crucial for innate immunity, requiring controlled lifespan.
- Toll-like receptor 4 (TLR4) activation by lipopolysaccharides (LPS) triggers inflammatory and anti-apoptotic pathways.
- MicroRNAs (miRNAs) modulate inflammation, but their role in macrophage apoptosis is not fully understood.
Purpose of the Study:
- To identify differentially expressed miRNAs in response to LPS.
- To investigate the functional impact of LPS-induced miRNAs on macrophage apoptosis.
- To elucidate the mechanism by which miR-155 affects CASPASE-3 (CASP-3) expression and apoptosis.
Main Methods:
- Deep sequencing of cDNA libraries from untreated and LPS-activated murine macrophages.
- Northern blotting and qPCR for miRNA expression validation.
- TargetScan prediction, antagomir transfection, in vitro translation assays, and Annexin V staining.
Main Results:
- LPS stimulation enhanced miR-155 expression and reduced CASP-3 mRNA and protein levels in macrophages.
- miR-155 was found to directly target CASP-3 mRNA, leading to its destabilization.
- Inhibition of miR-155 increased CASP-3 mRNA levels and sensitized macrophages to apoptosis.
Conclusions:
- LPS-induced miR-155 suppresses macrophage apoptosis by down-regulating CASP-3 mRNA.
- This miR-155-mediated apoptosis suppression is critical for maintaining macrophage function in inflammation.
- The findings reveal a novel mechanism of immune cell lifespan regulation by miRNAs.

