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A Macrophage Reporter Cell Assay to Examine Toll-Like Receptor-Mediated NF-kB/AP-1 Signaling on Adsorbed Protein Layers on Polymeric Surfaces
Published on: January 7, 2020
The alternative polyadenylation regulator CFIm25 promotes macrophage differentiation and activates the NF-κβ pathway
Abstract:
Macrophages are required for our body's development and tissue repair and protect against microbial attacks. We previously reported a crucial role for regulation of mRNA 3'-end cleavage and polyadenylation (C/P) in monocyte to macrophage differentiation. The CFIm25 subunit of the C/P complex showed a striking increase upon differentiation of monocytes with Phorbol Myristate Acetate, suggesting that it promotes this process. To test this hypothesis, CFIm25 was overexpressed in two different monocytic cell lines, followed by differentiation. Both cell lines showed a significant increase in macrophage characteristics and an earlier slowing of the cell cycle. In contrast, depletion of CFIm25 hindered differentiation. Cell cycle slowing upon CFIm25 overexpression was consistent with a greater decrease in the proliferation markers PCNA and cyclin D1, coupled with increased 3'UTR lengthening of cyclin D1 mRNA. Since choice of other poly(A) sites could be affected by manipulating CFIm25, we identified additional genes with altered use of poly(A) sites during differentiation and examined how this changed upon CFIm25 overexpression. The mRNAs of positive regulators of NF-κB signaling, TAB2 and TBL1XR1, and NFKB1, which encodes the NF-κB p50 precursor, underwent 3'UTR shortening that was associated with increased protein expression compared to the control. Cells overexpressing CFIm25 also showed elevated levels of phosphorylated NF-κB-p65 and the NF-κB targets p21, Bcl-XL, ICAM1 and TNF-α at an earlier time and greater resistance to NF-κB chemical inhibition. In conclusion, our study supports a model in which CFIm25 accelerates the monocyte to macrophage transition by promoting alternative polyadenylation events which lead to activation of the NF-κB pathway.
Insights
The study reveals that CFIm25 protein accelerates macrophage development by altering mRNA processing, leading to faster cell differentiation and enhanced immune responses. This finding is crucial for understanding tissue repair and microbial defense mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- Macrophages are vital for tissue repair and immunity.
- Regulation of mRNA 3'-end cleavage and polyadenylation (C/P) is critical for monocyte differentiation.
- The CFIm25 subunit of the C/P complex increases during monocyte to macrophage differentiation.
Purpose of the Study:
- To investigate the role of CFIm25 in monocyte to macrophage differentiation.
- To determine if CFIm25 overexpression accelerates macrophage development and associated cellular processes.
Main Methods:
- Overexpression of CFIm25 in monocytic cell lines.
- Assessment of macrophage characteristics and cell cycle progression.
- Analysis of mRNA 3'UTR length and polyadenylation site usage.
- Evaluation of NF-κB signaling pathway activation and target gene expression.
Main Results:
- CFIm25 overexpression significantly enhanced macrophage differentiation and slowed cell cycle progression.
- Depletion of CFIm25 inhibited differentiation.
- CFIm25 manipulation altered 3'UTR lengths of key genes, including cyclin D1.
- Overexpression led to accelerated activation of the NF-κB pathway and increased expression of NF-κB targets.
Conclusions:
- CFIm25 plays a crucial role in accelerating monocyte to macrophage differentiation.
- Alternative polyadenylation events regulated by CFIm25 are key to activating the NF-κB pathway.
- This mechanism enhances macrophage function, impacting tissue repair and immune defense.
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