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Updated: May 27, 2026

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Published on: January 1, 2017
Nicotinic stimulation induces Tristetraprolin over-production and attenuates inflammation in muscle
Brian C Geyer1, Shani Ben Ari, Shahar Barbash
1School of Life Sciences and The Biodesign Institute, P.O. Box 874501,Arizona State University, Tempe, AZ 85287-4501, USA.
Abstract:
Cholinergic signaling suppresses inflammation in blood and brain and attenuates apoptosis in other tissues, but whether it blocks inflammation in skeletal muscle under toxicant exposure, injuries and diseases remained unexplored. Here, we report nicotinic attenuation of inflammation and alteration of apoptotic protein expression pattern in murine muscle tissue and cultured myotubes, involving the RNA-binding protein, Tristetraprolin, and the anti-apoptotic protein, Mcl-1. In muscles and C2C12 myotubes, cholinergic excitation by exposure to nicotine or the organophosphorous pesticide, Paraoxon, induced Tristetraprolin overproduction while reducing pro-inflammatory transcripts such as IL-6, CXCL1 (KC) and CCL2 (MCP-1). Furthermore, nicotinic excitation under exposure to the bacterial endotoxin LPS attenuated over-expression of the CCL2 and suppressed the transcriptional activity of NF-ĸB and AP-1. Tristetraprolin was essential for this anti-inflammatory effect of nicotine in basal conditions. However, its knockdown also impaired the pro-inflammatory response to LPS. Finally, in vivo administration of Paraoxon or recombinant Acetylcholinesterase, leading respectively to either gain or loss of cholinergic signaling, modified muscle expression of key mRNA processing factors and several of their apoptosis-related targets. Specifically, cholinergic imbalances enhanced the kinase activators of the Serine-Arginine splicing kinases, Clk1 and Clk3. Moreover, Paraoxon raised the levels of the anti-apoptotic protein, Mcl-1, through a previously unrecognized polyadenylation site selection mechanism, producing longer, less stable Mcl-1 mRNA transcripts. Together, our findings demonstrate that in addition to activating muscle function, acetylcholine regulates muscle inflammation and cell survival, and point to Tristetraprolin and the choice of Mcl-1 mRNA polyadenylation sites as potential key players in muscle reactions to insults.
Insights
Cholinergic signaling, involving acetylcholine, reduces skeletal muscle inflammation and alters apoptosis. This pathway utilizes Tristetraprolin and Mcl-1 mRNA processing for protection against toxicant exposure and injury.
Area of Science:
- Muscle physiology
- Neuroimmunology
- Molecular biology
Background:
- Cholinergic signaling is known to reduce inflammation and apoptosis in blood and brain.
- Its role in skeletal muscle inflammation and apoptosis, particularly under toxicant exposure, remained unexplored.
Purpose of the Study:
- To investigate the role of cholinergic signaling in regulating inflammation and apoptosis in skeletal muscle.
- To identify key molecular players involved in these processes.
Main Methods:
- Murine muscle tissue and cultured myotubes (C2C12) were used.
- Exposure to nicotine, organophosphorous pesticide (Paraoxon), bacterial endotoxin (LPS), and recombinant Acetylcholinesterase.
- Analysis of inflammatory transcripts (IL-6, CXCL1, CCL2), transcription factors (NF-ĸB, AP-1), RNA-binding protein (Tristetraprolin), and anti-apoptotic protein (Mcl-1) expression.
- Investigated mRNA processing factors and polyadenylation site selection.
Main Results:
- Cholinergic excitation reduced pro-inflammatory transcripts (IL-6, CXCL1, CCL2) and suppressed NF-ĸB and AP-1 activity.
- Tristetraprolin (an RNA-binding protein) was essential for nicotine's anti-inflammatory effect.
- Paraoxon administration altered muscle expression of mRNA processing factors and apoptosis-related targets.
- Paraoxon increased Mcl-1 protein levels via a novel polyadenylation site selection mechanism.
Conclusions:
- Acetylcholine regulates skeletal muscle inflammation and cell survival, extending beyond its known role in muscle function.
- Tristetraprolin and Mcl-1 mRNA polyadenylation site selection are key regulators in muscle's response to insults.
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