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.

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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