Multiomics Reveals Nonphagocytosable Microplastics Induce Colon Inflammatory Injury via Bile Acid-Gut Microbiota

Junjie Chen1, Yixian Cheng1, Rui Fu1

  • 1Department of General Surgery, The First Affiliated Hospital of Anhui Medical University, Hefei, Anhui 230022, China.

Insights

Nonphagocytosable microplastics (MPs) cause colon inflammation and injury by disrupting the gut-liver axis and bile acid metabolism. This research reveals a novel pathway for microplastic toxicity.

Area of Science:

  • Environmental Science
  • Toxicology
  • Gastroenterology

Background:

  • Microplastics (MPs) are global pollutants with emerging concerns regarding intestinal toxicity.
  • Nonphagocytosable MPs (NPMs) cause colonic inflammation, but the mechanisms are not fully understood.

Purpose of the Study:

  • To investigate the mechanisms by which 10 μm polystyrene MPs (PS MPs) induce colonic inflammation and injury in a mouse model.
  • To elucidate the role of the gut-liver axis and bile acid metabolism in NPM-induced toxicity.

Main Methods:

  • Establishment of a BALB/c mouse model with long-term oral exposure to 10 μm PS MPs.
  • Assessment of colonic redox balance, immune homeostasis (Th17/Treg ratio, cytokines), and intestinal barrier function (mucin, tight junctions).
  • Multiomics analysis to explore liver function, gut microbiota, and bile acid (BA) metabolism; in vitro and in vivo validation of specific BA effects.

Main Results:

  • PS MPs exposure disrupted colonic redox balance, induced oxidative stress, and altered immune homeostasis.
  • Intestinal barrier function was compromised, with reduced mucin and tight junction protein expression.
  • PS MPs dysregulated bile acid metabolism via the liver-gut axis, leading to increased colonic bile acids, particularly conjugated BAs like TCDCA, which induced colonic epithelial cell apoptosis.

Conclusions:

  • Nonphagocytosable microplastics induce colonic inflammation and injury through oxidative stress, immune dysregulation, and barrier dysfunction.
  • Microplastic toxicity is mediated via a novel "liver-BA-gut axis," involving dysregulated bile acid metabolism.
  • This study provides critical insights into the cross-organ mechanisms of microplastic intestinal toxicity.

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