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March 18, 2026Environmental Science & Technology1 citations

Microcystin-LR Disrupts Bile Acid Homeostasis, Driving Cholestatic Liver Injury and Gallstones via FXR/SHP Antagonism

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JHJun HeChinese Academy of SciencesWXWenbo XuInstitute of Deep-Sea Science and EngineeringFCFengqian ChenUniversity of North Carolina at Chapel Hill

Key Points

  • The research aims to investigate how microcystin-LR affects bile acid homeostasis and contributes to liver injury and gallstone formation.
  • Chronic exposure to microcystin-LR in mice.
  • Targeted metabolomics to analyze bile acid profiles.
  • Gene and protein expression analyses of BA synthetic enzymes and nuclear receptors.
  • Microscale thermophoresis and molecular docking to assess binding affinity to FXR and SHP.
  • Pharmacological activation of FXR using GW4064 and obeticholic acid (OCA) for rescue experiments.
  • MC-LR exposure led to cholestatic liver injury and gallstone formation in mice.
  • Altered bile acid profiles indicated increased hydrophobicity and deconjugation.
  • Dysregulation of bile acid synthetic enzymes and transporters was confirmed.
  • High-affinity binding of MC-LR to FXR and SHP was demonstrated.
  • Pharmacological intervention reversed MC-LR induced intracellular bile acid accumulation.

Abstract

Bile acids (BAs) are vital for liver health, and their dysregulation causes hepatobiliary disorders. Microcystins (MCs) are pervasive hepatotoxins in freshwaters worldwide that threaten public health; yet, their effects on BA homeostasis─particularly regulation mechanisms─remain poorly defined. Here, we show that chronic exposure to environmentally relevant doses of microcystin-LR (MC-LR) induces not only cholestatic liver injury but also gallstone formation in mice. Targeted metabolomics revealed that MC-LR strikingly altered BA profiles across the liver, gallbladder bile, and serum, characterized by increased hydrophobicity and excessive deconjugation. Crucially, this compositional distortion overrides the quantitative expansion of the gallbladder BA pool, creating a prolithogenic environment. Gene and protein expression analyses further demonstrated dysregulation of BA synthetic enzymes, transporters, and nuclear receptors FXR and SHP, indicative of a disrupted FXR-SHP signaling axis. Microscale thermophoresis and molecular docking confirmed the high-affinity binding of MC-LR to human FXR and SHP. Rescue experiments further showed that pharmacological activation of FXR using GW4064 or obeticholic acid (OCA) effectively reversed MC-LR-induced intracellular BA accumulation in human HepG2 cell line. Collectively, our findings establish MC-LR as an overlooked environmental driver of gallstone disease and highlight direct FXR-SHP antagonism as a key mechanism with therapeutic potential.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/69ba431a4e9516ffd37a3f30https://doi.org/10.1021/acs.est.5c11103
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