Intestinal serine protease inhibition increases FGF21 and improves metabolism in obese mice

Kamal Albarazanji1, Matthew Jennis1, Cassandre R Cavanaugh1

  • 1Cardiovascular and Metabolic Disease Discovery, Janssen R&D, LLC, Spring House, Pennsylvania.

Insights

Camostat, a trypsin inhibitor, improves metabolism by increasing fibroblast growth factor 21 (FGF21) and activating the integrated stress response (ISR) in mice. This novel mechanism bypasses satiety pathways, offering new insights into metabolic regulation.

Area of Science:

  • Metabolic regulation
  • Gastroenterology
  • Endocrinology

Background:

  • Trypsin is crucial for intestinal protein digestion.
  • Camostat (CS), a trypsin inhibitor, shows metabolic benefits in obese rats, but mechanisms are unclear.
  • CS may induce apparent dietary protein restriction, increasing hepatic fibroblast growth factor 21 (FGF21).

Purpose of the Study:

  • To investigate the metabolic effects of camostat (CS) and its metabolite FOY-251 in mice.
  • To elucidate the mechanisms underlying CS-induced metabolic improvements, focusing on FGF21 and integrated stress response (ISR).

Main Methods:

  • Metabolic parameters (food intake, body weight, blood glucose, plasma amino acids, hormones) were measured in various mouse models (ob/ob, lean, DIO).
  • Liver gene expression (FGF21, ISR) and pathology were analyzed.
  • CS and FOY-251 were administered via chow or oral gavage.

Main Results:

  • CS and FOY-251 reduced food intake and weight gain in ob/ob mice, similar to pair-fed controls.
  • CS and FOY-251 increased hepatic FGF21 transcription and plasma FGF21 levels in lean and ob/ob mice.
  • FOY-251 reduced glucose excursion AUC in diet-induced obese (DIO) mice and increased plasma FGF21.
  • Intestinal trypsin inhibition activated non-satiety pathways, including ISR, in leptin-deficient and DIO mice.

Conclusions:

  • Intestinal trypsin inhibition, via CS and FOY-251, improves metabolism through FGF21 induction and ISR activation.
  • This mechanism operates independently of satiety signals, suggesting a novel pathway for metabolic adaptation.
  • Apparent dietary protein restriction due to trypsin inhibition may trigger beneficial intestinal-liver axis responses to nutrient stress.

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