Intact vagal gut-brain signalling prevents hyperphagia and excessive weight gain in response to high-fat high-sugar

Molly McDougle1,2,3, Danielle Quinn3, Charlene Diepenbroek3,4

  • 1Department of Pharmacodynamics, University of Florida, Gainesville, FL, USA.

Abstract

Insights

Sensory vagal neurons are crucial for controlling food intake and preventing weight gain. Their ablation leads to overeating, especially on high-fat diets, by reducing fat-induced satiety.

Area of Science:

  • Neuroscience
  • Physiology
  • Endocrinology

Background:

  • Vagal gut-brain signaling plays a role in energy balance, but its precise function is unclear due to limitations in current assessment tools.
  • Existing methods for studying vagal nerve function lack specificity, leading to discrepancies in understanding its role in long-term energy homeostasis.

Purpose of the Study:

  • To investigate the role of sensory vagal neurons innervating the gut in regulating food intake, energy expenditure, and glucose homeostasis.
  • To determine how vagal gut-brain signaling influences responses to different dietary conditions, including standard chow and high-fat, high-sugar diets.

Main Methods:

  • Selective ablation of gut-innervating sensory vagal neurons in rats using cholecystokinin (CCK)-saporin neurotoxin.
  • Assessment of food intake, body weight, glucose tolerance, and energy expenditure in response to chow and high-fat, high-sugar (HFHS) diets.
  • Evaluation of motivation for palatable food (fat/sugar) and post-ingestive satiety responses to lipid and sucrose pre-loads.

Main Results:

  • Vagal deafferentation increased meal frequency in lean rats on a chow diet.
  • Switching to a HFHS diet exacerbated overeating and weight gain in deafferented rats.
  • Motivation for palatable foods did not differ, but satiation after fat pre-loads was reduced, indicating impaired lipid-mediated satiety.

Conclusions:

  • Intact sensory vagal neurons are essential for preventing hyperphagia and mitigating weight gain when consuming HFHS diets.
  • The vagus nerve promotes satiation, particularly in response to dietary fats, thereby regulating energy balance.

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