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Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation
Published on: December 29, 2023
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.
Aim:
The tools that have been used to assess the function of the vagus nerve lack specificity. This could explain discrepancies about the role of vagal gut-brain signalling in long-term control of energy balance. Here we use a validated approach to selectively ablate sensory vagal neurones that innervate the gut to determine the role of vagal gut-brain signalling in the control of food intake, energy expenditure and glucose homoeostasis in response to different diets.
Methods:
Rat nodose ganglia were injected bilaterally with either the neurotoxin saporin conjugated to the gastrointestinal hormone cholecystokinin (CCK), or unconjugated saporin as a control. Food intake, body weight, glucose tolerance and energy expenditure were measured in both groups in response to chow or high-fat high-sugar (HFHS) diet. Willingness to work for fat or sugar was assessed by progressive ratio for orally administered solutions, while post-ingestive feedback was tested by measuring food intake after an isocaloric lipid or sucrose pre-load.
Results:
Vagal deafferentation of the gut increases meal number in lean chow-fed rats. Switching to a HFHS diet exacerbates overeating and body weight gain. The breakpoint for sugar or fat solution did not differ between groups, suggesting that increased palatability may not drive HFHS-induced hyperphagia. Instead, decreased satiation in response to intra-gastric infusion of fat, but not sugar, promotes hyperphagia in CCK-Saporin-treated rats fed with HFHS diet.
Conclusions:
We conclude that intact sensory vagal neurones prevent hyperphagia and exacerbation of weight gain in response to a HFHS diet by promoting lipid-mediated satiation.
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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