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Enterocyte-afferent nerve interactions in dietary fat sensing
1Physiology and Behaviour Laboratory, ETH Zurich, Schwerzenbach, Switzerland.
Diabetes, Obesity & Metabolism
|September 10, 2014
Summary
The central nervous system monitors nutrient levels in the gut using nerves. This study explores a new mechanism involving ketone bodies for sensing dietary fats, potentially involving sympathetic nerves.
Area of Science:
- Neuroscience
- Gastroenterology
- Metabolism
Background:
- The central nervous system (CNS) regulates energy homeostasis by monitoring nutrient availability in the gastrointestinal (GI) tract.
- Extrinsic parasympathetic and sympathetic nerves are vital for relaying nutrient information from the GI tract to the brain.
- Existing mechanisms for dietary fat sensing involve G protein-coupled receptors, gut peptides, and mediators like fatty acid ethanolamides and apolipoprotein A-IV.
Purpose of the Study:
- To investigate novel mechanisms by which the body senses dietary fats in the GI tract.
- To present evidence for a potential new pathway involving ketone bodies in dietary fat sensing.
Main Methods:
- Review of existing literature on nutrient sensing in the GI tract.
- Analysis of evidence suggesting a role for ketone bodies derived from dietary fatty acid oxidation.
- Consideration of the involvement of sympathetic versus vagal afferent nerves.
Main Results:
- Dietary fats are sensed through multiple direct and indirect pathways involving the GI tract.
- A novel mechanism involving ketone bodies, produced from dietary fatty acid oxidation in enterocytes, is proposed.
- Preliminary evidence suggests sympathetic afferents may play a role in this ketone body-mediated sensing.
Conclusions:
- The GI tract employs diverse mechanisms to detect dietary fats.
- Ketone bodies represent a potential new signaling molecule in dietary fat sensing.
- Further research is required to confirm the role of sympathetic afferents in this pathway.
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