Fatty acid regulation of feeding in <i>Caenorhabditis</i> elegans reveals the potential ancestral origin of a GLP-1-like multiagonist signaling system

F Feimei Zhu (Research Division, Joslin Diabetes Center) J Jorge Iván Castillo-Quan (Research Division, Joslin Diabetes Center) T Takafumi Ogawa (Research Division, Joslin Diabetes Center) Z Ziyun Wu (Research Division, Joslin Diabetes Center) L Lang Ding M Mansi Sura (Research Division, Joslin Diabetes Center) Y Yoshiyuki Watanabe (Research Division, Joslin Diabetes Center) H Hannah Lentschat (Institute of Biochemistry, Faculty of Life Sciences, Leipzig University) L L. Paulette Fernández-Cárdenas (Research Division, Joslin Diabetes Center) U Ugur Dag (Picower Institute for Learning and Memory and HHMI, Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology) A Annette Beck-Sickinger (Institute of Biochemistry, Faculty of Life Sciences, Leipzig University) M Meng C. Wang (HHMI, Janelia Research Campus) C C. Ronald Kahn (Section of Integrative Physiology and Metabolism, Joslin Diabetes Center and Department of Medicine, Harvard Medical School) T T. Keith Blackwell (Research Division, Joslin Diabetes Center)

Abstract

Regulation of food intake in mammals is complex and controlled by an interplay between hedonic and homeostatic signals, including hormones like leptin, which senses fat storage and suppresses food intake. Caenorhabditis elegans lack leptin and leptin receptors but still exhibit controlled eating. Here, we show that in C. elegans eating can be regulated by a balance between saturated and monounsaturated fatty acids interacting with transcriptional pathways regulating lipid synthesis, c-AMP response element binding protein and AMP kinase. This effect is mediated at the endoplasmic reticulum through formation of phospholipids and activation of the IRE-1 sensor in the nervous system, which controls behavior through neuronal serotonin and the G-protein-coupled ligand/receptor pair PDF-1/PDFR-1. We show that this peptide/receptor pair may be an ancestral precursor of the whole family of GLP-1/GIP-related peptides and their receptors. Indeed, administration of a 37 amino acid peptide derived from PDF-1 resulted in a reduction in body weight and improved insulin sensitivity in mice. In worms, signaling through this pathway induced food-leaving behavior on concentrated food and roaming behavior on dispersed food, a state we have termed “food-apathy,” paralleling pharmacologic effects of GLP-1/GIP-related peptides in humans. These findings highlight the potential evolutionary origin of this family of hormones and their receptors, and its link to metabolic and neuronal responses in control of feeding behavior.

Article Details

Volume / Issue Vol. 123, Issue 14
Published April 07, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

F

Feimei Zhu

Research Division, Joslin Diabetes Center

J

Jorge Iván Castillo-Quan

Research Division, Joslin Diabetes Center

T

Takafumi Ogawa

Research Division, Joslin Diabetes Center

Z

Ziyun Wu

Research Division, Joslin Diabetes Center

L

Lang Ding

M

Mansi Sura

Research Division, Joslin Diabetes Center

Y

Yoshiyuki Watanabe

Research Division, Joslin Diabetes Center

H

Hannah Lentschat

Institute of Biochemistry, Faculty of Life Sciences, Leipzig University

L

L. Paulette Fernández-Cárdenas

Research Division, Joslin Diabetes Center

U

Ugur Dag

Picower Institute for Learning and Memory and HHMI, Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology

A

Annette Beck-Sickinger

Institute of Biochemistry, Faculty of Life Sciences, Leipzig University

M

Meng C. Wang

HHMI, Janelia Research Campus

C

C. Ronald Kahn

Section of Integrative Physiology and Metabolism, Joslin Diabetes Center and Department of Medicine, Harvard Medical School

T

T. Keith Blackwell

Research Division, Joslin Diabetes Center