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Updated: Apr 2, 2026

Using Caenorhabditis elegans as a Model System to Study Protein Homeostasis in a Multicellular Organism
Published on: December 18, 2013
A neuropeptide regulates cell non-autonomous protein homeostasis
Carrie A Sheeler1, Jacqueline Y Lo2, Areebah Rahman1
1Genetics and Biochemistry Branch, NIDDK, National Institutes of Health, Bethesda, MD 20814, USA.
Abstract:
The coordination of proteostasis between the brain and peripheral tissues is essential for the health and survival of all animals. In C. elegans, glia coordinate organismal proteostasis and longevity via the unfolded protein response of the endoplasmic reticulum (UPRER). However, the signaling molecules required remain unknown. Here, we show that glial UPRER activation increases levels of specific neuropeptides. We identify a single neuropeptide, FLP-17, that is sufficient but not necessary to induce cell non-autonomous activation of the UPRER and protect against chronic ER stress. FLP-17 signals partially through the receptor, EGL-6, to activate transcellular UPRER and confer stress resistance. Both XBP-1 and PERK are required for maximal FLP-17-induced UPRER activation, though only XBP-1 is necessary for organismal ER stress resistance. This work reveals a complex neuropeptide network initiated by glial UPRER activation and identifies FLP-17 as a critical mediator that coopts an existing sensory-metabolic circuit to coordinate organismal proteostasis.
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