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Updated: Aug 21, 2026

Label-Free Imaging of Lipid Storage Dynamics in Caenorhabditis elegans using Stimulated Raman Scattering Microscopy
Published on: May 28, 2021
Transcriptional targets of DAF-16 insulin signaling pathway protect C. elegans from extreme hypertonic stress
S Todd Lamitina1, Kevin Strange
1Department of Molecular Physiology and Biophysics, Vanderbilt University Medical Center, Nashville, Tennessee 37232-2520, USA.
Abstract:
All cells adapt to hypertonic stress by regulating their volume after shrinkage, by accumulating organic osmolytes, and by activating mechanisms that protect against and repair hypertonicity-induced damage. In mammals and nematodes, inhibition of signaling from the DAF-2/IGF-1 insulin receptor activates the DAF-16/FOXO transcription factor, resulting in increased life span and resistance to some types of stress. We tested the hypothesis that inhibition of insulin signaling in Caenorhabditis elegans also increases hypertonic stress resistance. Genetic inhibition of DAF-2 or its downstream target, the AGE-1 phosphatidylinositol 3-kinase, confers striking resistance to a normally lethal hypertonic shock in a DAF-16-dependent manner. However, insulin signaling is not inhibited by or required for adaptation to hypertonic conditions. Microarray studies have identified 263 genes that are transcriptionally upregulated by DAF-16 activation. We identified 14 DAF-16-upregulated genes by RNA interference screening that are required for age-1 hypertonic stress resistance. These genes encode heat shock proteins, proteins of unknown function, and trehalose synthesis enzymes. Trehalose levels were elevated approximately twofold in age-1 mutants, but this increase was insufficient to prevent rapid hypertonic shrinkage. However, age-1 animals unable to synthesize trehalose survive poorly under hypertonic conditions. We conclude that increased expression of proteins that protect eukaryotic cells against environmental stress and/or repair stress-induced molecular damage confers hypertonic stress resistance in C. elegans daf-2/age-1 mutants. Elevated levels of solutes such as trehalose may also function in a cytoprotective manner. Our studies provide novel insights into stress resistance in animal cells and a foundation for new studies aimed at defining molecular mechanisms underlying these essential processes.
Insights
Inhibiting insulin signaling in C. elegans enhances resistance to hypertonic stress by activating DAF-16/FOXO. This involves upregulating protective genes, including those for trehalose synthesis, crucial for cell survival under stress.
Area of Science:
- Cellular Biology
- Stress Response Mechanisms
- Genetics
Background:
- Cells adapt to hypertonic stress via volume regulation and osmolyte accumulation.
- Insulin/IGF-1 signaling pathway inhibition (DAF-2/IGF-1) in mammals and nematodes activates DAF-16/FOXO, extending lifespan and stress resistance.
Purpose of the Study:
- To investigate if inhibiting insulin signaling in Caenorhabditis elegans enhances resistance to hypertonic stress.
- To identify genes involved in this stress resistance pathway.
Main Methods:
- Genetic manipulation of DAF-2 and AGE-1 pathways.
- RNA interference screening to identify key genes.
- Microarray analysis to identify DAF-16-upregulated genes.
- Measurement of trehalose levels.
Main Results:
- Genetic inhibition of DAF-2 or AGE-1 confers significant hypertonic stress resistance in a DAF-16-dependent manner.
- 14 DAF-16-upregulated genes, including trehalose synthesis enzymes, were identified as essential for this resistance.
- Trehalose levels were elevated in mutants, and impaired trehalose synthesis reduced survival under hypertonic conditions.
Conclusions:
- Increased expression of stress-protective and damage-repair proteins confers hypertonic stress resistance in C. elegans.
- Elevated trehalose levels contribute to cytoprotection during hypertonic stress.
- This study provides insights into animal cell stress resistance and its molecular mechanisms.
