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.

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.

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