Absence of ataxin-3 leads to enhanced stress response in C. elegans

Ana João Rodrigues1, Andreia Neves-Carvalho, Andreia Teixeira-Castro

  • 1Life and Health Sciences Research Institute (ICVS), School of Health Sciences, University of Minho, Braga, Portugal.

Plos One
|April 29, 2011
PubMed

Insights

Absence of ataxin-3 (ATX-3) enhances survival during heat shock stress in C. elegans. This increased thermotolerance is mediated by the DAF-16 pathway and upregulation of specific molecular chaperones.

Area of Science:

  • Neurobiology
  • Genetics
  • Cellular Biology

Background:

  • Ataxin-3 (ATX-3) is implicated in Machado-Joseph disease and protein degradation via the ubiquitin-proteasome system.
  • While ATX-3 knockout models are viable, their response to stress remains largely uncharacterized.

Purpose of the Study:

  • To investigate the role of ATX-3 in cellular stress response, specifically heat shock, in C. elegans.
  • To elucidate the molecular mechanisms underlying any observed stress resistance or sensitivity in ATX-3 deficient animals.

Main Methods:

  • Utilized C. elegans ATX-3 knockout models subjected to heat shock stimuli.
  • Performed transcriptomic and proteomic analyses to identify molecular changes during stress.
  • Investigated the involvement of heat shock factor 1 (HSF-1) and DAF-16 pathways.
  • Employed RNA interference (RNAi) to assess the contribution of specific heat shock proteins (HSPs).

Main Results:

  • ATX-3 mutants exhibited significantly enhanced survival and thermotolerance compared to wild-type animals under heat shock.
  • This increased thermotolerance was potentiated by prior mild heat shock exposure.
  • Molecular analysis revealed upregulation of chaperones like HSP-16.2, C12C8.1, and F44E5.5 in ATX-3 mutants.
  • The enhanced thermotolerance was independent of HSF-1 but critically dependent on DAF-16.
  • Knockdown of specific HSPs reverted the enhanced thermotolerance phenotype in ATX-3 mutants.

Conclusions:

  • The absence of ATX-3 activates the DAF-16 pathway, leading to increased expression of molecular chaperones.
  • This molecular response confers enhanced resistance to deleterious stimuli, such as heat shock, in ATX-3 deficient organisms.
  • Suggests a novel role for ATX-3 in modulating stress response pathways beyond its known function in protein degradation.

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