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Updated: Jun 2, 2026

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
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.
Abstract:
Ataxin-3, the protein involved in Machado-Joseph disease, is able to bind ubiquitylated substrates and act as a deubiquitylating enzyme in vitro, and it has been involved in the modulation of protein degradation by the ubiquitin-proteasome pathway. C. elegans and mouse ataxin-3 knockout models are viable and without any obvious phenotype in a basal condition however their phenotype in stress situations has never been described.Considering the role of ataxin-3 in the protein degradation pathway, we analyzed the effects of heat shock, a known protein homeostasis stressor, in C. elegans ataxin-3 (ATX-3) knockout animals. We found that ATX-3 mutants have an exacerbated stress response and survive significantly better than wild type animals when subjected to a noxious heat shock stimulus. This increased thermotolerance of mutants was further enhanced by pre-exposure to a mild heat shock. At a molecular level, ATX-3 mutants have a distinct transcriptomic and proteomic profile with several molecular chaperones abnormally up-regulated during heat shock and recovery, consistent with the observed resistance phenotype.The improved thermotolerance in ATX-3 mutants is independent of heat shock factor 1, the maestro of the heat shock response, but fully dependent on DAF-16, a critical stress responsive transcription factor involved in longevity and stress resistance. We also show that the increased thermotolerance of ATX-3 mutants is mainly due to HSP-16.2, C12C8.1 and F44E5.5 given that the knockdown of these heat shock proteins using RNA interference causes the phenotype to revert. This report suggests that the absence of ATX-3 activates the DAF-16 pathway leading to an overexpression of molecular chaperones, which yields knockout animals with an improved capacity for dealing with deleterious stimuli.
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.

