Related Experiment Video
Updated: Apr 11, 2026

Profiling Thiol Redox Proteome Using Isotope Tagging Mass Spectrometry
Published on: March 24, 2012
The Pseudogymnoascus destructans Proteome Under Copper Stress Conditions
Abstract:
The invasive fungal pathogen Pseudogymnoascus destructans is responsible for the collapse of several North American bat species through an infectious fungal skin disease known as White-Nose Syndrome (WNS). Recent transcriptomic studies have suggested that trace copper ion acquisition is essential for P. destructans propagation on its animal hosts. However, little is known about the mechanistic details of P. destructans adaptation occurring at the protein level. In this study, we report the global proteomic adaptation of P. destructans under chronic Cu-stress growth conditions employing chemically defined media. We identify 4340 P. destructans proteins, or approximately 47.8% of the predicted proteome, spanning a dynamic intensity range of six orders of magnitude. Chronic Cu-withholding stress leads to substantial alterations in the proteome, with 1398 differentially abundant proteins (DAPs) exhibiting statistically significant (p < 0.05) changes in protein levels compared to control growth conditions. We find that Cu-withholding stress induces increased levels of proteins associated with high-affinity Cu-acquisition, changes in intracellular superoxide dismutase (SOD) levels, and alterations in mitochondrial proteins related to aerobic respiration. In contrast, chronic Cu-overload stress leads to 390 DAPs (p < 0.05), which are more widely distributed across the proteome, with several DAPs associated with genomic stability and basic metabolism. Additionally, in this report, we present assessment of antisera products against intracellular and cell-surface protein targets of P. destructans that are effective for indicating Cu-withholding stress by western blotting.
Insights
This study reveals how the fungus Pseudogymnoascus destructans adapts its proteins under copper stress. Understanding these adaptations is key to developing strategies against White-Nose Syndrome (WNS) in bats.
Area of Science:
- Mycology
- Pathogen Biology
- Proteomics
Background:
- Pseudogymnoascus destructans causes White-Nose Syndrome (WNS), devastating North American bat populations.
- Copper acquisition is implicated in P. destructans virulence, but protein-level adaptations remain unclear.
Purpose of the Study:
- To investigate the global proteomic response of P. destructans to copper withholding and overload.
- To identify specific proteins and pathways involved in P. destructans copper stress adaptation.
Main Methods:
- Global proteomic analysis of P. destructans grown in chemically defined media under varying copper conditions.
- Quantitative mass spectrometry to identify and quantify protein abundance changes.
- Western blot analysis using developed antisera against P. destructans proteins.
Main Results:
- Identified 4340 P. destructans proteins, with 1398 differentially abundant proteins (DAPs) under copper withholding.
- Copper withholding increased proteins for high-affinity copper acquisition, altered superoxide dismutase (SOD) levels, and affected mitochondrial respiration proteins.
- Copper overload resulted in 390 DAPs linked to genomic stability and metabolism.
- Developed effective antisera for detecting copper-withholding stress via western blotting.
Conclusions:
- P. destructans exhibits significant proteomic reprogramming in response to copper stress, impacting virulence and survival mechanisms.
- Specific protein targets were identified that could be leveraged for diagnostic tools or therapeutic interventions against WNS.
Related Concept Videos
Other Stress Responses in Bacteria
Stringent Response in E. coli

