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Published on: July 9, 2013
Integrative analysis of the heat shock response in Aspergillus fumigatus
Daniela Albrecht1, Reinhard Guthke, Axel A Brakhage
1Leibniz Institute for Natural Product Research and Infection Biology, Hans-Knöll-Institute, Jena, Germany.
Background:
Aspergillus fumigatus is a thermotolerant human-pathogenic mold and the most common cause of invasive aspergillosis (IA) in immunocompromised patients. Its predominance is based on several factors most of which are still unknown. The thermotolerance of A. fumigatus is one of the traits which have been assigned to pathogenicity. It allows the fungus to grow at temperatures up to and above that of a fevered human host. To elucidate the mechanisms of heat resistance, we analyzed the change of the A. fumigatus proteome during a temperature shift from 30 degrees C to 48 degrees C by 2D-fluorescence difference gel electrophoresis (DIGE). To improve 2D gel image analysis results, protein spot quantitation was optimized by missing value imputation and normalization. Differentially regulated proteins were compared to previously published transcriptome data of A. fumigatus. The study was augmented by bioinformatical analysis of transcription factor binding sites (TFBSs) in the promoter region of genes whose corresponding proteins were differentially regulated upon heat shock.
Results:
91 differentially regulated protein spots, representing 64 different proteins, were identified by mass spectrometry (MS). They showed a continuous up-, down- or an oscillating regulation. Many of the identified proteins were involved in protein folding (chaperones), oxidative stress response, signal transduction, transcription, translation, carbohydrate and nitrogen metabolism. A correlation between alteration of transcript levels and corresponding proteins was detected for half of the differentially regulated proteins. Interestingly, some previously undescribed putative targets for the heat shock regulator Hsf1 were identified. This provides evidence for Hsf1-dependent regulation of mannitol biosynthesis, translation, cytoskeletal dynamics and cell division in A. fumigatus. Furthermore, computational analysis of promoters revealed putative binding sites for an AP-2alpha-like transcription factor upstream of some heat shock induced genes. Until now, this factor has only been found in vertebrates.
Conclusions:
Our newly established DIGE data analysis workflow yields improved data quality and is widely applicable for other DIGE datasets. Our findings suggest that the heat shock response in A. fumigatus differs from already well-studied yeasts and other filamentous fungi.
Insights
Aspergillus fumigatus heat resistance involves unique protein regulation, including novel targets for Hsf1. This study reveals differences in its heat shock response compared to other fungi.
Area of Science:
- Microbiology
- Molecular Biology
- Proteomics
Background:
- Aspergillus fumigatus is a thermotolerant pathogen causing invasive aspergillosis in immunocompromised individuals.
- Its thermotolerance is a key factor in pathogenicity, enabling growth at human body temperature.
- Understanding heat resistance mechanisms is crucial for combating this opportunistic fungus.
Purpose of the Study:
- To investigate the proteomic changes in Aspergillus fumigatus during heat shock.
- To identify proteins involved in heat resistance and elucidate regulatory mechanisms.
- To compare heat shock response with existing transcriptome data and identify novel transcription factor targets.
Main Methods:
- Proteome analysis using 2D-fluorescence difference gel electrophoresis (DIGE) after temperature shift from 30°C to 48°C.
- Mass spectrometry (MS) for identification of differentially regulated proteins.
- Bioinformatical analysis of transcription factor binding sites (TFBSs) and comparison with transcriptome data.
Main Results:
- Identified 64 differentially regulated proteins, many involved in protein folding, oxidative stress, and metabolism.
- Observed correlation between transcript and protein level alterations for half of the proteins.
- Discovered novel putative Hsf1 targets and identified an AP-2alpha-like transcription factor binding sites in heat-induced genes.
Conclusions:
- The developed DIGE data analysis workflow enhances data quality and is broadly applicable.
- The heat shock response in Aspergillus fumigatus exhibits unique characteristics compared to yeasts and other filamentous fungi.
- Findings provide insights into fungal thermotolerance and pathogenicity mechanisms.
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