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The Fungal bZIP Transcription Factor AtfB Controls Virulence-Associated Processes in Aspergillus parasiticus
Josephine Wee1,2, Sung-Yong Hong3, Ludmila V Roze4
1Department of Food Science and Human Nutrition, Michigan State University, East Lansing, MI 48824, USA. jmw544@cornell.edu.
Abstract:
Fungal basic leucine zipper (bZIP) transcription factors mediate responses to oxidative stress. The ability to regulate stress response pathways in Aspergillus spp. was postulated to be an important virulence-associated cellular process, because it helps establish infection in humans, plants, and animals. Previous studies have demonstrated that the fungal transcription factor AtfB encodes a protein that is associated with resistance to oxidative stress in asexual conidiospores, and AtfB binds to the promoters of several stress response genes. Here, we conducted a gene silencing of AtfB in Aspergillus parasiticus, a well-characterized fungal pathogen of plants, animals, and humans that produces the secondary metabolite and carcinogen aflatoxin, in order to determine the mechanisms by which AtfB contributes to virulence. We show that AtfB silencing results in a decrease in aflatoxin enzyme levels, the down-regulation of aflatoxin accumulation, and impaired conidiospore development in AtfB-silenced strains. This observation is supported by a decrease of AtfB protein levels, and the down-regulation of many genes in the aflatoxin cluster, as well as genes involved in secondary metabolism and conidiospore development. Global expression analysis (RNA Seq) demonstrated that AtfB functionally links oxidative stress response pathways to a broader and novel subset of target genes involved in cellular defense, as well as in actin and cytoskeleton arrangement/transport. Thus, AtfB regulates the genes involved in development, stress response, and secondary metabolism in A. parasiticus. We propose that the bZIP regulatory circuit controlled by AtfB provides a large number of excellent cellular targets to reduce fungal virulence. More importantly, understanding key players that are crucial to initiate the cellular response to oxidative stress will enable better control over its detrimental impacts on humans.
Insights
The fungal transcription factor AtfB is crucial for virulence in Aspergillus parasiticus. Silencing AtfB reduces aflatoxin production, impairs development, and impacts stress response pathways, offering targets to control fungal infections.
Area of Science:
- Mycology
- Molecular Biology
- Pathogenesis
Background:
- Fungal basic leucine zipper (bZIP) transcription factors regulate oxidative stress responses.
- Stress response pathways are critical for fungal virulence in hosts.
- AtfB is a known transcription factor involved in oxidative stress resistance in fungal conidiospores.
Purpose of the Study:
- To investigate the role of AtfB in the virulence of Aspergillus parasiticus.
- To elucidate the mechanisms by which AtfB contributes to fungal pathogenesis and secondary metabolite production.
Main Methods:
- Gene silencing of AtfB in Aspergillus parasiticus.
- Analysis of aflatoxin production and enzyme levels.
- RNA sequencing (RNA Seq) for global gene expression profiling.
- Assessment of conidiospore development.
Main Results:
- AtfB silencing led to decreased aflatoxin accumulation and enzyme levels.
- Impaired conidiospore development was observed in AtfB-silenced strains.
- RNA Seq revealed AtfB regulates genes in stress response, secondary metabolism, and cytoskeleton organization.
Conclusions:
- AtfB is a key regulator of development, stress response, and secondary metabolism in Aspergillus parasiticus.
- The bZIP regulatory circuit controlled by AtfB presents potential targets for reducing fungal virulence.
- Understanding AtfB's role in oxidative stress response can aid in controlling detrimental fungal impacts.
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