Transcriptome-Based Modeling Reveals that Oxidative Stress Induces Modulation of the AtfA-Dependent Signaling Networks inAspergillus nidulans

Author:

Orosz Erzsébet1ORCID,Antal Károly2ORCID,Gazdag Zoltán3ORCID,Szabó Zsuzsa1,Han Kap-Hoon4,Yu Jae-Hyuk5,Pócsi István1ORCID,Emri Tamás1ORCID

Affiliation:

1. Department of Biotechnology and Microbiology, Faculty of Science and Technology, University of Debrecen, Debrecen, P.O. Box 63 H-4010, Hungary

2. Department of Zoology, Faculty of Sciences, Eszterházy Károly University, Eger, Eszterházy tér 1 H-3300, Hungary

3. Department of General and Environmental Microbiology, Faculty of Sciences, University of Pécs, Pécs, P. O. Box 266 H-7601, Hungary

4. Department of Pharmaceutical Engineering, Woosuk University, Wanju 565-701, Republic of Korea

5. Department of Bacteriology, University of Wisconsin, 1550 Linden Dr., Madison, WI 53706, USA

Abstract

To better understand the molecular functions of the master stress-response regulator AtfA inAspergillus nidulans, transcriptomic analyses of theatfAnull mutant and the appropriate control strains exposed to menadione sodium bisulfite- (MSB-),t-butylhydroperoxide- and diamide-induced oxidative stresses were performed. Several elements of oxidative stress response were differentially expressed. Many of them, including the downregulation of the mitotic cell cycle, as the MSB stress-specific upregulation of FeS cluster assembly and the MSB stress-specific downregulation of nitrate reduction, tricarboxylic acid cycle, and ER to Golgi vesicle-mediated transport, showed AtfA dependence. To elucidate the potential global regulatory role of AtfA governing expression of a high number of genes with very versatile biological functions, we devised a model based on the comprehensive transcriptomic data. Our model suggests that an important function of AtfA is to modulate the transduction of stress signals. Although it may regulate directly only a limited number of genes, these include elements of the signaling network, for example, members of the two-component signal transduction systems. AtfA acts in a stress-specific manner, which may increase further the number and diversity of AtfA-dependent genes. Our model sheds light on the versatility of the physiological functions of AtfA and its orthologs in fungi.

Funder

National Research, Development and Innovation Office—NKFIH

Publisher

Hindawi Limited

Subject

Pharmaceutical Science,Genetics,Molecular Biology,Biochemistry

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