Aspergillus parasiticus SU-1 genome sequence, predicted chromosome structure, and comparative gene expression under
John E Linz1, Josephine Wee2, Ludmila V Roze3
1Department of Food Science and Human Nutrition, Michigan State University, East Lansing, Michigan, USA Department of Microbiology and Molecular Genetics, Michigan State University, East Lansing, Michigan, USA Center for Integrative Toxicology, Michigan State University, East Lansing, Michigan, USA jlinz@msu.edu.
Abstract:
The filamentous fungi Aspergillus parasiticus and Aspergillus flavus produce the carcinogenic secondary metabolite aflatoxin on susceptible crops. These species differ in the quantity of aflatoxins B1, B2, G1, and G2 produced in culture, in the ability to produce the mycotoxin cyclopiazonic acid, and in morphology of mycelia and conidiospores. To understand the genetic basis for differences in biochemistry and morphology, we conducted next-generation sequence (NGS) analysis of the A. parasiticus strain SU-1 genome and comparative gene expression (RNA sequence analysis [RNA Seq]) analysis of A. parasiticus SU-1 and A. flavus strain NRRL 3357 (3357) grown under aflatoxin-inducing and -noninducing culture conditions. Although A. parasiticus SU-1 and A. flavus 3357 are highly similar in genome structure and gene organization, we observed differences in the presence of specific mycotoxin gene clusters and differential expression of specific mycotoxin genes and gene clusters that help explain differences in the type and quantity of mycotoxins synthesized. Using computer-aided analysis of secondary metabolite clusters (antiSMASH), we demonstrated that A. parasiticus SU-1 and A. flavus 3357 may carry up to 93 secondary metabolite gene clusters, and surprisingly, up to 10% of the genome appears to be dedicated to secondary metabolite synthesis. The data also suggest that fungus-specific zinc binuclear cluster (C6) transcription factors play an important role in regulation of secondary metabolite cluster expression. Finally, we identified uniquely expressed genes in A. parasiticus SU-1 that encode C6 transcription factors and genes involved in secondary metabolism and stress response/cellular defense. Future work will focus on these differentially expressed A. parasiticus SU-1 loci to reveal their role in determining distinct species characteristics.
Insights
This study compares Aspergillus parasiticus and Aspergillus flavus, revealing genetic differences in mycotoxin production and morphology. Key findings highlight unique gene clusters and transcription factors influencing secondary metabolite synthesis.
Area of Science:
- Mycology
- Genomics
- Biochemistry
Background:
- Aspergillus parasiticus and Aspergillus flavus produce carcinogenic aflatoxins.
- These fungi exhibit variations in mycotoxin profiles, secondary metabolite production, and morphology.
- Understanding the genetic underpinnings of these differences is crucial for crop protection.
Purpose of the Study:
- To investigate the genetic basis for biochemical and morphological distinctions between A. parasiticus and A. flavus.
- To compare gene expression profiles under varying culture conditions.
- To identify genetic factors contributing to differential mycotoxin synthesis.
Main Methods:
- Next-generation sequencing (NGS) of the A. parasiticus SU-1 genome.
- Comparative gene expression analysis using RNA sequencing (RNA Seq) for A. parasiticus SU-1 and A. flavus 3357.
- Bioinformatic analysis using antiSMASH for secondary metabolite gene clusters.
Main Results:
- High similarity in genome structure between A. parasiticus SU-1 and A. flavus 3357 was observed.
- Differences in specific mycotoxin gene clusters and their expression were identified.
- Up to 10% of the genome is dedicated to secondary metabolite synthesis, regulated by fungus-specific transcription factors.
- Unique genes in A. parasiticus SU-1 involved in secondary metabolism and stress response were identified.
Conclusions:
- Differential gene expression and unique gene clusters explain variations in mycotoxin production between A. parasiticus and A. flavus.
- Fungus-specific zinc binuclear cluster (C6) transcription factors play a significant role in regulating secondary metabolite gene clusters.
- Further research on identified A. parasiticus SU-1 loci will elucidate species-specific characteristics.
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