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Sexual Development and Ascospore Discharge in Fusarium graminearum
Published on: March 29, 2012
Temperature during Aspergillus fumigatus conidiophore development primes spore transcriptome for asexual, parasexual
Abstract:
Aspergillus fumigatus is a thermotolerant saprobe found in soils and plant debris worldwide and an important pathogen of humans causing two million deaths annually. A. fumigatus makes abundant asexual spores (conidia) which are widely distributed by wind and can be inhaled from the environment. In susceptible individuals inhaled conidia break dormancy, germinate and grow in the lung leading to serious disease. Recent work has shown that conidia made at 37°C and 50°C have different morphologies and germination kinetics. While the asexual cycle is well-characterized at 37°C, much less is known about the asexual cycle at 50°C. Here, we combine flow cytometry and transcriptomics to track morphology and gene expression in the hyphae, conidiophores and conidia of A. fumigatus during asexual development at 37°C or 50°C. We show that the temperature during a narrow time window in late-stage conidiophore development dictates resulting conidial morphology, transcriptional program, and germination kinetics. As expected, conidiation at 37°C resulted in upregulation of brlA, the master regulator of asexual development, and its downstream targets in conidiophores and conidia. Surprisingly, conidiation at 50°C resulted in upregulation of MAT1-1 , the master regulator of sexual development and its downstream targets in conidiophores and conidia. Our findings suggest that temperature during late conidiophore development transcriptionally primes conidia for asexual, parasexual or sexual development enhancing chances of survival for progeny. Our findings are especially relevant for agricultural compost where a wide gradient of temperatures exists, abundant A. fumigatus has been isolated, and resistance to antifungals is thought to evolve.
Importance:
The human pathogen Aspergillus fumigatus has been found in natural and agricultural environments around the world. Disease is acquired when susceptible individuals inhale airborne asexual spores from the environment, which in agriculture generally includes proximity to compost and plant debris piles. This work shows that the environmental temperature when A. fumigatus spores are made determines the transcriptomes of those spores, priming them for future asexual or sexual development. The survival of asexual and sexual spores is very different at different temperatures, so these results are important for understanding how this pathogen survives in varied hostile environments. In addition, there are very few antifungal drugs with which to treat A. fumigatus infections, and resistance is increasing driven in part by agricultural use of fungicides. These results suggest that higher temperatures during asexual spore formation can lead to increased sexual reproduction and greater chances to evolve antifungal resistance.
Insights
Environmental temperature during spore formation in Aspergillus fumigatus dictates spore development and survival strategies. Higher temperatures prime spores for sexual reproduction, potentially increasing antifungal resistance evolution.
Area of Science:
- Mycology
- Medical Mycology
- Environmental Microbiology
Background:
- Aspergillus fumigatus is a globally prevalent fungus and a significant human pathogen.
- Inhalation of airborne asexual spores (conidia) leads to serious infections in susceptible individuals.
- Conidia morphology and germination differ based on the temperature at which they are produced.
Purpose of the Study:
- To investigate the impact of temperature on asexual development in Aspergillus fumigatus.
- To understand how temperature influences conidial morphology, gene expression, and germination kinetics.
- To explore the implications for fungal survival and evolution of antifungal resistance.
Main Methods:
- Flow cytometry was used to analyze conidial morphology and cell properties.
- Transcriptomic analysis (RNA-Seq) was employed to study gene expression profiles.
- Comparative studies were conducted at 37°C and 50°C during asexual development.
Main Results:
- Temperature during late conidiophore development critically determines conidial characteristics.
- Conidiation at 37°C upregulated asexual development regulators (e.g., brlA).
- Conidiation at 50°C surprisingly upregulated sexual development regulators (e.g., MAT1-1).
Conclusions:
- Temperature during spore formation transcriptionally primes conidia for specific developmental pathways (asexual, parasexual, or sexual).
- This temperature-dependent priming enhances progeny survival in diverse environments.
- Findings are crucial for understanding pathogen survival in agricultural settings and the evolution of antifungal resistance.
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