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Histone Deacetylase HDA-2 Regulates Trichoderma atroviride Growth, Conidiation, Blue Light Perception, and Oxidative
Macario Osorio-Concepción1, Gema Rosa Cristóbal-Mondragón1, Braulio Gutiérrez-Medina2
1IPICYT, División de Biología Molecular, San Luis Potosí, México.
Abstract:
Fungal blue-light photoreceptors have been proposed as integrators of light and oxidative stress. However, additional elements participating in the integrative pathway remain to be identified. In Trichoderma atroviride, the blue-light regulator (BLR) proteins BLR-1 and -2 are known to regulate gene transcription, mycelial growth, and asexual development upon illumination, and recent global transcriptional analysis revealed that the histone deacetylase-encoding gene hda-2 is induced by light. Here, by assessing responses to stimuli in wild-type and Δhda-2 backgrounds, we evaluate the role of HDA-2 in the regulation of genes responsive to light and oxidative stress. Δhda-2 strains present reduced growth, misregulation of the con-1 gene, and absence of conidia in response to light and mechanical injury. We found that the expression of hda-2 is BLR-1 dependent and HDA-2 in turn is essential for the transcription of early and late light-responsive genes that include blr-1, indicating a regulatory feedback loop. When subjected to reactive oxygen species (ROS), Δhda-2 mutants display high sensitivity whereas Δblr strains exhibit the opposite phenotype. Consistently, in the presence of ROS, ROS-related genes show high transcription levels in wild-type and Δblr strains but misregulation in Δhda-2 mutants. Finally, chromatin immunoprecipitations of histone H3 acetylated at Lys9/Lys14 on cat-3 and gst-1 promoters display low accumulation of H3K9K14ac in Δblr and Δhda-2 strains, suggesting indirect regulation of ROS-related genes by HDA-2. Our results point to a mutual dependence between HDA-2 and BLR proteins and reveal the role of these proteins in an intricate gene regulation landscape in response to blue light and ROS.
Importance:
Trichoderma atroviride is a free-living fungus commonly found in soil or colonizing plant roots and is widely used as an agent in biocontrol as it parasitizes other fungi, stimulates plant growth, and induces the plant defense system. To survive in various environments, fungi constantly sense and respond to potentially threatening external factors, such as light. In particular, UV light can damage biomolecules by producing free-radical reactions, in most cases involving reactive oxygen species (ROS). In T. atroviride, conidiation is essential for its survival, which is induced by light and mechanical injury. Notably, conidia are typically used as the inoculum in the field during biocontrol. Therefore, understanding the linkages between responses to light and exposure to ROS in T. atroviride is of major basic and practical relevance. Here, the histone deacetylase-encoding gene hda-2 is induced by light and ROS, and its product regulates growth, conidiation, blue light perception, and oxidative stress responses.
Insights
The histone deacetylase HDA-2 in Trichoderma atroviride is crucial for regulating responses to blue light and oxidative stress, working in tandem with BLR proteins to control gene expression and development.
Area of Science:
- Mycology
- Molecular Biology
- Biochemistry
Background:
- Fungi like Trichoderma atroviride sense and respond to environmental cues, including light and oxidative stress, to ensure survival.
- Blue-light photoreceptors (BLR) in fungi integrate light and oxidative stress signals, but the complete regulatory network is not fully understood.
- Trichoderma atroviride utilizes conidiation, induced by light and mechanical injury, for survival and biocontrol applications.
Purpose of the Study:
- To investigate the role of the histone deacetylase HDA-2 in Trichoderma atroviride's response to light and oxidative stress.
- To elucidate the regulatory relationship between HDA-2, blue-light regulator (BLR) proteins, and light/ROS-responsive genes.
- To understand the intricate gene regulation landscape governing fungal adaptation to blue light and reactive oxygen species (ROS).
Main Methods:
- Comparative analysis of wild-type and Δhda-2 mutant strains of Trichoderma atroviride under various stimuli.
- Gene expression analysis of light and ROS-responsive genes, including blr-1, cat-3, and gst-1.
- Chromatin immunoprecipitation (ChIP) assays to assess histone acetylation levels (H3K9K14ac) at target gene promoters.
Main Results:
- Δhda-2 mutants exhibited reduced growth, misregulated con-1 gene expression, and lacked conidia formation in response to light and mechanical injury.
- HDA-2 expression is dependent on BLR-1, and HDA-2 is essential for the transcription of light-responsive genes, including blr-1, forming a feedback loop.
- Δhda-2 mutants showed high sensitivity to reactive oxygen species (ROS), while Δblr strains were resistant, and ROS-related genes were misregulated in Δhda-2 mutants.
Conclusions:
- HDA-2 plays a critical role in regulating fungal development, gene transcription, and responses to blue light and oxidative stress in Trichoderma atroviride.
- A mutual dependence exists between HDA-2 and BLR proteins, highlighting their collaborative function in integrating environmental signals.
- The study reveals an intricate gene regulatory network involving HDA-2 and BLR proteins in response to blue light and ROS, crucial for fungal survival and biocontrol efficacy.
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