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.

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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