Type I and II PRMTs regulate catabolic as well as detoxifying processes in Aspergillus nidulans

Ingo Bauer1, Lukas Lechner1, Angelo Pidroni1

  • 1Division of Molecular Biology, Medical University of Innsbruck, 6020 Innsbruck, Austria.

Insights

Arginine methylation by protein arginine methyltransferases (PRMTs) in Aspergillus regulates secreted proteins and redox processes. This study reveals PRMTs co-regulate pathways but also have distinct roles in filamentous fungi.

Area of Science:

  • Molecular Biology
  • Fungal Genetics
  • Post-Translational Modifications

Background:

  • Arginine methylation is crucial for fungal development, pathogenicity, and stress response.
  • The precise functions of type I and type II protein arginine methyltransferases (PRMTs) in filamentous fungi are not fully understood.
  • Genome-wide transcriptome analyses are needed to elucidate PRMT regulatory networks.

Purpose of the Study:

  • To perform the first genome-wide transcriptome analysis in filamentous fungi comparing gene expression regulated by type I and type II PRMTs.
  • To investigate overlapping activities and reciprocal regulations between type I and type II PRMTs in Aspergillus.
  • To identify specific and common substrates of RmtA and RmtC.

Main Methods:

  • Generation of double mutants: ΔrmtA/rmtB (type I) and ΔrmtB/rmtC (combined type I and II).
  • Genome-wide transcriptome analysis (RNA sequencing) of the generated mutants.
  • Analysis of nuclear and cytoplasmic extracts for mono-methylated proteins.

Main Results:

  • RmtA and RmtC act as repressors of extracellularly secreted proteins, with most upregulated genes involved in catabolic pathways.
  • Significant enrichment of downregulated genes related to oxidation-reduction, transmembrane transport, and secondary metabolite biosynthesis.
  • Nearly 50% of downregulated genes in both mutants are involved in redox processes, correlating with observed oxidative stress phenotypes.

Conclusions:

  • Type I and II PRMTs in Aspergillus co-regulate biological processes, particularly the secretome.
  • PRMTs also exhibit non-redundant functions, specifically impacting pathways like oxidation-reduction and secondary metabolite biosynthesis.
  • These findings provide new insights into the complex regulatory roles of arginine methylation in filamentous fungi.

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