Integrated inference and evaluation of host-fungi interaction networks

Christian W Remmele1, Christian H Luther1, Johannes Balkenhol1

  • 1Department of Bioinformatics, University of Würzburg Würzburg, Germany.

Insights

This study introduces a new computational method to map fungal-human interactions, crucial for understanding and treating life-threatening infections caused by fungi like Candida and Aspergillus.

Area of Science:

  • Computational biology
  • Mycology
  • Systems biology
  • Host-pathogen interactions

Background:

  • Fungal infections, particularly invasive mycoses, pose significant life-threatening risks.
  • Key fungal pathogens include Candida albicans and Aspergillus fumigatus.
  • Understanding host-fungi molecular interactions is critical for combating infections, yet data is scarce, especially in specialized databases.

Purpose of the Study:

  • To develop a computational approach for constructing large-scale host-fungi interaction networks.
  • To identify novel molecular interactions between fungal pathogens and their human hosts.
  • To provide a framework for future high-throughput omics data analysis in fungal pathogenesis.

Main Methods:

  • An extended inference approach utilizing protein orthology and gene function data.
  • Leveraging human and yeast intraspecies networks as templates to derive pathogen-host interaction (PHI) networks.
  • Implementing rigorous filtering and refinement based on cellular localization and pathogenicity information.

Main Results:

  • Generated primary scaffolds of fungi-human and fungi-mouse interaction networks.
  • Predicted interactions were enriched with known pathogenicity-relevant genes, confirming biological relevance.
  • Identified novel candidate interactions, including the Candida virulence factor PLB1 and host protein APP.

Conclusions:

  • Interolog-based prediction methods are effective for host-fungi interaction mapping.
  • Filtering and refinement are essential for generating biologically relevant interaction networks.
  • The developed network framework supports systems biology approaches to fungal pathogenesis.

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