Intercellular communication is required for trap formation in the nematode-trapping fungus Duddingtonia flagrans

Loubna Youssar1, Valentin Wernet1, Nicole Hensel1

  • 1Department of Microbiology, Karlsruhe Institute of Technology (KIT)-South Campus, Institute for Applied Biosciences, Karlsruhe, Germany.

Plos Genetics
|March 28, 2019
PubMed

Insights

Nematode-trapping fungi (NTF) genomes are sequenced, revealing numerous secreted proteins and effectors. Molecular tools were developed for Duddingtonia flagrans, enabling functional studies of fungal-nematode interactions.

Area of Science:

  • Fungal genomics and molecular biology
  • Biocontrol agents and agricultural entomology

Background:

  • Nematode-trapping fungi (NTF) are diverse fungi that prey on nematodes, employing various trapping mechanisms.
  • Duddingtonia flagrans is a biotechnologically significant NTF used for biological control of nematode populations.

Purpose of the Study:

  • To sequence the genome of Duddingtonia flagrans and establish molecular tools for functional analysis.
  • To investigate effector proteins and trap formation mechanisms in NTF.

Main Methods:

  • Genome sequencing of Duddingtonia flagrans (36.64 Mb, 9,927 putative proteins).
  • Development of transformation systems, fluorescent protein expression (GFP, mCherry), protein secretion assays, and gene deletion protocols (homologous recombination, CRISPR/Cas9).
  • Analysis of effector protein PefB and trap formation dynamics.

Main Results:

  • The Duddingtonia flagrans genome contains over 638 predicted secreted proteins, including >200 small secreted proteins, and 117 putative effector proteins.
  • A functional transformation system and gene deletion protocols were established.
  • The effector protein PefB is transcriptionally induced during interaction and can be imported into C. elegans cell nuclei; trap formation requires cell-to-cell communication.

Conclusions:

  • The genome sequence and molecular tools for Duddingtonia flagrans provide a foundation for studying NTF biology and biocontrol applications.
  • Understanding effector functions and trap formation mechanisms will enhance the use of NTF in agriculture.

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