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Updated: Jan 27, 2026

A High-throughput Assay to Assess and Quantify Neutrophil Extracellular Trap Formation
Published on: January 29, 2019
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.
Abstract:
Nematode-trapping fungi (NTF) are a large and diverse group of fungi, which may switch from a saprotrophic to a predatory lifestyle if nematodes are present. Different fungi have developed different trapping devices, ranging from adhesive cells to constricting rings. After trapping, fungal hyphae penetrate the worm, secrete lytic enzymes and form a hyphal network inside the body. We sequenced the genome of Duddingtonia flagrans, a biotechnologically important NTF used to control nematode populations in fields. The 36.64 Mb genome encodes 9,927 putative proteins, among which are more than 638 predicted secreted proteins. Most secreted proteins are lytic enzymes, but more than 200 were classified as small secreted proteins (< 300 amino acids). 117 putative effector proteins were predicted, suggesting interkingdom communication during the colonization. As a first step to analyze the function of such proteins or other phenomena at the molecular level, we developed a transformation system, established the fluorescent proteins GFP and mCherry, adapted an assay to monitor protein secretion, and established gene-deletion protocols using homologous recombination or CRISPR/Cas9. One putative virulence effector protein, PefB, was transcriptionally induced during the interaction. We show that the mature protein is able to be imported into nuclei in Caenorhabditis elegans cells. In addition, we studied trap formation and show that cell-to-cell communication is required for ring closure. The availability of the genome sequence and the establishment of many molecular tools will open new avenues to studying this biotechnologically relevant nematode-trapping fungus.
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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