Related Experiment Video
Updated: Nov 12, 2025

Author Spotlight: Examining Volatile Sex Pheromone Influence on Male C. elegans Behavior
Published on: August 9, 2024
Prey sensing and response in a nematode-trapping fungus is governed by the MAPK pheromone response pathway
Sheng-An Chen1, Hung-Che Lin1, Frank C Schroeder2,3
1Institute of Molecular Biology, Academia Sinica, Nangang, Taipei 11529, Taiwan.
Abstract:
Detection of surrounding organisms in the environment plays a major role in the evolution of interspecies interactions, such as predator-prey relationships. Nematode-trapping fungi (NTF) are predators that develop specialized trap structures to capture, kill, and consume nematodes when food sources are limited. Despite the identification of various factors that induce trap morphogenesis, the mechanisms underlying the differentiation process have remained largely unclear. Here, we demonstrate that the highly conserved pheromone-response MAPK pathway is essential for sensing ascarosides, a conserved molecular signature of nemaotdes, and is required for the predatory lifestyle switch in the NTF Arthrobotrys oligospora. Gene deletion of STE7 (MAPKK) and FUS3 (MAPK) abolished nematode-induced trap morphogenesis and conidiation and impaired the growth of hyphae. The conserved transcription factor Ste12 acting downstream of the pheromone-response pathway also plays a vital role in the predation of A. oligospora. Transcriptional profiling of a ste12 mutant identified a small subset of genes with diverse functions that are Ste12 dependent and could trigger trap differentiation. Our work has revealed that A. oligospora perceives and interprets the ascarosides produced by nematodes via the conserved pheromone signaling pathway in fungi, providing molecular insights into the mechanisms of communication between a fungal predator and its nematode prey.
Insights
Nematode-trapping fungi use a conserved pheromone pathway to detect nematodes via ascarosides. This signaling pathway is crucial for triggering predatory behaviors and trap formation in Arthrobotrys oligospora.
Area of Science:
- Mycology
- Chemical Ecology
- Molecular Biology
Background:
- Nematode-trapping fungi (NTF) are specialized predators that capture nematodes.
- The mechanisms underlying NTF trap formation are not fully understood.
- Ascarosides are conserved molecular signals produced by nematodes.
Purpose of the Study:
- To investigate the molecular mechanisms of nematode detection and predatory response in Arthrobotrys oligospora.
- To determine the role of the pheromone-response MAPK pathway in NTF predation.
Main Methods:
- Gene deletion experiments targeting STE7 (MAPKK) and FUS3 (MAPK).
- Analysis of Ste12 transcription factor function in predation.
- Transcriptional profiling of a ste12 mutant.
Main Results:
- Deletion of STE7 and FUS3 abolished nematode-induced trap morphogenesis and conidiation.
- The pheromone-response MAPK pathway is essential for sensing ascarosides.
- The transcription factor Ste12 is vital for A. oligospora predation and regulates genes involved in trap differentiation.
Conclusions:
- The conserved pheromone-response MAPK pathway in fungi mediates the sensing of ascarosides from nematodes.
- This pathway is critical for the switch to a predatory lifestyle in Arthrobotrys oligospora.
- Molecular insights into fungal-nematode communication and predatory adaptation were provided.

