A host-derived volatile primes context-dependent foraging behavior in parasitic nematodes via a lysosome-associated neural pathway
2026-02-18
Entomopathogenic nematodes (EPNs) are valued for sustainable pest control, yet their efficacy hinges on matching foraging behavior to host ecology. The nematode Steinernema carpocapsae , long regarded as an ambusher, paradoxically infects the cryptic red palm weevil ( Rhynchophorus ferrugineus ), which resides deep in plant tissue. Here, we show that this contradiction stems from a context-dependent modulation of foraging-related behaviors, triggered by butylated hydroxytoluene (BHT)—a host-derived volatile emitted by R. ferrugineus larvae. BHT functions as a potent behaviorally active volatile, increasing locomotion, jumping, host attraction, and infection success in S. carpocapsae . Mechanistically, BHT engages a lysosome-associated signaling pathway involving mfsd8 , SLC17A5 , and ptr . Knockdown of these genes disrupted BHT-induced behavioral changes, supporting their functional involvement. Our findings extend existing context-dependent models of nematode foraging by providing mechanistic insight into chemically induced behavioral modulation. This work opens possibilities for improving EPN biocontrol efficacy via ecological or molecular priming.