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Gronquist, M. R.

Publications and source records attributed to Gronquist, M. R..

3 recordsLinked to original sources

Cyclohexyl acetate functions like a volatile sex pheromone mimic in Caenorhabditis nematodes

Nematodes communicate via diverse sex pheromones, including long-range volatile signals, short-range chemical cues, and contact-dependent molecules. While the ascaroside family of small molecules that mediate short-range attraction is well characterized, the identities and roles of volatile sex pheromones (VSPs) that act over longer ranges remain unknown. Using GC-MS analysis of crude VSP extracts, we identified cyclohexyl acetate (CA) as a candidate mimic, sharing retention time and mass spectral features with natural VSPs. Behavioral assays demonstrated that CA acts as a concentration-dependent, male-specific attractant in Caenorhabditis. Pre-exposure to VSPs induced cross-adaptation to CA, suggesting shared sensory processing. Surprisingly, genetic and calcium imaging analyses revealed that CA perception is mediated primarily by AWCon (str-2-expressing) neurons and involves VSPs chemoreceptor srd-1-independent pathways, which are distinct from the neural pathways involved in natural VSPs perception. These findings establish that CA is not a major component of VSPs but a structural and functional mimic of nematode VSPs, operating through a parallel sensory circuit. Although the endogenous source of CA remains unknown, its structural and behavioral mimicry provides new insights into the complexity of chemosensory signaling and the potential for interspecies chemical eavesdropping in nematode ecology.

biochemistry↗

A male-derived volatile sex pheromone in nematodes identified through its mimicry by a predator

Recent studies demonstrated that the predacious fungi Arthrobotrys oligospora emits a mixture of volatile chemical cues that function to attract nematode prey. The strong attraction elicited by one of the mixture components, methyl 3-methyl-2-butenoate (MMB), was highly female- and hermaphrodite-specific within several Caenorhabditis species, including C. remanei and C. elegans, suggesting that MMB might function as a mimic of an endogenous, male-produced, volatile sex pheromone (VSP) within these species. Here, we report evidence that MMB is produced by C. remanei males at levels that are attractive to C. remanei females and C. elegans hermaphrodites. Notably, MMB production was not detected for C. elegans males; a finding which correlates with behavioral assays for which worm-conditioned media (WCM) prepared from C. remanei, but not from C. elegans adult males is strongly attractive to both C. remanei females and C. elegans hermaphrodites. Our findings establish MMB as the first chemically identified VSP in nematodes and show that A. oligospora exploits a dual strategy of chemical deception--mimicry and eavesdropping--to enhance prey capture.

animal behavior and cognition↗

O-Acyltransferase Genes Involved in the Production of Volatile Sex Pheromones in Caenorhabditis elegans

Gene family expansions are critical for functional diversification, yet paralog contributions to metabolic pathways are often unclear. In Caenorhabditis, the expanded O-acyltransferase (OAC) family--enzymes that transfer acyl groups to hydroxylated substrates--remains poorly characterized despite having been implicated in lipid metabolism. Using CRISPR-Cas9 mutagenesis, behavioral assays, gas chromatographic-mass spectral (GC-MS) analyses, and metabolomics, we systematically analyzed 59 OAC-family protein-coding genes to define their roles in regulating signaling molecules. We found that four adjacent paralogs (oac-13, oac-16, oac-25, and oac-28) on chromosome I are required for synthesizing volatile sex pheromones (VSPs)--airborne signals critical for male mate-searching. Specifically, oac-13 and oac-16 are necessary for producing both major pheromone components, while the identical tandem paralogs oac-25 and oac-28 regulate the production of the later-eluting component in gas chromatography. Disruption of these genes reduced production of key pheromone components and impaired male attraction. Metabolomics revealed that oac-16 and other OACs also modulate synthesis and secretion of non-volatile ascaroside pheromones, indicating dual roles in chemical signaling. This work uncovers functional specialization within an expanded gene family, illustrating how redundancy and divergence enable adaptive evolution of communication systems.

biochemistry↗