The floral illusion: A parasitic beetle mimics the scent of flowers to attract bees
Abstract
Animals are not known to biosynthesize floral chemical signals to manipulate pollinators, although such mimicry could profoundly shape plant–pollinator interactions. Larvae of the poisonous European blister beetle Meloe proscarabaeus parasitize multiple solitary bee species, yet the mechanism enabling host attraction has remained unresolved. Here we show that these larvae lure bees by emitting a bouquet of volatile compounds that closely resembles floral scent. Chemical analyses reveal a complex blend of monoterpenoids derived from ( S )-linalool, a ubiquitous floral volatile. Behavioral assays demonstrate that these compounds function as floral-scent mimics, eliciting attraction in bees and acting as allomones (i.e., interspecific chemical signals that benefit the emitter while disadvantaging the receiver). Transcriptomic and functional analyses identify cytochrome P450 enzymes that oxidize ( S )-linalool, suggesting that larvae biosynthesize these plant-like volatiles de novo. Together, these findings broaden the scope of interkingdom chemical mimicry and uncover a striking form of sensory deception in which an insect chemically assumes the signal identity of a flower, revealing that animals can evolve biosynthetic pathways to exploit plant–pollinator communication.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (10)
Ryan M. Alam
Danny Kessler
Department of Natural Product Biosynthesis, Max Planck Institute for Chemical Ecology
Heiko Vogel
Department of Insect Symbiosis, Max Planck Institute for Chemical Ecology
Katrin Luck
Department of Natural Product Biosynthesis, Max Planck Institute for Chemical Ecology
Anja David
Department of Natural Product Biosynthesis, Max Planck Institute for Chemical Ecology
Maritta Kunert
Gunnar Brehm
Martin Kaltenpoth
Department of Insect Symbiosis, Max Planck Institute for Chemical Ecology
Sarah E. O’Connor
Tobias G. Köllner