DOI: 10.1073/pnas.2617907123 ISSN: 0027-8424
Ecdysteroid signaling acts as a central switch underlying wing polyphenism in two hemipteran insects
Yongkang Liu, Jinli Zhang, Nitong Xu, Hengguang Huang, Huijie Wu, Yi Wan, Haijun Xu
Wing polyphenism represents a prevalent evolutionary adaptation in insect taxa, characterized by the capacity of a single genotype to produce distinct wing morphologies in response to environmental variations. Across hemipteran lineages, the regulation of wing polyphenism involves taxon-specific endocrine signaling cascades; however, the evolutionarily conserved genetic toolkit that underlies this developmental plasticity remains elusive. Here, we find that the steroid hormone ecdysteroids serve as a central hormonal switch that orchestrates wing polyphenism through dual downstream integration of the prothoracicotropic hormone (PTTH)-its receptor (Torso) and insulin/IGF-1 signaling (IIS) pathways in both the firebug
Pyrrhocoris apterus
and planthopper
Nilaparvata lugens
, two evolutionarily divergent Hemiptera species. Silencing of ecdysteroidogenic genes (
Spo
and
Shd
) in the firebug or ecdysteroid receptor signaling components (
EcR
) in both species induced wing bud growth in final-instar nymphs. Loss-of-function mutagenesis of
Ptth
or
Torso
in the firebug, whereas mutagenesis of
Torso
only in the planthopper, transformed short-wing-destined wing buds into long wings. In contrast to wild-type controls, disruption of both Torso and IIS signaling delayed the timing of the ecdysteroid pulse during the final nymphal instar of both species. Administration of exogenous ecdysteroids neutralized the effect of Torso and IIS signaling on wing morphs, redirecting the developmental trajectory of wings from long to short. The finding of the “neuropeptide–ecdysteroid axis” in the planthopper and the firebug indicates a conserved regulatory principle underlying wing polyphenism across Hemiptera.