Evolution of highly repetitive silk genes in the Luna moth, Actias luna
Foquet, B.; Eccles, L. E.; Markee, A.; Triant, D. A.; Frandsen, P.; Stoppel, W.; Kawahara, A.
Show abstract
Gene duplications are a major driver of molecular diversification and phenotypic evolution. Arthropod silk genes provide an excellent model for studying these processes due to their highly repetitive sequences and rapid evolutionary rates. In Lepidoptera, the Fibroin heavy chain (fibH) gene encodes the primary structural protein for silk fibers, contributing largely to their mechanical strength. This inner fibroin core is surrounded by an outer coating composed primarily of sericins. Sericins are a group of highly repetitive, serine-rich proteins that modulate silk fiber properties. Although sericins in the Domesticated silkworm (Bombyx mori) have been associated with life stage-specific variation in silk characteristics, their evolution and function across Lepidoptera remain poorly understood. Here, we provide a detailed molecular characterization of sericin genes in the Luna moth (Actias luna), a saturniid species known for forming dense, robust, silk-woven cocoons. We identified eight sericin genes that (1) are frequently arranged into clusters of closely related paralogs, (2) exhibit considerable variation in repeat number and amino acid composition, and (3) display distinct gene expression patterns across life stages. A comparison of sericin genes across Saturniidae and Bombycidae reveals evidence for convergent subfunctionalization. These findings suggest that sericin gene duplications enable dynamic shifts in silk composition both within and between species, potentially reflecting adaptive responses to ecological and functional demands. Significance StatementGene duplications are thought to be a major driver of molecular diversification and phenotypic evolution. Arthropod silk genes, characterized by their repetitive sequences and rapid evolution, provide an ideal model for studying these processes. Sericins, a group of highly repetitive, serine-rich silk proteins, are hypothesized to have contributed to the diversification of silk properties, both within and across lepidopteran species. However, their diversity and evolution is poorly understood. Focusing on the Luna moth (Actias luna), we show that sericin gene duplications across Saturniidae have led to subfunctionalization, enabling changes to silk composition. These modifications may represent adaptative responses to ecological and functional demands.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Long-read genome sequencing and assembly of Leptopilina boulardi: a specialist Drosophila parasitoid 96%
- Genome assemblies of three closely related leaf beetle species (Galerucella spp). 96%
- Genome and transcriptome analysis of the beet armyworm Spodoptera exigua reveals targets for pest control 96%
Similar papers in this journal
- A long-read draft assembly of the Chinese mantis (Mantodea: Mantidae: Tenodera sinensis) genome reveals patterns of ion channel gain and loss across Arthropoda 96%
- Whole genome assembly and annotation of the Bumblebee Wax Moth, Aphomia sociella 96%
- Chromosome scale genomes of two invasive Adelges species enablevirtual screening for selective adelgicides 96%
Similar papers in this journal
Similar papers in this journal
- Research gaps and new insights in the intriguing evolution of Drosophila seminal proteins 96%
- Jekyll or Hyde? The genome (and more) of Nesidiocoris tenuis, a zoophytophagous predatory bug that is both a biological control agent and a pest 95%
- Gene expression profiles of chemosensory genes of termite soldier and worker antennae 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.