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Bickerstaff, J.

Publications and source records attributed to Bickerstaff, J..

2 recordsLinked to original sources

Sociality in weevils is shaped by sheltering and convergent gene losses

Eusociality, characterized by overlapping generations, cooperative brood care, and reproductive division of labour, has arisen independently across diverse, phylogenetically distant insect orders, including Hymenoptera (ants, bees, and wasps), Blattodea (termites), and Coleoptera (weevils). While multiple studies have investigated the molecular evolution of sociality from solitary ancestors in Hymenoptera and Blattodea, so far little is known about the evolutionary signatures of social evolution in Coleoptera. Weevils (Curculionidae) provide an ideal system for addressing this question, as they cover the full spectrum of social complexity from parental care, through several origins of facultative eusociality to the only obligately eusocial beetle, Austroplatypus incompertus. We generated genome assemblies for A. incompertus and two facultatively eusocial weevil species, Xylosandrus germanus and Xyleborinus saxesenii, which together with 18 publicly available weevil genomes span two independent evolutionary origins of sociality. Our analyses reveal a genome-wide relaxation of purifying selection with increasing social complexity, which is most pronounced in A. incompertus. We find a significant excess of convergent gene family contractions in lineages where sociality evolved, and no evidence of elevated positive selection. These findings indicate that the molecular mechanisms of social evolution in weevils are primarily characterised by relaxed selection and gene loss, rather than adaptive innovation and gene family expansions. These observations are consistent with sheltering and reduced effective population size playing an important role, a pattern not previously observed in other clades.

evolutionary biology↗

Social family structure and biogeography contribute to genomic divergence and cryptic speciation in the only eusocial beetle species, Austroplatypus incompertus (Curculionidae: Platypodinae)

Eusociality in insects has arisen multiple times independently in Hymenoptera (bees, wasps, ants), Blattodea (termites) and Coleoptera (beetles). In Hymenoptera and Blattodea, the evolution of eusociality led to massive species proliferation. In the hyperdiverse Coleoptera, eusociality evolved only once, in the ancient Australian ambrosia beetle species Austroplatypus incompertus (Curculionidae: Platypodinae). This species occurs in mesic eucalypt forests of eastern Australia, from Victoria to northern New South Wales. Based on few individuals collected from the southern and northern edges of the species distribution it was initially described as two distinct species; however, the names were later synonymised as no morphological differences were found in analyses of more specimens. Recent mitochondrial haplotype analyses revealed substantial latitudinal divergence across the distribution of A. incompertus. To address this apparent disparity between morphological and molecular data, we sequenced and analysed a SNP panel of over 6,656 biallelic markers from 187 individuals of 11 sites across 1000 km of this species range. Our data indicate that eusocial demographic processes such as low colony establishment success rate, limited dispersal and reliance on few reproductive individuals, together with substantial habitat fragmentation contributed to the population genetic structure of this species. We further identified that the Hunter Valley biogeographic barrier split the species into two distinct clades, with both clades in secondary close contact on the Barrington Tops plateau without any discernible admixture. Our results support the resurrection of a second species of Austroplatypus which has important consequences for the evolution eusociality in Coleoptera and the systematics of Platypodinae.

genetics↗