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Grebler, E.

Publications and source records attributed to Grebler, E..

2 recordsLinked to original sources

Leaving X: How scale insects evolved alternatives to chromosomal sex determination

Reproduction is a core feature of life, which makes understanding the reproductive diversity of organisms a fundamental goal of evolutionary biology. It is still unclear why sex determination systems are faithfully conserved for hundreds of millions of years in some taxa but repeatedly turn over in others. A prime example is the true bugs, Hemiptera. The vast majority of families employ a conserved X sex chromosomal system, but in scale insects (Coccomorpha), sex determination systems are far more varied. Different families may retain X chromosomes, employ a rare form of haplodiploidy known as paternal genome elimination (PGE), or forgo sexual reproduction in favor of simultaneous hermaphroditism. While these systems have been known for decades, only recently has non-model genomics enabled their study with modern bioinformatic methods. We collected and sequenced representatives of rare, early-diverging scale insects to study genomic changes that coincide with transitions between sex determination systems. Using ancillary expression data, we also explored sex-biased gene expression in a subset of scale insects on both sides of one transition. In a newly updated molecular phylogeny, we recovered two independent losses of X chromosomal sex determination, once in the family Monophlebidae and a second time at the base of the families that employ PGE. In the former, genomic rearrangements begin before the X is lost and any previously X-linked orthologs have been absorbed into one of two massive, shuffled autosomes in the hermaphrodites. In the latter, the X chromosome itself is faithfully preserved in early diverging PGE taxa; it appears to have merely lost its sex determination function. We analyze ortholog conservation across these transitions and find few genes lost, with only one orthogroup lost in both transitions, and a number of orthogroups gained, suggesting these large transitions did not require large changes to the gene content of the X chromosome. Expression data suggests that extreme sexual dimorphism of gene expression predates sex determination turnover and may have helped enable it. Together these new observations illustrate the multiple routes to sex determination turnover, help refine hypotheses for its causes, and provide a wealth of new resources for the modern genomic study of scale insects.

evolutionary biology↗

Genome report: Genome sequence of the tuliptree scale insect, Toumeyella liriodendri (Gmelin)

Scale insects are of interest both to basic researchers for their unique reproductive biology and to applied researchers for their pest status. In spite of this interest, there remain few genomic resources for this group of insects. To begin addressing this lack of data, we present the genome sequence of the tuliptree scale insect, Toumeyella liriodendri (Gmelin) (Hemiptera: Coccomorpha: Coccidae). The genome assembly spans 536Mb, with over 96% of sequence assembled into one of 17 chromosomal scaffolds. We characterize roughly 66% of this sequence as repetitive and annotate 16,508 protein coding genes. Then we use the reference genome to explore the phylogeny of soft scales (Coccidae) and evolution of karyotype within the family. We find that T. liriodendri is an early-diverging soft scale, less closely related to most sequenced soft scales than a species of the family Aclerdidae is. This molecular result bolsters a previous, character-based phylogenetic placement of Aclerdidae within Coccidae. In terms of genome structure, T. liriodendri has nearly twice as many chromosomes as the only other soft scale assembled to the chromosome level, Ericerus pela (Chavannes). In comparing the two, we find that chromosome number evolution can largely be explained by simple fissions rather than more complex rearrangements. These genomic natural history observations lay a foundation for further exploration of this unique group of insects.

genomics↗