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December 9, 2025Nature Communications9 citationsOpen Access

Unravelling the evolution of wood-feeding in termites with 47 high-resolution genome assemblies

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CLCong LiuCACédric AumontAMAlina A. Mikhailova

Key Points

  • This research aims to explore the genetic mechanisms behind dietary evolution in termites, particularly focusing on the Termitidae family.
  • Sequencing and hybrid assembly of 47 termite and cockroach genomes.
  • Near-chromosome level genome assemblies for 22 termite species.
  • Assessment of gene expansions and genomic events related to dietary shifts.
  • Termitidae have larger genomes with more genes compared to other termites.
  • Identified gene number expansion associated with lignocellulose degradation.
  • Genomic changes coincided with the origin of soil-feeding in Termitidae.

Abstract

Termites are a lineage of social cockroaches abundant in tropical ecosystems where they are key decomposers of organic matter. Despite their ecological significance, only a handful of reference-quality termite genomes have been sequenced, which is insufficient to unravel the genetic mechanisms that have contributed to their ecological success. Here, we perform sequencing and hybrid assembly of 45 taxonomically and ecologically diverse termites and two cockroaches, resulting in haplotype-merged genome assemblies of 47 species, 22 of which were near-chromosome level. Next, we examine the link between termite dietary evolution and major genomic events. We find that Termitidae, which include ~80% of described termite species, have larger genomes with more genes and a higher proportion of transposons than other termites. Our analyses identify a gene number expansion early in the evolution of Termitidae, including an expansion of the repertoire of CAZymes, the genes involved in lignocellulose degradation. Notably, this expansion of genomes and gene repertoires coincided with the origin of soil-feeding in Termitidae and remained unchanged in lineages that secondarily reverted to a wood-based diet. Overall, our sequencing effort multiplies the number of available termite genomes by six and provides insights into the genome evolution of an ancient lineage of social insects.

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Cite This Study

Liu et al. (2025) studied this question.

synapsesocial.com/papers/69401d682d562116f28f91f3https://doi.org/10.1038/s41467-025-65969-5
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