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Biology subjects

Strahodinsky, F.

Publications and source records attributed to Strahodinsky, F..

2 recordsLinked to original sources

Viral infection patterns in ants are affected by colony structure and phylogenetic lineage

Across ant species, there are differences in how their societies are structured. Single-queened (monogynous) societies only have one reproducing queen in the colony, and new queens disperse and start colonies independently. In multiple-queened (polygynous) societies, the colony instead can contain several reproductive queens, and newborn queens often remain and reproduce within their natal colony. As a result, polygynous societies are comparatively larger, more genetically diverse, and can span large areas through several interconnected nests, whereas monogynous societies are typically smaller in scale. In this study, we investigated how these different social structures, as well as their phylogenetic lineage, affect the diversity (number of virus species per ant sample) and abundance (number of viral sequences per sample) of viruses in ants. We produced pooled RNA sequence libraries from 15 ant species, representing both monogynous and polygynous social structures, and the two largest ant subfamilies: Formicinae and Myrmicinae, with each library containing the RNA of up to 400 individual worker ants from a single population. We identified 168 virus species in total, of which 152 species were new to science. Out of these 168 viruses, 59 were active viruses based on the host immune response. We observed that polygynous ant species harbor a higher diversity of viruses and also tend to have higher virus abundance compared to monogynous species. Also, the ant subfamily Myrmicinae had a higher virus diversity than Formicinae. These findings highlight how social structure and evolutionary history shape viral diversity in ants.

genomics↗

Altruistic disease signalling in ant colonies

Sick individuals often conceal their disease status to group members, thereby preventing social exclusion or aggression. Here, we show that infected ant pupae, on the contrary, actively emit a chemical signal that triggers their own destruction by colony members. In our experiments, this altruistic disease-signalling was performed only by worker but not queen pupae, reflecting differences in their immune capabilities, as worker pupae suffered from extensive pathogen replication whereas queen pupae were able to restrain infection. Inducing others to sacrifice oneself, only if ones own immunity fails, suggests a fine-tuned interplay between individual and social immunity, efficiently achieving whole-colony health.

animal behavior and cognition↗