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Ellendula, S.

Publications and source records attributed to Ellendula, S..

2 recordsLinked to original sources

Deep conservation of head direction circuits in bees, ants and flies

To navigate, animal brains must continuously estimate the bodys heading in space and compare it with internal goals to guide movement. In the fruit fly Drosophila melanogaster a neural circuit in the central complex of the brain serves as an internal compass, exploiting a network architecture called a ring attractor1, 2. While this region is highly conserved and involved in navigation in many insects3, 4, it remains unclear whether the fly circuit represents a general blueprint for head direction computation, or whether different ecologies have driven distinct circuit solutions. Using synaptic-resolution circuit mapping, we identified homologous head direction networks in bees and ants and compared them to the fly circuit. We show that the insect head direction network is conserved across at least 300 million years of evolution. At the level of cell types and projection patterns, all studied species share a nearly identical neural layout, both qualitatively and quantitatively. At the synaptic level, however, the fly and bee circuits differed fundamentally. The distinct wiring principles of homologous neurons expose highly evolvable elements within this otherwise stable circuit. Using these differences in circuit architecture to constrain computational models, we show that both the bee and fly circuits can effectively function as ring attractors with similar, yet distinct, properties. These results demonstrate that complex neural circuits can remain stable over many hundreds of millions of years, while still offering access points for evolution to flexibly adjust neural computations to changing ecological demands, illustrating how evolution balances stability and flexibility in brain circuits.

neuroscience↗

Caste- and Sex-Specific Differential Investment in Brain Regions of Australian Ants

Even within a single species, closely related individuals exhibit distinct lifestyles that demand different information processing requirements. Worker ants are ambulatory and handle tasks like colony maintenance and foraging, while winged reproductive castes focus on mating and colony founding. Here, we compare the volumes of functionally distinct brain regions across alate males, alate females, and workers in two species of ants native to Australia, Myrmecia midas and Rhytidoponera metallica, to assess adaptations to behavioural, ecological, and locomotor demands. Female castes in both species had larger brains with pronounced mushroom bodies, supporting their broader behavioural repertoire and navigational tasks. In comparison, males exhibited smaller brains but enlarged optic lobes and central complexes, highlighting the significance of vision and orientation in mate searching. Species-specific patterns were also noted: R. metallica individuals consistently had larger antennal lobes and smaller optic lobes across castes, indicating a reliance on olfactory cues. However, the mushroom bodies remained comparatively similar. These findings demonstrate how caste- and species-specific sensory demands shape neural architecture and serve as a basis for understanding the interplay between brain structure and function.

zoology↗