Sequential formation of Drosophila circuit asymmetry via prolonged structural plasticity

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Abstract

Structural and functional differences between brain hemispheres are a common feature of animal nervous systems with reduced bilateral asymmetry often linked to impaired cognitive performance. How neuronal left-right asymmetry is initiated and integrated into a bilaterally symmetrical ground pattern is poorly understood. Here, we show that the directional asymmetry of a Drosophila central brain circuit originates from axonal interactions of two types of bilateral pioneer neurons. Subsequent recruitment of neighboring neurons into the asymmetric neuropil primordium results in hemisphere-specific microcircuits. Circuit lateralization requires dynamic expression of the cell adhesion molecule Fasciclin 2 to maintain structural plasticity in axonal remodeling. Reduced circuit asymmetry following cell type–specific Fasciclin 2 manipulation affects adult brain function. These results reveal an unexpected degree of developmental plasticity of late-born Drosophila neurons in the formation of a circuit node via the lateralized recruitment of symmetric circuit components.

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Markovitsch, J. W., Mitić, D., García, A. del P. J., Alsberga, Z., Kainz, S., Kaur, R., & Hummel, T. (2026). Sequential formation of Drosophila circuit asymmetry via prolonged structural plasticity. Science Advances , 12(13). https://doi.org/10.1126/sciadv.aea6020

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