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The extreme diversity of retinal amacrine cells has deep evolutionary roots

Tommasini, D.; Monavarfeshani, A.; Dinesh, V.; Hahn, J.; Tangeman, J.; Marre, O.; Blackshaw, S.; Puthussery, T.; Sanes, J.; Shekhar, K.

2026-03-09 neuroscience
10.64898/2026.03.07.710289 bioRxiv
Show abstract

Amacrine cells (ACs) comprise a heterogeneous class of inhibitory neurons in the vertebrate retina, exhibiting morphological and functional complexity rivaling that of cortical interneurons. Here, we integrate single-cell and single-nucleus transcriptomic atlases from 24 vertebrate species to reconstruct the evolutionary origins of this extreme diversity. We identify 42 orthologous AC types (oACs), most of which exhibit a one-to-one correspondence across amniotes and, in many cases, across vertebrates. While core molecular identities are conserved, AC types vary in abundance and gene expression across species, likely reflecting adaptations to distinct visual ecologies. AC diversity scales with that of retinal ganglion cells (RGCs), indicative of co-evolution. Finally, we suggest that ACs arose from an AC-RGC hybrid precursor, with glycinergic ACs diverging early in vertebrate evolution, followed by a bifurcation between RGCs and GABAergic ACs. Together, these findings establish a unified evolutionary framework for understanding the diversity, development, and function of a class of inhibitory neurons across vertebrates.

Published in Science Advances (predicted rank #2) · training set

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