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Spatial transcriptomics of Ciona adult brains reveals functional zonalization and insights into neural gland function.

Abstract

The ascidian Ciona is a pivotal chordate model for illuminating the evolutionary origins of the vertebrate brain. Here, spatial transcriptomics of the adult Ciona neural complex, combined with image-based computational super-resolution mapping, resolved distinct tissue domains including the cerebral ganglion, neural gland, ciliated funnel, neural gland duct/dorsal strand, and body wall muscle. Within the cerebral ganglion, high-resolution mapping revealed clear molecular zonalization separating the cortex and medulla, alongside regional specialization within the cortex itself. The neural gland exhibited localized enrichment of genes associated with extracellular matrix and cell-cell interactions. These spatial features suggest that the neural gland functions as a homeostatic and signaling interface, reminiscent of primitive vertebrate meninges or choroid plexus. Overall, this spatially defined gene expression map provides a foundational framework for understanding functional regionalization in the tunicate brain and its evolutionary relationship to vertebrate nervous systems.

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BibTeXRIS

Xin Zeng, Fuki Gyoja, Ayana Maruo, Nanako Okawa, Ken-Ichi Mizutani, Yutaka Suzuki, Kenta Nakai, Takehiro G Kusakabe. 2026-08-24. Spatial transcriptomics of Ciona adult brains reveals functional zonalization and insights into neural gland function.. https://doi.org/10.1016/j.isci.2026.117346

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