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Miyanari, K.

Publications and source records attributed to Miyanari, K..

2 recordsLinked to original sources

Developmental emergence of spatiotemporal coordination in cerebellar Purkinje cell populations

Coordinated activity across neuronal populations is fundamental to brain function, yet how such network-level organization emerges during development remains incompletely understood. Here, we performed whole-cerebellar calcium imaging at cellular scale in zebrafish larvae to examine the developmental maturation of Purkinje cell population dynamics. Visual stimulation recruited large, spatially organized populations of Purkinje cells whose responses depended on inferior olive input and were associated with optokinetic behavior. Notably, in the absence of stimuli, Purkinje cells formed transient assemblies exhibiting distance-dependent coordination. During development, long-range coordination progressively emerged, extending initially local correlations into distributed population-wide coordination. Early enucleation, but not dark rearing, disrupted the developmental refinement of long-range coordination and induced aberrant population clustering, suggesting that early retina-dependent signals contribute to cerebellar network development. Together, these findings reveal key organizational features underlying the developmental emergence of coordinated cerebellar population dynamics and suggest that early retina-dependent signals shape population-level organization.

neuroscience↗

Establishment of a transgenic strain for the whole brain calcium imaging in larval medaka fish (Oryzias latipes)

GCaMP-based calcium imaging is a powerful tool for investigating neural function in specific neurons. We generated transgenic (Tg) medaka strains expressing jGCaMP7s across extensive brain regions under the control of the gap43 promoter. Using these Tg larvae, calcium imaging successfully detected a tricaine-induced suppression of spontaneous neural activity and topographical visual responses in the optic tectum elicited by moving paramecia or optical fiber stimulation. These results indicate that our Tg medaka strains provide a versatile platform for investigating neural dynamics and their responses to various stimuli.

molecular biology↗