Two‐photon laser ablation and in vivo wide‐field imaging of inferior olive neurons revealed the recovery of olivocerebellar circuits in zebrafish

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Abstract

The cerebellum, a brain region with a high degree of plasticity, is pivotal in motor control, learning, and cognition. The cerebellar reserve is the capacity of the cerebellum to respond and adapt to various disorders via resilience and reversibility. Although structural and functional recovery has been reported in mammals and has attracted attention regarding treatments for cerebel-lar dysfunction, such as spinocerebellar degeneration, the regulatory mechanisms of the cerebellar reserve are largely unidentified, particularly at the circuit level. Herein, we established an optical approach using zebrafish, an ideal vertebrate model in optical techniques, neuroscience, and developmental biology. By combing two‐photon laser ablation of the inferior olive (IO) and long‐term non‐invasive imaging of whole‐brain imaging at a single‐cell resolution, we succeeded in visualiza-tion of the morphological changes occurring in the IO neuron population and showed at a single-cell level that structural remodeling of the olivocerebellar circuit occurred in a relatively short pe-riod. This system, in combination with various functional analyses, represents a novel and powerful approach for uncovering the mechanisms of the cerebellar reserve, and highlights the potential of the zebrafish model to elucidate the organizing principles of neuronal circuits and their homeostasis in health and disease.

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Hiyoshi, K., Saito, K., Fukuda, N., Matsuzaki, T., Yoshikawa, H. Y., & Tsuda, S. (2021). Two‐photon laser ablation and in vivo wide‐field imaging of inferior olive neurons revealed the recovery of olivocerebellar circuits in zebrafish. International Journal of Environmental Research and Public Health, 18(16). https://doi.org/10.3390/ijerph18168357

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