ArticleeLife2025
Cerebellar Purkinje cells control posture in larval zebrafish (
Article in eLife, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- A Streamlined Workflow for Purkinje Cell Labeling and High-Resolution Analyses of Dendrites and Spines in Mice.eNeuro · 2026Article
- Gravity-Dependent Modulation of Downbeat Nystagmus: Insights From Velocity-Storage Dysfunction.Annals of clinical and translational neurology · 2026Article
- Critical period plasticity enables credit assignment.bioRxiv : the preprint server for biology · 2026Article
- Review
- Directionally biased neuronal responses to pitch-axis vestibular stimulation in larval zebrafish compared to roll-axis responses.Communications biology · 2026Article
- Review
- Oligodendrocytes support functional development of subcortical premotor neurons and navigation.bioRxiv : the preprint server for biology · 2025Article
- Ezh2 Loss-of-Function Alters Zebrafish Cerebellum Development.International journal of molecular sciences · 2025Article
- Larval zebrafish maintain elevation with multisensory control of posture and locomotion.The Journal of experimental biology · 2025Article
- Larval zebrafish maintain elevation with multisensory control of posture and locomotion.bioRxiv : the preprint server for biology · 2025Article
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5 authors.
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Abstract
Cerebellar dysfunction leads to postural instability. Recent work in freely moving rodents has transformed investigations of cerebellar contributions to posture. However, the combined complexity of terrestrial locomotion and the rodent cerebellum motivate new approaches to perturb cerebellar function in simpler vertebrates. Here, we adapted a validated chemogenetic tool (TRPV1/capsaicin) to describe the role of Purkinje cells - the output neurons of the cerebellar cortex - as larval zebrafish swam freely in depth. We achieved both bidirectional control (activation and ablation) of Purkinje cells while performing quantitative high-throughput assessment of posture and locomotion. Activation modified postural control in the pitch (nose-up/nose-down) axis. Similarly, ablations disrupted pitch-axis posture and fin-body coordination responsible for climbs. Postural disruption was more widespread in older larvae, offering a window into emergent roles for the developing cerebellum in the control of posture. Finally, we found that activity in Purkinje cells could individually and collectively encode tilt direction, a key feature of postural control neurons. Our findings delineate an expected role for the cerebellum in postural control and vestibular sensation in larval zebrafish, establishing the validity of TRPV1/capsaicin-mediated perturbations in a simple, genetically tractable vertebrate. Moreover, by comparing the contributions of Purkinje cell ablations to posture in time, we uncover signatures of emerging cerebellar control of posture across early development. This work takes a major step towards understanding an ancestral role of the cerebellum in regulating postural maturation.
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