Literature DB >> 30224805

Coordinated cerebellar climbing fiber activity signals learned sensorimotor predictions.

William Heffley1, Eun Young Song1, Ziye Xu1, Benjamin N Taylor1, Mary Anne Hughes1, Andrew McKinney1,2, Mati Joshua1,3, Court Hull4.   

Abstract

The prevailing model of cerebellar learning states that climbing fibers (CFs) are both driven by, and serve to correct, erroneous motor output. However, this model is grounded largely in studies of behaviors that utilize hardwired neural pathways to link sensory input to motor output. To test whether this model applies to more flexible learning regimes that require arbitrary sensorimotor associations, we developed a cerebellar-dependent motor learning task that is compatible with both mesoscale and single-dendrite-resolution calcium imaging in mice. We found that CFs were preferentially driven by and more time-locked to correctly executed movements and other task parameters that predict reward outcome, exhibiting widespread correlated activity in parasagittal processing zones that was governed by these predictions. Together, our data suggest that such CF activity patterns are well-suited to drive learning by providing predictive instructional input that is consistent with an unsigned reinforcement learning signal but does not rely exclusively on motor errors.

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Year:  2018        PMID: 30224805      PMCID: PMC6362851          DOI: 10.1038/s41593-018-0228-8

Source DB:  PubMed          Journal:  Nat Neurosci        ISSN: 1097-6256            Impact factor:   24.884


  49 in total

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10.  Climbing fibers encode a temporal-difference prediction error during cerebellar learning in mice.

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Journal:  Nat Neurosci       Date:  2015-11-09       Impact factor: 24.884

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  53 in total

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Review 8.  Cortico-cerebellar interactions during goal-directed behavior.

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9.  Encoding of eye movements explains reward-related activity in cerebellar simple spikes.

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10.  Response to "Fallacies of Mice Experiments".

Authors:  Zhenyu Gao; Alyse M Thomas; Michael N Economo; Amada M Abrego; Karel Svoboda; Chris I De Zeeuw; Nuo Li
Journal:  Neuroinformatics       Date:  2019-10
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