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Graded Control of Climbing-Fiber-Mediated Plasticity and Learning by Inhibition in the Cerebellum.


ABSTRACT: Purkinje cell dendrites convert excitatory climbing fiber input into signals that instruct plasticity and motor learning. Modulation of instructive signaling may increase the range in which learning is encoded, yet the mechanisms that allow for this are poorly understood. We found that optogenetic activation of molecular layer interneurons (MLIs) that inhibit Purkinje cells suppressed climbing-fiber-evoked dendritic Ca2+ spiking. Inhibitory suppression of Ca2+ spiking depended on the level of MLI activation and influenced the induction of associative synaptic plasticity, converting climbing-fiber-mediated potentiation of parallel fiber-evoked responses into depression. In awake mice, optogenetic activation of floccular climbing fibers in association with head rotation produced an adaptive increase in the vestibulo-ocular reflex (VOR). However, when climbing fibers were co-activated with MLIs, adaptation occurred in the opposite direction, decreasing the VOR. Thus, MLIs can direct a continuous spectrum of plasticity and learning through their influence on Purkinje cell dendritic Ca2+ signaling.

SUBMITTER: Rowan MJM 

PROVIDER: S-EPMC6206434 | biostudies-literature | 2018 Sep

REPOSITORIES: biostudies-literature

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Graded Control of Climbing-Fiber-Mediated Plasticity and Learning by Inhibition in the Cerebellum.

Rowan Matthew J M MJM   Bonnan Audrey A   Zhang Ke K   Amat Samantha B SB   Kikuchi Chikako C   Taniguchi Hiroki H   Augustine George J GJ   Christie Jason M JM  

Neuron 20180816 5


Purkinje cell dendrites convert excitatory climbing fiber input into signals that instruct plasticity and motor learning. Modulation of instructive signaling may increase the range in which learning is encoded, yet the mechanisms that allow for this are poorly understood. We found that optogenetic activation of molecular layer interneurons (MLIs) that inhibit Purkinje cells suppressed climbing-fiber-evoked dendritic Ca<sup>2+</sup> spiking. Inhibitory suppression of Ca<sup>2+</sup> spiking depen  ...[more]

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