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A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice.

Publication ,  Journal Article
Clopath, C; Badura, A; De Zeeuw, CI; Brunel, N
Published in: J Neurosci
May 21, 2014

Mechanisms of cerebellar motor learning are still poorly understood. The standard Marr-Albus-Ito theory posits that learning involves plasticity at the parallel fiber to Purkinje cell synapses under control of the climbing fiber input, which provides an error signal as in classical supervised learning paradigms. However, a growing body of evidence challenges this theory, in that additional sites of plasticity appear to contribute to motor adaptation. Here, we consider phase-reversal training of the vestibulo-ocular reflex (VOR), a simple form of motor learning for which a large body of experimental data is available in wild-type and mutant mice, in which the excitability of granule cells or inhibition of Purkinje cells was affected in a cell-specific fashion. We present novel electrophysiological recordings of Purkinje cell activity measured in naive wild-type mice subjected to this VOR adaptation task. We then introduce a minimal model that consists of learning at the parallel fibers to Purkinje cells with the help of the climbing fibers. Although the minimal model reproduces the behavior of the wild-type animals and is analytically tractable, it fails at reproducing the behavior of mutant mice and the electrophysiology data. Therefore, we build a detailed model involving plasticity at the parallel fibers to Purkinje cells' synapse guided by climbing fibers, feedforward inhibition of Purkinje cells, and plasticity at the mossy fiber to vestibular nuclei neuron synapse. The detailed model reproduces both the behavioral and electrophysiological data of both the wild-type and mutant mice and allows for experimentally testable predictions.

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Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

May 21, 2014

Volume

34

Issue

21

Start / End Page

7203 / 7215

Location

United States

Related Subject Headings

  • Synapses
  • Symporters
  • Reflex, Vestibulo-Ocular
  • Receptors, GABA-A
  • Receptors, GABA
  • Purkinje Cells
  • Nonlinear Dynamics
  • Neurology & Neurosurgery
  • Mutation
  • Models, Biological
 

Citation

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Clopath, C., Badura, A., De Zeeuw, C. I., & Brunel, N. (2014). A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice. J Neurosci, 34(21), 7203–7215. https://doi.org/10.1523/JNEUROSCI.2791-13.2014
Clopath, Claudia, Aleksandra Badura, Chris I. De Zeeuw, and Nicolas Brunel. “A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice.J Neurosci 34, no. 21 (May 21, 2014): 7203–15. https://doi.org/10.1523/JNEUROSCI.2791-13.2014.
Clopath C, Badura A, De Zeeuw CI, Brunel N. A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice. J Neurosci. 2014 May 21;34(21):7203–15.
Clopath, Claudia, et al. “A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice.J Neurosci, vol. 34, no. 21, May 2014, pp. 7203–15. Pubmed, doi:10.1523/JNEUROSCI.2791-13.2014.
Clopath C, Badura A, De Zeeuw CI, Brunel N. A cerebellar learning model of vestibulo-ocular reflex adaptation in wild-type and mutant mice. J Neurosci. 2014 May 21;34(21):7203–7215.

Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

May 21, 2014

Volume

34

Issue

21

Start / End Page

7203 / 7215

Location

United States

Related Subject Headings

  • Synapses
  • Symporters
  • Reflex, Vestibulo-Ocular
  • Receptors, GABA-A
  • Receptors, GABA
  • Purkinje Cells
  • Nonlinear Dynamics
  • Neurology & Neurosurgery
  • Mutation
  • Models, Biological