Hyperpolarization induces a long-term increase in the spontaneous firing rate of cerebellar Golgi cells

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Abstract

Golgi cells (GoCs) are inhibitory interneurons that influence the cerebellar cortical response to sensory input by regulating the excitability of the granule cell layer. While GoC inhibition is essential for normal motor coordination, little is known about the circuit dynamics that govern the activity of these cells. In particular, although GoC spontaneous spiking influences the extent of inhibition and gain throughout the granule cell layer, it is notknownwhether this spontaneous activity canbemodulatedin a long-termmanner.Herewedescribe aformof long-term plasticity that regulates the spontaneous firing rate of GoCs in the rat cerebellar cortex. We find that membrane hyperpolarization, either by mGluR2 activation of potassium channels, or by somatic current injection, induces a long-lasting increase in GoC spontaneous firing. This spike rate plasticityappearsto resultfromastrongreductioninthespikeafter hyperpolarization.Pharmacologicalmanipulationssuggesttheinvolvement of calcium-calmodulin-dependent kinase II and calcium-activated potassium channels in mediating these firing rate increases. As a consequence of this plasticity, GoC spontaneous spiking is selectively enhanced, but the gain of evoked spiking is unaffected. Hence, this plasticity is well suited for selectively regulating the tonic output of GoCs rather than their sensory-evoked responses. © 2013 the authors.

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Hull, C. A., Chu, Y. X., Thanawala, M., & Regehr, W. G. (2013). Hyperpolarization induces a long-term increase in the spontaneous firing rate of cerebellar Golgi cells. Journal of Neuroscience, 33(14), 5895–5902. https://doi.org/10.1523/JNEUROSCI.4052-12.2013

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