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Stochastic Synchronization in Purkinje Cells with Feedforward Inhibition Could Be Studied with Equivalent Phase-Response Curves

Overview
Journal J Math Neurosci
Publisher Springer
Date 2015 Jun 19
PMID 26084702
Citations 2
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Abstract

Simple-spike synchrony between Purkinje cells projecting to a common neuron in the deep cerebellar nucleus is emerging as an important factor in the encoding of output information from cerebellar cortex. A phenomenon known as stochastic synchronization happens when uncoupled oscillators synchronize due to correlated inputs. Stochastic synchronization is a viable mechanism through which simple-spike synchrony could be generated, but it has received scarce attention, perhaps because the presence of feedforward inhibition in the input to Purkinje cells makes insights difficult. This paper presents a method to account for feedforward inhibition so the usual mathematical approaches to stochastic synchronization can be applied. The method consists in finding a single Phase Response Curve, called the equivalent PRC, that accounts for the effects of both excitatory inputs and delayed feedforward inhibition from molecular layer interneurons. The results suggest that a theory of stochastic synchronization for the case of feedforward inhibition may not be necessary, since this case can be approximately reduced to the case of inputs characterized by a single PRC. Moreover, feedforward inhibition could in many situations increase the level of synchrony experienced by Purkinje cells.

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References
1.
Mackay W, Murphy J . Integrative versus delay line characteristics of cerebellar cortex. Can J Neurol Sci. 1976; 3(2):85-97. DOI: 10.1017/s031716710002583x. View

2.
Hata S, Arai K, Galan R, Nakao H . Optimal phase response curves for stochastic synchronization of limit-cycle oscillators by common Poisson noise. Phys Rev E Stat Nonlin Soft Matter Phys. 2011; 84(1 Pt 2):016229. DOI: 10.1103/PhysRevE.84.016229. View

3.
Ito M, Sakurai M, Tongroach P . Climbing fibre induced depression of both mossy fibre responsiveness and glutamate sensitivity of cerebellar Purkinje cells. J Physiol. 1982; 324:113-34. PMC: 1250696. DOI: 10.1113/jphysiol.1982.sp014103. View

4.
Holtzman T, Rajapaksa T, Mostofi A, Edgley S . Different responses of rat cerebellar Purkinje cells and Golgi cells evoked by widespread convergent sensory inputs. J Physiol. 2006; 574(Pt 2):491-507. PMC: 1817778. DOI: 10.1113/jphysiol.2006.108282. View

5.
Hansel D, Mato G, Meunier C . Synchrony in excitatory neural networks. Neural Comput. 1995; 7(2):307-37. DOI: 10.1162/neco.1995.7.2.307. View