Literature DB >> 11600645

Characterization of reliability of spike timing in spinal interneurons during oscillating inputs.

U Beierholm1, C D Nielsen, J Ryge, P Alstrøm, O Kiehn.   

Abstract

The spike timing in rhythmically active interneurons in the pan class="Species">mammalian spn>inal locomotor network varies from cycle to cycle. We tested the contribution from passive membrane propn>erties to this variable firing pattern, by measuring the reliability of spn>ike timing, P, in interneurons in the isolated neonatal n>an class="Species">rat spinal cord, using intracellular injection of sinusoidal command currents of different frequencies (0.325-31.25 Hz). P is a measure of the precision of spike timing. In general, P was low at low frequencies and amplitudes (P = 0-0.6; 0-1.875 Hz; 0-30 pA), and high at high frequencies and amplitudes (P = 0.8-1; 3.125-31.25 Hz; 30-200 pA). The exact relationship between P and amplitude was difficult to describe because of the well-known low-pass properties of the membrane, which resulted in amplitude attenuation of high-frequency compared with low-frequency command currents. To formalize the analysis we used a leaky integrate and fire (LIF) model with a noise term added. The LIF model was able to reproduce the experimentally observed properties of P as well as the low-pass properties of the membrane. The LIF model enabled us to use the mathematical theory of nonlinear oscillators to analyze the relationship between amplitude, frequency, and P. This was done by systematically calculating the rotational number, N, defined as the number of spikes divided by the number of periods of the command current, for a large number of frequencies and amplitudes. These calculations led to a phase portrait based on the amplitude of the command current versus the frequency-containing areas [Arnold tongues (ATs)] with the same rotational number. The largest ATs in the phase portrait were those where N was a whole integer, and the largest areas in the ATs were seen for middle to high (>3 Hz) frequencies and middle to high amplitudes (50-120 pA). This corresponded to the amplitude- and frequency-evoked increase in P. The model predicted that P would be high when a cell responded with an integer and constant N. This prediction was confirmed by comparing N and P in real experiments. Fitting the result of the LIF model to the experimental data enabled us to estimate the standard deviation of the internal neuronal noise and to use these data to simulate the relationship between N and P in the model. This simulation demonstrated a good correspondence between the theoretical and experimental values. Our data demonstrate that interneurons can respond with a high reliability of spike timing, but only by combining fast and slow oscillations is it possible to obtain a high reliability of firing during rhythmic locomotor movements. Theoretical analysis of the rotation number provided new insights into the mechanism for obtaining reliable spike timing.

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Year:  2001        PMID: 11600645     DOI: 10.1152/jn.2001.86.4.1858

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  14 in total

1.  Firing properties of spinal interneurons during voluntary movement. I. State-dependent regularity of firing.

Authors:  Yifat Prut; Steve I Perlmutter
Journal:  J Neurosci       Date:  2003-10-22       Impact factor: 6.167

2.  Oscillations in endogenous inputs to neurons affect excitability and signal processing.

Authors:  Marjorie A Parkis; Jack L Feldman; Dean M Robinson; Gregory D Funk
Journal:  J Neurosci       Date:  2003-09-03       Impact factor: 6.167

3.  Tristate markov model for the firing statistics of rapidly-adapting mechanoreceptive fibers.

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Journal:  J Comput Neurosci       Date:  2004 Sep-Oct       Impact factor: 1.621

4.  Synaptic patterning of left-right alternation in a computational model of the rodent hindlimb central pattern generator.

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5.  GAD67-GFP+ neurons in the Nucleus of Roller. II. Subthreshold and firing resonance properties.

Authors:  J F M van Brederode; A J Berger
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6.  The possible role of spike patterns in cortical information processing.

Authors:  Paul H E Tiesinga; J Vincent Toups
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8.  Action potential timing precision in dorsal cochlear nucleus pyramidal cells.

Authors:  Sarah E Street; Paul B Manis
Journal:  J Neurophysiol       Date:  2007-04-18       Impact factor: 2.714

9.  Spike-firing resonance in hypoglossal motoneurons.

Authors:  Johannes F M van Brederode; Albert J Berger
Journal:  J Neurophysiol       Date:  2008-04-02       Impact factor: 2.714

10.  Influence of developmental nicotine exposure on spike-timing precision and reliability in hypoglossal motoneurons.

Authors:  Gregory L Powell; Richard B Levine; Amanda M Frazier; Ralph F Fregosi
Journal:  J Neurophysiol       Date:  2014-12-30       Impact factor: 2.714

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