Literature DB >> 24848460

On the localization of complex sounds: temporal encoding based on input-slope coincidence detection of envelopes.

Yan Gai1, Vibhakar C Kotak2, Dan H Sanes3, John Rinzel4.   

Abstract

Behavioral and neural findings demonstrate that animals can locate low-frequency sounds along the azimuth by detecting microsecond interaural time differences (ITDs). Information about ITDs is also available in the amplitude modulations (i.e., envelope) of high-frequency sounds. Since medial superior olivary (MSO) neurons encode low-frequency ITDs, we asked whether they employ a similar mechanism to process envelope ITDs with high-frequency carriers, and the effectiveness of this mechanism compared with the process of low-frequency sound. We developed a novel hybrid in vitro dynamic-clamp approach, which enabled us to mimic synaptic input to brain-slice neurons in response to virtual sound and to create conditions that cannot be achieved naturally but are useful for testing our hypotheses. For each simulated ear, a virtual sound, computer generated, was used as input to a computational auditory-nerve model. Model spike times were converted into synaptic input for MSO neurons, and ITD tuning curves were derived for several virtual-sound conditions: low-frequency pure tones, high-frequency tones modulated with two types of envelope, and speech sequences. Computational models were used to verify the physiological findings and explain the biophysical mechanism underlying the observed ITD coding. Both recordings and simulations indicate that MSO neurons are sensitive to ITDs carried by spectrotemporally complex virtual sounds, including speech tokens. Our findings strongly suggest that MSO neurons can encode ITDs across a broad-frequency spectrum using an input-slope-based coincidence-detection mechanism. Our data also provide an explanation at the cellular level for human localization performance involving high-frequency sound described by previous investigators.
Copyright © 2014 the American Physiological Society.

Entities:  

Keywords:  Kv1.1; auditory processing; phasic firing; sound localization

Mesh:

Year:  2014        PMID: 24848460      PMCID: PMC4122752          DOI: 10.1152/jn.00044.2013

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


  46 in total

1.  Coincidence detection or temporal integration? What the neurons in somatosensory cortex are doing.

Authors:  S A Roy; K D Alloway
Journal:  J Neurosci       Date:  2001-04-01       Impact factor: 6.167

Review 2.  The dynamic clamp comes of age.

Authors:  Astrid A Prinz; L F Abbott; Eve Marder
Journal:  Trends Neurosci       Date:  2004-04       Impact factor: 13.837

Review 3.  Mechanisms of sound localization in mammals.

Authors:  Benedikt Grothe; Michael Pecka; David McAlpine
Journal:  Physiol Rev       Date:  2010-07       Impact factor: 37.312

4.  Phase locking of auditory-nerve fibers to the envelopes of high-frequency sounds: implications for sound localization.

Authors:  Anna Dreyer; Bertrand Delgutte
Journal:  J Neurophysiol       Date:  2006-06-28       Impact factor: 2.714

5.  Sensitivity to interaural temporal disparities of low- and high-frequency neurons in the superior olivary complex. I. Heterogeneity of responses.

Authors:  R Batra; S Kuwada; D C Fitzpatrick
Journal:  J Neurophysiol       Date:  1997-09       Impact factor: 2.714

6.  Envelope coding in the lateral superior olive. I. Sensitivity to interaural time differences.

Authors:  P X Joris; T C Yin
Journal:  J Neurophysiol       Date:  1995-03       Impact factor: 2.714

7.  Enhancement of neural synchronization in the anteroventral cochlear nucleus. II. Responses in the tuning curve tail.

Authors:  P X Joris; P H Smith; T C Yin
Journal:  J Neurophysiol       Date:  1994-03       Impact factor: 2.714

8.  Asymmetric excitatory synaptic dynamics underlie interaural time difference processing in the auditory system.

Authors:  Pablo E Jercog; Gytis Svirskis; Vibhakar C Kotak; Dan H Sanes; John Rinzel
Journal:  PLoS Biol       Date:  2010-06-29       Impact factor: 8.029

9.  Slope-based stochastic resonance: how noise enables phasic neurons to encode slow signals.

Authors:  Yan Gai; Brent Doiron; John Rinzel
Journal:  PLoS Comput Biol       Date:  2010-06-24       Impact factor: 4.475

10.  Sodium along with low-threshold potassium currents enhance coincidence detection of subthreshold noisy signals in MSO neurons.

Authors:  Gytis Svirskis; Vibhakar Kotak; Dan H Sanes; John Rinzel
Journal:  J Neurophysiol       Date:  2004-01-28       Impact factor: 2.714

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2.  Sensitivity to Interaural Time Differences Conveyed in the Stimulus Envelope: Estimating Inputs of Binaural Neurons Through the Temporal Analysis of Spike Trains.

Authors:  Mathias Dietz; Le Wang; David Greenberg; David McAlpine
Journal:  J Assoc Res Otolaryngol       Date:  2016-06-13

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4.  Roles for Coincidence Detection in Coding Amplitude-Modulated Sounds.

Authors:  Go Ashida; Jutta Kretzberg; Daniel J Tollin
Journal:  PLoS Comput Biol       Date:  2016-06-20       Impact factor: 4.475

5.  Noise-enhanced coding in phasic neuron spike trains.

Authors:  Cheng Ly; Brent Doiron
Journal:  PLoS One       Date:  2017-05-04       Impact factor: 3.240

6.  Exploring binaural hearing in gerbils (Meriones unguiculatus) using virtual headphones.

Authors:  Sandra Tolnai; Rainer Beutelmann; Georg M Klump
Journal:  PLoS One       Date:  2017-04-10       Impact factor: 3.240

7.  A low-threshold potassium current enhances sparseness and reliability in a model of avian auditory cortex.

Authors:  Margot C Bjoring; C Daniel Meliza
Journal:  PLoS Comput Biol       Date:  2019-01-28       Impact factor: 4.475

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