Literature DB >> 30651333

Representation of Auditory Motion Directions and Sound Source Locations in the Human Planum Temporale.

Ceren Battal1,2, Mohamed Rezk3,2, Stefania Mattioni3,2, Jyothirmayi Vadlamudi2, Olivier Collignon1,2.   

Abstract

The ability to compute the location and direction of sounds is a crucial perceptual skill to efficiently interact with dynamic environments. How the human brain implements spatial hearing is, however, poorly understood. In our study, we used fMRI to characterize the brain activity of male and female humans listening to sounds moving left, right, up, and down as well as static sounds. Whole-brain univariate results contrasting moving and static sounds varying in their location revealed a robust functional preference for auditory motion in bilateral human planum temporale (hPT). Using independently localized hPT, we show that this region contains information about auditory motion directions and, to a lesser extent, sound source locations. Moreover, hPT showed an axis of motion organization reminiscent of the functional organization of the middle-temporal cortex (hMT+/V5) for vision. Importantly, whereas motion direction and location rely on partially shared pattern geometries in hPT, as demonstrated by successful cross-condition decoding, the responses elicited by static and moving sounds were, however, significantly distinct. Altogether, our results demonstrate that the hPT codes for auditory motion and location but that the underlying neural computation linked to motion processing is more reliable and partially distinct from the one supporting sound source location.SIGNIFICANCE STATEMENT Compared with what we know about visual motion, little is known about how the brain implements spatial hearing. Our study reveals that motion directions and sound source locations can be reliably decoded in the human planum temporale (hPT) and that they rely on partially shared pattern geometries. Our study, therefore, sheds important new light on how computing the location or direction of sounds is implemented in the human auditory cortex by showing that those two computations rely on partially shared neural codes. Furthermore, our results show that the neural representation of moving sounds in hPT follows a "preferred axis of motion" organization, reminiscent of the coding mechanisms typically observed in the occipital middle-temporal cortex (hMT+/V5) region for computing visual motion.
Copyright © 2019 the authors 0270-6474/19/392208-13$15.00/0.

Entities:  

Keywords:  auditory motion; direction selectivity; fMRI; multivariate analyses; planum temporale; spatial hearing

Mesh:

Year:  2019        PMID: 30651333      PMCID: PMC6433766          DOI: 10.1523/JNEUROSCI.2289-18.2018

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  102 in total

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  6 in total

1.  Direct Structural Connections between Auditory and Visual Motion-Selective Regions in Humans.

Authors:  Ane Gurtubay-Antolin; Ceren Battal; Chiara Maffei; Mohamed Rezk; Stefania Mattioni; Jorge Jovicich; Olivier Collignon
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2.  Representation of Auditory Motion Directions and Sound Source Locations in the Human Planum Temporale.

Authors:  Ceren Battal; Mohamed Rezk; Stefania Mattioni; Jyothirmayi Vadlamudi; Olivier Collignon
Journal:  J Neurosci       Date:  2019-01-16       Impact factor: 6.167

3.  Structural and Functional Network-Level Reorganization in the Coding of Auditory Motion Directions and Sound Source Locations in the Absence of Vision.

Authors:  Ceren Battal; Ane Gurtubay-Antolin; Mohamed Rezk; Stefania Mattioni; Giorgia Bertonati; Valeria Occelli; Roberto Bottini; Stefano Targher; Chiara Maffei; Jorge Jovicich; Olivier Collignon
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4.  Electrocorticography Evidence of Tactile Responses in Visual Cortices.

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5.  Attention controls multisensory perception via two distinct mechanisms at different levels of the cortical hierarchy.

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6.  Intelligibility of audiovisual sentences drives multivoxel response patterns in human superior temporal cortex.

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  6 in total

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