Publication

Behavioral Relevance Helps Untangle Natural Vocal Categories in a Specific Subset of Core Auditory Cortical Pyramidal Neurons

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  • 02/20/2025
Type of Material
Authors
    Kathryn N. Shepard, Emory UniversityFrank G. Lin, Georgia Institute of TechnologyCharles L. Zhao, Georgia Institute of TechnologyKelly K. Chong, Georgia Institute of TechnologyRobert Liu, Emory University
Language
  • English
Date
  • 2015-02-11
Publisher
  • Society for Neuroscience
Publication Version
Copyright Statement
  • © 2015 the authors
License
Final Published Version (URL)
Title of Journal or Parent Work
ISSN
  • 0270-6474
Volume
  • 35
Issue
  • 6
Start Page
  • 2636
End Page
  • 2645
Grant/Funding Information
  • This work was supported by National Institutes of Health Grants R01-DC-8343 (R.C.L.), F31-DC-11987 (K.N.S.), T90-DA-032466 (C.L.Z.), and T32-HD-071845 (K.K.C.).
Abstract
  • Sound categorization is essential for auditory behaviors like acoustic communication, but its genesis within the auditory pathway is not well understood—especially for learned natural categories like vocalizations, which often share overlapping acoustic features that must be distinguished (e.g., speech). We use electrophysiological mapping and single-unit recordings in mice to investigate how representations of natural vocal categories within core auditory cortex are modulated when one category acquires enhanced behavioral relevance. Taking advantage of a maternal mouse model of acoustic communication, we found no long-term auditory cortical map expansion to represent a behaviorally relevant pup vocalization category—contrary to expectations from the cortical plasticity literature on conditioning with pure tones. Instead, we observed plasticity that improved the separation between acoustically similar pup and adult vocalization categories among a physiologically defined subset of late-onset, putative pyramidal neurons, but not among putative interneurons. Additionally, a larger proportion of these putative pyramidal neurons in maternal animals compared with nonmaternal animals responded to the individual pup call exemplars having combinations of acoustic features most typical of that category. Together, these data suggest that higher-order representations of acoustic categories arise from a subset of core auditory cortical pyramidal neurons that become biased toward the combination of acoustic features statistically predictive of membership to a behaviorally relevant sound category.
Author Notes
Keywords
Research Categories
  • Biology, Neuroscience
  • Health Sciences, General

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