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Population Dynamics in Songbird RA and HVC During Learned Motor-Vocal Behavior

  • Pablo Tostado-Marcos*
  • , Ezequiel M. Arneodo
  • , Lauren Ostrowski
  • , Daril E. Brown
  • , Xavier A. Perez
  • , Adam Kadwory
  • , Lauren L. Stanwicks
  • , Abdullah Alothman
  • , Timothy Q. Gentner
  • , Vikash Gilja
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Complex, learned motor behaviors involve the coordination of large-scale neural activity across multiple brain regions, but our understanding of population-level neural dynamics within different regions tied to the same behavior remains limited. Here, we investigate the neural population dynamics underlying learned vocal production in awake, singing songbirds. Using Neuropixels probes, we record simultaneous extracellular activity from populations of neurons in two regions of the vocal-motor pathway in adult male zebra finches. In line with observations made in non-human primates during limb-based motor tasks, we show that the population-level activity in both the premotor nucleus HVC and the motor nucleus RA is organized onto low-dimensional neural manifolds upon which coordinated neural activity is captured by temporally structured trajectories during singing behavior. Both HVC and RA latent trajectories carry relevant information to predict vocal sequence transitions between song syllables. However, the dynamics of these latent trajectories differ between regions. Our state-space models suggest a unique and continuous-over-time correspondence between the latent space of RA and vocal output, whereas the corresponding relationship for HVC exhibits a higher degree of neural variability. We demonstrate that high-fidelity reconstruction of continuous vocal outputs can be achieved from both spiking activity and neural latents. However, in contrast to models relying on spiking activity, decoding models leveraging latent dynamics generalize to novel subpopulations in each region, supporting the existence of preserved manifolds that confine vocal-motor activity in HVC and RA.

Original languageEnglish
Article numbere0580252026
JournalJournal of Neuroscience
Volume46
Issue number20
DOIs
StatePublished - 20 May 2026
Externally publishedYes

Bibliographical note

Publisher Copyright:
Copyright © 2026 the authors

Keywords

  • latent neural dynamics
  • neural manifold
  • neurally driven vocal prostheses
  • neuropixels
  • songbird
  • vocal production

ASJC Scopus subject areas

  • General Neuroscience

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