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Goal-directed and flexible modulation of syllable sequence within birdsong

Author

Listed:
  • Takuto Kawaji

    (Tohoku University)

  • Mizuki Fujibayashi

    (Tohoku University)

  • Kentaro Abe

    (Tohoku University
    Tohoku University)

Abstract

Songs constitute a complex system of vocal signals for inter-individual communication in songbirds. Here, we elucidate the flexibility which songbirds exhibit in the organizing and sequencing of syllables within their songs. Utilizing a newly devised song decoder for quasi-real-time annotation, we execute an operant conditioning paradigm, with rewards contingent upon specific syllable syntax. Our analysis reveals that birds possess the capacity to modify the contents of their songs, adjust the repetition length of particular syllables and employing specific motifs. Notably, birds altered their syllable sequence in a goal-directed manner to obtain rewards. We demonstrate that such modulation occurs within a distinct song segment, with adjustments made within 10 minutes after cue presentation. Additionally, we identify the involvement of the parietal-basal ganglia pathway in orchestrating these flexible modulations of syllable sequences. Our findings unveil an unappreciated aspect of songbird communication, drawing parallels with human speech.

Suggested Citation

  • Takuto Kawaji & Mizuki Fujibayashi & Kentaro Abe, 2024. "Goal-directed and flexible modulation of syllable sequence within birdsong," Nature Communications, Nature, vol. 15(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-47824-1
    DOI: 10.1038/s41467-024-47824-1
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    References listed on IDEAS

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    1. Tim Sainburg & Brad Theilman & Marvin Thielk & Timothy Q. Gentner, 2019. "Parallels in the sequential organization of birdsong and human speech," Nature Communications, Nature, vol. 10(1), pages 1-11, December.
    2. Yarden Cohen & Jun Shen & Dawit Semu & Daniel P. Leman & William A. Liberti & L. Nathan Perkins & Derek C. Liberti & Darrell N. Kotton & Timothy J. Gardner, 2020. "Hidden neural states underlie canary song syntax," Nature, Nature, vol. 582(7813), pages 539-544, June.
    3. Anja T. Zai & Sophie Cavé-Lopez & Manon Rolland & Nicolas Giret & Richard H. R. Hahnloser, 2020. "Sensory substitution reveals a manipulation bias," Nature Communications, Nature, vol. 11(1), pages 1-12, December.
    4. Toshitaka N. Suzuki & David Wheatcroft & Michael Griesser, 2016. "Experimental evidence for compositional syntax in bird calls," Nature Communications, Nature, vol. 7(1), pages 1-7, April.
    5. Evren C. Tumer & Michael S. Brainard, 2007. "Performance variability enables adaptive plasticity of ‘crystallized’ adult birdsong," Nature, Nature, vol. 450(7173), pages 1240-1244, December.
    6. Jonathan I. Benichov & Daniela Vallentin, 2020. "Inhibition within a premotor circuit controls the timing of vocal turn-taking in zebra finches," Nature Communications, Nature, vol. 11(1), pages 1-10, December.
    7. Michael S. Brainard & Allison J. Doupe, 2000. "Interruption of a basal ganglia–forebrain circuit prevents plasticity of learned vocalizations," Nature, Nature, vol. 404(6779), pages 762-766, April.
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