4.7 Article

Sound Rhythms Are Encoded by Postinhibitory Rebound Spiking in the Superior Paraolivary Nucleus

Journal

JOURNAL OF NEUROSCIENCE
Volume 31, Issue 35, Pages 12566-12578

Publisher

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.2450-11.2011

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Funding

  1. Swedish Research Council [80326601, K2008-63X-14061-08-3]
  2. Ake Wibergs Stiftelse, Jeanssons Stiftelse, Magnus Bergvalls Stiftelse
  3. Horselskadades Riksforbund, Tysta Skolan
  4. National Institute on Deafness and Other Communication Disorders [R01 DC-002266]

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The superior paraolivary nucleus (SPON) is a prominent structure in the auditory brainstem. In contrast to the principal superior olivary nuclei with identified roles in processing binaural sound localization cues, the role of the SPON in hearing is not well understood. A combined in vitro and in vivo approach was used to investigate the cellular properties of SPON neurons in the mouse. Patch-clamp recordings in brain slices revealed that brief and well timed postinhibitory rebound spiking, generated by the interaction of two subthreshold-activated ion currents, is a hallmark of SPON neurons. The I-h current determines the timing of the rebound, whereas the T-type Ca2+ current boosts the rebound to spike threshold. This precisely timed rebound spiking provides a physiological explanation for the sensitivity of SPON neurons to sinusoidally amplitude-modulated (SAM) tones in vivo, where peaks in the sound envelope drive inhibitory inputs and SPON neurons fire action potentials during the waveform troughs. Consistent with this notion, SPON neurons display intrinsic tuning to frequency-modulated sinusoidal currents (1-15Hz) in vitro and discharge with strong synchrony to SAMs with modulation frequencies between 1 and 20 Hz in vivo. The results of this study suggest that the SPON is particularly well suited to encode rhythmic sound patterns. Such temporal periodicity information is likely important for detection of communication cues, such as the acoustic envelopes of animal vocalizations and speech signals.

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