Sound-intensity-dependent compensation for the small interaural time difference cue for sound source localization

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Abstract

Interaural time difference (ITD) is a major cue for sound source localization. However, animals with small heads experience small ITDs, making ITD detection difficult, particularly for low-frequency sound. Here, we describe a sound-intensity-dependent mechanism for compensating for the small ITD cues in the coincidence detector neurons in the nucleus laminaris (NL) of the chicken aged from 3 to 29 d after hatching. The hypothesized compensation mechanisms were confirmed by simulation. In vivo single-unit recordings revealed an improved contrast of ITD tuning in low-best-frequency (<1 kHz) NL neurons by suppressing the firing activity at the worst ITD, whereas the firing rate was increased with increasing sound intensity at the best ITD. In contrast, level-dependent suppression was so weak in the middle- and high-best-frequency (≥1 kHz) NL neurons that loud sounds led to increases in firing rate at both the best and the worst ITDs. The suppression of firing activity at the worst ITD in the low-best-frequency neurons required the activation of the superior olivary nucleus (SON) and was eliminated by electrolytic lesions of the SON. The frequency-dependent suppression reflected the dense projection from the SON to the low-frequency region of NL. Thus, the small ITD cues available in low-frequency sounds were partly compensated for by a sound-intensity-dependent inhibition from the SON. Copyright © 2008 Society for Neuroscience.

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APA

Nishino, E., Yamada, R., Kuba, H., Hioki, H., Furuta, T., Kaneko, T., & Ohmori, H. (2008). Sound-intensity-dependent compensation for the small interaural time difference cue for sound source localization. Journal of Neuroscience, 28(28), 7153–7164. https://doi.org/10.1523/JNEUROSCI.4398-07.2008

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