Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.

The hypersonic effect is a phenomenon in which sounds containing significant quantities of non-stationary high-frequency components (HFCs) above the human audible range (max. 20 kHz) activate the midbrain and diencephalon and evoke various physiological, psychological and behavioral responses. Yet i...

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Main Authors: Ariko Fukushima, Reiko Yagi, Norie Kawai, Manabu Honda, Emi Nishina, Tsutomu Oohashi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4005747?pdf=render
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spelling doaj-113e0c31988b4e348d1e8402aa16dd3a2020-11-25T00:12:40ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0194e9546410.1371/journal.pone.0095464Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.Ariko FukushimaReiko YagiNorie KawaiManabu HondaEmi NishinaTsutomu OohashiThe hypersonic effect is a phenomenon in which sounds containing significant quantities of non-stationary high-frequency components (HFCs) above the human audible range (max. 20 kHz) activate the midbrain and diencephalon and evoke various physiological, psychological and behavioral responses. Yet important issues remain unverified, especially the relationship existing between the frequency of HFCs and the emergence of the hypersonic effect. In this study, to investigate the relationship between the hypersonic effect and HFC frequencies, we divided an HFC (above 16 kHz) of recorded gamelan music into 12 band components and applied them to subjects along with an audible component (below 16 kHz) to observe changes in the alpha2 frequency component (10-13 Hz) of spontaneous EEGs measured from centro-parieto-occipital regions (Alpha-2 EEG), which we previously reported as an index of the hypersonic effect. Our results showed reciprocal directional changes in Alpha-2 EEGs depending on the frequency of the HFCs presented with audible low-frequency component (LFC). When an HFC above approximately 32 kHz was applied, Alpha-2 EEG increased significantly compared to when only audible sound was applied (positive hypersonic effect), while, when an HFC below approximately 32 kHz was applied, the Alpha-2 EEG decreased (negative hypersonic effect). These findings suggest that the emergence of the hypersonic effect depends on the frequencies of inaudible HFC.http://europepmc.org/articles/PMC4005747?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ariko Fukushima
Reiko Yagi
Norie Kawai
Manabu Honda
Emi Nishina
Tsutomu Oohashi
spellingShingle Ariko Fukushima
Reiko Yagi
Norie Kawai
Manabu Honda
Emi Nishina
Tsutomu Oohashi
Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
PLoS ONE
author_facet Ariko Fukushima
Reiko Yagi
Norie Kawai
Manabu Honda
Emi Nishina
Tsutomu Oohashi
author_sort Ariko Fukushima
title Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
title_short Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
title_full Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
title_fullStr Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
title_full_unstemmed Frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
title_sort frequencies of inaudible high-frequency sounds differentially affect brain activity: positive and negative hypersonic effects.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description The hypersonic effect is a phenomenon in which sounds containing significant quantities of non-stationary high-frequency components (HFCs) above the human audible range (max. 20 kHz) activate the midbrain and diencephalon and evoke various physiological, psychological and behavioral responses. Yet important issues remain unverified, especially the relationship existing between the frequency of HFCs and the emergence of the hypersonic effect. In this study, to investigate the relationship between the hypersonic effect and HFC frequencies, we divided an HFC (above 16 kHz) of recorded gamelan music into 12 band components and applied them to subjects along with an audible component (below 16 kHz) to observe changes in the alpha2 frequency component (10-13 Hz) of spontaneous EEGs measured from centro-parieto-occipital regions (Alpha-2 EEG), which we previously reported as an index of the hypersonic effect. Our results showed reciprocal directional changes in Alpha-2 EEGs depending on the frequency of the HFCs presented with audible low-frequency component (LFC). When an HFC above approximately 32 kHz was applied, Alpha-2 EEG increased significantly compared to when only audible sound was applied (positive hypersonic effect), while, when an HFC below approximately 32 kHz was applied, the Alpha-2 EEG decreased (negative hypersonic effect). These findings suggest that the emergence of the hypersonic effect depends on the frequencies of inaudible HFC.
url http://europepmc.org/articles/PMC4005747?pdf=render
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