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Inui, T.

Publications and source records attributed to Inui, T..

3 recordsLinked to original sources

Neural responses prior to licking onset in the striatal matrix compartment in mice

Licking is a continuous tongue thrust observed during drinking in rodents and humans and is often studied as an essential tongue movement for feeding and swallowing. The striatum, a component of the basal ganglia, plays a critical role in licking onset; however, it is unclear how the two compartments of the striatum--the matrix and striosomes--contribute to the control of licking onset. In this study, we used male and female transgenic mice that selectively expressed Cre recombinase in matrix or striosome neurons and subjected them to operant conditioning based on licking of a spout, during which neuronal activity in both compartments was measured using fiber photometry. Only matrix neurons showed responses prior to licking onset. In addition, the matrix neural response before licking onset was larger when mice licked a spout ipsilateral to the recording hemisphere of the brain than that observed when licking the contralateral spout. This response was observed similarly in mice conditioned to receive a reward regularly and those conditioned to receive a reward randomly, suggesting that the response was unrelated to whether the reward was predictable or unpredictable. Matrix neural activity was negatively correlated with the number of licks during the water intake behavior following the first lick. These findings suggest that matrix neurons are involved in the preparatory process for licking onset as well as in the regulation of licking frequency during water intake. Significant StatementThis study demonstrated that during the expression of operant conditioning behaviors based on licking, striatal matrix neurons showed responses prior to licking onset. Additionally, these responses were larger when the mouse licked the spout ipsilateral to the brain hemisphere undergoing recording than when a spout in the contralateral direction was licked. This result was also true for mice conditioned using either regular or random reward conditions. Additionally, the number of licks during water ingestion behavior following the initial lick was negatively correlated with matrix neuron activity. These changes in matrix neuron activity are suggested to be involved in the preparatory process for licking onset, independent of reward prediction, and in the regulation of licking frequency during drinking.

neuroscience↗

The anterior cingulate cortex is involved in intero-exteroceptive integration for spatial image transformation of the self-body.

Spatial image transformation of the self-body is a fundamental function of visual perspective-taking. Recent research underscores the significance of integration of intero-exteroceptive information to construct representations of our embodied self. This raises the intriguing hypothesis that interoceptive processing might be involved in the spatial image transformation of our self-body. To test this hypothesis, the present study used functional magnetic resonance imaging to measure brain activity during an arm laterality judgment (ALJ) task. In this task, participants were tasked with discerning whether the outstretched arm of a human figure, viewed from the front or back, was the right or left hand. The reaction times for the ALJ task proved longer when the stimulus presented orientations of 0{degrees}, 90{degrees}, and 270{degrees} relative to the upright orientation, and when the front view presented as compared to the back view. Corresponding to the increased reaction time, increased brain activity was manifested in a cluster centered on the dorsal anterior cingulate cortex (ACC). Furthermore, this cluster of brain activity exhibited overlap with regions where the difference in activation between the front and back views positively correlated with the participants interoceptive sensitivity, as assessed through the heartbeat detection task, within the pregenual ACC. These results suggest that the ACC plays an important role in integrating intero-exteroceptive cues for the purpose of spatially transforming the image of our self-body.

neuroscience↗

Interoceptive sensitivity modulates heart rate and insula activity when listening to music

Interoception plays an important role in emotion processing, but the relationship between the physiological responses associated with emotional experience and interoception is unclear. In this study, we measured interoceptive sensitivity using the heartbeat discrimination task and investigated the effects of individual differences in interoceptive sensitivity on changes in heart rate and insula activity in response to music-induced emotions. We found that the heart rate increased when listening to the music pieces rated as emotionally high-touching in the high interoceptive sensitivity group only. Compared to the emotionally low-touching music, listening to the emotionally high-touching music was associated with higher insula activity. Furthermore, relative to individuals with low interoceptive sensitivity, the region of interest analysis of the insula subregions for individuals with high interoceptive sensitivity revealed significant activity in the bilateral dorsal granular insula, the right ventral dysgranular insula, and the right granular and dorsal dysgranular insula while listening to the high-touching music pieces. Our results suggest that individuals with high interoceptive sensitivity use their physical condition to assess their emotional level when listening to music. Furthermore, the insula activity may reflect the use of interoception to estimate emotions.

neuroscience↗