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Greenwood, E.

Publications and source records attributed to Greenwood, E..

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Endogenous oscillatory rhythms and interactive contingencies jointly influence infant attention during early infant-caregiver interaction

Almost all early cognitive development takes place in social contexts. At the moment, however, we know little about the neural and micro-interactive mechanisms that support infants attention during social interactions. Recording EEG during naturalistic caregiver-infant interactions (N=66), we compare two different accounts. Traditional, didactic perspectives emphasise the role of the caregiver in structuring the interaction, whilst active learning models focus on motivational factors, endogenous to the infant, that guide their attention. Our results show that, already by 12-months, intrinsic cognitive processes control infants attention: fluctuations in endogenous oscillatory neural activity associated with changes in infant attentiveness. In comparison, infant attention was not forwards-predicted by caregiver gaze or vocal behaviours. Instead, caregivers rapidly modulated their behaviours in response to changes in infant attention and cognitive engagement, and greater reactive changes associated with longer infant attention. Our findings suggest that shared attention develops through interactive but asymmetric, infant-led processes that operate across the caregiver-child dyad.

neuroscience↗

At Which Low Amplitude Modulated Frequency Do Infants Best Entrain? A Frequency Tagging Study

Previous infant entrainment research has shown neural entrainment to a wide range of stimuli and amplitude modulated frequencies. However, it is unknown if infants neurally entrain more strongly to some frequencies more than others, and to which low amplitude modulated frequency infants show the strongest entrainment. The current study seeks to address this by testing the neural entrainment of N=23 4-6-month-old infants and N=22 control group adult caregivers while they listened to a range of sinusoidally amplitude modulated beep stimuli at rest (no sound), 2, 4, 6, 8, 10 and 12 Hz. Analysis examined differences across power and phase, regions of interest predetermined by previous literature and by segmented time windows. Results showed that the strongest entrainment was at 2Hz for both adult and infant participants; that there was no significant difference in power and phase, entrainment was occipital temporal and slightly left fronto-central in adults and right fronto-central and left occipito-temporal in infants, leading to some regions of interest used in previous studies being significant in infants and all regions of interest being significant in adults. Segmenting by time window did not show any significant increase or decrease in entrainment over time, but longer time windows showed a stronger entrainment response. In conclusion, it is important to choose appropriate stimulation frequencies when investigating entrainment between stimulation frequencies or across ages; whole head recording is recommended to see the full extent of activation; there is no preference on power vs phase analyses; and longer recordings show stronger effects. Author Contribution StatementIves, J., conceptualisation, data collection and curation, formal analysis, methodology, writing - original draft; Labendzki, P., data collection and curation, formal analysis, writing - review & editing; Perapoch Amado, M., data collection and curation, writing - review & editing; Greenwood, E., data collection and curation, participant recruitment, writing - review & editing; Viswanathan, N., data collection and curation, writing - review & editing; Northrop, T., data collection and curation, participant recruitment, writing - review & editing; Wass, S., conceptualisation, funding acquisition, methodology, project administration, supervision, writing - review & editing. Highlights2Hz amplitude modulation stimulation showed the strongest neural entrainment We discuss power vs phase analyses of infant and adult frequency tagging responses We illustrate topographic differences in adult and infant neural responses

neuroscience↗