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Chang, P.-s.

Publications and source records attributed to Chang, P.-s..

2 recordsLinked to original sources

Neonatal surgical injury alters social behaviour and cortical network responses to adult incision

Early-life painful events can influence brain development and behaviour later in life, yet the neural mechanisms underlying these long-term effects remain poorly understood. In particular, exposure to pain or tissue injury during early postnatal life has been associated with altered sensory processing, emotional regulation and behavioural responses later in life. Here we investigated whether early-life surgical pain alters adult behavioural and cortical network responses to injury. Using a rat model of neonatal hindpaw incision followed by repeat adult surgical incision, we combined behavioural analysis with continuous electrophysiological recordings from the medial prefrontal cortex (mPFC) and primary somatosensory cortex (S1) in freely moving animals. Early-life incision did not produce an overt alteration in adult social behaviour under baseline conditions. However, following adult injury, rats with prior neonatal incision showed altered social behavioural responses compared with animals receiving an incision only in adulthood. At the network level, adult incision increased beta-gamma phase-amplitude coupling within the mPFC and S1-mPFC theta coherence in animals experiencing their first injury, but not in those incised neonatally. Our evidence indicates that the relationship between mPFC coupling and social interaction differed according to neonatal injury history, revealing a lasting reorganisation of cortical network recruitment and brain-behaviour coupling after repeat injury.

neuroscience↗

Differential Effects of Sex and Age on Daily and Infradian Rhythms of Mice Running Title: Sex and Age Differences in Mouse Rhythms

Intrinsic biological rhythms regulate key physiological and behavioural processes, yet the influence of sex and age on these rhythms is not fully understood. We comprehensively examined 24-hour (circadian) and >24-hour (infradian; 5-day and 10-day) rhythms in wheel-running and ingestive behaviours in single-housed young and middle-aged male and female mice. Circadian analysis revealed that middle-aged mice, particularly females, exhibited more precise daily rhythms and shifted a greater proportion of activity and feeding to the lights-on phase compared to young female mice. Middle-aged animals also ran for longer durations per day, suggesting age-related changes in activity regulation. Analysis of infradian rhythms further highlighted sex- and age-specific differences. Young female mice displayed robust 5-day rhythms in wheel-running activity, which were absent in middle-aged females. In contrast, few males (young or middle-aged) showed significant 5-day rhythms. Ten-day rhythms were most prominent in male mice, while females rarely expressed this periodicity. Physiologically, middle-aged mice lost more body weight in response to single housing, with middle-aged females being most affected. Interactions among behavioural rhythms in females also showed greater complexity, which increased with age. These findings reveal distinct sex- and age-dependent patterns in circadian and infradian rhythms as well as in physiological responses to isolation. Our work highlights the need to account for sex and age in chronobiological research, with broader implications for understanding vulnerability to age-related metabolic and behavioural disorders.

animal behavior and cognition↗