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Jacquens, A.

Publications and source records attributed to Jacquens, A..

2 recordsLinked to original sources

Oxytocin release modulates acute neuroinflammation and improves brain development after pediatric traumatic brain injury

Pediatric traumatic brain injury (TBI) is a leading cause of death and disability early in life in infants, and its neurodevelopmental consequences cannot currently be effectively treated. Since TBI is associated with neuroinflammation, modulation of the post-injury neuroinflammatory response is a promising strategy. Oxytocin is thought to have anti-inflammatory properties and appears to play a role in clinical interventions that improve brain development in neonates. However, the underlying mechanisms remain unclear, as does its applicability to acute brain injury. Here we investigate the effects of chemogenetic modulation of endogenous oxytocin on acute neuroinflammation and on long-term brain development after TBI in postnatal day 7 (P7) male mice. We show that oxytocin release attenuates the acute neuroinflammatory response to TBI 24 hours after injury, by reducing the expression of immune- and inflammation-related genes in astrocytes and promoting gene pathways for brain repair and development in microglia. In the long term, oxytocin exposure ameliorates subcortical and cortical white matter damage after TBI, prevents hyperactivity and loss of social behavior, and restores TBI-induced alterations in resting-state functional connectivity of the isocortex. These findings enhance our understanding of the modulation of neuroinflammation and its long-term effects and support intervention related to endogenous oxytocin release as a promising neuroprotective strategy in pediatric TBI.

neuroscience↗

Long-term disruption of glucose homeostasis in a rodent model of preterm birth.

Around 1 of every 10 babies is born preterm, and the incidence of preterm birth has been rising. The long-term consequences of preterm survivors are not fully understood. Preterm birth is proven to be associated with metabolic diseases and related disorders later in life. Preterm newborns are susceptible to perinatal inflammatory events such as chorioamnionitis, hypoxia-ischemia, and sepsis. We hypothesized that perinatal inflammation has a role in the developmental programming of metabolic diseases and related disorders. In the present study, perinatal inflammation was modeled by systemic administration of IL-1{beta} in mice. We observed a pronounced sexual dimorphism where only the males presented significant insulin resistance and glucose intolerance accompanied by leptin resistance in the long term following perinatal inflammation exposure. Adiposity and energy homeostasis were intact. It showed that perinatal inflammation selectively contributes to the long-term dysregulation of glucose metabolism in a sex-dependent manner. The underlying mechanism might be linked with hypothalamic inflammation and upregulated circulating CCL5. Metformin treatment might be optional to treat insulin resistance resulting from perinatal inflammation. HighlightsO_LIPerinatal inflammation is common in preterm infants, often leading to perinatal brain injuries. However, the long-term metabolic outcomes of these infants are not fully revealed. C_LIO_LIWe explored the long-term metabolic outcomes in mice with perinatal IL-1{beta} exposure and sought its association with inflammation. C_LIO_LIPerinatal inflammation has a profound and deleterious role in glucose metabolism in a sex-dependent and time-dependent manner. C_LIO_LIPerinatal inflammation might be a risk factor for metabolic disorders in preterm survivors. C_LI

physiology↗