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Bilbo, S.

Publications and source records attributed to Bilbo, S..

3 recordsLinked to original sources

Context-dependent effects of microglial MyD88 removal on voluntary ethanol consumption in mice

Neuroimmune signaling is increasingly implicated in alcohol use disorder (AUD). Microglia, the brains resident immune cells, signal in part through the adaptor protein myeloid differentiation primary response 88 (MyD88), a key mediator of innate immune responses. Here, we investigated whether microglial-specific MyD88 signaling regulates voluntary alcohol consumption in adulthood, as whole-body loss of MyD88 was previously shown to increase drinking. We further determined if alcohol altered parvalbumin-expressing interneurons (PVIs) and microglia within the pre-frontal cortex, based on our previously described role for MyD88 signaling on perineuronal net (PNN) deposition on PVIs in several brain regions, and the well characterized role of inhibitory signaling in alcohol use disorders. Loss of microglial-MyD88 had minimal effects on voluntary alcohol intake and anxiety-like behaviors. Alcohol exposure did not modify observed MyD88-dependent changes in PVIs/PNNs, despite altering microglial morphology in the male prefrontal cortex independent of genotype. The addition of an early life endotoxin challenge was sufficient to induce an increase in adult alcohol consumption in both MyD88-deficient and control males. However, injection of saline alone also induced an increase in adult drinking in MyD88-deficient males. These findings suggest that microglial-MyD88 signaling does not strongly regulate alcohol intake under baseline conditions in a one-bottle, voluntary binge-drinking paradigm, however there may be a role for microglial-MyD88 signaling in modulating the impact of developmental environmental contexts, such as stress, in later-life male drinking behavior. This work highlights the importance of developmental context, such as stress or inflammatory history, in understanding underlying microglia signaling mechanisms in conferring AUD risk.

neuroscience↗

Maternal high-fat diet drives sex-specific microglia remodeling of serotonergic reward circuits

Maternal nutrition shapes offspring brain development and influences neurodevelopmental disorder risk, but the underlying mechanisms remain unclear. In mice, maternal high-fat diet exposure disrupted microglia-serotonin interactions during a critical postnatal period, producing persistent, sex-specific mesolimbic alterations. Male but not female offspring showed increased serotonergic fiber density in the nucleus accumbens (NAc), coincident with reduced microglial phagocytosis of serotonergic projections. Microglial 5-HT2C receptor signaling is a key regulator of this process. Viral over expression in microglia, mimicking diet-induced upregulation, was sufficient to cause serotonergic hyperinnervation. By adulthood, male offspring displayed increased NAc serotonin release and projection-specific changes in dorsal raphe physiology. These circuit alterations accelerated reward-motivated learning, a phenotype reproduced by chemogenetic activation of NAc-projecting serotonergic neurons. Together, these findings reveal a novel mechanism by which maternal diet programs serotonergic circuit assembly and behavior in a sex-specific manner, providing a potential link between early-life metabolic inflammation and lifelong serotonergic dysfunction.

neuroscience↗

Prenatal exposure to environmental stressors alters gut macrophage development and gastrointestinal function of male offspring

Gastrointestinal (GI) dysfunction is a frequently reported comorbidity of neurodevelopmental disorders (NDDs). Early-life inflammatory challenges from the environment (e.g. infection, toxicants) can increase risk for NDDs but the impact of such stressors on the developing GI tract is not well understood. We investigated possible mechanisms by which GI comorbidities occur in response to environmental stressors using our well-characterized model of combined gestational exposure to air pollution (diesel exhaust particles, DEP) and maternal stress (MS), which induces social deficits in male but not female offspring. We show that DEP/MS disrupts normal GI development, leading to altered small intestine morphology in neonatal males, but not females. Recent evidence shows that resident macrophages of the gut prune enteric neurons during a precise postnatal window. We found decreased pruning of gut enteric neurons by the resident macrophages of the muscularis externa in DEP/MS exposed males at postnatal day 14. In line with this, we saw the expression of motor neuron-associated genes spike in males at the same postnatal time point following DEP/MS exposure. Finally, we assessed the motor function of the GI tract of these animals and observed dysmotility in DEP/MS males only. Taken together, these findings establish intestinal macrophages as a mediator of GI development that is sensitive to early-life perturbations from the environment, highlighting a potential mechanism connecting NDDs with comorbid GI dysfunction.

developmental biology↗