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Roginski, A. C.

Publications and source records attributed to Roginski, A. C..

3 recordsLinked to original sources

Repeated shrimp allergen exposure drives 5-lipoxygenase-dependent avoidance and selective gut-brain activation

Peripheral immune processes can shape animal behavior, yet how noninfectious inflammatory reactions affect neural activity and behavioral outputs remains poorly understood. We developed an optimized murine model of shrimp allergy using whole shrimp extract to examine how a complex dietary allergen elicits integrated immune, neural, and behavioral responses. Sensitized mice received repeated oral shrimp challenges and were assessed for allergic pathology, food preference, affective-like behaviors, and neuronal activation in the brain. Repeated exposure increased total IgE and shrimp-specific IgG1, induced mast cell activation, accelerated gastrointestinal transit, caused mild hypothermia consistent with oral anaphylaxis, and increased intestinal length. Shrimp-sensitized mice did not avoid shrimp solution after sensitization alone. Instead, avoidance emerged only after repeated oral challenges and strengthened over time. This delayed aversion occurred without detectable changes in locomotor activity or measures of anxiety-like or depressive-like behavior at the time points tested. Repeated shrimp exposure increased cFOS expression in the area postrema, nucleus of the tractus solitarius, central amygdala, and paraventricular nucleus of the thalamus, implicating brainstem and limbic-thalamic pathways involved in visceral sensing and aversion. Pharmacological inhibition of 5-lipoxygenase partially reversed avoidance and reduced circulating mast cell protease-1 in allergic mice. These findings establish a robust whole-shrimp allergy model and show that a complex food allergen engages gut-brain pathways to promote 5-lipoxygenase-dependent avoidance. The delayed, selective nature of this response supports immune-mediated food aversion as a shared output of food allergy, while suggesting that its kinetics and neural recruitment vary with allergen identity and inflammatory context.

immunology↗

Systemic endotoxemia induces integrated sickness physiology in female BALB/c mice

Sickness is an organismal response to inflammation, yet its immune, metabolic, neural, and behavioral components are often studied separately and predominantly in male C57BL/6 mice. In this study, we characterized these responses to systemic lipopolysaccharide (LPS) in female BALB/c mice. Mice received intraperitoneal LPS at moderate concentrations and outcomes were assessed during the acute and resolving phases of endotoxemia. LPS caused rapid disappearance of resident peritoneal macrophages, followed by neutrophil accumulation and increased circulating TNF- and IL-6. In the liver, LPS induced inflammatory, acute-phase, and anti-inflammatory transcripts while suppressing genes involved in lipid, cholesterol, and xenobiotic metabolism. Hepatic glutathione was reduced, whereas total superoxide dismutase activity was unchanged. These peripheral responses were followed by transient hypothermia, reduced food intake, and body weight loss. Regional brain mapping showed increased c-Fos labeling in the area postrema, nucleus of the solitary tract, external lateral parabrachial nucleus, paraventricular nucleus of the hypothalamus, and arcuate nucleus. In parallel, LPS selectively promoted IBA1-positive area in the median eminence and arcuate nucleus, whereas several other regions showed no changes, indicating that neuronal and microglial responses are regionally distinct. Behaviorally, LPS reduced locomotion and exploration, increased freezing, and increased forced-swim immobility. Changes in spatial exploration were most pronounced during the acute phase, whereas locomotor suppression and passive stress-coping persisted longer and varied in magnitude with the timing of inflammatory challenge. Together, these findings show that systemic LPS produces a coordinated sickness state in female BALB/c mice that links peripheral inflammation and hepatic metabolic and redox changes with region-specific neuronal and microglial responses, altered thermoregulation and feeding, and behavioral suppression.

immunology↗

Maternal obesity induces developmental programming of Intestinal stem cells through an IL-17A/PPAR immune-epithelial axis

Maternal obesity is associated with increased risk of sporadic colorectal cancer (CRC) in offspring, suggesting that early-life environmental exposures durably shape disease susceptibility. Intestinal stem cells (ISCs), long-lived drivers of epithelial renewal and tumor initiation, are well poised to mediate this effect; however, how maternal obesity influences ISC programming during development remains poorly understood. Using mouse models of diet-induced obesity, we show that exposure to a maternal high-fat Western diet (mHFD) during pre- and postnatal development stably programs colonic ISCs. Offspring exhibit increased ISC proliferation, enhanced self-renewal, a hypermetabolic state, and altered epithelial lineage composition that persists into adulthood despite dietary normalization. These changes are accompanied by increased tumor burden following loss of Apc heterozygosity. Mechanistically, we identify the pro-inflammatory cytokine IL-17A as a key extrinsic driver and PPARd/a nuclear receptors as intrinsic mediators of the mHFD phenotype, revealing an immune-epithelial axis that programs ISC function during early life. Together, our findings demonstrate that maternal metabolic environments durably enhance stem cell fitness, providing a mechanistic link between developmental exposure and adult disease risk.

cell biology↗