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Urbain, G. R.

Publications and source records attributed to Urbain, G. R..

2 recordsLinked to original sources

TRPV1-expressing neurons are dispensable for photophobia: evidence from a novel mouse light sensitivity assay

Background: Light hypersensitivity, or photophobia, affects nearly 80% of people with migraine and is the most prevalent symptom after headache. Despite its high prevalence, the neural pathways underlying migraine-associated light hypersensitivity remain poorly understood, in part due to the lack of behavioral assays that directly assess light sensitivity in mice. Consequently, whether nociceptors contribute to the development of photophobia remains unclear. Methods: We established a novel light sensitivity assay (LSA) to quantify the response to light in mice by measuring facial grimacing. The assay was applied to evaluate light hypersensitivity elicited by three established migraine triggers: calcitonin gene-related peptide (CGRP), nitric oxide donor (sodium nitroprusside), and repeated stress. To determine the contribution of TRPV1 nociceptors, mice were treated with resiniferatoxin (RTX) to ablate these neurons. Results: The LSA detected light hypersensitivity following administration of CGRP, sodium nitroprusside, and repeated stress in wild-type (WT) mice. Sex differences were not observed in CGRP- or stress-induced light hypersensitivity. Furthermore, ablation of TRPV1 nociceptors did not reduce light hypersensitivity induced by migraine triggers. Conclusions: These findings present the LSA as a robust, reproducible, and easy to implement behavioral assay for measuring light sensitivity in preclinical migraine models. Our results further demonstrate that TRPV1 nociceptors are dispensable for the development of migraine-associated light hypersensitivity. This assay provides a useful method for investigating the mechanisms underlying light sensitivity and for evaluating potential therapeutic strategies.

neuroscience↗

Restraint Stress Prolongs Diestrus Phase of Mouse Estrous Cycle

Globally, stress levels among women of reproductive age are rising, while fertility rates continue to decline. Despite this correlation, a causal link between stress and reduced fertility remains unclear. Experimental studies have shown that severe and chronic stress can disrupt reproductive function, but the effects of mild stress, more representative of the daily stress experienced by most women, are still poorly understood. This study aims to identify how mild stress affects the mouse estrous cycle. Nineteen mice were vaginally lavaged daily one week before stress, during 3-day stress, and one week after stress. The mild stress paradigm consisted of two hours of repeated restraint stress each day for three days. Restraint stress disrupted the estrous cycle causing a longer cycle length in stressed mice, characterized by an extended duration in the diestrus phase. These findings suggest that even moderate stress perturbs normal reproductive cycling, potentially contributing to reduced fertility. This work highlights the need to further explore how everyday stressors may subtly impair reproductive health.

neuroscience↗