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Hall, A. L.

Publications and source records attributed to Hall, A. L..

2 recordsLinked to original sources

A bifunctional optical reporter for tracking estrogen response dynamics in neurons

Estrogens are inherently dynamic signaling molecules whose fluctuations induce profound shifts in physiology and behavior. However, methods for tracking the dynamics of estrogen action in vivo are limited and not tissue-specific, making it difficult to directly relate dynamics to ongoing physiological, behavioral, and neural changes. Traditionally, estrogen sensitive cells have been identified by metrics such as receptor expression or radioactive ligand binding, but these measures do not capture the dynamic nature of hormone response. In addition, current methods for assessing the dynamics of estrogens in an individual, including microdialysis and vaginal cytology, lack temporal and spatial resolution.To address this need we developed a bifunctional reporter called neuro-seeER (neuronal see Estrogen Response) that can be used to track changes in exogenous and endogenous estrogen dynamics in vitro and in vivo, including longitudinally in behaving animals. We confirmed that the fluorescent response requires estrogen receptor expression, is specific to activation with estradiol, and is consistent with the timescale of transcriptional induction. Neuro-seeER expression in the hypothalamus of Esr1-Cre mice revealed dynamic labeling of estrogen-responsive cells following treatment with exogenous estradiol, and fluorescence-aided cell sorting followed by RNA-sequencing confirmed that high neuro-seeER response is associated with enriched expression of genes associated with endogenous estrogen responses. Using a novel "snapshot" photometry method to track the dynamics longitudinally in vivo, we demonstrate that we can robustly detect exogenous estrogen response across multiple hypothalamic sites simultaneously. Finally, we demonstrate that this tool is uniquely suited to capturing endogenous estrogen response dynamics in vivo across the long timescale of the estrous cycle, revealing individual differences in neural estrogen dynamics. Together, these findings reveal unexpected cellular and temporal heterogeneity of the transcriptional response and demonstrate the feasibility of tracking the dynamics of hormonal response alongside additional neural, cell signaling, or behavioral measures.

neuroscience↗

Methylglyoxal alters C-fibre Activity-Dependent Slowing and Induces Heat Hyperalgesia in a Sex-Dependent Manner

IntroductionRaised plasma levels of the glycolytic metabolite methylglyoxal are associated with pain symptoms in patients with diabetic neuropathy. Methylglyoxal can regulate the function of NaV1.7 and NaV1.8 ion channels that are involved in the phenomenon of activity-dependent slowing (ADS) in C-fibre nociceptors. C-fibre ADS differs between the sexes and can regulate spinal network function. ObjectiveExplore the impact of methylglyoxal upon C-fibre ADS and pain sensitivity in both sexes. In addition, investigate the influence of ADS upon the processing of C-fibre inputs, in noxious heat responsive spinal neurons. ResultsCompound action potential recording of isolated dorsal roots incubated with methylglyoxal (100{micro}M, 3 hr) revealed a sex-dependent impact upon C-fibre ADS. In male roots, C-fibre ADS was reduced whereas in female roots it was increased. Acute methylglyoxal application (100{micro}M/1mM, 10 min) did not modify C-fibre ADS. Systemic methylglyoxal administration (5g, 3h prior) induced heat hyperalgesia in male but not female juvenile rats. Patch-clamp recording in spinal slices with attached dorsal roots revealed that length-dependent manipulation of ADS altered action potential firing to stimulus trains in noxious heat responsive Fos-EGFP+ spinal neurons. ConclusionWe propose that methylglyoxal sex-dependent regulation of C-fibre ADS influences the spinal processing of noxious heat inputs that may contribute to the male specific induction of heat hyperalgesia following systemic methylglyoxal treatment. SummaryMethylglyoxal, implicated in painful diabetic neuropathy, sex-dependently alters C-fibre ADS, potentially influencing spinal processing of noxious heat to drive heat hyperalgesia in males only.

neuroscience↗