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Mul, J. D.

Publications and source records attributed to Mul, J. D..

2 recordsLinked to original sources

Sex-specific signatures of brain-wide induction of ΔFOSB and altered co-activation networks in a mouse model for exercise training

Physical exercise training promotes brain health, yet the underlying mechanisms remain incompletely understood. Repeated neuronal activation results in accumulation of the transcription factor {Delta}FOSB, a long-lived splice variant of FOSB. We have previously demonstrated in rats that long-term voluntary wheel running (VWR), a behavioral paradigm that mimics exercise training in humans, altered {Delta}FOSB expression in a brain-wide manner, and that it reorganized co-activation networks. Here, we used a similar approach, now in mice, to map neuronal activation patterns following long-term VWR. Young-adult male and female C57BL/6JOlaHsd mice were allowed to run for four weeks on horizontal wheels, after which {Delta}FOSB immunoreactivity was quantified across 46 brain regions associated with stress regulation, cognition and reward-related behavior. Subsequently, network analysis was applied to assess VWR-mediated changes in patterns of interregional {Delta}FOSB co-activation and network topology. Male and female mice ran equal distances and VWR blunted bodyweight gain and final fat mass in both sexes. VWR modulated {Delta}FOSB expression across several cortical, striatal, hippocampal and thalamic regions. Network analysis revealed a sex-specific network reorganization, with reduced overall network density and increased cortical centrality in males, and greater global efficiency (i.e. small-worldness) in females. Thus, VWR induced large-scale, sex-dependent adaptations in brain (in)activation, reshaping network organization in distinct ways across sexes. Because {Delta}FOSB regulates many target genes, our findings indicate that long-term VWR induces widespread transcriptional alterations throughout the mouse brain. More focused follow-up studies are required to investigate the impact of these specific alterations on stress regulation, cognition and reward-related behavior. SIGNIFICANCE STATEMENTExercise training promotes brain health, but the underlying mechanisms remain elusive. Here, we studied {Delta}FOSB, a very stable transcription factor involved in neuroplasticity, after four weeks of running in mice. We show this altered {Delta}FOSB expression in a subset of 46 brain regions implicated in stress regulation, cognition and reward, notably with sex-specific signatures. This was accompanied by specific changes in {Delta}FOSB co-activation networks, including decreased network density and increased cortical centrality in males, and greater network efficiency in females. Our mouse {Delta}FOSB brain map following running improves our understanding of how exercise training impacts brain plasticity and offers a framework for more mechanistic future studies into running-mediated changes in stress regulation, cognition and reward-related behavior.

neuroscience↗

Pharmacological blockade of glutamatergic input to the lateral habenula modulates consumption of palatable diet components in male Wistar rats

The lateral habenula (LHb), a small epithalamic nucleus, modifies downstream midbrain dopamine neuron output to regulate negative state and aversion. Furthermore, specific glutamatergic input, from, among others, the lateral hypothalamus and central amygdala to LHb modulates consumption of (palatable) diet components. However, it is currently unclear if blockade of all glutamatergic input to the LHb is sufficient to alter eating behavior. Here, we used a pharmacological approach to inhibit all glutamatergic input to the LHb by bilateral infusion of either an AMPA/kainate receptor antagonist (CNQX) or an NMDA receptor antagonist (AP5) in the LHb of male Wistars rats. We then measured consumption of various palatable diets a control diet, a free-choice high-fat diet (fcHFD), a free-choice high-sugar diet (fcHSD), and a free-choice high-fat high-sugar diet (fcHFHSD)] at various timepoints up to 24h following infusion. Rats consumed their respective diets for 14 days before infusion of vehicle, CNQX or AP5, performed in counter-balanced random order. Infusion of CNQX or AP5 did not acutely (i.e. 1, 3, or 6h following infusion) affect consumption of a fcHFHSD component. Infusion of AP5 decreased fat intake at later time points (i.e. 10 or 24h following infusion) in fcHFHSD- and fcHFD-fed, but not fcHSD-fed, rats. Combined infusion of CNQX and AP5 decreased sucrose water consumption at 24h following infusion in fcHFHSD-fed rats. Collectively, these observations indicate that blocking glutamatergic transmission in the LHb does not have a major impact on acute consumption of palatable free-choice diet components. Nonetheless, more subtle long-term effects were observed, suggesting a modulatory role of LHb in eating behavior in the current experimental set-up.

neuroscience↗