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Lawrence, A. J.

Publications and source records attributed to Lawrence, A. J..

4 recordsLinked to original sources

Fornix subdivisions and spatial learning: a diffusion MRI study

The fornix is the major white matter tract linking the hippocampal formation with distal brain sites. Human and animal lesion studies show that the connections comprising the fornix are vital for specific attributes of episodic and spatial memory. The fornix, however, interconnects the hippocampal formation with an array of subcortical and cortical sites and it is not known which specific connections support spatial-mnemonic function. To address this, making use of a partly previously published dataset (Hodgetts et al., 2020), we applied a novel deterministic tractography protocol to diffusion-weighted magnetic resonance imaging (dMRI) data from a group of healthy young adult humans who separately completed a desktop-based virtual reality analogue of the Morris water maze task. The tractography protocol enabled the two main parts of the fornix, delineated previously in axonal tracing studies in rodents and primates, to be reconstructed in vivo, namely the pre-commissural fornix (connecting the hippocampus to the medial prefrontal cortex and the basal forebrain) and the post-commissural fornix (connecting the hippocampus to the medial diencephalon). We found that inter-individual differences in pre-commissural - but not, surprisingly, post-commissural - fornix microstructure (indexed by free water corrected fractional anisotropy, FA) were significantly correlated with individual differences in spatial learning, indexed by reduction in search error as individuals learned to navigate to a hidden target location from multiple starting points. This study provides novel evidence that flexible and/or precise spatial learning involves a hippocampal-basal forebrain/prefrontal network underpinned in part by the pre-commissural fornix.

neuroscience↗

FGF21 Analogue PF-05231023 on Alcohol Consumption and Neuronal Activity in the Nucleus Accumbens

Fibroblast growth factor 21 (FGF21) is a liver-derived hormone known to suppress alcohol consumption in mice and non-human primates. However, the role of FGF21 in modulating environmental and behavioural factors driving alcohol consumption--such as cue-driven responses and effortful actions to obtain alcohol--and its effects on neural activity related to consumption, remain unclear. Here, we evaluated the impact of PF-05231023, a long-acting FGF21 analogue, across multiple dimensions of alcohol consumption and motivation. PF-05231023 reduced alcohol intake and preference in a dose-and sex-specific manner; diminished approach behaviours following an alcohol but not sucrose cue; and decreased lever-pressing under a progressive-ratio schedule, both alone and when combined with the GLP-1 agonist Exendin-4. Additionally, PF-05231023 altered the microstructure of alcohol consumption by shortening drinking bouts and increased the recruitment of nucleus accumbens (Acb) neurons associated with bout termination. These findings demonstrate that PF-05231023 broadly suppresses alcohol-motivated behaviours and that targeting FGF21 signaling in combination with GLP-1 agonists may enhance therapeutic efficacy. Mechanistically, the observed reductions in alcohol consumption following PF-05231023 appear to involve diminished alcohol palatability and modulation of neuronal activity from distinct subsets of Acb neurons.

neuroscience↗

Hunger alters approach-avoidance behaviours differently in male and female mice

BackgroundThe decision about whether to approach or avoid a reward while under threat requires balancing competing demands. Sex-specific prioritisations (e.g. mating, maternal care), or generalised prioritisations (e.g. feeding, drinking, sleeping) may differently influence approach-avoidance behaviours based on the level of "risk" and homeostatic need state of the organism. However, given known sex differences in key aspects that may influence this behaviour, direct comparison of how male and female mice make decisions to approach or avoid a dangerous area while in a fasted state have yet to be conducted. MethodsWe conducted several approach-avoidance tasks with varied levels of risk and reward in male and female mice that were either fasted or sated (fed). Mice underwent a light-dark box, elevated plus maze, baited large open field and runway task to assess their approach and avoidance behaviour. ResultIn the light-dark box and elevated plus maze, when no reward was available, fasted female mice showed greater approach behaviours than male counterparts. In the baited large open field, when reward was available, both sexes showed increased approach behaviours when fasted. However, when sated, male mice conversely showed greater approach behaviours compared to sated female mice. In the runway task, while sated mice failed to learn, fasted male mice inhibited their reward consumption in response to increased shock intensity; however, fasted female mice were resistant to increased shock intensity. ConclusionsOur study identifies sex differences in decision making behaviour in mice based on satiety state across a number of approach-avoidance tasks. We highlight several nuances of these differences based on reward availability and punishment intensity. These results shine a lens on fundamental differences between the sexes in innate, survival driven behaviours that should be taken into account for future studies. Plain English summaryEveryday decision making is often accompanied by conflict - whether we make the most appropriate decision or not can be influenced by both internal and external factors. Environmental threats and physiological pressures, such as hunger, can influence decision-making processes skewing the risk/reward ratio, yet how this may differ between the sexes has not been explored in detail. Here we used several tasks that assess decision-making in mice while manipulating the levels of risk or reward. Our findings show fasted female mice are more willing to engage in "risky" behaviour compared to fed female mice when risk levels were low, and no food reward was available. However, when a food reward was available, but risk levels were low, both male and female fasted mice were more likely to engage in risky behaviour compared to fed mice. Finally, when risk levels were high and food reward was available, fasted female mice continued to engage in risky behaviour, while male fasted mice were not. Together our study identifies nuanced sex differences in how male and female mice make decisions influenced by both physiological (hunger) and environmental threats and highlight the importance of understanding fundamental differences between the sexes in behaviour. Highlights- Fasted female mice showed greater approach behaviours compared to fasted male counterparts in tasks without reward availability. - Fasted mice of both sexes displayed greater approach behaviours when a reward was available, compared to sated controls. - Fasted male mice inhibited reward consumption under increased shock intensity, whereas fasted female mice were resistant to mild foot shock.

neuroscience↗

Edinger-Westphal ghrelin receptor signalling regulates binge alcohol consumption in a sex specific manner

BackgroundRates of risky drinking are continuing to rise, particularly in women, yet sex as a biological variable has been largely ignored. An emerging yet understudied potential component of this circuitry is the central projecting Edinger-Westphal (EWcp), which is made up of two prominent, but distinct cell populations expressing either an array of neuropeptides (including cocaine and amphetamine regulated transcript; CART) or vGlut2 (glutamatergic). MethodsHere, we use a combination of approaches including genetic, molecular biology, behavioural testing, and electrophysiology to understand how the EWcp contributes to alcohol consumption in female versus male mice. ResultsChemogenetic inhibition of EWcpCART cells reduced binge drinking specifically in female, but not male mice. Further, inhibition of EWcpCART cells prevented ghrelin induced drinking, and viral-mediated ghrelin receptor (Ghsr) knockdown in the EWcp reduced binge drinking in female, but not male mice. RNAscope revealed Ghsr expression across peptidergic (marked by CART) and glutamatergic populations in the EWcp, with neurons from female mice more sensitive to bath application of ghrelin than male mice. Targeted knockdown of Ghsr from distinct EWcp populations revealed GHSR signalling on peptidergic, but not glutamatergic cells mediate binge drinking in female mice. Finally, both a GHSR inverse agonist and antagonist delivered directly within the EWcp reduced binge drinking in female mice. ConclusionsThese findings suggest the EWcp is a region mediating excessive alcohol bingeing through GHSR actions on peptidergic cells (CART-expressing) in female mice and expand our understanding of the neural mechanism(s) underpinning how the ghrelin system mediates alcohol consumption.

neuroscience↗