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Tiefensee-Ribeiro, C.

Publications and source records attributed to Tiefensee-Ribeiro, C..

2 recordsLinked to original sources

Behavioural hyperactivity and risk-taking in young-adult male mice correlate with increased dopamine release in dorsal, but not ventral, striatum

Adolescence is characterized by increased novelty seeking, impulsivity, locomotion and risk-taking, behaviours that facilitate the transition to adulthood but may also increase vulnerability to psychiatric illness. Maturation of dopamine (DA) transmission within the striatum is thought to contribute to these behavioural changes. However, the developmental trajectory of striatal DA release remains unclear, with conflicting evidence regarding age- and sex-dependent changes, particularly across dorsal and ventral striatal regions. Complicating interpretation, many studies classify mice younger than 2 months as 'adults,' potentially obscuring important developmental differences. Here, we examined how age, sex and striatal subregion influence DA release during adolescence and early adulthood. DA release was measured in dorsal and ventral striatal brain slices from male and female C57BL/6J mice at 2 and 4 months of age, corresponding to adolescence and young adulthood. Ultrafast imaging of the genetically encoded DA sensor, dLight, was used to quantify extracellular DA transients evoked by low- and high-frequency electrical stimulation. Glutamatergic and cholinergic transmission was pharmacologically blocked to isolate DA release intrinsic to dopaminergic axons. DA release measures were related to exploratory and locomotor behaviour. We identified a male-specific increase in dorsal striatal DA release between 2 and 4 months of age that coincided with increased locomotion and risk-taking. In contrast, DA release in the ventral striatum did not show comparable age- or sex-dependent changes. These differences were not attributable to altered glutamatergic or cholinergic contributions to DA release. Together, these findings demonstrate that maturation of striatal DA transmission is region- and sex-dependent, with prominent developmental changes occurring in the dorsal striatum during the transition from adolescence to adulthood. These findings help reconcile conflicting reports of developmental DA release and emphasize the importance of considering age, sex and striatal subregion when defining mature dopaminergic function in rodents.

neuroscience↗

Neuronal secretome from bipolar patient-derived neurons alters network function and contains candidate biomarkers for diagnosis and lithium response

Delayed diagnosis and treatment are a major burden to patients with bipolar disorder. While lithium is the most effective treatment against mania, depressive episodes, and suicide, only 30% of patients respond to it fully. Currently there are no reliable methods to predict lithium responsiveness. To address these challenges, we aimed to identify potential diagnostic and treatment response biomarkers for BD, in addition furthering understanding of BD pathophysiology. Here, we leveraged human induced pluripotent stem cell (hiPSC) derived neurons from lithium responsive (LR), lithium non-responsive (LNR), and healthy age-matched controls (CTL). We found extracellular vesicle (EV) cargos from hiPSC-derived neurons are indicative of disease state and treatment-response. Unbiased proteomic and miRNA profiling identified 10 proteins and 13 miRNAs that were differentially expressed in BD EVs relative to CTL, as well as distinct molecular signatures separating LR ad LNR groups. These differences converged on pathways related to synaptic function, neurotrophic signalling, and cellular stress responses. Additionally, we found the BD neuronal secretome alters activity in non-BD neuronal networks. Chronic treatment of CTL cultures with BD neuron-conditioned media modified the proportion of active neurons and the frequency and amplitude of calcium transients in individual neurons. We demonstrate that neuronal EVs contain molecular signatures of disease state and treatment response in BD and identify the BD secretome as an active regulator of neuronal network homeostasis. This study provides novel insights into the pathophysiology of BD and candidate biomarkers for personalized BD diagnosis and treatment selection.

neuroscience↗