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Teixeira, E.

Publications and source records attributed to Teixeira, E..

4 recordsLinked to original sources

Valence-specific ensembles in the laterodorsal tegmentum encode salient stimuli and modulate motivated behavior

The laterodorsal tegmentum (LDT) is a brainstem hub that integrates sensory and motivational signals to regulate adaptive behavior. While LDT neurons are known to modulate reward and aversion, whether salient stimuli recruit distinct neuronal ensembles within this structure remains unknown. Here, combined cell-type-specific calcium imaging, activity-dependent genetic tagging (TRAP2), and optogenetic reactivation to investigate how rewarding and aversive stimuli recruit and functionally define LDT neurons. Notably, single exposures to cocaine or shock in TRAP2;Ai14 mice labeled spatially and neurochemically distinct ensembles, with minimal overlap. We used fiber photometry and TRAP2 system to tag active neuronal ensembles in the LDT during cocaine (coca-LDT) and foot shock (shock-LDT) exposure, expressing GCaMP8m (green) in these neurons and, simultaneously, sRGECO (red) in the whole LDT. Our results demonstrate coca-LDT activation by physical aversive events and valenced odours, with reduced activity in response to rewarding liquids. Shock-LDT showed activation by physical aversive events, odours, and shock-predictive cues. Additionally, optogenetic reactivation of cocaine-TRAPed ensembles in a two-choice operant task biased action selection toward stimulation-paired responses, whereas shock-TRAPed ensemble activation did not drive avoidance. These findings identify functionally segregated LDT ensembles recruited by opposing motivational stimuli and reveal a causal role for reward-activated brainstem ensembles in shaping behavior. This functional segregation may contribute to the brains ability to differentiate stimulus types and, to some extent, valence experiences. Our results may provide evidence on how the LDT influences decision-making processes in addiction and anxiety disorders, potentially paving the way for novel therapeutic approaches.

neuroscience↗

Dissociable neuronal substrates for positive and negative valence stimuli in the nucleus accumbens

The nucleus accumbens (NAc) responds to both natural and artificial rewards and to aversive stimuli; however, it remains unclear whether these opposing valence signals engage distinct neuronal ensembles. Here we used Fos-CreERT2-based activity-dependent tagging to label NAc neuronal ensembles activated by cocaine or foot shock. We found that cocaine ensemble consisted predominantly of dopamine D1 receptor-expressing medium spiny neurons (D1-MSNs), whereas foot shock ensemble similarly recruited D1- and D2-MSNs. One-photon calcium imaging in freely moving mice revealed that acute cocaine primarily excited D1-MSNs while inhibiting the majority of D2-MSNs, whereas foot shock induced excitatory responses in both types of MSNs. Optogenetic reactivation of the cocaine-ensemble elicited a strong behavioural preference, whereas reactivation of the shock-ensemble produced no significant behavioural effect. Together, these findings demonstrate that cocaine recruits a functionally specific NAc ensemble distinct from that recruited by shock, providing mechanistic insight into the valence-specific neuronal substrates underlying reward and aversion processing.

neuroscience↗

Molecular Insights into ANPEP in Gastric Adenocarcinoma

Alanyl aminopeptidase (ANPEP) has been implicated in various cancers, but its specific role in gastric adenocarcinoma (GC) remains incompletely understood. This study analyzed ANPEP gene expression in gastric cancer (GC), peritumoral tissue (PTT), metaplasia (M), and normal tissue (N). Total RNA was extracted, libraries were prepared and sequenced on the Illumina NextSeq 500. Data was processed using the nf-core/rnaseq pipeline. Transcript quantifications were imported with tximport and normalized using DESeq2. Differential expression (|log2FC| >2; adj. p < 0.05) and Kruskal-Wallis tests identified key genes. ANPEP was significantly upregulated in GC, PTT, and M compared to normal tissue (p < 0.01), suggesting its involvement in early mucosal transformation and malignant progression. Heatmap analysis revealed upregulation of genes related to immune function and oxidative stress, indicating an immunosuppressive and apoptosis-resistant tumor microenvironment. Correlation analyses identified strong positive associations between ANPEP and genes involved in cytoskeletal remodeling, immune modulation, and metabolic regulation, suggesting that ANPEP supports both the invasive potential of tumor cells and the establishment of an immunosuppressive niche. These findings position ANPEP as a promising biomarker for early detection and a candidate for targeted therapies.

cancer biology↗

Adaptive changes of cholinergic projections to the nucleus accumbens bidirectionally mediate cocaine reinforcing effects

The laterodorsal tegmentum (LDT) sends critical inputs to distinct reward circuit regions, including the nucleus accumbens (NAc), but their functional role in addiction-related behaviors remains underexplored. Here, we demonstrate that LDT-NAc cholinergic projections undergo cocaine-induced adaptations and modulate cocaine-related behaviors. Using cell type-specific tracing, we show that LDT neurons preferentially innervate NAc medium spiny neurons and cholinergic interneurons. Large-scale in vivo recordings reveal that cocaine pre-exposure induces persistent alterations in both LDT and NAc neuronal dynamics and modifies responses to subsequent cocaine challenge. Remarkably, pre-exposure to cocaine triggers population-specific adaptations in the LDT, selectively enhancing excitability of LDT-NAc-projecting cholinergic neurons while reducing that of non-projecting cholinergic cells. Behaviorally, optogenetic activation of LDT-NAc cholinergic projections enhances cocaine conditioning, whereas their inhibition diminishes cocaines reinforcing effects. Our findings identify LDT-NAc cholinergic inputs as key substrates of cocaine-induced plasticity, and critical mediators of cocaines rewarding properties, introducing a novel component to addiction circuitry.

neuroscience↗