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Adiraju, S.

Publications and source records attributed to Adiraju, S..

2 recordsLinked to original sources

Electrophysiological correlates of attention in the locus coeruleus - anterior cingulate cortex circuit during the rodent continuous performance test

Sustained attention, the ability to focus on an activity or stimulus over time, is significantly impaired in many psychiatric disorders, and there remains a major unmet need in treating impaired attention. Continuous performance tests (CPTs) were developed to measure sustained attention in humans, non-human primates, rats, and mice, and similar neural circuits are engaged across species during CPT performance, supporting their use in translational studies to identify novel therapeutics. Here, we identified electrophysiological correlates of attentional performance in a touchscreen-based rodent CPT (rCPT) in the locus coeruleus (LC) and anterior cingulate cortex (ACC), two inter-connected regions that are implicated in attentional processes. We used viral labeling and molecular techniques to demonstrate that neural activity is recruited in LC-ACC projections during the rCPT, and that this recruitment increases with cognitive demand. We implanted male mice with depth electrodes within the LC and ACC for local field potential (LFP) recordings during rCPT training, and identified an increase in ACC delta and theta power, and an increase in LC delta power during correct responses in the rCPT. We also found that the LC leads the ACC in theta frequencies during correct responses while the ACC leads the LC in gamma frequencies during incorrect responses. These findings may represent translational biomarkers that can be used to screen novel therapeutics for drug discovery in attention.

neuroscience↗

The Ventral Midline Thalamus Mediates Successful Deliberation by Coordinating Prefrontal and Hippocampal Neural Activity

When faced with difficult choices, the possible outcomes are considered through a process known as deliberation. In rats, deliberation can be reflected by pause-and-reorienting behaviors, better known as Vicarious Trial and Errors (VTEs). While VTEs are thought to require medial prefrontal cortex (mPFC) and dorsal hippocampal (dHPC) interactions, no work has demonstrated such a dual requirement. The nucleus reuniens (Re) of the ventral midline thalamus is anatomically connected with both the mPFC and dHPC, is required for HPC-dependent spatial memory tasks, and is critical for mPFC-dHPC neural synchronization. Currently, it is unclear if, or how, the Re is involved in deliberation. Therefore, by examining the role of the Re on VTE behaviors, we can better understand the anatomical and physiological mechanisms supporting deliberation. Here, we examined the impact of Re suppression on VTE behaviors and mPFC-dHPC theta synchrony during well-learned performance of a HPC-dependent delayed alternation (DA) task. Pharmacological suppression of the Re increased VTE behaviors that resulted in erroneous choices. These errors were best characterized as perseverative behaviors, where at the decision-point, some rats repeatedly turned in the direction that previously yielded no reward, while simultaneously deliberating. These failed deliberations were associated with a reduction in mPFC-dHPC theta coherence at the choice-point. Importantly, the reduction in mPFC-dHPC theta synchrony observed during VTE behaviors was almost entirely driven by Re-suppression induced changes to the mPFC theta oscillation. Our findings suggest that the Re is important for successful deliberation, and mPFC-dHPC interactions, by coordinating local theta oscillations in the mPFC.

neuroscience↗