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Nedelescu, H.

Publications and source records attributed to Nedelescu, H..

2 recordsLinked to original sources

Medial prefrontal cortical neurotransmitters reactive to relapse-promoting and relapse-suppressing cues in rats trained to self-administer cocaine or alcohol

Environmental cues conditioned to signal drug availability (S+) or omission (S-) activate specific neurons (neuronal ensembles/engram cells) within the medial prefrontal cortex (mPFC) to promote and suppress drug relapse in rats. However, the neurochemical source of such cue-specific activation remains unknown. In this study, we determined extracellular neurotransmitter fluctuations reactive to S+ vs. S- in the infralimbic (IL) and prelimbic (PL) cortices of male rats trained to lever-press for cocaine or alcohol self-administration. In cocaine- or alcohol-trained rats exposed to S+, no significant neurotransmitter fluctuations were observed in IL or PL. In cocaine-trained rats exposed to S-, glutamate, serotonin, taurine and adenosine were increased in PL but not in IL. In alcohol-trained rats exposed to S-, glutamate was increased, while dopamine and GABA were decreased, in IL but not in PL. Although S+ reactive neurotransmitters driving neuronal activation in mPFC remains to be elucidated, glutamate is likely the source of such activation by S- in rats trained to self-administer cocaine or alcohol. While drugs used for self-administration and cue-conditioning appear to dictate the type and anatomical specificity of S- evoked neurotransmission within mPFC, glutamate may serve as a common therapeutic target to mimic relapse-suppression by S- across cocaine and alcohol use disorders (CUD and AUD). In contrast, serotonin, taurine and adenosine may serve as the targets in CUD, while dopamine and GABA may serve as the targets in AUD.

neuroscience↗

Human outperform mouse Purkinje cells in dendritic complexity and computational capacity

Purkinje cells (PC) of the cerebellum are amongst the largest neurons of the brain and have been extensively investigated in rodents. However, their morphological and physiological properties in humans are still poorly understood. Here, we have taken advantage of high-resolution morphological reconstructions and of unique electrophysiological recordings of human PCs ex vivo to generate computational models and estimate computational capacity. An inter-species comparison showed that human PCs had similar fractal structure but were bigger than mouse PCs. Consequently, given a similar spine density (2/m), human PCs hosted about 5 times more dendritic spines. Moreover, human had higher dendritic complexity than mouse PCs and usually emitted 2-3 main dendritic trunks instead than 1. Intrinsic electroresponsiveness was similar in the two species but model simulations revealed that the dendrites generated ~6.5 times (n=51 vs. n=8) more combinations of independent input patterns in human than mouse PCs leading to an exponential 2n increase in Shannon information. Thus, while during evolution human PCs maintained similar patterns of spike discharge as in rodents, they developed more complex dendrites enhancing computational capacity up to the limit of 10 billion times.

neuroscience↗