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Hokfelt, T.

Publications and source records attributed to Hokfelt, T..

3 recordsLinked to original sources

Methamphetamine-induced disruption of neuropeptide expression in mice

Psychoactive and psychotoxic drugs are particularly harmful, if their use coincides with critical developmental windows of brain maturation. Methamphetamine is one such stimulant with developmental exposure increasing seizure susceptibility and long-term neuronal maladaptation in children. Nevertheless, the extent at which infant and adult vulnerability to methamphetamine could differ in time-course and severity remains incompletely understood. Here, we developed a method to monitor methamphetamine-induced hyperactivity in infant mice at high temporal resolution, differentiate it from a biphasic response in adults, and link it to activity changes in cortical areas executing goal-directed (escape) behaviors in infant subjects when using Fos expression as a molecular surrogate. Subsequently, we hypothesized that methamphetamine could alter the expression and cellular distribution of inhibitory neuropeptides, which, when co-released with fast neurotransmitters, could protect circuit plasticity by counteracting methamphetamine-induced hyperexcitability. Methamphetamine differentially altered somatostatin, cholecystokinin, and galanin expression in corticolimbic areas. These data suggest that methamphetamine can evoke age-specific neurocircuit modifications, at least in mice.

neuroscience↗

Neural ensembles that encode affective mechanical and heat pain in mouse spinal cord

Acute pain is an unpleasant experience caused by noxious stimuli. How the spinal neural circuits attribute differences in quality of noxious information remains unknown. By means of genetic capturing, activity manipulation and single cell RNA sequencing, we identified distinct neural ensembles in mouse spinal cord encoding mechanical and heat pain. Re-activation or silencing of these ensembles potentiated or stopped, respectively, affective but not reflex behaviour without altering pain behaviour to cross stimuli modality. Within ensembles, polymodal Gal+ inhibitory neurons with monosynaptic contacts to A-fiber sensory neurons gated affective pain independent of modality. Peripheral nerve injury led to microglia driven inflammation and an ensemble transition with decreased recruitment of Gal+ inhibitory neurons and increased excitatory drive. However, activating Gal+ neurons reversed hypersensitivity associated with neuropathy. Our results reveal the existence of a spinal representation which forms the neural basis of the discriminative and affective qualities of acute pain and that these neurons are under the control of a shared feed-forward inhibition.

neuroscience↗

Expression of substance P, NPY and their Receptors Is Altered in Major Depression

BACKGROUNDMajor depressive disorder (MDD) is a serious disease and a burden to patients, families and society. Rodent experiments and human studies suggest that several neuropeptide systems, including substance P(SP)/tachykinin, neuropeptide Y(NPY) and their G protein-coupled receptors are involved in mood regulation. METHODSWe assessed the transcript levels (qPCR) of SP/tachykinin and NPY systems in five regions from postmortem brains of male and female depressed subjects who committed suicide (DSS) and controls: dorsolateral prefrontal cortex (DLPFC), anterior cingulate cortex (ACC), the dorsal raphe nucleus (DRN), locus coeruleus (LC) and medullary raphe nuclei (MRN). We also analysed human LC neurons isolated using LCM with Smart-seq2 RNA sequencing. RESULTSTranscripts for all nine members were detected in male and female controls with marked regional variations of the raw CT values and with the highest levels for several tachykinin and tachykinin receptor transcripts in the DRN and for NPY and NPYR transcripts in the PFC regions. Significant sex differences for controls were recorded only in the DRN (NPYR2 >in females) and LC (TAC3 and NPY >in females). Elevated expression in DSS was recorded in (i) DLPFC for SP, TAC and TAC3 in females, SP in males, and NPYR1 in both sexes; and (ii) LC for all tachykinin family transcripts in females, SP, TACR1 and TACR3 in males, NPY in both sexes, and NPYR1 in males. CONCLUSIONSThe selective perturbation of neuropeptide systems in MDD patients may assist in the search for novel treatment strategies for subjects afflicted by this grave disorder.

neuroscience↗