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1.
Int J Mol Sci ; 25(11)2024 May 29.
Article in English | MEDLINE | ID: mdl-38892125

ABSTRACT

A total of 3102 neurons were recorded before and following acute and chronic methylphenidate (MPD) administration. Acute MPD exposure elicits mainly increases in neuronal and behavioral activity in dose-response characteristics. The response to chronic MPD exposure, as compared to acute 0.6, 2.5, or 10.0 mg/kg MPD administration, elicits electrophysiological and behavioral sensitization in some animals and electrophysiological and behavioral tolerance in others when the neuronal recording evaluations were performed based on the animals' behavioral responses, or amount of locomotor activity, to chronic MPD exposure. The majority of neurons recorded from those expressing behavioral sensitization responded to chronic MPD with further increases in firing rate as compared to the initial MPD responses. The majority of neurons recorded from animals expressing behavioral tolerance responded to chronic MPD with decreases in their firing rate as compared to the initial MPD exposures. Each of the six brain areas studied-the ventral tegmental area, locus coeruleus, dorsal raphe, nucleus accumbens, prefrontal cortex, and caudate nucleus (VTA, LC, DR, NAc, PFC, and CN)-responds significantly (p < 0.001) differently to MPD, suggesting that each one of the above brain areas exhibits different roles in the response to MPD. Moreover, this study demonstrates that it is essential to evaluate neuronal activity responses to psychostimulants based on the animals' behavioral responses to acute and chronic effects of the drug from several brain areas simultaneously to obtain accurate information on each area's role in response to the drug.


Subject(s)
Behavior, Animal , Caudate Nucleus , Methylphenidate , Neurons , Nucleus Accumbens , Prefrontal Cortex , Ventral Tegmental Area , Animals , Methylphenidate/pharmacology , Prefrontal Cortex/drug effects , Prefrontal Cortex/physiology , Rats , Neurons/drug effects , Neurons/physiology , Neurons/metabolism , Caudate Nucleus/drug effects , Caudate Nucleus/physiology , Caudate Nucleus/metabolism , Male , Ventral Tegmental Area/drug effects , Ventral Tegmental Area/physiology , Nucleus Accumbens/drug effects , Nucleus Accumbens/physiology , Behavior, Animal/drug effects , Locus Coeruleus/drug effects , Locus Coeruleus/physiology , Rats, Sprague-Dawley , Dorsal Raphe Nucleus/drug effects , Dorsal Raphe Nucleus/physiology , Dorsal Raphe Nucleus/metabolism , Central Nervous System Stimulants/pharmacology
2.
Int J Neuropsychopharmacol ; 27(6)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38833581

ABSTRACT

BACKGROUND: The NMDA antagonist S-ketamine is gaining increasing use as a rapid-acting antidepressant, although its exact mechanisms of action are still unknown. In this study, we investigated ketamine in respect to its properties toward central noradrenergic mechanisms and how they influence alertness behavior. METHODS: We investigated the influence of S-ketamine on the locus coeruleus (LC) brain network in a placebo-controlled, cross-over, 7T functional, pharmacological MRI study in 35 healthy male participants (25.1 ± 4.2 years) in conjunction with the attention network task to measure LC-related alertness behavioral changes. RESULTS: We could show that acute disruption of the LC alertness network to the thalamus by ketamine is related to a behavioral alertness reduction. CONCLUSION: The results shed new light on the neural correlates of ketamine beyond the glutamatergic system and underpin a new concept of how it may unfold its antidepressant effects.


Subject(s)
Attention , Cross-Over Studies , Ketamine , Locus Coeruleus , Magnetic Resonance Imaging , Humans , Ketamine/pharmacology , Ketamine/administration & dosage , Locus Coeruleus/drug effects , Locus Coeruleus/diagnostic imaging , Locus Coeruleus/physiology , Male , Adult , Young Adult , Attention/drug effects , Attention/physiology , Excitatory Amino Acid Antagonists/pharmacology , Excitatory Amino Acid Antagonists/administration & dosage , Double-Blind Method , Antidepressive Agents/pharmacology , Antidepressive Agents/administration & dosage
3.
Brain Res ; 1839: 149040, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38815643

ABSTRACT

Traumatic brain injury (TBI) is a complex pathophysiological process that results in a variety of neurotransmitter, behavioral, and cognitive deficits. The locus coeruleus-norepinephrine (LC-NE) system is a critical regulator of arousal levels and higher executive processes affected by TBI including attention, working memory, and decision making. LC-NE axon injury and impaired signaling within the prefrontal cortex (PFC) is a potential contributor to the neuropsychiatric symptoms after single, moderate to severe TBI. The majority of TBIs are mild, yet long-term cognitive deficits and increased susceptibility for further injury can accumulate after each repetitive mild TBI. As a potential treatment for restoring cognitive function and daytime sleepiness after injury psychostimulants, including methylphenidate (MPH) that increase levels of NE within the PFC, are being prescribed "off-label". The impact of mild and repetitive mild TBI on the LC-NE system remains limited. Therefore, we determined the extent of LC-NE and arousal dysfunction and response to therapeutic doses of MPH in rats following experimentally induced single and repetitive mild TBI. Microdialysis measures of basal NE efflux from the medial PFC and arousal measures were significantly lower after repetitive mild TBI. Females showed higher baseline PFC-NE efflux than males following single and repetitive mild TBI. In response to MPH challenge, males exhibited a blunted PFC-NE response and persistent arousal levels following repetitive mild TBI. These results provide critical insight into the role of catecholamine system dysfunction associated with cognitive deficits following repeated injury, outcome differences between sex/gender, and lack of success of MPH as an adjunctive therapy to improve cognitive function following injury.


Subject(s)
Brain Concussion , Central Nervous System Stimulants , Methylphenidate , Norepinephrine , Prefrontal Cortex , Rats, Sprague-Dawley , Animals , Male , Norepinephrine/metabolism , Female , Prefrontal Cortex/metabolism , Prefrontal Cortex/drug effects , Central Nervous System Stimulants/pharmacology , Methylphenidate/pharmacology , Brain Concussion/metabolism , Brain Concussion/physiopathology , Brain Concussion/drug therapy , Rats , Brain Injuries, Traumatic/metabolism , Brain Injuries, Traumatic/drug therapy , Brain Injuries, Traumatic/physiopathology , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Arousal/drug effects , Arousal/physiology , Microdialysis/methods
4.
Sci Adv ; 10(17): eadj9581, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38669335

ABSTRACT

The supraspinal descending pain modulatory system (DPMS) shapes pain perception via monoaminergic modulation of sensory information in the spinal cord. However, the role and synaptic mechanisms of descending noradrenergic signaling remain unclear. Here, we establish that noradrenergic neurons of the locus coeruleus (LC) are essential for supraspinal opioid antinociception. While much previous work has emphasized the role of descending serotonergic pathways, we find that opioid antinociception is primarily driven by excitatory output from the ventrolateral periaqueductal gray (vlPAG) to the LC. Furthermore, we identify a previously unknown opioid-sensitive inhibitory input from the rostroventromedial medulla (RVM), the suppression of which disinhibits LC neurons to drive spinal noradrenergic antinociception. We describe pain-related activity throughout this circuit and report the presence of prominent bifurcating outputs from the vlPAG to the LC and the RVM. Our findings substantially revise current models of the DPMS and establish a supraspinal antinociceptive pathway that may contribute to multiple forms of descending pain modulation.


Subject(s)
Analgesics, Opioid , Locus Coeruleus , Medulla Oblongata , Pain , Periaqueductal Gray , Locus Coeruleus/metabolism , Locus Coeruleus/drug effects , Periaqueductal Gray/metabolism , Periaqueductal Gray/drug effects , Animals , Medulla Oblongata/metabolism , Medulla Oblongata/drug effects , Pain/drug therapy , Pain/metabolism , Analgesics, Opioid/pharmacology , Male , Adrenergic Neurons/metabolism , Adrenergic Neurons/drug effects , Mice , Neural Pathways/drug effects
5.
Neuropsychopharmacology ; 49(6): 915-923, 2024 May.
Article in English | MEDLINE | ID: mdl-38374364

ABSTRACT

Opioid use disorder is a chronic relapsing disorder encompassing misuse, dependence, and addiction to opioid drugs. Long term maintenance of associations between the reinforcing effects of the drug and the cues associated with its intake are a leading cause of relapse. Indeed, exposure to the salient drug-associated cues can lead to drug cravings and drug seeking behavior. The dorsal hippocampus (dHPC) and locus coeruleus (LC) have emerged as important structures for linking the subjective rewarding effects of opioids with environmental cues. However, their role in cue-induced reinstatement of opioid use remains to be further elucidated. In this study, we showed that chemogenetic inhibition of excitatory dHPC neurons during re-exposure to drug-associated cues significantly attenuates cue-induced reinstatement of morphine-seeking behavior. In addition, the same manipulation reduced reinstatement of sucrose-seeking behavior but failed to alter memory recall in the object location task. Finally, intact activity of tyrosine hydroxylase (TH) LC-dHPCTh afferents is necessary to drive cue induced reinstatement of morphine-seeking as inhibition of this pathway blunts cue-induced drug-seeking behavior. Altogether, these studies show an important role of the dHPC and LC-dHPCTh pathway in mediating cue-induced reinstatement of opioid seeking.


Subject(s)
Cues , Drug-Seeking Behavior , Hippocampus , Locus Coeruleus , Self Administration , Animals , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Male , Hippocampus/drug effects , Hippocampus/metabolism , Rats , Female , Drug-Seeking Behavior/drug effects , Drug-Seeking Behavior/physiology , Morphine/pharmacology , Morphine/administration & dosage , Rats, Sprague-Dawley , Neural Pathways/drug effects , Neural Pathways/physiology , Analgesics, Opioid/pharmacology , Analgesics, Opioid/administration & dosage , Opioid-Related Disorders/physiopathology , Extinction, Psychological/drug effects , Extinction, Psychological/physiology , Conditioning, Operant/drug effects , Conditioning, Operant/physiology
6.
Neuropsychopharmacology ; 49(6): 1014-1023, 2024 May.
Article in English | MEDLINE | ID: mdl-38368493

ABSTRACT

In the central nervous system, noradrenaline transmission controls the degree to which we are awake, alert, and attentive. Aberrant noradrenaline transmission is associated with pathological forms of hyper- and hypo-arousal that present in numerous neuropsychiatric disorders often associated with dysfunction in serotonin transmission. In vivo, noradrenaline regulates the release of serotonin because noradrenergic input drives the serotonin neurons to fire action potentials via activation of excitatory α1-adrenergic receptors (α1-AR). Despite the critical influence of noradrenaline on the activity of dorsal raphe serotonin neurons, the source of noradrenergic afferents has not been resolved and the presynaptic mechanisms that regulate noradrenaline-dependent synaptic transmission have not been described. Using an acute brain slice preparation from male and female mice and electrophysiological recordings from dorsal raphe serotonin neurons, we found that selective optogenetic activation of locus coeruleus terminals in the dorsal raphe was sufficient to produce an α1-AR-mediated excitatory postsynaptic current (α1-AR-EPSC). Activation of inhibitory α2-adrenergic receptors (α2-AR) with UK-14,304 eliminated the α1-AR-EPSC via presynaptic inhibition of noradrenaline release, likely via inhibition of voltage-gated calcium channels. In a subset of serotonin neurons, activation of postsynaptic α2-AR produced an outward current through activation of GIRK potassium conductance. Further, in vivo activation of α2-AR by systemic administration of clonidine reduced the expression of c-fos in the dorsal raphe serotonin neurons, indicating reduced neural activity. Thus, α2-AR are critical regulators of serotonin neuron excitability.


Subject(s)
Dorsal Raphe Nucleus , Locus Coeruleus , Receptors, Adrenergic, alpha-2 , Serotonergic Neurons , Synaptic Transmission , Animals , Dorsal Raphe Nucleus/drug effects , Dorsal Raphe Nucleus/physiology , Dorsal Raphe Nucleus/metabolism , Male , Receptors, Adrenergic, alpha-2/metabolism , Receptors, Adrenergic, alpha-2/physiology , Receptors, Adrenergic, alpha-2/drug effects , Locus Coeruleus/drug effects , Locus Coeruleus/physiology , Female , Serotonergic Neurons/drug effects , Serotonergic Neurons/physiology , Synaptic Transmission/drug effects , Synaptic Transmission/physiology , Mice , Excitatory Postsynaptic Potentials/drug effects , Excitatory Postsynaptic Potentials/physiology , Optogenetics , Adrenergic alpha-2 Receptor Agonists/pharmacology , Mice, Inbred C57BL , Norepinephrine/metabolism , Mice, Transgenic
7.
J Neurosci ; 43(13): 2338-2348, 2023 03 29.
Article in English | MEDLINE | ID: mdl-36849414

ABSTRACT

Photoaffinity ligands are best known as tools used to identify the specific binding sites of drugs to their molecular targets. However, photoaffinity ligands have the potential to further define critical neuroanatomic targets of drug action. In the brains of WT male mice, we demonstrate the feasibility of using photoaffinity ligands in vivo to prolong anesthesia via targeted yet spatially restricted photoadduction of azi-m-propofol (aziPm), a photoreactive analog of the general anesthetic propofol. Systemic administration of aziPm with bilateral near-ultraviolet photoadduction in the rostral pons, at the border of the parabrachial nucleus and locus coeruleus, produced a 20-fold increase in the duration of sedative and hypnotic effects compared with control mice without UV illumination. Photoadduction that missed the parabrachial-coerulean complex also failed to extend the sedative or hypnotic actions of aziPm and was indistinguishable from nonadducted controls. Paralleling the prolonged behavioral and EEG consequences of on target in vivo photoadduction, we conducted electrophysiologic recordings in rostral pontine brain slices. Using neurons within the locus coeruleus to further highlight the cellular consequences of irreversible aziPm binding, we demonstrate transient slowing of spontaneous action potentials with a brief bath application of aziPm that becomes irreversible on photoadduction. Together, these findings suggest that photochemistry-based strategies are a viable new approach for probing CNS physiology and pathophysiology.SIGNIFICANCE STATEMENT Photoaffinity ligands are drugs capable of light-induced irreversible binding, which have unexploited potential to identify the neuroanatomic sites of drug action. We systemically administer a centrally acting anesthetic photoaffinity ligand in mice, conduct localized photoillumination within the brain to covalently adduct the drug at its in vivo sites of action, and successfully enrich irreversible drug binding within a restricted 250 µm radius. When photoadduction encompassed the pontine parabrachial-coerulean complex, anesthetic sedation and hypnosis was prolonged 20-fold, thus illustrating the power of in vivo photochemistry to help unravel neuronal mechanisms of drug action.


Subject(s)
Anesthetics, Intravenous , Brain , Hypnosis , Hypnotics and Sedatives , Ligands , Photoaffinity Labels , Propofol , Animals , Male , Mice , Adrenergic Neurons/drug effects , Anesthesia, Intravenous , Brain/cytology , Brain/drug effects , Brain/metabolism , Brain/radiation effects , Electrocorticography , Electroencephalography , Hypnosis/methods , Hypnotics and Sedatives/administration & dosage , Hypnotics and Sedatives/chemistry , Hypnotics and Sedatives/pharmacology , Hypnotics and Sedatives/radiation effects , Locus Coeruleus/cytology , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Locus Coeruleus/radiation effects , Mice, Inbred C57BL , Parabrachial Nucleus/drug effects , Parabrachial Nucleus/metabolism , Parabrachial Nucleus/radiation effects , Photoaffinity Labels/chemistry , Photoaffinity Labels/radiation effects , Propofol/administration & dosage , Propofol/analogs & derivatives , Propofol/pharmacology , Propofol/radiation effects , Time Factors , Ultraviolet Rays , Anesthetics, Intravenous/administration & dosage , Anesthetics, Intravenous/chemistry , Anesthetics, Intravenous/pharmacology , Anesthetics, Intravenous/radiation effects
8.
Life Sci ; 286: 120030, 2021 Dec 01.
Article in English | MEDLINE | ID: mdl-34627774

ABSTRACT

AIMS: This study investigated the relationship between the analgesic efficacy of acetaminophen and the descending noradrenergic systems using rodent models of inflammatory pain. MAIN METHODS: Inflammatory pain models were established by carrageenan injection into rats' paws. The models were defined as acute (4 h after carrageenan injection), subacute (24 h after carrageenan injection), and late (1 week after carrageenan injection) phase. To evaluate intravenous acetaminophen treatment, the withdrawal threshold to mechanical stimuli was assessed simultaneously with in vivo microdialysis assay of noradrenaline levels in the locus coeruleus (LC). Further analyses were performed to observe the effect of yohimbine on the treatment and the impact of AM404 treatment, a metabolite of acetaminophen, on noradrenaline levels in the LC. KEY FINDINGS: In all phases, intravenous acetaminophen had a significant anti-hyperalgesic effect (p < 0.05). There was a significant time-dependent increase in the noradrenaline concentration within the LC (acetaminophen versus saline treatment; at 30 min, p < 0.001; 60 min, p < 0.01) in the subacute pain model, but not in the acute and late phase pain models. Intrathecal pre-injection of yohimbine attenuated the anti-hyperalgesic effect after acetaminophen injection only in the subacute model (p < 0.05). In the subacute pain model, intracerebroventricular administration of AM404 showed the same trend in noradrenaline levels as acetaminophen administration (AM404 versus vehicle group at 30 min, p < 0.001). SIGNIFICANCE: We found the descending noradrenergic inhibitory system is involved in the antinociceptive action of acetaminophen in the subacute phase of inflammatory pain.


Subject(s)
Acetaminophen/therapeutic use , Hyperalgesia/drug therapy , Inflammation/drug therapy , Norepinephrine/antagonists & inhibitors , Acetaminophen/pharmacology , Animals , Carrageenan/administration & dosage , Disease Models, Animal , Inflammation/chemically induced , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Male , Rats , Rats, Sprague-Dawley , Spinal Cord/drug effects , Spinal Cord/metabolism , Yohimbine/pharmacology
9.
Neuropharmacology ; 196: 108702, 2021 09 15.
Article in English | MEDLINE | ID: mdl-34246685

ABSTRACT

A growing body of literature implicates noradrenergic (NE) signaling in the modulation of ethanol consumption. However, relatively few studies have detailed specific brain pathways that mediate NE-associated binge-like ethanol consumption. To begin to fill this gap in the literature, male and female C57BL6/J and TH-ires-cre mice underwent pharmacological and chemogenetic testing, respectively, in combination with "drinking in the dark" procedures to model binge-like consumption of ethanol or sucrose solutions. First, we showed that intraperitoneal administration of the NE reuptake inhibitor, reboxetine, blunted binge-like ethanol intake in C57BL6/J mice. Chemogenetic activation of locus coeruleus (LC) tyrosine hydroxylase (TH)-expressing neurons blunted binge-like ethanol intake regardless of sex. Chemogenetic activation of LC projections to the lateral hypothalamus (LH), a region implicated in ethanol consumption, blunted binge-like ethanol drinking without altering sucrose intake in ethanol-experienced or ethanol-naïve mice. In C57BL/6 J mice, LH-targeted microinfusion of an α1-adrenergic receptor (AR) agonist blunted binge-like ethanol intake across both sexes, while LH infusion of a ß-AR agonist blunted binge-like ethanol intake in females exclusively. Finally, in mice with high baseline ethanol intake both an α1- AR agonist and an α-2 AR antagonist blunted binge-like ethanol intake. The present results provide novel evidence that increased NE tone in a circuit arising from the LC and projecting to the LH reduces binge-like ethanol drinking in mice, and may represent a novel approach to treating binge or heavy drinking prior to the development of dependence. This article is part of the special Issue on "Neurocircuitry Modulating Drug and Alcohol Abuse".


Subject(s)
Adrenergic Uptake Inhibitors/pharmacology , Binge Drinking/metabolism , Central Nervous System Depressants/administration & dosage , Ethanol/administration & dosage , Hypothalamic Area, Lateral/metabolism , Locus Coeruleus/metabolism , Norepinephrine/metabolism , Reboxetine/pharmacology , Adrenergic alpha-1 Receptor Agonists/pharmacology , Adrenergic alpha-2 Receptor Agonists/pharmacology , Adrenergic beta-Agonists/pharmacology , Animals , Binge Drinking/physiopathology , Female , Hypothalamic Area, Lateral/drug effects , Hypothalamic Area, Lateral/physiopathology , Locus Coeruleus/drug effects , Locus Coeruleus/physiopathology , Male , Mice , Neural Pathways , Tyrosine 3-Monooxygenase
10.
Endocr Regul ; 55(2): 120-130, 2021 May 21.
Article in English | MEDLINE | ID: mdl-34020528

ABSTRACT

It is apparent that the c-Fos and FosB/ΔFosB immunohistochemistry has generally become a useful tool for determining the different antipsychotic (AP) drugs activities in the brain. It is also noteworthy that there are no spatial limits, while to the extent of their identification over the whole brain axis. In addition, they can be in a parallel manner utilized in the unmasking of the brain cell phenotype character activated by APs and by this way also to identify the possible brain circuits underwent to the APs action. However, up to date, the number of APs involved in the extra-striatal studies is still limited, what prevents the possibility to fully understand their extra-striatal effects as a complex as well as differentiate their extra-striatal impact in qualitative and quantitative dimensions. Actually, it is very believable that more and more anatomical/functional knowledge might bring new insights into the APs extra-striatal actions by identifying new region-specific activities of APs as well as novel cellular targets affected by APs, which might reveal more details of their possible side effects of the extra-striatal origin.


Subject(s)
Amygdala/drug effects , Antipsychotic Agents/pharmacology , Arcuate Nucleus of Hypothalamus/drug effects , Locus Coeruleus/drug effects , Midline Thalamic Nuclei/drug effects , Paraventricular Hypothalamic Nucleus/drug effects , Proto-Oncogene Proteins c-fos/metabolism , Amygdala/metabolism , Animals , Arcuate Nucleus of Hypothalamus/metabolism , Humans , Locus Coeruleus/metabolism , Midline Thalamic Nuclei/metabolism , Paraventricular Hypothalamic Nucleus/metabolism
11.
Neurosci Lett ; 755: 135909, 2021 06 11.
Article in English | MEDLINE | ID: mdl-33892002

ABSTRACT

Orexin neuropeptides are implicated in the expression of morphine dependence. Locus coeruleus (LC) nucleus is an important brain area involving in the development of withdrawal signs of morphine and contains high expression of orexin type 1 receptors (OX1Rs). Despite extensive considerations, effects of immediate inhibition of OX1Rs by a single dose administration of SB-334867 prior to the naloxone-induced activation of LC neurons remains unknown. Therefore, we examined the direct effects of OX1Rs acute blockade on the neuronal activity of the morphine-dependent rats which underwent naloxone administration. Adult male rats underwent subcutaneous administration of 10 mg/kg morphine (two times/day) for a ten-day period. On the last day of experiment, intra-cerebroventricular administration of 10 µg/µl antagonist of OX1Rs, SB-334867, was performed just before intra-peritoneal injection of 2 mg/kg naloxone. Thereafter, in vivo extracellular single unit recording was employed to evaluate the electrical activity of LC neuronal cells. The outcomes demonstrated that morphine tolerance developed following ten-day of injection. Then, naloxone administration causes hyperactivity of LC neuronal cells, whereas a single dose administration of SB-334867 prior to naloxone prevented the enhanced activity of neurons upon morphine withdrawal. Our findings indicate that increased response of LC neuronal cells to applied naloxone could be prevented by the acute inhibition of the OX1Rs just before the naloxone treatment.


Subject(s)
Locus Coeruleus/physiology , Morphine Dependence/physiopathology , Naloxone/administration & dosage , Narcotic Antagonists/administration & dosage , Orexin Receptor Antagonists/administration & dosage , Orexin Receptors/physiology , Action Potentials/drug effects , Action Potentials/physiology , Analgesics, Opioid/administration & dosage , Analgesics, Opioid/adverse effects , Animals , Benzoxazoles/administration & dosage , Injections, Intraperitoneal , Injections, Intraventricular , Locus Coeruleus/drug effects , Male , Morphine/administration & dosage , Morphine/adverse effects , Morphine Dependence/drug therapy , Naphthyridines/administration & dosage , Neurons/drug effects , Neurons/physiology , Rats , Rats, Wistar , Urea/administration & dosage , Urea/analogs & derivatives
12.
Addict Biol ; 26(5): e13037, 2021 09.
Article in English | MEDLINE | ID: mdl-33768673

ABSTRACT

The neuropeptide galanin is reported to attenuate opioid withdrawal symptoms, potentially by reducing neuronal hyperactivity in the noradrenergic locus coeruleus (LC) via galanin receptor 1 (GalR1). We evaluated this mechanism by using RNAscope in situ hybridization to characterize GalR1 mRNA distribution in the dorsal pons and to compare galanin and GalR1 mRNA expression in tyrosine hydroxylase-positive (TH+) LC cells at baseline and following chronic morphine or precipitated withdrawal. We then used genetically altered mouse lines and pharmacology to test whether noradrenergic galanin (NE-Gal) modulates withdrawal symptoms. RNAscope revealed that, while GalR1 signal was evident in the dorsal pons, 80.7% of the signal was attributable to TH- neurons outside the LC. Galanin and TH mRNA were abundant in LC cells at baseline and were further increased by withdrawal, whereas low basal GalR1 mRNA expression was unaltered by chronic morphine or withdrawal. Naloxone-precipitated withdrawal symptoms in mice lacking NE-Gal (GalcKO-Dbh ) were largely similar to WT littermates, indicating that loss of NE-Gal does not exacerbate withdrawal. Complementary experiments using NE-Gal overexpressor mice (NE-Gal OX) and systemic administration of the galanin receptor agonist galnon revealed that increasing galanin signaling also failed to alter behavioral withdrawal, while suppressing noradrenergic transmission with the alpha-2 adrenergic receptor agonist clonidine attenuated multiple symptoms. These results indicate that galanin does not acutely attenuate precipitated opioid withdrawal via an LC-specific mechanism, which has important implications for the general role of galanin in regulation of somatic and affective opioid responses and LC activity.


Subject(s)
Galanin/pharmacology , Locus Coeruleus/drug effects , Substance Withdrawal Syndrome/drug therapy , Analgesics, Opioid/pharmacology , Animals , Brain/drug effects , Female , In Situ Hybridization , Male , Mice , Morphine/pharmacology , Naloxone/pharmacology , Narcotics/pharmacology , Neurons/metabolism , Neuropeptides/pharmacology , Norepinephrine/metabolism , Opioid-Related Disorders/drug therapy , RNA, Messenger/metabolism , Receptors, Galanin/metabolism , Tyrosine 3-Monooxygenase/metabolism
13.
Brain ; 144(8): 2513-2526, 2021 09 04.
Article in English | MEDLINE | ID: mdl-33783470

ABSTRACT

Cognitive decline is a common feature of Parkinson's disease, and many of these cognitive deficits fail to respond to dopaminergic therapy. Therefore, targeting other neuromodulatory systems represents an important therapeutic strategy. Among these, the locus coeruleus-noradrenaline system has been extensively implicated in response inhibition deficits. Restoring noradrenaline levels using the noradrenergic reuptake inhibitor atomoxetine can improve response inhibition in some patients with Parkinson's disease, but there is considerable heterogeneity in treatment response. Accurately predicting the patients who would benefit from therapies targeting this neurotransmitter system remains a critical goal, in order to design the necessary clinical trials with stratified patient selection to establish the therapeutic potential of atomoxetine. Here, we test the hypothesis that integrity of the noradrenergic locus coeruleus explains the variation in improvement of response inhibition following atomoxetine. In a double-blind placebo-controlled randomized crossover design, 19 patients with Parkinson's disease completed an acute psychopharmacological challenge with 40 mg of oral atomoxetine or placebo. A stop-signal task was used to measure response inhibition, with stop-signal reaction times obtained through hierarchical Bayesian estimation of an ex-Gaussian race model. Twenty-six control subjects completed the same task without undergoing the drug manipulation. In a separate session, patients and controls underwent ultra-high field 7 T imaging of the locus coeruleus using a neuromelanin-sensitive magnetization transfer sequence. The principal result was that atomoxetine improved stop-signal reaction times in those patients with lower locus coeruleus integrity. This was in the context of a general impairment in response inhibition, as patients on placebo had longer stop-signal reaction times compared to controls. We also found that the caudal portion of the locus coeruleus showed the largest neuromelanin signal decrease in the patients compared to controls. Our results highlight a link between the integrity of the noradrenergic locus coeruleus and response inhibition in patients with Parkinson's disease. Furthermore, they demonstrate the importance of baseline noradrenergic state in determining the response to atomoxetine. We suggest that locus coeruleus neuromelanin imaging offers a marker of noradrenergic capacity that could be used to stratify patients in trials of noradrenergic therapy and to ultimately inform personalized treatment approaches.


Subject(s)
Adrenergic Uptake Inhibitors/pharmacology , Atomoxetine Hydrochloride/pharmacology , Inhibition, Psychological , Locus Coeruleus/diagnostic imaging , Parkinson Disease/diagnostic imaging , Aged , Double-Blind Method , Female , Humans , Locus Coeruleus/drug effects , Magnetic Resonance Imaging , Male , Middle Aged , Neuropsychological Tests , Reaction Time/drug effects
14.
Int J Neuropsychopharmacol ; 24(7): 570-579, 2021 07 23.
Article in English | MEDLINE | ID: mdl-33674836

ABSTRACT

BACKGROUND: Clinical studies have shown that the rapid antidepressant effect of the glutamate N-methyl-D-aspartate receptor antagonist ketamine generally disappears within 1 week but can be maintained by repeated administration. Preclinical studies showed that a single ketamine injection immediately increases the firing and burst activity of norepinephrine (NE) neurons, but not that of serotonin (5-HT) neurons. It also enhances the population activity of dopamine (DA) neurons. In the present study, we investigated whether such alterations of monoamine neuronal firing are still present 1 day after a single injection, and whether they can be maintained by repeated injections. METHODS: Rats received a single ketamine injection or 6 over 2 weeks and the firing activity of dorsal raphe nucleus 5-HT, locus coeruleus NE, and ventral tegmental area DA neurons was assessed. RESULTS: One day following a single injection of ketamine, there was no change in the firing activity of 5-HT, NE, or DA neurons. One day after repeated ketamine administration, however, there was a robust increase of the firing activity of NE neurons and an enhancement of burst and population activities of DA neurons, but still no change in firing parameters of 5-HT neurons. The increased activity of NE neurons was no longer present 3 days after the last injection, whereas that of DA neurons was still present. DA neurons were firing normally 7 days after repeated injections. CONCLUSION: These results imply that the enhanced activity of NE and DA neurons may play a significant role in the maintenance of the antidepressant action of ketamine.


Subject(s)
Adrenergic Neurons/drug effects , Dopaminergic Neurons/drug effects , Excitatory Amino Acid Antagonists/pharmacology , Ketamine/pharmacology , Tegmentum Mesencephali/drug effects , Action Potentials/drug effects , Animals , Excitatory Amino Acid Antagonists/administration & dosage , Ketamine/administration & dosage , Locus Coeruleus/drug effects , Male , Raphe Nuclei/drug effects , Rats , Rats, Sprague-Dawley , Serotonergic Neurons/drug effects , Ventral Tegmental Area/drug effects
15.
Mol Brain ; 14(1): 28, 2021 02 08.
Article in English | MEDLINE | ID: mdl-33557888

ABSTRACT

Neuropathic pain (NP) remains an untreatable disease due to the complex pathophysiology that involves the whole pain neuraxis including the forebrain. Sensory dysfunctions such as allodynia and hyperalgesia are only part of the symptoms associated with neuropathic pain that extend to memory and affectivity deficits. The development of multi-target molecules might be a promising therapeutic strategy against the symptoms associated with NP. 2-pentadecyl-2-oxazoline (PEA-OXA) is a plant-derived agent, which has shown effectiveness against chronic pain and associated neuropsychiatric disorders. The molecular mechanisms by which PEA-OXA exerts its effects are, however, only partially known. In the current study, we show that PEA-OXA, besides being an alpha2 adrenergic receptor antagonist, also acts as a modulator at histamine H3 receptors, and report data on its effects on sensory, affective and cognitive symptoms associated with the spared nerve injury (SNI) model of neuropathic pain in mice. Treatment for 14 days with PEA-OXA after the onset of the symptoms associated with neuropathic pain resulted in the following effects: (i) allodynia was decreased; (ii) affective/cognitive impairment associated with SNI (depression, spatial, and working memories) was counteracted; (iii) long-term potentiation in vivo in the lateral entorhinal cortex-dentate gyrus (perforant pathway, LPP) was ameliorated, (iv) hippocampal glutamate, GABA, histamine, norepinephrine and dopamine level alterations after peripheral nerve injury were reversed, (v) expression level of the TH positive neurons in the Locus Coeruleus were normalized. Thus, a 16-day treatment with PEA-OXA alleviates the sensory, emotional, cognitive, electrophysiological and neurochemical alterations associated with SNI-induced neuropathic pain.


Subject(s)
Behavior, Animal , Depression/complications , Memory Disorders/complications , Memory Disorders/drug therapy , Neuralgia/drug therapy , Oxazoles/therapeutic use , Receptors, Adrenergic, alpha-2/metabolism , Receptors, Histamine H3/metabolism , Amino Acid Sequence , Animals , Anxiety/complications , Anxiety/physiopathology , COS Cells , Chlorocebus aethiops , Cognition/drug effects , Dentate Gyrus/drug effects , Dentate Gyrus/metabolism , Dentate Gyrus/physiopathology , Depression/drug therapy , Depression/physiopathology , Entorhinal Cortex/drug effects , Entorhinal Cortex/metabolism , Entorhinal Cortex/physiopathology , Glutamic Acid/metabolism , Humans , Hyperalgesia/complications , Hyperalgesia/physiopathology , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Long-Term Potentiation/drug effects , Male , Memory Disorders/physiopathology , Mice, Inbred C57BL , Neuralgia/metabolism , Norepinephrine/metabolism , Oxazoles/pharmacology , Receptors, Histamine H3/chemistry , Structural Homology, Protein , gamma-Aminobutyric Acid/metabolism
16.
Neurosci Lett ; 748: 135734, 2021 03 23.
Article in English | MEDLINE | ID: mdl-33596470

ABSTRACT

Animals subjected to early life maternal separation exhibit increased sensitivity to chemical, thermal, and mechanical stimuli during adulthood. However, the mechanism by which maternal separation can alter pain sensitivity in adulthood has not yet been investigated. Thus, we aimed to evaluate the activity of serotonergic and noradrenergic neurons and the effect of serotonin (5-HT) and noradrenaline (NA) reuptake inhibitors in male and female Wistar rats subjected to maternal separation. This study consisted of two experiments: 1) to confirm whether maternal separation increased pain sensitivity (n = 8 per group) and to evaluate the activity of serotonergic neurons in the dorsal raphe nucleus and noradrenergic neurons in locus coeruleus in animals subjected to maternal separation in comparison to controls (n = 6 per group); and 2) to evaluate the effect of fluoxetine (a selective 5-HT reuptake inhibitor) and desipramine (a NA reuptake inhibitor) on sensitivity to chemical stimulation using formalin in animals subjected to maternal separation (n = 8 per group). Our findings indicated that maternal separation increases an animal's sensitivity to painful chemical stimulation and reduces the activity of 5-HT and NA neurons. In addition, acute pretreatment with a 5-HT or NA reuptake inhibitor prevented the increased response to painful stimulation induced by maternal separation. In conclusion, maternal separation increases pain sensitivity by reducing the activity of serotonergic neurons in the dorsal raphe nucleus and noradrenergic neurons in locus coeruleus. This study contributes to possible treatments for pain in individuals exposed to early life stress.


Subject(s)
Fluoxetine/pharmacology , Maternal Deprivation , Pain/physiopathology , Selective Serotonin Reuptake Inhibitors/pharmacology , Serotonergic Neurons/drug effects , Adrenergic Neurons/drug effects , Animals , Dorsal Raphe Nucleus/drug effects , Locus Coeruleus/drug effects , Pain/drug therapy , Rats, Wistar
17.
Mol Pain ; 17: 1744806921992187, 2021.
Article in English | MEDLINE | ID: mdl-33573476

ABSTRACT

Neuropeptide W (NPW) messenger ribonucleic acid (mRNA) and NPBW1 and/or NPBW2 mRNA are expressed in the descending pain inhibitory system. In the present study, we examined whether NPW microinjected into the descending pain inhibitory system, such as the periaqueductal gray (PAG), locus coeruleus (LC), and rostral ventromedial medulla (RVM), produces an analgesic effect using a rat formalin test. Microinjections of NPW into the PAG ipsilateral and contralateral to the formalin-injected side, LC ipsilateral and contralateral to the formalin-injected side, and RVM produced an analgesic effect. In the RVM study, the analgesic effect was antagonized by WAY100135, a 5-HT1A antagonist, and enhanced by prazosin, an α1 antagonist, and SB269970, a 5-HT7 antagonist. Naloxone, an opioid antagonist, also antagonized the effect of NPW in the RVM study. In the ipsilateral LC study, the analgesic effect was antagonized by WAY100135, idazoxan, an α2 antagonist, and naloxone and was enhanced by prazosin and SB269970. In the contralateral LC study, the analgesic effect was antagonized by prazosin, idazoxan, SB269970, and naloxone. The analgesic effect was antagonized by WAY100135, SB269970, idazoxan, and naloxone in the ipsilateral and contralateral PAG studies. These findings strongly suggest that NPBW1/W2 activation by NPW microinjection into the RVM, LC, and PAG affect the descending pain modulatory system and produce anti-nociceptive and pro-nociceptive effects in the rat formalin test.


Subject(s)
Analgesics/pharmacology , Neuropeptides/pharmacology , Pain/pathology , Receptors, Neuropeptide/metabolism , Analgesics/administration & dosage , Animals , Formaldehyde , Injections , Ligands , Locus Coeruleus/drug effects , Male , Medulla Oblongata/drug effects , Neuropeptides/administration & dosage , Periaqueductal Gray/drug effects , Rats, Sprague-Dawley
18.
Neurosci Lett ; 746: 135651, 2021 02 16.
Article in English | MEDLINE | ID: mdl-33482313

ABSTRACT

Stress-induced activation of locus coeruleus (LC)-norepinephrine (NE) projections to the prefrontal cortex are thought to promote cognitive responses to stressors. LC activation by stressors is modulated by endogenous opioids that restrain LC activation and facilitate a return to baseline activity upon stress termination. Sex differences in this opioid influence could be a basis for sex differences in stress vulnerability. Consistent with this, we recently demonstrated that µ-opioid receptor (MOR) expression is decreased in the female rat LC compared to the male LC, and this was associated with sexually distinct consequences of activating MOR in the LC on cognitive flexibility. Given that the LC-NE system affects cognitive flexibility through its projections to the medial prefrontal cortex (mPFC), the present study quantified and compared the effects of LC-MOR activation on mPFC neural activity in male and female rats. Local field potential (LFPs) were recorded from the mPFC of freely behaving male and female rats before and following local LC microinjection of the MOR agonist, DAMGO, or vehicle. Intra-LC DAMGO altered the LFP power spectrum selectively in male but not female rats, resulting in a time-dependent increase in the power in delta and alpha frequency bands. LC microinfusion of ACSF had no effect on either sex. Together, the results are consistent with previous evidence for decreased MOR function in the female rat LC and demonstrate that this translates to a diminished effect on cortical activity that can account for sex differences in cognitive consequences. Decreased LC-MOR function in females could contribute to greater stress-induced activation of the LC and increased vulnerability of females to hyperarousal symptoms of stress-related neuropsychiatric pathologies.


Subject(s)
Analgesics, Opioid/administration & dosage , Locus Coeruleus/metabolism , Prefrontal Cortex/metabolism , Receptors, Opioid, mu/metabolism , Sex Characteristics , Animals , Enkephalin, Ala(2)-MePhe(4)-Gly(5)-/administration & dosage , Female , Locus Coeruleus/drug effects , Male , Microinjections/methods , Prefrontal Cortex/drug effects , Rats , Rats, Sprague-Dawley , Receptors, Opioid, mu/agonists , Synaptic Transmission/drug effects , Synaptic Transmission/physiology
19.
Neurochem Int ; 143: 104942, 2021 02.
Article in English | MEDLINE | ID: mdl-33340594

ABSTRACT

Astrocytes perform various supporting functions, including ion buffering, metabolic supplying and neurotransmitter clearance. They can also sense neuronal activity owing to the presence of specific receptors for neurotransmitters. In turn, astrocytes can regulate synaptic activity through the release of gliotransmitters. Evidence has shown that astrocytes are very sensitive to the locus coeruleus (LC) afferents. However, little is known about how LC neuromodulatory norepinephrine (NE) modulates synaptic transmission through astrocytic activity. In mouse dentate gyrus (DG), we demonstrated an increase in the frequency of miniature excitatory postsynaptic currents (mEPSC) in response to NE, which required the release of glutamate from astrocytes. The rise in glutamate release probability is likely due to the activation of presynaptic GluN2B-containing NMDA receptors. Moreover, we showed that the activation of NE signaling in DG is necessary for the formation of contextual learning memory. Thus, NE signaling activation during fear conditioning training contributed to enduring changes in the frequency of mEPSC in DG. Our results strongly support the physiological neuromodulatory role of NE signaling, which is derived from activation of astrocytes.


Subject(s)
Astrocytes/metabolism , Dentate Gyrus/metabolism , Fear/physiology , Memory/physiology , Receptors, N-Methyl-D-Aspartate/metabolism , Synaptic Transmission/physiology , Adrenergic alpha-1 Receptor Antagonists/pharmacology , Animals , Astrocytes/drug effects , Dentate Gyrus/drug effects , Excitatory Postsynaptic Potentials/drug effects , Excitatory Postsynaptic Potentials/physiology , Fear/drug effects , Fear/psychology , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Memory/drug effects , Mice , Mice, Inbred C57BL , Norepinephrine/pharmacology , Receptors, N-Methyl-D-Aspartate/antagonists & inhibitors , Synapses/drug effects , Synapses/metabolism , Synaptic Transmission/drug effects
20.
Br J Anaesth ; 126(1): 279-292, 2021 Jan.
Article in English | MEDLINE | ID: mdl-33131759

ABSTRACT

BACKGROUND: The neuropeptide orexin promotes arousal from general anaesthesia, however the neuronal circuits that mediate this effect have not been defined. We investigated whether orexinergic neurones modulate the basal forebrain (BF) and locus coeruleus (LC) in emergence from anaesthesia. METHODS: Hcrtcre rats were generated using a CRISPR/Cas9-based approach. Viruses encoding optogenetic probes were injected into the perifornical lateral hypothalamic (PeFLH) area, optogenetic fibres were embedded in the PeFLH, BF, or LC, and changes in anaesthesia state under 1.4 vol% or 0.8 vol% isoflurane were determined. RESULTS: In the PeFLH, 98.8% (0.4%) of orexin-A-positive cells expressed tdTomato, and 91.9% (2.2%) of tdTomato cells were orexin-A-positive. Under 1.4 vol% isoflurane anaesthesia, compared with control groups, burst suppression ratio was less, and emergence time was shorter in groups with optogenetic activation of orexinergic cell bodies in the PeFLH (923 [162] vs 493 [68] s, P=0.0003) or orexinergic terminals in the BF (937 (122) vs 674 (108) s, P=0.0049) or LC (913 [128] vs 742 [76] s, P=0.022). Optical stimulation of orexinergic terminals in the BF and LC also improved the movement scores of rats under 0.8 vol% isoflurane anaesthesia. CONCLUSIONS: Activation of orexinergic terminals in the FB or LC mediates facilitation of emergence from anaesthesia by orexinergic neurones during isoflurane anaesthesia.


Subject(s)
Anesthesia Recovery Period , Basal Forebrain/drug effects , Isoflurane/pharmacology , Locus Coeruleus/drug effects , Optogenetics/methods , Orexins/physiology , Anesthetics, Inhalation/pharmacology , Animals , Basal Forebrain/metabolism , Electroencephalography/methods , Locus Coeruleus/metabolism , Models, Animal , Orexins/metabolism , Rats , Rats, Sprague-Dawley
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