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Biomedical subjects

M Jouvet

Publications and source records attributed to M Jouvet.

At least 37 records · Page 2Linked to original sources

Potential brain neuronal targets for amphetamine-, methylphenidate-, and modafinil-induced wakefulness, evidenced by c-fos immunocytochemistry in the cat.

Much experimental and clinical data suggest that the pharmacological profile of modafinil, a newly discovered waking substance, differs from those of amphetamine and methylphenidate, two classical psychostimulants. The brain targets on which modafinil acts to induce wakefulness, however, remain unknown. A double-blind study using the protooncogene c-fos as experimental marker in the cat was, therefore, carried out to identify the potential target neurons of modafinil and compare them with those for amphetamine and methylphenidate. Cats were sacrificed after a single oral administration of amphetamine, methylphenidate, or modafinil at equivalent doses for wake induction (1, 2.5, or 5 mg/kg, respectively) and brain sections examined for Fos by immunocytochemistry. Administration of either amphetamine or methylphenidate evoked Fos-like immunoreactivity in a large number of neurons in the striatum and whole cortex, especially in the caudate nucleus and mediofrontal cortex, which are known to be dopaminergic targets. In contrast, administration of modafinil resulted in the labeling of few cells in these structures, but did induce marked Fos labeling in neurons of the anterior hypothalamic nucleus and adjacent areas. These results provide evidence for the potential brain targets of modafinil, which differ from those of amphetamine or methylphenidate, and suggest that modafinil induces wakefulness by mechanisms distinct from those of the two stimulants.

Amphetamine↗

Effects of tianeptine, sertraline and clomipramine on brain serotonin metabolism: a voltammetric approach in the rat.

Tianeptine is a substance enhancing the serotonir uptake while sertraline and clomipramine inhibit it. By means of 5-hydroxyin-doleacetic acid (5-HIAA) voltammetric measurements, this study investigated their influence on serotonin metabolism which depends mainly upon the activity of monoamine oxidase type A. After tianeptine injection the 5-HIAA signal increased by about 60%. This effect was maintained when the animals were pre-treated with MDL 72145 (an inhibitor of monoamine oxidase type B) but reduced when clorgyline (an inhibitor of monoamine oxidase type A) was administered after tianeptine. Administration of sertraline or clomipramine reduced the 5-HIAA signal by about 30-50%, whether the animals were pre-treated with MDL 72145 or not. It is to be concluded that tianeptine, sertraline and clomipramine can regulate the 5-HT fraction present in the synaptic cleft, not only by acting at the level of the serotoninergic neurons, but also by favoring or reducing the access of the amine to monoamine oxidase type A which is synthesized within non-serotoninergic neurons and glial cells.

1-Naphthylamine↗

Forebrain projections of the rostral nucleus raphe magnus shown by iontophoretic application of choleratoxin b in rats.

The nucleus raphe magnus belongs to the thermoafferent system. Following iontophoretic choleratoxin b injections in its rostral part, a substantial to large number of anterogradely labeled varicose fibres were observed in the medial and lateral preoptic areas, the bed nucleus, the substantia innominata, the ventral pallidum, the median preoptic nucleus, the paraventricular hypothalamic nucleus, the central amygdaloid nucleus and the lateral and dorsal hypothalamic areas. A small to moderate number were seen in the septal nuclei, the diagonal band, the magnocellular preoptic nucleus, the anterior hypothalamic area and the paraventricular and intralaminar thalamic nuclei. After choleratoxin b injections in the preoptic, dorsal and lateral hypothalamic areas, a substantial number of retrogradely labeled serotonin immunonegative neurones were specifically found in the rostral nucleus raphe magnus. Thus, non-serotonergic rostral nucleus raphe magnus cells might directly modulate hypothalamic thermointegrative neurones.

Afferent Pathways↗

Alterations in c-fos expression after different experimental procedures of sleep deprivation in the cat.

In the present study, we sought to examine the expression of the c-fos proto-oncogene in the cat brain after two different procedures of 24 h sleep deprivation. A first group of cats was gently sleep-deprived; they were awoken by a gentle touch of the hand (n = 5). A second group was sleep-deprived by the water tank technique which is a stressful deprivation (n = 4). A third group was placed 2 h on the water tank and was therefore stressed but not sleep-deprived (n = 2). A fourth group (control group of basal and unspecific Fos expression) was not sleep-deprived (n = 5). These four groups allowed us to separate Fos expression due to stress from Fos expression due to sleep deprivation. On the one hand, compared with controls cats, an important increase in Fos expression, detected by immunohistochemistry, was observed in the preoptic area of sleep-deprived cats by both gentle and stressful methods. On the other hand, there was a significant increase in Fos expression in the lateral hypothalamus of gently deprived cats as compared with control cats. These data indicate that c-fos expression can be employed as a marker of some putative homeostatic mechanism regulating sleep. The only sites in which there was a significant increased number of c-fos expressing neurons were located in the preoptic area which is known to be involved in sleep and in the lateral hypothalamic area.

Animals↗

Alteration in central and peripheral substance P- and neuropeptide Y-like immunoreactivity after chronic hypoxia in the rat.

The influence of long-term hypoxia on substance P (SP) and neuropeptide Y (NPY)-like immunoreactivity (LI) in discrete brain areas and peripheral structures was assessed by radioimmunoassay. Rats were exposed to normobaric hypoxia (10% O2 in nitrogen) for 14 days. In the carotid bodies of hypoxic animals, NPY-LI was significantly increased (56% vs. normoxic controls) while SP-LI was unchanged. In the brain, NPY-LI was increased in the ventrolateral medulla oblongata (23%) and in the striatum (53%); however, SP-LI was unaltered in these two regions. In the anterior pituitary, NPY-LI was increased (99%), while SP-LI was decreased (37%). No significant alteration in NPY-LI and SP-LI was observed in other discrete brain areas or peripheral structures studied. These results show that, in the rat, long-term hypoxia induces changes in NPY-LI or SP-LI in a few central and peripheral structures; these biochemical alterations may be linked to adaptative mechanisms involving morphological changes in carotid bodies or alterations in sympathetic control and neuroendocrine function.

Adrenal Glands↗

Histaminergic descending inputs to the mesopontine tegmentum and their role in the control of cortical activation and wakefulness in the cat.

We have demonstrated previously the importance of histaminergic neurons in arousal mechanisms. In addition to their ascending axons, these neurons also send heavy descending inputs to the mesopontine tegmentum (MPT), which plays a key role in cortical activation during wakefulness (W). This anatomical link suggests histaminergic control of the mechanisms of the MPT relevant to behavioral states. In this study, we sought to demonstrate, at the light microscopy level, hypothalamotegmental histaminergic pathways and their topographical interaction with MPT neurons in the cat and to explore further their involvement in sleep-wake control. Using immunohistochemistry of histamine (HA), either alone or together with that of choline-acetyltransferase or tyrosine hydroxylase, a large number of very fine, short and varicose HA-positive fibers and terminal-like dots were detected in the MPT, including the laterodorsal tegmental nucleus, locus coeruleus (LC), LC alpha, and peri-LC alpha. Furthermore, these fibers and terminal-like structures were found in close proximity to a great number of cholinergic or noradrenergic neurons. We also investigated the effects of microadministration of HA agonists and antagonist into the mediodorsal pontine tegmentum on the cortical electroencephalogram (EEG) power spectra and the sleep-wake cycle in freely moving cats. Microinjection of HA or 2-thiazolylethylamine (an H1-receptor agonist) caused a long-lasting suppression of cortical slow activity and an increase in quiet wakefulness (W). Paradoxical sleep, however, was less affected. The effects of HA were attenuated by systemic or in situ pretreatment with mepyramine (an H1-receptor antagonist), which when injected alone produced an increase in slow wave sleep. Microinjection of impromidine (an H2-receptor agonist) into the same area had no effect on either the cortical EEG or W. Because MPT ascending and presumed cholinergic neurons discharge tonically during cortical activation of W and because HA causes excitation of MPT cholinergic neurons via H1 receptors, we hypothesize that the histaminergic descending afferents in the MPT would promote cortical desynchronization and W, at least partially, via activation of H1 receptors situated on cholinergic neurons and that the interactions between histaminergic and cholinergic neurons constitute an important circuit in cortical activation during W.

Animals↗

Lower brainstem catecholamine afferents to the rat dorsal raphe nucleus.

A large body of data suggests that the activation of alpha 1 receptors by a tonic noradrenergic input might be responsible for the tonic discharge of the serotonergic neurons of the dorsal raphe nucleus (DRN). To test this hypothesis, it was necessary to determine the origin of the noradrenergic and adrenergic innervation of these neurons. For this purpose, we combined small iontophoretic injections of the sensitive retrograde tracer cholera toxin b subunit (CTb) in the different subdivisions of the DRN with tyrosine hydroxylase immunohistochemistry. After CTb injections in the ventral or dorsal parts of the central DRN, a small number of double-labeled cells was observed in the locus coeruleus (A6 noradrenergic cell group), the A5 noradrenergic group, the dorsomedial medulla (C3 adrenergic cell group), and the lateral paragigantocellular nucleus (C1 adrenergic cell group). After CTb injections in the lateral wings or the dorsal part of the rostral DRN, a similar number of double-labeled cells was seen in C3. Slightly more double-labeled cells were seen in A6 and A5. In addition, a substantial to large number of double-labeled cells appeared in C1, the commissural part of the nucleus of the solitary tract (A2 noradrenergic cell group) and the caudoventrolateral medulla (A1 noradrenergic cell group). These results indicate that the noradrenergic and adrenergic inputs to the DRN arise from all the catecholaminergic cell groups of the lower brainstem except the A7 noradrenergic group. They further reveal the existence of a topographical organization of these afferents to the different subdivisions of the DRN.

Afferent Pathways↗

Importance of the ventrolateral region of the periaqueductal gray and adjacent tegmentum in the control of paradoxical sleep as studied by muscimol microinjections in the cat.

It has been demonstrated that coagulation in the area of the periaqueductal gray induces a marked increase in paradoxical sleep in the cat [Petitjean F. et al, (1975) brain Res. 88, 439-453]. This effect was obtained either by the destruction of ascending or descending fibres or by the lesion of a specific group of local neurons. To assess the role of these neurons, muscimol (0.5 microgram/0.5 microliter) was injected bilaterally in 31 cats in this area of the periaqueductal gray. Polygraphic recordings were performed before and after injections. Following muscimol (GABAA agonist) injection, there was a consistent increase in paradoxical sleep lasting 269 +/- 8 min (mean +/- S.E.M.), with a latency of 31 +/- 2 min. The increase varied from small (20-30%) to medium (30-50%) to large (50-100% of the recording time), depending on the injection site. The intensity of hypersomnia was correlated with the site of the injection. That is, the most profound hypersomnia was obtained when muscimol was injected in the vicinity of a target area which lies in the ventrolateral periaqueductal gray (at the level of the fourth nucleus) and in the reticular formation situated immediately below. Similar effects were also obtained in insomniac cats pretreated with p-chlorophenylalanine and in cats whose brainstem was transected 3 mm rostral to the injection site. Injections of baclofen, a GABAB agonist (0.25-5 micrograms), did not alter the quantity of paradoxical sleep, whereas injections of bicuculline, a GABAA antagonist, significantly decreased the quantity of paradoxical sleep at the doses of 0.2-2 micrograms. It was concluded that inactivation of ventrolateral periaqueductal gray neurons induces a very important increase in paradoxical sleep. The exact mechanisms of this effect remain to be investigated.

Animals↗

Distribution of glycine-immunoreactive cell bodies and fibers in the rat brain.

To localize glycinergic cell bodies and fibers in the rat brain, we developed a sensitive immunohistochemical method combining the use of specific glycine antibodies (Campistron G. et al. (1986) Brain Res. 376, 400-405; Wenthold R. J. et al. (1987) Neuroscience 22, 897-912) with the streptavidin-horseradish peroxidase technique and 3,3'-diaminobenzidine.4HCl-nickel intensification. We confirmed the presence of numerous glycine-immunoreactive cell bodies and fibers in the cochlear nuclei, superior olivary complex, nucleus of the trapezoid body, cerebellar cortex, deep cerebellar nuclei and area postrema. For the first time in rats, we described a large to very large number of cell bodies in the medial vestibular ventral part, prepositus hypoglossal, gracile, raphe magnus and sensory trigeminal nuclei. A large number of cells was also observed in the oral and caudal pontine, parvocellular, parvocellular pars alpha, gigantocellular and gigantocellular pars alpha reticular nuclei. In addition, glycine-immunoreactive cells were seen in the ambiguous and subtrigeminal nuclei, the lateral habenula and the subfornical organ. We also provide the first evidence in rats for a very large number of fibers in the trigeminal, facial, ambiguous and hypoglossal motor nuclei, all nuclei of the medullary and pontine reticular formation, and the raphe and trigeminal sensory nuclei. We further revealed the presence of a substantial number of fibers in regions where glycine was not considered as a main inhibitory neurotransmitter, such as the pontine nuclei, the periaqueductal gray, the mesencephalic reticular formation, the anterior pretectal nucleus, the intralaminar thalamic nuclei, the zona incerta, the fields of Forel, the parvocellular parts of the paraventricular nucleus, the posterior hypothalamic areas, the anterior hypothalamic area, and the lateral and medial preoptic areas. These results indicate that, in contrast to previous statements, glycine may be an essential inhibitory neurotransmitter not only in the lower brainstem and spinal cord, but also in the upper brainstem and the forebrain.

Animals↗

Mapping of serotonin transporter messenger RNA-containing nerve cell populations in the cat brainstem.

The anatomical distribution of nerve cells populations expressing serotonin transporter messenger RNA was investigated in the cat brain by means of in situ hybridization histochemistry. Formalin fixed coronal sections were hybridized with [35S]dATP 3' end-labeled oligoprobes complementary to three nucleotide sequences taken from the human and serotonin transporter. A strong hybridization signal was found in nerve cells populations exclusively localized within the brainstem. These positive cells mainly resided in the nuclei of the raphe, especially in the nuclei of the raphe dorsalis and raphe centralis superior. A small number of labeled cells was also observed in various areas including the dorsal part of the interpeduncular nucleus, in the midbrain, and the region ventrolateral to the inferior olive, the ventral midline and around the central canal, in the medulla oblongata. Overall, these data agree with the notion that in the cat, as previously suggested in the human and in the rat brain, the serotonin membrane transporter messenger RNA is predominantly expressed in areas known to contain serotonergic cell bodies.

Animals↗

[Waking mechanisms: multiple networks in the mesencephalic reticular formation].

The hypothesis of a unique waking system located in the mesencephalic reticular formation is no longer tenable. Cortical and behavioral waking depends upon a complicated network of different systems which interact with each other with different neurotransmitters. The hierarchy of the internal structure of this network is not yet known. However, the inhibition of some strategic crossroads in this network is sufficient to suppress wake and induce sleep.

Acetylcholine↗

Distribution of prolactin receptors in the rat forebrain. Immunohistochemical study.

The distribution of prolactin receptors (PRL-R) in the rat brain was investigated for the first time with the immunohistochemical technique using monoclonal antibodies raised against PRL-R purified from rat liver. Granular immunostaining was observed in neurons and along their dendritic processes and fibers. PRL-R like immunoreactive neurons were found in a number of brain areas. There was a very dense labelling in the cerebral cortex (pyramidal cell layer), septal nuclei, amygdaloid complex as well as in the hypothalamus (suprachiasmatic, supraoptic, paraventricular and dorsomedial nuclei). A dense staining was seen in the substantia nigra, habenula and in the paraventricular thalamic nucleus. Immunostaining was also found in the choroid plexus and in the subcommissural organ. Comparison between the present distribution and that of PRL-like immunoreactivity indicates that the density of PRL-R generally corresponds to that of the fibers. However, in some regions densely stained by PRL-R antibody, there are very few PRL-immunoreactive fibers. These results are suggestive of different modes of action of PRL in the brain.

Amygdala↗

[Voltametric detection of cerebral NO in rats. Variations of the signal throughout the sleep-wakefulness cycle].

Nitric oxide (NO) is synthesized in the neurons by constitutive NO synthase (NOS). Within given neuronal sets, this enzyme is colocalized with different other neurotransmitters such as, for example, GABA, acethylcholine or serotonin. Our attention has been focused on the fact that serotoninergic neurons, well known for their involvement in sleep triggering and maintenance, synthesize also NO. In order to evaluate the modalities of release of this compound throughout the rat sleep-waking cycle, we prepared a sensor allowing its specific detection in freely moving animals. The active part of this sensor is a carbon fiber (phi = 30 microns) successively coated with porphyrin nickel and nafion. In vitro, together with differential normal pulse voltammetric measurements, it allows the detection of a 650 mV signal varying linearly in NO solutions ranging from 5.10(-7) to 10(-4) M. At physiological concentrations, L-arginine, L-citrulline, nitrites and nitrates do not yield a signal at 650 mV. Similarly, the compounds administered to the animals, hydroxylamine, L-arginine p-nitroanilide (L-ANA) and L-N omega-nitro arginine methyl ester (L-NAME) are not electroactive at 650 mV. L-ANA and L-NAME, also appear to be trapping agents for NO while leaving the electrochemical properties of the sensor untouched. In vivo, in the frontal cortex of the anesthetized rat, a signal is measured at 650 mV. The administration of hydroxylamine (40 mg/kg, i.p.) induces a 100% increase in its height. The administration of L-ANA (100 mg/kg, i.p.) produces its complete disappearance within 50 min. Finally, the administration of L-NAME (100 mg/kg, i.p.) is without effect. This last aspect might be dependent upon the inability of L-NAME to cross the blood brain barrier. On the contrary, the increase in the signal height obtained with hydroxylamine and its disappearance with L-ANA support that it might depend upon NO. In vivo, and in animals also equipped with polygraphic electrodes, the signal measured in the same area of the cortex exhibits the highest height during the waking state and decreases during either slow-wave sleep (-6%) or paradoxical sleep (-9%). These mild variations might represent the mean of several NO sources (cortical GABAergic interneurons, cholinergic and serotoninergic axonal nerve endings), each of them varying differently throughout the sleep-waking cycle.

Animals↗

[Action duality of nitrogen oxide (NO) in experimental African trypanosomiasis].

Patients with human African trypanosomiasis present a major dysruption of the circadian rhythmicity of the sleep-wake cycle, which was also found in rats infected with Trypanosoma brucei brucei (T.b.b.). The alterations in the immune function and nervous system in African trypsanosomiasis led us to investigate the involvement of nitric oxide (NO), a key molecule in immune and neurophysiological mechanisms, in experimental trypanosomiasis. NO was measured in 35 Sprague Dawley rats using differential impulsional voltammetry with a carbon fiber coated with porphyrin-nickel and nafion, ex vivo in the blood and in vivo in the brain. The rats were anaesthetized with sodium chlorate. Infection was performed intraperitoneally (i.p.) with 0.2 ml of a T.b.b. cryostabilate (clone AnTat 1.1E). Blood was collected by an intracardiac puncture with immediate replacement of blood volume (1 ml) in 7 control rats and 8 rats infected since 15 days, before and after i.p. administration of L-ANA (L-arginine-p-nitro-anilide, 100 mg.kg-1, an inhibitor of NO synthase). Brain measures were done in 20 rats (8 controls, and 12 rats infected since 15 or 21 days), in the cortex (H, -0.5 mm; AP, -0.8 mm; L, 1.2 mm) and the lateral ventricle (H,-3.2 mm). In infected rats, blood NO was at 70% of control values (p < 0.001), and L-ANA suppressed the NO signal in all animals (p < 0.0001), demonstrating that the signal originated from NO. Cortical NO was higher than in the ventricle in both control (p < 0.0001) and infected rats (p < 0.001). NO was more elevated in both structures in 15-day-infected rats than in control rats (p < 0.0001), the difference being enhanced in 21-day-infected rats (p < 0.001). L-ANA suppressed the NO signal in 30 to 60 min. These data suggest that NO intervenes in the development of trypanosomiasis in different manners. It is increased in the brain, which remains unexplained, where it may be involved in blood-brain barrier permeation. Conversely, it is decreased in the blood, may be because of macrophage function impairment, which would explain why trypanosomes can multiply in the host.

Animals↗

Sleep increase after immobilization stress: role of the noradrenergic locus coeruleus system in the rat.

In a preliminary study we showed that the sleep rebound occurring after sleep deprivation is decreased in rats treated with N-(2-chloroethyl)-N-ethyl-2-bromobenzylamine (DSP-4), a neurotoxic agent specific for the noradrenergic cells of the locus coeruleus (LC). Sleep deprivation methods not only involve sleep loss, but also stress, which per se may induce an increase in sleep duration. Extensive research showed that the locus coeruleus is involved in stress. To evaluate the participation of LC in this mechanism, the effect of DSP-4 treatment was studied on sleep duration following a short intense stress in the absence of sleep loss. The results showed that the augmentation of sleep after 1 h of immobilization stress is lower in DSP-4-treated rats (slow-wave sleep duration, -24%; paradoxical sleep duration, -52%). These findings suggest that the increase in sleep induced by such a stressor is mediated, at least in part, by the noradrenergic LC.

Adrenergic Agents↗

Origin of the dopaminergic innervation of the rat dorsal raphe nucleus.

The aim of the present study was to describe the distribution of dopamine (DA) fibres in the dorsal raphe nucleus (DRN) and to determine their neurones of origin. Using an anti-DA antibody, we observed a moderate density of DA varicose fibres over the DRN and a dense plexus of DA fibres in the ventrolateral central grey. With a sensitive retrograde tracing technique combining the use of cholera toxin subunit b with tyrosine hydroxylase immunohistochemistry, after tracer injections in the DRN, a few double-labelled cells were observed in the ventral tegmental area and the A10 dorsocaudal DA cell group, as already described. In addition, a moderate number of double-labelled cells was seen in the A11 hypothalamic DA cell group.

Animals↗

Sleep permissive components within the dorsal raphe nucleus in the rat.

Two peptides known for their hypnogenic properties, CLIP (corticotropin-like intermediate lobe peptide or ACTH 18-39) or VIP (vasoactive intestinal polypeptide), were injected locally into the nucleus raphe dorsalis (nRD) of rats pretreated with p-chlorophenylalanine (PCPA). During the dark period, the PCPA insomnia was primarily associated with a reduction in paradoxical sleep (PS), whereas both slow wave sleep (SWS) and PS were decreased during the light period. Immunohistochemistry of serotonin in PCPA-pretreated animals indicated a clear disappearance of 5-HT fibers in the basal hypothalamus and the nRD as compared to control animals. Local injections of CLIP or VIP in the nRD restored PS and SWS. The positive injection sites corresponded to the anatomical distribution of either CLIP or VIP fibers, i.e., the entire nRD for VIP and the antero-dorsal part of this nucleus for CLIP. The sleep effects obtained in PCPA-pretreated rats involve a non-5-HT sleep permissive component within the nRD upon which these injected peptides act.

Adrenocorticotropic Hormone↗