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J Bockaert

Publications and source records attributed to J Bockaert.

337 records · Page 19Linked to original sources

Regional distribution and ontogeny of 5-HT4 binding sites in rodent brain.

We have investigated the regional distribution of 5-hydroxytryptamine4 (5-HT4) receptor binding sites in the adult guinea pig, rat and mouse brain using the specific 5-HT4 antagonist [3H]GR113808 as a radioligand. The developmental changes in the expression of these binding sites were also investigated quantitatively in the rat brain (gestational days 16 and 19; postnatal days 1, 3, 7, 9, 12 and 21). In order to compare previously obtained data on primary cultures, semi-quantitative analysis was also performed during mouse brain ontogeny (postnatal days 1, 7 and 11). The main finding of this study is that 5-HT4 receptors have comparable, wide and heterogeneous distributions in the adult brain of the species investigated, with densities reaching adult levels between the second and third postnatal week in most regions of the rat and mouse brain. In contrast, a progressive loss of 5-HT4 binding sites is observed in the pons, whereas a transient peak of receptor expression is seen during the second postnatal week in the globus pallidus and substantia nigra pars lateralis. The developmental pattern of 5-HT4 receptor distribution suggests, except in latter regions, that these receptors probably exert a minor role in developmental processes. In the adult, high densities of [3H]GR113808 binding sites are present in various regions belonging to limbic system (islands of Calleja, olfactory tubercle, fundus striati, ventral pallidum, septal region, hippocampus, amygdala), or known to be components of different pathways, such as the hippocampo-habenulo-interpeduncular and the striato-nigro-tectal pathways. While the regional distributions of [3H]GR113808 binding sites were identical in the mouse and rat, some differences were observed in the guinea-pig, in particular in the globus pallidus, substantia nigra and interpeduncular nucleus. The expression of 5-HT4 receptors in limbic areas is highly suggestive of a role for these receptors in emotional processes, whereas their expression in the striato-nigral-tectal pathway might be indicative of a role in the control of visuo-motor activity.

Animals↗

5-HT4 receptors improve social olfactory memory in the rat.

Serotonin (5-HT) is involved in a large variety of physiological functions and it appears now that it could play a role in cognitive processes through the activation of 5-HT4 receptors. The present study was conducted to determine the effect of BIMU1, a mixed 5-HT4 agonist/5-HT3 antagonist on social olfactory recognition in rats, a behaviour test which has previously been shown to access short-term memory and to be sensitive to cholinergic drugs. This test is based on the investigation of an unfamiliar juvenile by an adult rat during two distinct 5-min presentations. At a 30-min delay after each presentation adults recognized the juvenile, whereas after a 2-hr delay all the adults had forgotten it. When administered intraperitoneally immediately after the first presentation, BIMU1 (10 mg/kg) enhanced short-term memory (i.e. recognition of the juvenile after a 2-hr delay). Ondansetron (10 and 100 micrograms/kg injected intraperitoneally), a 5-HT3 antagonist, had no significant effect on this form of memory. The effect of BIMU1 was antagonized by intraperitoneal injection of GR 125487, a very selective and potent 5-HT4 antagonist. The antagonistic effect was obtained at 1 and 10 mg/kg of GR 125487, but not at 0.1 mg/kg. It is certainly a specific effect on brain 5-HT4 receptors, since we determined a brain concentration of GR 125487 equal to 3.8 x 10(-7) M after the intraperitoneal injection of 10 mg/kg of this drug. This GR 125487 concentration is certainly sufficient to occupy all the 5-HT4 brain receptors (Kd = 10(-10) M) but not to occupy 5-HT3 receptors (Kd > 10(-6) M). The 5-HT4 specificity of the blockade by GR 125487 is further demonstrated by the fact that a 10-fold lower dose of GR 125487 (1 mg/kg) is also effective to inhibit the BIMU1 effect.

Animals↗

BIMU1 increases associative memory in rats by activating 5-HT4 receptors.

Olfactory association learning was used to investigate the involvement of 5-HT4 receptors in learning and long-term memory. The behavioral role of the 5-HT4 receptors was studied by using BIMU1 (3-ethyl-2,3-dihydro-N-[endo-8-methyl-8-azabicyclo(3.2.1)oct-3-yl]-2-oxo -1 H-benzimidazole-1-carboxamide, hydrochloride (Boehringer Ingelheim, Italy); a mixed 5-HT4 agonist/5-HT3 antagonist, and GR125487 (1-[2-[methyl sulphonyl)-amino]ethyl]-4-piperidinyl-methyl 5-fluro-2-methoxy-1H-indole-3- carboxylate; Glaxo Group Research, Hertfordshire, U.K.), a specific 5-HT4 antagonist. The intraperitoneal injections of BIMU1 at 1, 5, and 10 mg/kg were followed by an substantial improvement (> 15% in percentage of correct responses at the dose of 10 mg/kg) in associative memory. Difficulty rapidly reversing behavioral responses to previously learned association, 1 month later indicated that the BIMU1 effect at 10 mg/kg was not transient, but correlated to long-term memory. The effects of BIMU1 are most likely to be mediated by 5-HT4 receptors since they were blocked by GR125487 at 10 mg/kg. These data suggest that activation of 5-HT4 receptors may modulate cognitive processes like learning and memory.

Animals↗

Glutamate stimulates inositol phosphate formation in striatal neurones.

The major excitatory amino acids, glutamate (Glu) and aspartate (Asp), are thought to act at three receptor subtypes in the mammalian central nervous system (CNS). These are termed quisqualate (QA), N-methyl-D-aspartate (NMDA) and kainate (KA) receptors according to the specific agonist properties of these compounds revealed by electrophysiological studies. Although Glu has been shown to stimulate cyclic GMP formation in brain slices, direct regulation of second messenger systems (cyclic AMP, Ca2+ or inositol phosphates) subsequent to activation of excitatory amino-acid receptors, has not been extensively studied. Here we demonstrate that in striatal neurones, excitatory amino acids, but not inhibitory or non-neuroactive amino acids, induce a three- to fourfold increase in inositol mono-, di- and triphosphate (IP, IP, IP) formation with the relative potency QA greater than Glu greater than NMDA, KA. The Glu-evoked formation of inositol phosphates appears to result principally from actions at QA as well as NMDA receptors on striatal neurones. Our results suggest that excitatory amino acids stimulate inositol phosphate formation directly, rather than indirectly by the evoked release and subsequent actions of adenosine or acetylcholine.

2-Amino-5-phosphonovalerate↗

[The Lemierre syndrome: a complicated oropharyngeal infection].

The Lemierre syndrome or 'necrobacillosis' is a post angina sepsis caused by an acute oropharyngeal infection with a secondary thrombophlebitis of the internal jugular vein. There are often septic emboli in the lungs, although intestinal organs can also be affected. This syndrome is caused by the strictly anaerobic gram-negative pathogen Fusobacterium necrophorum, sometimes in combination with other pathogens. The patient typically presents with high fever, pain in the neck, malaise and dyspnoea one week after the start of an angina. Plain chest radiograph shows bilateral nodular infiltrates, ultrasound reveals a thrombophlebitis of the internal jugular vein. CT scan can be useful to confirm the diagnosis and possible complications. In the beginning there is often a transient hyperbilirubinemia with toxic inflammatory blood results. Under the correct antibiotic regime complete recovery can be obtained.

Adult↗

Coupling of receptors to G proteins, pharmacological implications.

There are four main classes of membrane-bound receptors: receptors which are also enzymes (tyrosine protein-kinase or guanylate cyclase), receptor channels, receptors coupled to G proteins (GTP binding proteins) and receptors with unknown transduction mechanisms. Receptors coupled to G proteins which have been cloned, constitute a superfamily of proteins containing seven hydrophobic transmembrane helices. The binding site of the ligand is within the hydrophobic core of the protein and the domain of interaction of the G proteins is constituted by the N- and C-terminal parts of the third intracellular loop, plus the C-terminal tail, adjacent to the transmembrane VII. G proteins themselves are also members of another superfamily. These proteins have highly conserved domains constituting the GTP binding site and they interact with the receptors by their C-terminal parts. Compounds such as mastoparan, substance P and 48/80 directly stimulate G proteins, an action which probably mediates their exocytotic properties. A high degree of homologies between G protein-linked receptors explains the non-specificity of some antagonists (like beta-adrenergic blocking agents on 5-HT1 receptors). The discovery of new members of the G protein-linked receptors which have not yet been pharmacologically characterized, raises the problem of receptor classification.

Binding Sites↗

[The role of nitric oxide and superoxides in the neurotoxicity of glutamate].

Glutamate is the major neurotransmitter of the mammalian brain. Stimulation of glutamate receptors, especially the subgroup of NMDA receptors, induces nitric oxide and arachidonic acid synthesis in neurons. These agents freely diffuse across membranes and thus can play roles of messengers in particular brain functions. The aim of our study was to identify these roles in in vitro and in vivo models from mouse and rat. Exaggerated stimulation of NMDA receptors leads to neurological disorders such as some types of epilepsy and neurodegenerative diseases. We show that superoxide ions, which probably result from metabolic degradation of arachidonic acid, would be responsible of the neurotoxic action of NMDA. On the other hand, we observed that nitric oxide inhibits NMDA receptors. This effect would protect animals against epileptic and neurodegenerative diseases mediated by over-stimulation of these receptors. This endogenous regulation may play important roles in the functioning of glutamatergic neurotransmission.

Animals↗