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L Beani

Publications and source records attributed to L Beani.

At least 37 records · Page 2Linked to original sources

Reciprocal dopamine-glutamate modulation of release in the basal ganglia.

Dopaminergic and glutamatergic transmissions have long been known to interact at multiple levels in the basal ganglia to modulate motor and cognitive functions. One important aspect of their interactions is represented by the reciprocal modulation of release. This topic has been the object of interest since the late 70's, particularly in the striatum and in midbrain dopaminergic areas (substantia nigra and ventral tegmental area). Analysis of glutamate-dopamine interactions in the control of each other's release is complicated by the fact that both glutamate and dopamine act on multiple receptor subtypes which can exert different effects. Therefore, glutamatergic modulation of dopamine release has been reviewed by analyzing the effects of glutamatergic selective receptor agonists and antagonists in the striatum (both motor and limbic portions) and in midbrain dopaminergic areas, as revealed by in vitro (slices, cell cultures, synaptosomes) and in vivo (push-pull, microdialysis and voltammetry techniques) experimental approaches. The same approach has been followed for dopaminergic modulation of glutamate release. The facilitatory nature of glutamate modulating both presynaptic and dendritic dopamine release has clearly emerged from in vitro studies. However, evidence is presented that, at least in the striatum and in the nucleus accumbens of awake rats, glutamate-mediated inhibitory effects may also occur. In vitro and in vivo experiments in the striatum and midbrain dopaminergic areas mainly depict dopamine as an inhibitory modulator of glutamate release. However, in vivo studies reporting dopamine D1 receptor mediated facilitatory effects are also considered. Therefore, the general notion that glutamate and dopamine act oppositely to regulate each other's release, is only partly supported by the available data. Conversely, the nature of the interaction between the two neurotransmitters seems to vary depending on the experimental approach, the brain area considered and the subtype of receptor involved.

Animals↗

Experimental protocol for studying delayed effects of in vitro ischemia on neurotransmitter release from brain slices.

The mechanisms by which ischemic injury leads to delayed neuronal death are not completely understood. Notably, no data are so far available on the modifications in neurosecretory responses evoked by a period of ischemia. Superfused brain slices represent a useful preparation in studying the effects of in vitro ischemia on neurotransmitter release. Using this experimental model we describe a protocol which allows to study not only the immediate effects of an ischemic insult, but also, more interestingly, its delayed (1 h) effects on the release of different neurotransmitters. A first pulse (S1) of 50 mM KCl was applied at the 60th min of perfusion and a second one was applied at the 210th min (S2). In vitro ischemia was performed from the 120th to the 150th min, during the inclusive period between the two depolarizing stimuli. The delayed effects of the ischemic treatment on slice response to KCl were calculated as S2/S1 ratio. This protocol allows to study neurotransmitter release mechanisms associated with postischemic neuronal death. Moreover it will be useful in the evaluation of the neuroprotective potential of new drugs.

Animals↗

Pharmacological characterization of the nociceptin receptor mediating hyperalgesia in the mouse tail withdrawal assay.

1. The newly discovered neuropeptide nociceptin (NC) has recently been reported to be the endogenous ligand of the opioid-like orphan receptor. Despite its structural similarity to opioids, when injected intracerebroventricularly (i.c.v.) in the mouse, NC exerts a direct hyperalgesic effect and reverses opioid-induced analgesia. In the present investigation, these two effects of NC were evaluated under the same experimental conditions; in addition, a pharmacological characterization of the receptor mediating these central effects of NC was attempted. 2. NC caused a dose dependent (0.1-10 nmol/mouse), naloxone-insensitive reduction of tail withdrawal latency with a maximal effect of about 50% of the reaction time observed in saline injected mice. In the same range of doses, NC inhibited morphine (1 nmol/mouse) induced analgesia. 3. The effects of the natural peptide were mimicked by NCNH2 and NC(1-13)NH2 (all tested at 1 nmol/mouse) while 1 nmol NC(1-9)NH2 was found to be inactive either in reducing tail withdrawal latency or in preventing morphine analgesia. 4. [Phe1psi(CH2-NH)Gly2]NC(1-13)NH2 ([F/G]NC(1-13)NH2), which has been shown to antagonize NC effects in the mouse vas deferens, acted as an agonist, mimicking NC effects in both the experimental paradigms. In addition, when NC and [F/G]NC(1-13)NH2 were given together, their effects were additive. 5. These results demonstrate that both the direct hyperalgesic action and the anti-morphine effect of NC can be studied under the same experimental conditions in the mouse tail withdrawal assay. Moreover, the pharmacological characterization of the NC functional site responsible for these actions compared with the peripherally active site, indicates the existence of important differences between peripheral and central NC receptors.

Analgesia↗

Different patterns of induction of FGF-2, FGF-1 and BDNF mRNAs during kindling epileptogenesis in the rat.

Neurotrophic factors (NTF) play important roles in the developing and in the adult brain. NTF involvement in neuronal plasticity is suggested by the modulation of NTF expression patterns in different physiological and pathological situations and by the effects they produce in the adult brain (e.g. axonal sprouting induction and neuroprotection). We used the RNAase protection assay to investigate the expression patterns of some NTFs during amygdala kindling, an animal model of epilepsy in which 'pathological' neuronal plasticity appears to occur. After a single kindling stimulation, fibroblast growth factor-2 (FGF-2) mRNA levels were increased in the hippocampus, the cortex and the hypothalamus, whereas they were not significantly altered in the thalamus and the striatum. A single stimulation did not alter fibroblast growth factor-1 (FGF-1) and brain-derived neurotrophic factor (BDNF) gene expression. Fully kindled animals, left unstimulated for a week, did not exhibit any alteration in the mRNA levels for any of the NTFs examined. However, in contrast with the effect of a single stimulation, amygdala stimulation of kindled animals (evoking a generalized tonic-clonic seizure) produced a great increase in hippocampal and cortical BDNF mRNA levels, but FGF-1 mRNA levels were not altered, and FGF-2 mRNA levels were significantly increased only in the cortex. These results suggest that different NTFs can be recruited at different stages of kindling epileptogenesis and, accordingly, may play different parts in the adaptive changes taking place in this experimental paradigm.

Amygdala↗

Evidence for a striatal NMDA receptor modulation of nigral glutamate release. A dual probe microdialysis study in the awake freely moving rat.

Dual probe microdialysis was employed to characterize dialysate glutamate levels from the substantia nigra pars reticulata of awake freely moving rats, and to test its sensitivity to alterations in striatal neurotransmission including striatal N-methyl-D-aspartic acid (NMDA) receptor stimulation and blockade. Intranigral perfusion with low (0.1 mM) Ca2+ medium (60 min) did not affect nigral glutamate levels, whereas intranigral perfusion with tetrodotoxin (10 microM, 60 min) increased nigral glutamate levels. Perfusion of KCI (100 mM, 10 min) in the dorsolateral striatum transiently stimulated nigral glutamate levels (maximal increase + 60%), whereas intrastriatal perfusion (60 min) with low Ca2+ medium and tetrodotoxin gradually increased nigral glutamate levels. Intrastriatal perfusion with NMDA (0.1-100 microM, 10 min) dose-dependently stimulated glutamate levels in the substantia nigra pars reticulata. The NMDA (1 microM)-induced increase in nigral glutamate release was transient and maximal (+60% within 20 min), whereas that for NMDA (10 microM) had a slow onset but was long lasting (+35% after 60 min). Lower (0.1 microM) and higher (100 microM) NMDA concentrations were ineffective. The effect of intrastriatal NMDA (1 microM) was prevented by coperfusion with MK-801 (1 microM). Intrastriatal MK-801 (10 microM) alone gradually increased glutamate levels up to +50% after 60 min of perfusion. The present results suggest that glutamate levels in the substantia nigra pars reticulata are sensitive to changes in neuronal transmission in the dorsolateral striatum, and that striatal NMDA receptors regulate nigral glutamate release in both a tonic and phasic fashion.

Animals↗

Time- and region-specific variations in somatostatin release following amygdala kindling in the rat.

Somatostatin biosynthesis is activated during and following kindling epileptogenesis. The aim of this study was to investigate whether this phenomenon translates into enhanced release of the peptide and whether it is involved in kindling maintenance. A marked increase in somatostatin-like immunoreactivity (somatostatin-LI) was observed in hilar interneurons of the hippocampus and in their presumed projections to the outer molecular layer 1 week, but not 1 month, after the last kindled seizure. No overt changes were observed in the striatum or in the cortex. Compared with sham-stimulated controls, (a) in the hippocampus, high-K+-evoked somatostatin-LI release was unchanged in synaptosomes taken from rats killed 7 days after the last kindled seizure but was bilaterally reduced after 30 days; (b) in the striatum, it was increased (mainly ipsilaterally to stimulation) 7, but not 30, days after the last seizure; and (c) in the cortex, somatostatin-LI release was bilaterally increased in synaptosomes taken from kindled rats 30, but not 7, days after the last seizure. This study shows that distinct changes occur in synaptosomal somatostatin-LI release after kindling acquisition, depending on the brain area analyzed and on the time elapsed from the last generalized seizure.

Amygdala↗

NMDA and non-NMDA ionotropic glutamate receptors modulate striatal acetylcholine release via pre- and postsynaptic mechanisms.

The effects of NMDA and alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA) on endogenous acetylcholine release from rat striatal slices and synaptosomes were investigated. Both agonists (1-300 microM) facilitated acetylcholine release from slices in a dose-dependent manner. NMDA (100-300 microM) and AMPA (30-300 microM), however, subsequently inhibited acetylcholine release. NMDA (100 microM)-induced facilitation was antagonized by 3-(2-carboxypiperazin-4-yl)propyl-1-phosphonic acid (CPP) and dizocilpine (both 1-10 microM), whereas the 10 microM AMPA effect was antagonized by 6-cyano-7-nitroquinoxaline-2,3-dione (CNQX; 1-30 microM). NMDA (100 microM)-induced inhibition was counteracted by CPP, but not dizocilpine, and by the nitric oxide synthase inhibitor L-nitroarginine (1-100 microM). Tetrodotoxin (0.5 microM) prevented the facilitatory effect of 3 microM NMDA and AMPA, but left unchanged that of 30 microM NMDA and 100 microM AMPA. Acetylcholine release from synaptosomes was stimulated by KCl (7.5-100 mM) in a dose-dependent manner. NMDA and AMPA maximally potentiated the 20 mM KCl effect at 1 microM and 0.01 microM, but were ineffective at 100 microM and 10 microM, respectively. Inhibition of acetylcholine release was never found in synaptosomes. The effects of 1 microM NMDA and 0.01 microM AMPA were antagonized by CPP (0.0001-1 microM) or dizocilpine (0.0001-10 microM) and by CNQX (0.001-1 microM), respectively. These data suggest that glutamatergic control of striatal acetylcholine release is mediated via both pre- and postsynaptic NMDA and non-NMDA ionotropic receptors.

Acetylcholine↗

Plasma dopamine concentration and effects of low dopamine doses on urinary output after major vascular surgery.

To evaluate plasma dopamine concentration and the effects of low doses infusion on urinary output after abdominal vascular surgery in patients with renal function impairment we performed a prospective clinical study. Twenty hemodynamically stable patients (mean age 66.6 years), with serum creatinine concentration < 2 mg %, who undergoing general anesthesia for major vascular surgery participated. A low dose of dopamine (3 micrograms/kg/min) was administrated to patients with postoperative protracted urinary output < 0.5 ml/kg/hr for at least eight hours. Plasmatic determinations were taken at T0 (no dopamine administration), when urinary output began to increase, or if not, after two hours (T1), at eight (T2), and 24 (T3) hours after the beginning of infusion. After 24 hours the dopamine infusion was stopped and the patient's plasmatic level was measured four hours later (T4). Dopamine plasma concentrations were measured using high-performance liquid chromatography. Plasma dopamine concentration increased in all patients and reached a steady state at T2 (T2 = 76.41 +/- 16.84 ng/ml). Dopamine induced a concentration-dependent increase in urinary output (T0 = 0.45 +/- 0.14; T1 = 1.49 +/- 1.11; T2 = 2.34 +/- 1.44; T3 = 1.57 +/- 0.57; T4 = 0.85 +/- 0.7 ml/kg/hr). Three patients did not have an enhanced urinary output after dopamine infusion; they did have a prolonged clamping time and operation time (162 +/- 24 and 570 +/ 30 min, respectively). We conclude that low dose dopamine induces a dose-dependent increase of urinary output. This phenomenon also has been found in patients when their plasma concentration had not yet reached the steady-state. Lack of responsiveness to dopamine suggests a renal function impairment probably due to the prolonged aortic clamping time.

Acute Kidney Injury↗

The muscarinic modulation of [3H]D-aspartate efflux and [Ca2+]i levels in rat cerebellar granule cells.

The effects of ACh on [3H]D-aspartate efflux and on calcium levels ([Ca2+]i) were studied at the same time in sister cultures of rat cerebellar granule cells stimulated with electrical pulses (5-20 Hz) or depolarized with KCl (15-40 mM). ACh, 0.3-1000 nM, greatly facilitated the 10-Hz-evoked tritium efflux while its effect on 20 mM KCl-evoked efflux was significantly smaller. ACh, 10-1000 nM, enhanced [Ca2+]i levels to a limited extent under both experimental conditions. Therefore, ACh facilitation was evident above all on the electrically evoked [3H]D-aspartate efflux. The ACh-mediated responses depended on the activation of M3-muscarinic receptors since these responses were blocked by 4-DAMP. ACh, 50 microM, reduced the [Ca2+]i plateau, determined by prolonged electrical or KCl stimulation. This effect was due to its action of M2-receptors being blocked by AF-DX 116. In conclusion, at very low concentrations, ACh greatly facilitated the electrically evoked [3H]D-aspartate efflux through M3-receptors, while at a higher concentrations, it inhibited, through M2-receptors, the rise in [Ca2+]i caused by prolonged cell depolarization.

Acetylcholine↗

Immediate and delayed effects of in vitro ischemia on glutamate efflux from guinea-pig cerebral cortex slices.

Immediate and delayed effects of glucose deprivation, oxygen deprivation (hypoxia) and both oxygen and glucose deprivation (in vitro ischemia) on glutamate efflux from guinea pig cerebral cortex slices were studied. Immediate effects were evaluated by measuring changes of glutamate efflux during the metabolic insults. Delayed effects were evaluated by measuring the response of the tissue to a 50 mM KCI pulse applied 60 min after the metabolic insults. Deprivation of glucose in the medium did not induce either immediate or delayed effects, while hypoxic condition produced an immediate slight stimulation of glutamate efflux without any delayed effect. Conversely, in vitro ischemia produced both immediate and delayed effects on glutamate efflux. During in vitro ischemia glutamate efflux dramatically increased in a calcium-independent and tetrodotoxin-sensitive manner; this effect was potentiated by a low sodium containing medium. The blockade of the sodium/potassium ATPase exchanger by ouabain caused a glutamate outflow similar to that induced by in vitro ischemia. On the whole, these data demonstrate the central role played by the sodium electrochemical gradient and by the membrane glutamate uptake system in the glutamate overflow induced by in vitro ischemia. Moreover, in slices previously exposed to both oxygen and glucose deprivation the effect of KCI on glutamate efflux was potentiated. This in vitro ischemia-induced delayed potentiation of neurotransmitter efflux, until now unreported in the literature, was found to be selectively restricted to glutamatergic structures and to be mainly due to an enhancement of the exocytotic component of glutamate release.

Animals↗

Sexually selected vigilance behaviour of the grey partridge is affected by plasma androgen levels

In the grey partridge, Perdix perdixvigilance and calling activity are two sex-dimorphic behaviours that are critical for mate choice. To ascertain whether circulating levels of testosterone directly affect vigilance (i.e. the occurrence of upright alert posture), we compared vigilance scores of testosterone-implanted versus control males both during the normal activity of the flock and after the passage of a raptor silhouette; in the latter case, the calling activity was also recorded. Hormone-treated males were more vigilant than controls in both experimental situations. Vigilance was correlated with calling rate. Testosterone seems to act as a link, relating conspicuous behaviours involved in sexual selection to male quality and physical condition, because of the costs of having high levels of both signalling and androgens.Copyright 1997 The Association for the Study of Animal Behaviour1997The Association for the Study of Animal Behaviour

Journal Article↗

Glutamate regulation of dopamine release in guinea pig striatal slices.

The effect of L-glutamic acid (L-Glu) on basal and electrically evoked [3H]-dopamine efflux in guinea pig striatal slices was studied. In the presence of magnesium, L-Glu significantly increased spontaneous [3H]-dopamine efflux. This response was unaffected by the non-NMDA receptor antagonist, 6-cyano-7-nitroquinoxaline-2,3-dione (CNQX), the non-competitive NMDA receptor antagonist, D-5-methyl-10,11, dihydro-5-H-dibenzo-[a,d]-cyclohepten-5,10-imine maleate (MK-801), the glycine antagonist 7-chlorokynurenic acid (7-CL-KYN) and by the metabotropic receptor antagonist (+)-alpha-methyl-4-carboxyphenyl-glycine (alpha-M4CPG) and L-2-amino-3-phosphonopropionic acid (L-AP3). However, the metabotropic glutamate receptor agonist, trans-1-aminocyclopentane-1,3-dicarboxylic acid (t-ACPD), increased spontaneous [3H]-dopamine efflux, as did L-Glu, and this response was completely counteracted by alpha-M4CPG. In the absence of magnesium, L-Glu induced a concentration-dependent increase in basal [3H]-dopamine efflux, which was prevented by MK-801. In electrically stimulated striatal slices L-Glu, applied 25 min before the stimulation, concentration-dependently increased the [3H]-dopamine efflux both in the presence and in the absence of magnesium. This effect was completely prevented by CNQX, but not by MK-801 or DL-2-amino-5-phosphono-pentanoic acid (AP5). On the contrary, L-Glu, applied during electrical stimulation (2 min) in the absence of Mg2+, increased the [3H]-dopamine efflux to 200%, and this effect was partly counteracted by MK-801. These results provide evidence that different subtypes of excitatory amino acid receptors modulate [3H]-dopamine efflux depending on the functional state (rest or activity) of the nerve endings. The spontaneous [3H]-dopamine efflux appears to be controlled by metabotropic receptors in the presence of Mg2+ and by NMDA receptors in its absence. Conversely, the AMPA/kainate receptors facilitate the electrically evoked [3H]-dopamine efflux in the presence of Mg2+, whereas the NMDA receptors appeared to be operative, in the absence of Mg2+, as long as L-Glu was applied simultaneously with the electrical stimulation.

Animals↗

Characterization of glutamate and [3H]D-aspartate outflow from various in vitro preparations of the rat hippocampus.

The characteristics of high-K+ and electrically evoked endogenous glutamate and [3H]D-aspartate release have been studied in multiple in vitro preparations of the rat hippocampus (transverse slices, granule cells cultures, synaptosomes and mossy fibre synaptosomes) under similar experimental conditions. High external K+ concentrations evoked [3H]D-aspartate and endogenous glutamate overflow in a concentration-dependent manner in all preparations (except it was not possible to measure endogenous glutamate outflow from granule cells). This effect was tetrodotoxin-insensitive but partially calcium-dependent. In slices, field electrical stimulation evoked an overflow of endogenous glutamate, but not of [3H]D-aspartate, in a frequency-dependent manner. This effect was concentration-dependently amplified by the glutamate uptake inhibitor L-trans-pyrrolidine-2,4-dicarboxylic acid (t-PDC). The electrically evoked glutamate overflow in the presence of t-PDC was tetrodotoxin-sensitive and calcium-dependent. In primary dentate gyrus cell cultures, electrical stimulation evoked an overflow of [3H]D-aspartate in a frequency-dependent manner, while endogenous glutamate outflow was not detectable. This effect could be inhibited by tetrodotoxin and by the N-type calcium channel blocker omega-conotoxin GVIA. Finally, the effect of adenosine has been studied in order to assess the pharmacological modulability of [3H]D-aspartate and endogenous glutamate stimulation-induced overflow. Adenosine was found to inhibit 35 mM K(+)- and 20 Hz electrical stimulation-induced [3H]D-aspartate and endogenous glutamate overflow. These effects were all prevented by the A1 receptor antagonist 8-cyclopentyl-1,3-dimethylxanthine (CPT). These data are in line with the hypothesis that reuptake plays a role in regulating glutamate release, and that [3H]D-aspartate represents a valid marker of endogenous glutamate under most (but not all) experimental conditions.

Adenosine↗

Post-ischemic recovery of acetylcholine release in vitro: influence of different excitatory amino acid receptor subtype antagonists.

The release of endogenous acetylcholine was measured in electrically (5-20 Hz) stimulated guinea pig cerebral cortex and caudate nucleus slices under ischemic (hypoxic and glucose-free) conditions. Ischemia reduced acetylcholine release by 40-90%; the inhibition depended on the duration of ischemia (10-30 min) while the extent of post-ischemic recovery was inversely related to it. Caudate nucleus slices displayed a higher sensitivity to ischemia than did cortical slices. To test the effects of excitatory amino acid receptor antagonists on the ischemia-induced reduction of acetylcoline release and on its post-ischemic recovery, the following drugs were used: 5-methyl-10,11-dihydro-5-H-dibenzo-[a,b]-cyclohepten-5,10-imine (MK-801,-a blocker of the N-methyl-D-aspartate [NMDA] receptor-linked channel), 7-chloro-kynurenic acid (7-Cl-KYN) and (E)-3-[2(phenylcarbamoyl)ethenyl]-4,6-dichloroindole-2-carboxylic acid sodium salt (GV150526A, blockers of the glycine site of the NMDA receptor), eliprodil, (an antagonist at the polyamine site of the NMDA receptor), and 6-cyano- 7-nitro-quinoxalin-2,3-dione (CNQX, a D,L-alpha-amino-3-hydroxy-5-methyl-4-isoxalone propionic acid [AMPA] receptor antagonist). These did not modify the time-course and the extent of ischemia-induced inhibition but improved post-ischemic recovery in a concentration dependent manner. GV 150526A and CNQX appeared to be more effective in the cerebral cortex. Only eliprodil was devoid of any effect in both areas. The evaluation of acetylcholine release from brain slices represents a suitable in vitro model to quantify the effectiveness of drugs in favouring recovery from the cholinergic presynaptic failure induced by ischemic conditions. The different effects of the excitatory amino acid receptor antagonists cited above, depending on the brain areas considered and the receptor subtypes involved, may be of interest in view of their therapeutic potential.

Acetylcholine↗

Inhibitory cholinergic control of endogenous GABA release from electrically stimulated cortical slices and K(+)-depolarized synaptosomes.

In the present study we characterize the optimal experimental conditions under which to investigate the cholinergic regulation of endogenous electrically evoked gamma-aminobutyric acid (GABA) release from guinea pig cortical slices. Superfusion with the neuronal GABA reuptake inhibitor, SKF89976A (10 microM) caused cortical GABA release to be linearly correlated with the frequency of electrical stimulation (5, 10, 20 Hz). Electrically evoked GABA release (10 Hz) was tetrodotoxin-sensitive and Ca(2+)-dependent and was under GABAB autoreceptor control. Under these experimental conditions, acetylcholine (0.1-10 microM) and physostigmine (30 microM) decreased the electrically evoked GABA release while the M2 receptor antagonist AFDX-116 (0.01-0.1 microM) counteracted these effects. Similar results were also observed in a cortical synaptosomal preparation stimulated with K+ (10 mM). These findings demonstrate an inhibitory cholinergic regulation of electrically evoked GABA release via M2 receptors located on cortical GABAergic terminals.

Acetylcholine↗

Connections of the dorsomedial part of the nucleus intercollicularis in a male non-songbird, the Grey partridge: a tract-tracing study.

Vocal control systems have been poorly investigated in non-songbirds. In this study we describe descending neural pathways to the dorsomedial portion of the nucleus intercollicularis (ICo) in a galliform (male Grey partridges) by means of the DiI in vitro tracing technique. The simple and sex-dimorphic vocalizations of partridges, which have a critical role in sexual selection, favour this species as a model system for the study of vocal control mechanisms. Our data demonstrate that the ICo, an important site mediating the activation of vocal behavior in all birds, receives afferents from several important higher centers: the nucleus pretectalis, the tuberoinfundibular hypothalamic region, the dorsal thalamus, the preoptic region and the paleostriatal region. Efferent connections of the ICo were directed mainly to the hypothalamic area. This complex neural pathway is consistent with a major role of ICo in male courtship and vocal performance control.

Animals↗

Biotin deficiency facilitates kindling hyperexcitability in rats.

Biotin-deficient conditions are frequently associated with epileptic disorders. Biotin deficiency may be caused by long-term treatment with anticonvulsants or excessive ingestion of avidin. Absence of biotinidase activity can also lead to biotin deficiency, and is characterized by developmental delay as well as neurological and dermatological abnormalities. Because seizures are one of the most frequent signs of the latter, biotin-deficient conditions could conceivably facilitate convulsive disorders. To test this hypothesis, we investigated the occurrence of a latent kindling hyperexcitability in biotin-deprived rats. In these animals, duration of after-discharge on the first stimulation was longer at threshold amplitude, kindling development through its early stages was accelerated and duration of the forelimb clonus of fully kindled seizures was increased. Biotin deprivation in mixed cerebellar granule cell-astrocyte cultures also produced a tetrodotoxin-sensitive delayed loss of the glutamatergic neuronal population. The data thus support a facilitatory role for biotin-deficient conditions in convulsive disorders.

Animals↗