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gamma-Aminobutyric acid decreases levels of messenger ribonucleic acid encoding prolactin in the rat pituitary.

The effect of gamma-aminobutyric acid (GABA) on levels of messenger ribonucleic acid (mRNA) encoding prolactin (PRL) was studied in cultured anterior pituitary cells, in vitro and in intact rats, in vivo. As quantitated by hybridization to a 32P-labeled rat PRL complementary deoxyribonucleic acid (cDNA) probe, levels of PRL mRNA in cultured pituitary cells were decreased by about 50% following 3 days exposure to 10(-5) M GABA. This effect was mimicked by muscimol (10(-6) M) and antagonized by bicuculline (10(-5) M). An increase of endogenous GABA levels in vivo effected by injection of GABA transaminase blockers (aminooxyacetic acid, 20 mg/kg, twice daily; vinyl GABA, 800 mg/kg) into rats resulted in a similar decrease in rat PRL mRNA levels in the adenohypophysis 3-4 days following commencement of the drug treatment. These findings suggest that GABA might inhibit PRL gene expression by a direct action on lactotrophs of the adenohypophysis.

Aminocaproates↗

Functional reconstitution of the gamma-aminobutyric acid transporter from synaptic vesicles using artificial ion gradients.

The gamma-aminobutyric acid transporter of rat brain synaptic vesicles was reconstituted in proteoliposomes, and its activity was studied in response to artificially created membrane potentials or proton gradients. Changes of the membrane potential were monitored using the dyes oxonol VI and 3,3'-diisopropylthiodicarbocyanine iodide, and changes of the H+ gradient were followed using acridine orange. An inside positive membrane potential was generated by the creation of an inwardly directed K+ gradient and the subsequent addition of valinomycin. Under these conditions, valinomycin evoked uptake of [3H]GABA which was saturable. Similarly, [3H]glutamate uptake was stimulated by valinomycin, indicating that both transporters can be driven by the membrane potential. Proton gradients were generated by the incubation of K(+)-loaded proteoliposomes in a buffer free of K+ or Na+ ions and the subsequent addition of nigericin. Proton gradients were also generated via the endogenous H+ ATPase by incubation of K(+)-loaded proteoliposomes in equimolar K+ buffer in the presence of valinomycin. These proton gradients evoked nonspecific, nonsaturable uptake of GABA and beta-alanine but not of glycine in proteoliposomes as well as protein-free liposomes. Therefore, transporter activity was monitored using glycine as an alternative substrate. Proton gradients generated by both methods elicited saturable glycine uptake in proteoliposomes. Together, our data confirm that the vesicular GABA transporter can be energized by both the membrane potential and the pH gradient and show that transport can be achieved by artificial gradients independently of the endogenous proton ATPase.

Animals↗

Impaired insulin secretion in human diabetes mellitus. Effect of pharmacological activation of gamma-aminobutyric acid system.

To evaluate whether the gamma-aminobutyric acid (GABA)ergic system plays a role in the defective insulin secretion in human diabetes mellitus, 15 non-insulin-dependent diabetics with fasting hyperglycemia above 140 mg/dl were submitted to two consecutive i.v. glucose tolerance tests (IVGTT) (0.33 g/kg b.w.), in basal conditions and after pharmacologic activation of the GABA system with baclofen and sodium valproate. Baclofen, a synthetic analogue, was given to 8 diabetics in two divided doses of 10 mg each 8h and 1h before the post-treatment test; sodium valproate, a drug that increases endogenous GABA activity, was given orally (800 mg) 60 min before the performance of the post-treatment IVGTT. Neither treatment brought about significant changes in insulin, C-peptide, glucagon or growth hormone responses to i.v. glucose nor did they significantly change glucose disappearance rates. These results seem to indicate that GABA does not play a major role in the pathogenesis of defective insulin secretion in non-insulin-dependent diabetes mellitus.

Aged↗

Presteady-state and steady-state kinetics and turnover rate of the mouse gamma-aminobutyric acid transporter (mGAT3).

We expressed mouse gamma-aminobutyric acid (GABA) transporter (mGAT3) in Xenopus laevis oocytes and examined its steady-state and presteady-state kinetics and turnover rate by using tracer flux and electrophysiological methods. In oocytes expressing mGAT3, GABA evoked a Na+-dependent and Cl(-)-facilitated inward current. The dependence on Na+ was absolute, whereas that for Cl(-) was not. At a membrane potential of -50 mV, the half-maximal concentrations for Na+, Cl(-), and GABA were 14 mM, 5 mM, and 3 microM. The Hill coefficient for GABA activation and Cl(-) enhancement of the inward current was 1, and that for Na+ activation was > or =2. The GABA-evoked inward current was directly proportional to GABA influx (2.2 +/- 0.1 charges/GABA) into cells, indicating that under these conditions, there is tight ion/GABA coupling in the transport cycle. In response to step changes in the membrane voltage and in the absence of GABA, mGAT3 exhibited presteady-state current transients (charge movements). The charge-voltage (Q-V) relation was fitted with a single Boltzmann function. The voltage at half-maximal charge (V(0.5)) was +25 mV, and the effective valence of the moveable charge (zdelta) was 1.6. In contrast to the ON transients, which relaxed with a time constant of < or =30 msec, the OFF transients had a time constant of 1.1 sec. Reduction in external Na+ ([Na+]o) and Cl(-) ([Cl(-)]o) concentrations shifted the Q-V relationship to negative membrane potentials. At zero [Na+]o (106 mM Cl(-)), no mGAT3-mediated transients were observed, and at zero [Cl(-)]o (100 mM Na+), the charge movements decreased to approximately 30% of the maximal charge (Q(max)). GABA led to the elimination of charge movements. The half-maximal concentrations for Na+ activation, Cl(-) enhancement, and GABA elimination of the charge movements were 48 mM, 19 mM, and 5 mM, respectively. Q(max) and I(max) obtained in the same cells yielded the mGAT3 turnover rate, 1.7 sec(-1) at -50 mV. The low turnover rate of mGAT3 may be due to the slow return of the empty transporter from the internal to the external membrane surface.

Animals↗

Genetic selection for benzodiazepine ataxia produces functional changes in the gamma-aminobutyric acid receptor chloride channel complex.

The gamma-aminobutyric acid (GABA) receptor-operated chloride channel complex was evaluated in mice selected for differential sensitivity to the ataxic effects of diazepam (diazepam-sensitive (DS) and diazepam-resistant (DR) lines). The ataxic effects of several drugs purported to produce some of their actions through the benzodiazepine-GABA receptor complex were examined using the rotarod test. The duration of impairment produced by diazepam, ethanol, 4,5,6,7-tetrahydroisoxazol[5,4-C]pyridine-3-ol (THIP) and phenobarbital was greater in the diazepam-sensitive than in the diazepam-resistant mice. In contrast, pentobarbital produced an equivalent duration of ataxia in the two lines. Muscimol-stimulated 36Cl- influx and the binding of [35S]t-butylbicyclophosphorothionate (TBPS) and [3H]flunitrazepam were measured using isolated brain membrane vesicles (microsacs). Depolarization-dependent 45Ca2+ uptake was measured in whole brain synaptosomes. Muscimol was a more potent stimulator of 36Cl- flux in the DS compared to the DR mice, although no difference between the lines was found in muscimol-stimulation of [3H]flunitrazepam binding. Flunitrazepam augmented the muscimol-stimulated 36Cl- uptake in the DS but not in the DR mice. However, no differences between the lines of mice were found in either density or affinity of [3H]flunitrazepam binding sites. Similarly, no differences in either the density or affinity of [35S]TBPS binding sites was found. Ethanol (10-45 mM) potentiated the muscimol-stimulation of 36Cl- in DS, with no effect in DR mice. However, ethanol inhibition of [35S]TBPS binding was equivalent in the two lines of mice. Pentobarbital produced an equal potentiation of the muscimol-stimulated 36Cl- flux in the two lines, but phenobarbital potentiated the muscimol-induced 36Cl- influx slightly more in DS mice.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Insect central nervous system gamma-aminobutyric acid.

Specific saturable binding of radiolabelled gamma-aminobutyric acid (GABA) has been demonstrated in central nervous system (CNS) extracts of the cockroach, Periplaneta americana. The pharmacological properties of these putative insect CNS GABA receptors differ from those of both the vertebrate GABAA and GABAB receptor sites. Autoradiographical techniques have been used to examine the localization of these [3H]GABA binding sites in a cockroach ganglion and have shown that they are found predominantly in the neuropile, the region where the majority of synaptic connections occur. The results suggest that these insect CNS [3H]GABA binding sites may represent a novel class of GABA receptors.

Animals↗

Human follicular fluid stimulates the sperm acrosome reaction by interacting with the gamma-aminobutyric acid receptors.

OBJECTIVE: To evaluate whether gamma-aminobutyric acid receptors are involved in human sperm acrosome reaction induced by the follicular fluid (FF). DESIGN: Random selection of normal sperm samples. SETTING: Normal men in an university clinic of andrology. PATIENT(S): Men with normal sperm analysis parameters. INTERVENTION(S): None. MAIN OUTCOME MEASURE(S): Acrosome reaction on motile spermatozoa. RESULT(S): Follicular fluid stimulated the acrosome reaction dose-dependently. The effect of a maximally effective concentration of FF (30%, vol/vol) was significantly suppressed by bicuculline, a GABAA receptor antagonist, and saclofen, a GABAB receptor antagonist, added concomitantly. Each of the two antagonists used alone was devoid of effect. Because the GABAA receptor is linked to the chloride channel, we tested whether picrotoxin, a blocker of this channel, could modulate the effects of the FF. Picrotoxin alone did not have any effect on the acrosome reaction induced by the FF, whereas it had a significant suppressive effect if coincubated with saclofen. The acrosome reaction induced by the FF was also inhibited by picrotoxin plus verapamil, a calcium channel blocker, whereas verapamil alone had no significant effect. This suggested that both chloride and calcium ions mediated the acrosome reaction induced by the FF. CONCLUSION(S): The simultaneous blockade of GABAA and GABAB receptors suppressed the acrosome reaction induced by the FF. This finding suggested that GABA receptors play a physiologic role in sperm activation and shed further light on the mechanism of FF action on human sperm acrosome reaction.

Acrosome Reaction↗

Huntingtin-associated protein 1 regulates inhibitory synaptic transmission by modulating gamma-aminobutyric acid type A receptor membrane trafficking.

Gamma-aminobutyric acid type A receptors (GABA(A)Rs) are the major sites of fast synaptic inhibition in the brain. An essential determinant for the efficacy of synaptic inhibition is the regulation of GABA(A)R cell surface stability. Here, we have examined the regulation of GABA(A)R endocytic sorting, a critical regulator of cell surface receptor number. In neurons, rapid constitutive endocytosis of GABA(A)Rs was evident. Internalized receptors were then either rapidly recycled back to the cell surface, or on a slower time scale, targeted for lysosomal degradation. This sorting decision was regulated by a direct interaction of GABA(A)Rs with Huntingtin-associated protein 1 (HAP1). HAP1 modulated synaptic GABA(A)R number by inhibiting receptor degradation and facilitating receptor recycling. Together these observations have identified a role for HAP1 in regulating GABA(A)R sorting, suggesting an important role for this protein in the construction and maintenance of inhibitory synapses.

Animals↗

Conformational basis for the Li(+)-induced leak current in the rat gamma-aminobutyric acid (GABA) transporter-1.

The rat gamma-aminobutyric acid transporter-1 (GAT-1) was expressed in Xenopus laevis oocytes and the substrate-independent Li(+)-induced leak current was examined using two-electrode voltage clamp. The leak current was not affected by the addition of GABA and was not due to H(+) permeation. The Li(+)-bound conformation of the protein displayed a lower passive water permeability than that of the Na(+)- and choline (Ch(+))-bound conformations and the leak current did not saturate with increasing amounts of Li(+) in the test solution. The mechanism that gives rise to the leak current did not support active water transport in contrast to the mechanism responsible for GABA translocation (approximately 330 water molecules per charge). Altogether, these data support the distinct nature of the leak conductance in relation to the substrate translocation process. It was observed that the leak current was inhibited by low millimolar concentrations of Na(+) (the apparent affinity constant, K'(0.5) = 3 mM). In addition, it was found that the GABA transport current was sustained at correspondingly low Na(+) concentrations if Li(+) was present instead of choline. This is consistent with a model in which Li(+) can bind and substitute for Na(+) at the putative "first" apparently low-affinity Na(+) binding site. In the absence of Na(+), this allows a Li(+)-permeable channel to open at hyperpolarized potentials. Occupancy of the "second" apparently high-affinity Na(+) binding site by addition of low millimolar concentrations of Na(+) restrains the transporter from moving into a leak conductance mode as well as allowing maintenance of GABA-elicited transport-associated current.

Animals↗

Distinct functional and pharmacological properties of tonic and quantal inhibitory postsynaptic currents mediated by gamma-aminobutyric acid(A) receptors in hippocampal neurons.

gamma-Aminobutyric acid (GABA), the principal inhibitory neurotransmitter, activates a persistent low amplitude tonic current in several brain regions in addition to conventional synaptic currents. Here we demonstrate that GABA(A) receptors mediating the tonic current in hippocampal neurons exhibit functional and pharmacological properties different from those of quantal synaptic currents. Patch-clamp techniques were used to characterize miniature inhibitory postsynaptic currents (mIPSCs) and the tonic GABAergic current recorded in CA1 pyramidal neurons in rat hippocampal slices and in dissociated neurons grown in culture. The competitive GABA(A) receptor antagonists, bicuculline and picrotoxin, blocked both the mIPSCs and the tonic current. In contrast, mIPSCs but not the tonic current were inhibited by gabazine (SR-95531). Coapplication experiments and computer simulations revealed that gabazine bound to the receptors responsible for the tonic current but did not prevent channel activation. However, gabazine competitively inhibited bicuculline blockade. The unitary conductance of the GABA(A) receptors underlying the tonic current (approximately 6 pS) was less than the main conductance of channels activated during quantal synaptic transmission (approximately 15--30 pS). Furthermore, compounds that potentiate GABA(A) receptor function including the benzodiazepine, midazolam, and anesthetic, propofol, prolonged the duration of mIPSCs and increased tonic current amplitude in cultured neurons to different extents. Clinically-relevant concentrations of midazolam and propofol caused a greater increase in tonic current compared with mIPSCs, as measured by total charge transfer. In summary, the receptors underlying the tonic current are functionally and pharmacologically distinct from quantally activated synaptic receptors and these receptors represent a novel target for neurodepressive drugs.

Animals↗

Differences in agonist/antagonist binding affinity and receptor transduction using recombinant human gamma-aminobutyric acid type A receptors.

Using human gamma-aminobutyric acid type A (GABAA) receptor subunit combinations, expressed in cell lines and Xenopus laevis oocytes, the pharmacology of a number of ligands interacting directly with the GABA recognition site has been studied in [3H]muscimol binding and electrophysiologically. The binding affinity of GABAA agonist and antagonist ligands showed small but statistically significant dependence on the subunit composition of receptors that include gamma 2 and different alpha and beta subunits. The potency of antagonist ligands was largely independent of receptor subunit composition, whereas the composition of receptors expressed in oocytes strongly influenced the EC50 value of agonists. An apparent reciprocal correlation between subunits favoring agonist binding and antagonist binding, respectively, was observed. Whereas antagonists showed comparable potencies in binding and functional studies, the potency of agonists in binding studies was generally two to three orders of magnitude higher than the agonist potencies measured electrophysiologically. 5-(4-Piperidyl)isothiazol-3-ol, which behaves as a low efficacy partial agonist at GABAA receptors in cultured cortical neurons, showed no efficacy in oocytes, but produced pure antagonist effects with a binding/functional affinity ratio between those observed for the agonists and antagonists. It is concluded that the GABAA receptor mechanisms transducing binding into physiological response, but not the binding per se, is dependent on the receptor subunit composition.

Animals↗

Actions of gamma-aminobutyric acid on neurones of guinea-pig myenteric plexus.

The effects of gamma-aminobutyric acid (GABA) applied by ionophoresis, pressure ejection and superfusion to myenteric neurones of the guinea-pig ileum were investigated by intracellular recording techniques. Ionophoretic or pressure application of GABA (10 pC-30 nC) caused membrane depolarizations of AH neurones but not S neurones. This depolarization was associated with a conductance increase. It reversed polarity at a membrane potential of -18 mV when intracellular electrodes contained KCl, and -39 mV when electrodes contained K acetate, citrate or sulphate. The ionophoretic depolarization was antagonized by bicuculline (1-30 microM) in an apparently competitive manner. During prolonged or repeated ionophoretic application of GABA, both the depolarization and conductance increase desensitized. Superfusion of GABA (1-100 microM) caused a membrane depolarization in AH neurones, associated with an increase in membrane conductance. The increase in conductance was always smaller than that evoked by ionophoresis of GABA. Bicuculline only partially depressed the depolarization induced by superfusion of GABA, particularly slowing its rising phase. beta-p-Chlorophenyl GABA (baclofen) (10 microM) caused a depolarization similar to that observed with GABA in the presence of bicuculline. The depolarization induced by baclofen and GABA (in presence of bicuculline) superfusion did not decline during prolonged applications; superfusion of GABA but not baclofen reversibly reduced or eliminated the effects of GABA ionophoresis. It is concluded that GABA has two effects on the membrane of myenteric neurones. The first is a bicuculline-sensitive, rapidly desensitizing chloride activation: the second is a bicuculline-insensitive, non-desensitizing depolarization.

Acetylcholine↗

Production of yogurt with enhanced levels of gamma-aminobutyric acid and valuable nutrients using lactic acid bacteria and germinated soybean extract.

Yogurt with high levels of gamma-aminobutyric acid (GABA), free amino acids and isoflavones was developed using lactic acid bacteria (LAB) and germinated soybean extract. Fermented soya milk (GABA soya yogurt) produced with starter and substrate had the GABA concentration of 424.67 microg/gDW, whereas fermented milk produced by a conventional method had GABA less than 1.5 microg/gDW. The GABA soya yogurt also contained significantly high levels of free amino acids and isoflavones compared with other conventional yogurts. The results suggested that the Lactobacillus brevis OPY-1 and germinated soybean possessed a prospect to be applied in dairy and other health products with high nutritive values and functional properties.

Amino Acids↗

Gamma-aminobutyric acid receptor on vascular smooth muscle of dog cerebral arteries.

Gamma-aminobutyric acid (GABA) had a relaxant effect on dog cerebral arteries which was blocked only by picrotoxin, a known antagonist of GABA receptors. Other agents, adrenoceptor and ganglion blocking agents, atropine, reserpine, tetrodotoxin and ouabain, had no effect on the inhibitory action suggesting the existence of GABA receptors in the vascular smooth muscle of dog cerebral arteries.

Aminobutyrates↗

Stimulation of human fibroblast collagen synthesis in vitro by gamma-aminobutyric acid.

Human buccal mucosa fibroblasts were exposed in culture to gamma-aminobutyric acid (GABA) and the areca alkaloid arecaidine. Both GABA and arecaidine stimulated collagen synthesis and proliferation in a concentration-dependent manner, with arecaidine consistently producing the greater stimulation. Prior exposure to GABA or arecaidine for 5 days caused the cells to become insensitive when challenged with either drug.

Arecoline↗

Pituitary-dependent effects of estradiol-17-beta on catecholamine turnover rates, gamma-aminobutyric acid and glutamate concentrations in various hypothalamic and limbic brain structures.

Estrogens exert many effects in a variety of hypothalamic and mesolimbic structures. Whether the actions of the estrogens are direct or indirect, possibly involving anterior pituitary hormones, is largely unknown. We therefore studied catecholamine turnover rates, gamma-aminobutyric acid and glutamate concentrations in various hypothalamic and mesolimbic structures in estrogen-treated hypophysectomized (hypox) rats and compared the measured parameters with those in sham hypophysectomized (sham) animals. Results clearly demonstrate that many of the effects of estrogen require an intact pituitary. Dopamine turnover rates in hypox rats were significantly reduced in the hypothalamus and the striatum, whereas they increased in the medial septum and medial preoptic area in comparison with sham rats. Norepinephrine turnover rates were reduced in the anterior mediobasal hypothalamus, somatosensory cortex and the nucleus accumbens of hypox animals in comparison with the sham-operated animals. In contrast, norepinephrine turnover was accelerated in the mediocortical amygdala and posterior medial basal hypothalamus of hypox rats. A significant reduction of epinephrine turnover was evident in the nucleus accumbens of hypox rats. Gamma-aminobutyric acid concentrations increased in the medial septum, anterior and posterior part of the mediobasal hypothalamus, but decreased in the mediocortical amygdala of hypox animals. Concentrations of glutamate were also decreased in the mediocortical amygdala in hypox animals. These results indicate that many direct effects of estrogens in the brain are accompanied by indirect effects which require an intact pituitary.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of gamma-aminobutyric acid and glycine on synaptic excitability of neurones in the solitary tract nucleus.

In the solitary tract nucleus, neuronal responsiveness to synaptic input from peripheral afferent fibres has been found to decrease as the frequency of that input is increased. The present study investigated the possibility that glycine and gamma-aminobutyric acid (GABA) are (1) involved in this phenomenon of "frequency-dependent inhibition" or (2) capable of otherwise modifying neuronal responsiveness to synaptic input. In 32 of 57 neurones, application of glycine reduced responsiveness to input from visceral afferents. gamma-Aminobutyric acid reduced the responsiveness in 22 of 56 neurones but induced an increase in another 6. Selectivity of agonist effects was verified using glycinergic antagonist strychnine and the GABAergic antagonists picrotoxin and bicuculline. Of 67 neurones examined, 32 exhibited decreased numbers of action potentials with increasing stimulus frequency. Strychnine disrupted the frequency-dependent inhibition in 3 of 11 neurones, while picrotoxin and bicuculline prevented it in 2 of 7 and 4 of 9 neurones, respectively. These results indicate that both glycinergic and GABAergic systems may modulate the responsiveness of neurones in the solitary tract nucleus but that neither fully accounts for the expression of frequency-dependent inhibition.

Animals↗

Thin-layer chromatographic method for estimation of gamma-aminobutyric acid from brain.

The present method describes the estimation of gamma-aminobutyric acid (GABA) from adult rat brain by thin layer chromatography (TLC). The major advantage of this TLC method is the sensitivity and repidity of estimation. About 93 to 98 percent recovery is possible by this procedure and this shows linearity up to 9 micrograms. Replicate analysis of GABA by this method shows a co-efficient variation of 1.31%

Animals↗