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Uptake and catabolism of gamma-aminobutyric acid by the isolated perfused rat liver.

Serum concentrations of gamma-aminobutyric acid (GABA) are increased in liver failure, possibly because of decreased hepatic GABA catabolism. To study in detail the role of the liver in GABA metabolism, uptake and catabolism of GABA by isolated perfused liver from normal rats and rats with galactosamine- or carbon tetrachloride-induced liver failure were measured. Hepatic GABA uptake was almost complete at GABA concentrations of up to 10 microM and approached saturation at a concentration of 50 microM. The apparent affinity of hepatic GABA uptake was 38 microM and the apparent maximal velocity was 158 nmol/g.min. Hepatic GABA uptake was sodium-dependent. gamma-Aminobutyric acid taken up by the liver was rapidly catabolized as measured by 14CO2 formation from [U-14C]GABA. Aminooxyacetic acid, a GABA transaminase inhibitor, completely and irreversibly inhibited hepatic GABA catabolism and thereby also inhibited hepatic GABA uptake. Although uptake of GABA by livers of carbon tetrachloride- or galactosamine-treated rats was decreased (apparent maximal velocity, 103 and 98 nmol/g.min, respectively), at physiologic GABA concentrations in the perfusate GABA uptake and catabolism was not different from that of untreated controls. The observed impairment of hepatic GABA uptake or catabolism by the diseased liver would be expected to contribute to increased GABA levels in peripheral blood plasma in liver failure. However, the magnitude of the observed impairment would be insufficient to account for a 10-fold increase in such levels.

Animals↗

Identification of an acceptor system for gamma-aminobutyric acid on isolated rat hepatocytes.

gamma-Aminobutyric acid (GABA) is a potent inhibitory neurotransmitter which is synthesized by the enteric bacterial flora and delivered into portal venous blood. To determine whether the liver is likely to play an important role in regulating serum GABA levels, the uptake and metabolism of [3H]GABA by three populations of cells isolated from rat liver were studied. GABA was specifically taken up by hepatocytes but not by endothelial or Kupffer cells. Uptake by hepatocytes was saturable, as well as time and sodium dependent. At 0.5 degrees C, a temperature at which binding of GABA to the cell surface is considered to be the predominant component of the uptake process, the apparent affinity constant (Km) was 0.82 microM and a minimum value for binding velocity (Vmax) was 0.13 microM per min per 5 X 10(5) cells. Uptake of [3H]GABA by hepatocytes was markedly inhibited by excess unlabeled GABA (95%), alpha-aminoisobutyric acid (66%) and bicuculline (58%), but was inhibited much less by alanine (16%) and leucine (29%). These findings suggest that GABA binds specifically to the high affinity acceptor of the A amino acid transport system of rat hepatocytes. Impaired function of this transport system in liver failure could contribute to increased circulating levels of GABA.

Amino Acids↗

Effect of ethanol on gamma-aminobutyric acid and glycine receptor-coupled Cl- fluxes in rat brain synaptoneurosomes.

Chloride fluxes in synaptoneurosomes in response to additions of gamma-aminobutyric acid, glycine, and ethanol were measured using a chloride-sensitive fluorescent probe 6-methoxy-N-(3-sulfopropyl)quinolinium (SPQ). The Cl- gradient was directed outward by bathing cells in a medium low in Cl- concentration. The synaptoneurosomes responded to both gamma-aminobutyric acid and glycine by outflow of Cl- ions, as judged from an increase in SPQ fluorescence. These effects were inhibited by picrotoxin and strychnine, respectively. Ethanol also produced an outflow of Cl- ions from the synaptoneurosomes. Both picrotoxin and strychnine inhibited this effect. When the antagonists were used together, the inhibiting effect was additive. These results indicate that ethanol affects both gamma-aminobutyric acid and glycine receptor-linked chloride fluxes in the rat brain.

Animals↗

The gamma-aminobutyric-acid/benzodiazepine-receptor protein from rat brain. Large-scale purification and preparation of antibodies.

The gamma-aminobutyric-acid-receptor protein complex from rat brain was solubilized in high yield, purified in milligram amounts by benzodiazepine affinity chromatography and used to generate a high-titer rabbit antiserum. High concentrations of Triton X-100 detergent plus KCl solubilized about 90% of the membrane-bound gamma-aminobutyric acid receptor (assayed by [3H]muscimol binding) and benzodiazepine receptor (assayed by [3H]flunitrazepam binding) activities. Both activities were retained on an affinity column using an immobilized benzodiazepine ligand, and most of the column-absorbed receptor could be eluted by a solution of free benzodiazepine plus 4 M urea. The purified protein bound [3H]muscimol and [3H]flunitrazepam with receptor-like pharmacological specificity and specific activities of about 1700 pmol and 700 pmol bound/mg protein, respectively, for the two ligands. This corresponds to a purification of over 600-fold and a near theoretical purity, with a yield of milligram quantities from 100 g brain. Four peptide bands were observed on gel electrophoresis in sodium dodecyl sulfate, with molecular mass values of 31, 47, 52 and 57 kDa. The latter two were most significantly stained, and identified as receptor subunits by photolabeling with [3H]flunitrazepam (52 kDa) and [3H]muscimol (57 kDa), and by reaction on Western blots with monoclonal antibodies to this protein produced by Schoch et al. [(1985) Nature (Lond.) 314, 168-171]. Rabbit antiserum was raised to the purified protein and could, at high dilutions, both coprecipitate soluble gamma-aminobutyric-acid/benzodiazepine-receptor-binding activities and stain the receptor subunits (principally 52-kDa band) on Western blots.

Animals↗

Immunocytochemical evidence suggesting that diamine oxidase catalyzes biosynthesis of gamma-aminobutyric acid in antropyloric gastrin cells.

gamma-Aminobutyric acid (GABA) is a neurotransmitter that also occurs in a few non-neuronal cell types, where it may serve as a paracrine modulator. GABA is biosynthesized from glutamate by glutamate decarboxylase (GAD) and from putrescine via diamine oxidase (DAO). GAD is demonstrable in several GABA-positive cell types but is undetectable in the GABA-containing gastrin cells and somatostatin cells of the antropyloric mucosa of the stomach. Using two antisera raised against synthetic peptides corresponding to two different regions of rat DAO, we now demonstrate strong reactivity for DAO in gastrin-positive cells of the rat antropyloric mucosa, whereas somatostatin-positive cells as well as other structures of the antrum are unreactive. Western blotting analysis of antrum and colon demonstrate that both antisera react with a single band of 85 kD, consistent with the predicted molecular weight of DAO. Expression of DAO mRNA in the antrum is demonstrated by reverse transcriptase polymerase chain reaction (RT-PCR). Our results strongly indicate that gastrin cells produce GABA via DAO-catalyzed oxidation of putrescine, and experimental data moreover suggest that the biosynthesis of GABA is regulated by the prandial state. Because GABA modulates release of somatostatin, these results point to a new mechanism of paracrine interaction between gastrin cells and somatostatin cells.

Amine Oxidase (Copper-Containing)↗

Inhibition of depressor cardiovascular reflexes by a derivative of gamma-aminobutyric acid (GABA) and by general anesthetics with suspected GABA-mimetic effects.

Several general anesthetics and baclofen (Lioresal), an analog of gamma-aminobutyric acid, were tested for their effects on reflexes evoked by stimulation of afferent fibers in the carotid sinus nerve, aortic nerve and cervical vagus nerve. In both anesthetized and decerebrate unanesthetized cats, baclofen, barbiturates (methohexital and pentobarbital) and alpha-chloralose converted depressor responses evoked by afferent fiber stimulation to pressor episodes. The original depressor responses were reinstated temporarily by the gamma-aminobutyric acid antagonists bicuculline and picrotoxin, but not by strychnine or pentylenetetrazol. Baclofen, chloralose and barbiturate general anesthetics also blocked the inhibition of aortic nerve, carotid sinus nerve and vagus nerve stimulation of neural sympathetic vasomotor discharges. Other general anesthetics (halothane, nitrous oxide, urethane and ketamine) did not have these effects. The effects of baclofen, barbiturates and chloralose are attributed to selective blockade of baroreceptor reflexes. It is suggested that the underlying mechanism may be related to enhancement or imitation of the action of gamma-aminobutyric acid at central vasomotor synapses.

Anesthetics↗

Direct protein-protein coupling enables cross-talk between dopamine D5 and gamma-aminobutyric acid A receptors.

GABA(A) (gamma-aminobutyric-acid A) and dopamine D1 and D5 receptors represent two structurally and functionally divergent families of neurotransmitter receptors. The former comprises a class of multi-subunit ligand-gated channels mediating fast interneuronal synaptic transmission, whereas the latter belongs to the seven-transmembrane-domain single-polypeptide receptor superfamily that exerts its biological effects, including the modulation of GABA(A) receptor function, through the activation of second-messenger signalling cascades by G proteins. Here we show that GABA(A)-ligand-gated channels complex selectively with D5 receptors through the direct binding of the D5 carboxy-terminal domain with the second intracellular loop of the GABA(A) gamma2(short) receptor subunit. This physical association enables mutually inhibitory functional interactions between these receptor systems. The data highlight a previously unknown signal transduction mechanism whereby subtype-selective G-protein-coupled receptors dynamically regulate synaptic strength independently of classically defined second-messenger systems, and provide a heuristic framework in which to view these receptor systems in the maintenance of psychomotor disease states.

Amino Acid Motifs↗

Dopamine and gamma-aminobutyric acid transporters: differential regulation by agents that promote phosphorylation.

Treatment of striatal synaptosomes with the protein phosphatase inhibitor okadaic acid significantly decreased gamma-aminobutyric acid (GABA) uptake, indicating that the GABA transporter may be regulated by phosphorylation. Forskolin and 8-bromoadenosine-3,5-cyclic monophosphate (8-br-cAMP) inhibited GABA uptake to the same extent as okadaic acid, suggesting the involvement of protein kinase A in GABA transporter regulation. In contrast, the same treatments did not alter dopamine (DA) uptake into striatal synaptosomal preparations. The results suggest that the structurally related GABA and DA transporters may be subject to different post-translational regulation.

8-Bromo Cyclic Adenosine Monophosphate↗

gamma-Aminobutyric acid directly depolarizes cultured oligodendrocytes.

gamma-Aminobutyric acid (GABA) depolarizes in a dose-dependent manner approximately one-third of all immunologically identified oligodendrocytes in cultures of mouse spinal cord. Measurements of [K+]o indicate that the response to GABA is not due to K+ released from active neurons. The depolarization is not accompanied by a change in cell input resistance. Replacement of sodium in the bathing solution abolishes the entire response, whereas ouabain only inhibits the repolarization phase. Current clamp experiments with two separate intracellular electrodes show that the depolarization increases at more positive potentials while the repolarization increases at more negative potentials. Bicuculline and picrotoxin but not nipecotic acid reduce the GABA effect. Pentobarbital and chlordiazepoxid also reduce the GABA-induced depolarization. Muscimol produces a depolarization similar to that of GABA. Heterogeneity in the oligodendrocyte population is indicated by the observation that some cells respond to both GABA and glutamate, while others respond only to one and some are not responsive to either.

Animals↗

The third gamma subunit of the gamma-aminobutyric acid type A receptor family.

Cloned cDNAs encoding a member of the gamma-aminobutyric acid type A receptor gamma-subunit class were isolated from rat-brain-mRNA-derived libraries. The gamma 3 mRNA is present in cortex, claustrum, caudate putamen, and some thalamic nuclei, particularly the medial geniculate nucleus, where it is the predominant gamma-subunit transcript. The gamma 3 gene is expressed at very low levels in cerebellum and hippocampus. In coexpression experiments with the alpha 1 and beta 2 subunits, gamma 3 imparts benzodiazepine binding to gamma-aminobutyric acid type A receptors and forms gamma-aminobutyric acid-gated benzodiazepine-modulated chloride channels that exhibit a larger conductance than alpha 1 beta 2 receptor channels. Furthermore, the presence of gamma 3 in place of gamma 2 in alpha 1 beta 2 gamma x receptors generates a marked decrease in the affinity of agonists while leaving the affinity of antagonists or negative modulators largely unaffected.

Amino Acid Sequence↗

[Use of surviving hippocampal slices to test drugs related to the gamma-aminobutyric acid system].

The action of gamma-aminobutyric acid (GABA) and some of its agonists and antagonists on the electrical activity of neurons from rat hippocampal slices was studied. GABA decreased the frequency of spontaneous electrical activity and raised the duration of the inhibitory period caused by electrical stimulation of the hippocampal slices. GABA agonists produced the similar action, while antagonists the contrary one. The method offered can be applied to the comparative test of GABA agonists and antagonists.

Animals↗

On the formation of gamma-aminobutyric acid from putrescine in brain.

Gamma-aminobutyric acid is not formed in significant amounts from putrescine by incubation with rat brain homogenates. However, it is formed if acetyl-CoA is added to the incubation medium. This is taken as further evidence for the existence of a metabolic pathway in mammalian brain which comprises acetylation of putrescine to monoacetyl putrescine and oxidative deamination of monoacetyl putrescine by MAO. Nerve cells and glia cells have comparable capacities for putrescine degradation along this pathway.

Acetyl Coenzyme A↗

Control of rat gastric somatostatin release by gamma-aminobutyric acid (GABA).

The influence of gamma-aminobutyric acid (GABA) on gastric somatostatin and gastrin release was studied using an isolated perfused rat stomach preparation. GABA dose-dependently inhibited somatostatin release (maximal inhibition of 44% at 10(-5)M GABA), whereas gastrin secretion was not affected. The GABA agonist muscimol led to a decrease in somatostatin release of similar magnitude. The GABA-induced changes were partially reversed by 10(-5)M atropine. Gastrin secretion was not influenced by either protocol. It is concluded that GABA as a putative neurotransmitter in the enteric nervous system is inhibitory to rat gastric somatostatin release in vitro via cholinergic pathways.

Animals↗

Time-dependent inhibition of gamma-aminobutyric acid aminotransferase, by 3-hydroxybenzylhydrazine.

gamma-Aminobutyric acid (GABA) aminotransferase is a pyridoxal 5'-phosphate (PLP)-dependent enzyme that catalyzes the conversion of GABA into succinic semialdehyde. Hydrazine analogues have long been known to act as inactivators of PLP-dependent enzymes, including GABA aminotransferase, however, no studies of the molecular mechanism of inactivation of PLP-dependent enzymes by hydrazines have been reported. 3-Hydroxybenzylhydrazine is shown to be a potent in vitro time-dependent inhibitor of pig brain GABA aminotransferase. UV-visible and 1H NMR studies, both with GABA aminotransferase and with PLP as a chemical model for the enzyme-catalyzed reaction, indicate that 3-hydroxybenzylhydrazine reacts both enzymatically and nonenzymatically to form the 3-hydroxybenzylhydrazone of PLP without tautomerization.

4-Aminobutyrate Transaminase↗

Low cerebrospinal fluid gamma-aminobutyric acid content in seizure patients.

Gamma-Aminobutyric acid (GABA) has been implicated in the neurochemistry of epilepsy. Lumbar cerebrospinal fluid (CSF) GABA concentrations determined using an ion-exchange fluorometric assay reflect brain GABA content. The mean lumbar CSF GABA concentration among 21 medicated patients with intractable seizures was significantly lower (p less than 0.001) than that of 20 unmedicated normal volunteers. Patients with generalized tonic-clonic (grand mal) and complex partial (psychomotor) seizures had significantly lower (p less than 0.05) CSF GABA concentrations than those with simple partial (focal sensory/motor) seizures. Although lumbar CSF GABA levels in our seizure patients did not significantly correlate with serum concentrations of phenytoin, phenobarbital, or primidone, additional study of medication-free epileptic patients may be required to evaluate the possibility of anticonvulsant-drug-induced CSF GABA alterations.

Adult↗

Energy utilization in the induced release of gamma-aminobutyric acid from synaptosomes.

Newly accumulated gamma-aminobutyric acid (GABA) was released from synaptosomes by treatment with 30 mM K+ or the Ca2+ ionophore A23187. Release was Ca2+-dependent and energy-dependent. The induced release of GABA was inhibited by S-13, an uncoupler of oxidative phosphorylation, by azide, a blocker of mitochondrial respiration, and by oligomycin, efrapeptin, tributyltin and dicyclohexylcarbodiimide (DCCD), which are inhibitors of Ca2+/Mg2+-ATPases, including mitochondrial ATPase. Efrapeptin blocked GABA release induced by K+ but not A23187-induced release. Azide and oligomycin appeared to inhibit GABA release as a consequence of their effects on mitochondrial ATP synthesis. However, the inhibition of GABA release by the other compounds could not be totally accounted for by their effects on synaptosomal ATP stores. It is proposed that these compounds, in addition to affecting ATP synthesis, directly affect biochemical reactions involved in GABA release. Thus, these and similar inhibitors seem to be useful probes of the transmitter release process.

Adenosine Triphosphate↗

Uptake in brain and neurophysiological activity of two lipid esters of gamma-aminobutyric acid.

Two lipid esters of gamma-aminobutyric acid (GABA), 1-linolenoyl-2,3-bis(4-aminobutyryl)propane-1,2,3-triol and 1,2-dilinolenoyl-3-(4-aminobutyryl)propane-1,2,3-triol, were found to have brain uptake indices of greater than 30% using the single-pass carotid artery injection technique. Both compounds produced dose-dependent inhibition of the evoked population spike in slices of rat hippocampus maintained in vitro. This effect was blocked reversibly by picrotoxin. The magnitude of the inhibition produced by the lipid esters of GABA was comparable to that of similar doses of GABA, but for both compounds the duration of the effect was at least 10 times longer than that produced by GABA. These data are consistent with the idea that the lipid esters of GABA can effectively penetrate the blood-brain barrier and act as prodrugs for the delivery of GABA to the central nervous system.

Action Potentials↗