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Biomedical subjects

B Pearce

Publications and source records attributed to B Pearce.

At least 19 recordsLinked to original sources

Further characterisation of excitatory amino acid receptors coupled to phosphoinositide metabolism in astrocytes.

Excitatory amino acids stimulate phosphoinositide breakdown in astrocytes with the following rank order of effect: quisqualate greater than ibotenate = glutamate greater than kainate greater than N-methyl-D-aspartate. Quisqualate-induced responses were resistant to blockade with a range of receptor antagonists whereas those to glutamate were partially reversed by gamma-D-glutamylaminosulphonic acid and gamma-D-glutamylglycine. These antagonists were, however, more effective against kainate-stimulated phosphoinositide metabolism. These experiments together with those where combinations of agonists were used, suggest that the kainate-induced and, to some extent, the glutamate-induced responses were due to membrane depolarisation and that quisqualate activates a non-ionotropic class of receptor at which glutamate and ibotenate are partial agonists.

Astrocytes

ATP-evoked Ca2+ mobilisation and prostanoid release from astrocytes: P2-purinergic receptors linked to phosphoinositide hydrolysis.

Astrocyte cultures prelabelled with either [3H]inositol or 45Ca2+ were exposed to ATP and its hydrolysis products. ATP and ADP, but not AMP and adenosine, produced increases in the accumulation of intracellular 3H-labelled inositol phosphates (IP), efflux of 45Ca2+, and release of thromboxane A2 (TXA2). Whereas ATP-stimulated 3H-IP accumulation was unaffected, its ability to promote TXA2 release was markedly reduced by mepacrine, an inhibitor of phospholipase A2 (PLA2). ATP-evoked 3H-IP production was also spared following treatment with the cyclooxygenase inhibitor, indomethacin. We conclude that ATP-induced phosphoinositide (PPI) breakdown and 45 Ca2+ mobilisation occurred in parallel with, if not preceded, the release of TXA2. Following depletion of intracellular Ca2+ with a brief preexposure to ATP in the absence of extracellular Ca2+, the release of TXA2 in response to a subsequent ATP challenge was greatly reduced when compared with control. These results suggest that mobilisation of cytosolic Ca2+ may be the stimulus for PLA2 activation and, thus, TXA2 release. Stimulation of alpha 1-adrenoceptors also caused PPI breakdown and 45 Ca2+ efflux but not TXA2 release. The effects of ATP and noradrenaline (NA) on 3H-IP accumulation were additive, but their combined ability to increase 45Ca2+ efflux was not. Interestingly, in the presence of NA, ATP-stimulated TXA2 release was reduced. Our data provide evidence that functional P2-purinergic receptors are present on astrocytes and that ATP is the first physiologically relevant stimulus found to initiate prostanoid release from these cells.

Adenine Nucleotides

A role for protein kinase C in astrocyte glycogen metabolism.

Astrocytes accumulated 2-[3H]deoxyglucose (2-DG) from the incubation medium and incorporated a proportion of it into glycogen. When cells were exposed to the phorbol ester, phorbol 12-myristate 13-acetate (PMA), or the diacylglycerol analogue, dioctanoylglycerol, there was a 30% reduction in the amount of 3H recovered in the glycogen pool. This effect was abolished in cells which had been depleted of protein kinase C (PKC) by prior exposure to PMA. Activation of adenylate cyclase with forskolin caused an increase (40%) in glycogen labelling indicating enhanced glycogen turnover. However, this effect was potentiated when astrocytes were incubated with forskolin and PMA in combination. We suggest that there is an interaction between PKC and adenylate cyclase in the regulation of astrocyte glycogen metabolism.

Animals

Astrocytes as eicosanoid-producing cells.

A variety of prostaglandins and leukotrienes, together with thromboxane and prostacyclin metabolites, can be detected in central nervous tissues and in cerebrospinal fluid. Defined cultures of astrocytes have revealed these cells to be a major source of eicosanoids. In common with other eicosanoid-producing cells, agents such as calcium ionophores and phorbol esters are potent stimuli for promoting release. While in other tissues agonists for receptors linked to calcium mobilisation prompt eicosanoid release, this does not seem to be the case in astrocytes, though a range of such receptors are present. The notable exceptions to this observation are adenosine triphosphate and adenosine diphosphate, presumably acting through P2 purinergic receptors. Many cell types in the CNS are targets for eicosanoids, possessing receptors linked to adenylate cyclase or phospholipase C. An appreciation of the functional significance of activation of these receptors is just now beginning. Eicosanoids have effects in the CNS that involve not only the vascular supply but also synaptic modulation and immune regulation.

Animals

Effects of extracellular potassium on glycogen stores of astrocytes in vitro.

Astrocyte-enriched and meningeal cell cultures of the rat cerebral cortex were prepared, and their glycogen content was measured after 10-90 min under control (2.5 mM) concentrations of potassium after prefeeding with 20 mM glucose. No net change in glycogen level was noted in either culture over this period. Cell cultures were then exposed to increased concentrations of potassium (5, 10, and 15 mM), and their glycogen content was measured after 10-90 min. Both types of cell culture showed complex and variable changes in glycogen content. In general, increased potassium concentrations caused astrocyte glycogen stores to be reduced at physiological increases of potassium levels (from 2.5 to 5 mM and above), although a period of resynthesis was evident at all potassium concentrations. Meningeal cell glycogen levels were highly variable and only affected by high (10 and 15 mM) levels of potassium. These results are discussed with respect to the theory that changes in the external potassium concentration caused by neuronal activity might act as a signal controlling astrocyte glycogen stores.

Animals

Effects of neurotransmitters on astrocyte glycogen stores in vitro.

We have used receptor binding assays to determine the presence of three neurotransmitter receptors in a crude membrane fraction derived from neonatal rat cortical astrocyte cultures and subsequently determined the effects of transmitter receptor activation on astrocyte glycogen content in vitro. beta-Adrenergic (KD = 88 pM; Bmax = 51 fmol/mg of protein), serotonin (KD = 70 nM; Bmax = 44 pmol/mg of protein), and muscarinic cholinergic receptors (KD = 79 pM; Bmax = 44 fmol/mg of protein) were found to be present on astrocyte membranes using [3H]dihydroalprenolol, [3H]serotonin, and [3H]quinuclidinyl benzilate, respectively, as ligands. Astrocyte cultures exposed to noradrenaline but not specific alpha- and beta-receptor agonists contained 33% less glycogen than controls. Neither serotonin nor carbachol caused alterations in astrocyte glycogen content under normal conditions. Reserpine-treated cultures, however, responded to serotonin with a 28% decrease in glycogen content and contained higher levels of glycogen than non-reserpine-treated controls (a 55% increase). These results show that both noradrenaline and serotonin can evoke astrocyte glycogenolysis and that noradrenergic control of glycogen metabolism is probably exerted through both alpha- and beta-receptors. Neurotransmitter control of astrocyte glycogen turnover may represent a form of neuron-astrocyte signalling in addition to that provided by changes in external potassium concentration.

Animals

Characteristics of phorbol ester- and agonist-induced down-regulation of astrocyte receptors coupled to inositol phospholipid metabolism.

We have examined some of the characteristics of phorbol ester- and agonist-induced down-regulation of astrocyte receptors coupled to phosphoinositide metabolism. Our results show that preincubation of [3H]inositol-labelled astrocyte cultures with phorbol 12-myristate 13-acetate (PMA) resulted in a time- (t 1/2, 1-2 min) and concentration-dependent (IC50, 1 nM) decrease in the accumulation of [3H]inositol phosphates (IP) evoked by muscarinic receptor stimulation. Much longer (30-40 min) preincubation periods with higher concentrations (IC50, 600 microM) were required to elicit the same effect with the receptor agonist carbachol. Following preincubation, agonist-stimulated [3H]IP accumulation recovered with time; in both cases pretreatment levels of inositol lipid metabolism were attained within 2 days. Both phorbol ester and agonist pretreatments were also effective in reversing the carbachol-evoked mobilisation of 45Ca2+ in these cells. However, their effects on phosphoinositide metabolism were found not to be additive. Although neither pretreatment affected the incorporation of [3H]inositol into phosphoinositides, both resulted in a loss of membrane muscarinic receptors as assessed by [3H]N-methylscopolamine binding. In washed membranes prepared from [3H]inositol-labelled cultures, the guanine nucleotide analogue, guanosine 5'-O-thiotriphosphate (GTP-gamma-S), caused a dose-dependent increase in [3H]IP formation. This response was enhanced when carbachol was also included in the incubation medium, although the agonist alone was without effect. Pretreatment with either PMA or carbachol had no effect on GTP-gamma-S-stimulated [3H]IP accumulation but did reduce the ability of carbachol to augment this response. Similar findings were obtained when membranes were exposed directly to PMA.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Phorbol ester stimulation of prostanoid synthesis by cultured astrocytes.

The role of protein kinase C in mediating the synthesis and release of various prostanoids (prostaglandins E2, I2, F2 alpha and thromboxane A2) from astroglial cells derived from neonatal rat cerebrum and maintained in primary culture was investigated using phorbol ester. Phorbol myristate acetate stimulated the release of arachidonic acid from prelabelled cells and all 4 prostanoids in a dose-dependent manner (EC50 = 300 nM). This effect was inhibited by the protein kinase inhibitor 1-(-5-isoquinolinylsulfonyl)-2-methylpiperizine (IC50 = 25 microM) and the phospholipase A2 inhibitor, mepacrine (IC50 = 5 microM). In addition, the stimulatory effect of the phorbol ester was not apparent in cells which had been depleted specifically of protein kinase C. In the presence of the calcium ionophore A23187, phorbol ester-stimulated prostanoid release was enhanced. In the absence of extracellular calcium, there was no prostanoid-stimulation by phorbol ester, but the calcium channel blocker verapamil did not mimic this effect. We conclude that stimulation of protein kinase C by phorbol ester elicits prostanoid synthesis and release by a process that involves calcium influx and the activation of phospholipase A2.

Animals

Inositol phospholipids are probably not the source of arachidonic acid for eicosanoid synthesis in astrocytes.

In astrocyte-enriched cultures of the rat cerebral cortex the Ca2+ ionophore A23187 provoked the breakdown of inositol phospholipids, the liberation of arachidonic acid and the release of prostaglandins E2, F2 alpha, I2 and thromboxane A2. However, agonists for receptors also coupled to inositol phospholipid metabolism in these cells failed to produce an increase in the release of both arachidonic acid and eicosanoids. Results suggest that the A23187-stimulated release of arachidonic acid and eicosanoids is caused by a phospholipase A2-mediated attack on lipids other than the inositol phospholipids. Moreover, receptors linked to inositol lipid turnover are not involved in the control of eicosanoid release from astrocytes.

Animals

Phorbol ester stimulates proliferation of astrocytes in primary culture.

Near-confluent primary cultures of astrocytes from the neonatal rat cerebral cortex were transferred to low serum (0.1%) growth medium for 24 h before a single addition of phorbol-12-myristate-13-acetate (0.01-100 ng X ml-1), a phorbol ester which mimics diacylglycerol activation of protein kinase C. After 48 h the cultures were pulsed with [methyl-3H]thymidine. Cultures exposed to phorbol ester exhibited dose-dependent increases in thymidine incorporation which were reversed by amiloride.

Amiloride

Astrocyte glutamate receptor activation promotes inositol phospholipid turnover and calcium flux.

Astrocyte-enriched cultures prepared from the neonatal rat cortex were prelabelled with either [3H]myoinositol or 45Ca2+ and then exposed to various excitatory amino acids. This resulted in an increase in both the breakdown of membrane inositol phospholipids and Ca2+ flux with the following rank order of efficacy: quisqualate greater than or equal to glutamate (Glu) greater than kainate much greater than N-methyl-D-aspartate. Experiments performed with the Ca2+ ionophore A23187 and in the absence of medium Ca2+ suggested that Glu-evoked 45Ca2+ efflux was primarily the result of an increased influx of extracellular Ca2+. However, Glu-stimulated inositol lipid metabolism was found to be only partially dependent on extracellular Ca2+. The quisqualate-preferring receptor antagonist gamma-glutamylaminomethylsulphonic acid was found to be effective in reversing both Glu-evoked inositol lipid breakdown and Ca2+ flux. The results presented are suggestive of some form of interaction between Glu receptors coupled to inositol lipid turnover and Ca2+ channel opening in astrocytes.

Amino Acids

Receptor-mediated inositol phospholipid hydrolysis in astrocytes.

Astrocyte-enriched cultures of the neonatal rat cortex were incubated for 24 h with [3H]inositol to prelabel the membrane inositol phospholipids. Exposure of the cultures to either noradrenaline or carbachol in the presence of Li+ produced a time- and dose-dependent accumulation of intracellular [3H]inositol phosphates. The separation of the individual inositol phosphates formed in response to receptor stimulation revealed that the major 3H-metabolite accumulated under these conditions was inositol monophosphate but that at least some of this was due to the initial formation of inositol trisphosphate. The use of selective receptor antagonists showed that noradrenaline- and carbachol-induced [3H]inositol phosphate accumulation was the result of the activation of alpha 1-adrenoceptors and muscarinic acetylcholine (probably of the M1 subtype) receptors respectively. Agonist-evoked [3H]inositol phosphate accumulation were found to be additive but the simultaneous addition of agonists and the Ca2+ ionophore A23187, which also promoted inositol phospholipid hydrolysis, was not. Agonist-induced [3H]inositol phosphate accumulation was only partially dependent on extracellular Ca2+, whilst that elicited by A23187 was entirely Ca2+-dependent. The results suggest that alpha 1-adrenoceptors and muscarinic acetylcholine receptors in these cultures are present either on the same cells and linked to separate inositol lipid pools or associated with different subpopulations of astrocytes in these cultures. Moreover, inositol lipids other than phosphatidylinositol 4,5-bisphosphate may be hydrolysed in response to agonist stimulation.

Animals

Astrocytes have both M1 and M2 muscarinic receptor subtypes.

In astrocytes, carbachol evoked the turnover of membrane inositol phospholipids prelabelled with [3H]inositol, as revealed by [3H]inositol phosphate accumulation in the presence of 5 mM lithium. This effect was blocked by atropine and by pirenzepine (IC50 2.2 nM and 56 nM, respectively). Carbachol partially attenuated the isoproterenol-stimulated cyclic adenosine 3',5'-monophosphate production in astrocytes by a direct effect on adenylate cyclase, an effect blocked by atropine and pirenzepine. These results suggest that astrocytes express muscarinic receptor subtypes.

Animals