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Biomedical subjects

J Keelan

Publications and source records attributed to J Keelan.

17 recordsLinked to original sources

Quantitative imaging of glutathione in hippocampal neurons and glia in culture using monochlorobimane.

Glutathione (GSH) is a major antioxidant system in the mammalian central nervous system (CNS). Abnormalities of GSH metabolism have been associated with many disorders of the CNS, including Parkinson's, Alzheimer's, and Huntingdon's diseases and ischaemic/reperfusion injury. Investigation of GSH levels in the CNS generally relies on biochemical assays from cultures enriched for different cell types. Because glia influence neuronal metabolism, we have studied cultures in which neurons and glia are cocultured. This approach demands fluorescence imaging to differentiate between the different cell types in the culture, permitted by the use of monochlorobimane (MCB), which reacts with GSH to produce a fluorescent product. We have defined the conditions required to ensure steady-state MCB loading and show the specificity of MCB for GSH through a reaction catalysed by glutathione-S-transferase (GST). [GSH] was consistently higher in glia than in neurons, and [GSH] in both cell types decreased with time in culture. Inhibition of GSH synthesis by buthionine sulfoximine (BSO) caused a greater proportional depletion of GSH in glia than in neurons. The depletion of GSH induced by BSO was significantly greater in cells cultured for >10 days. Furthermore, release of GSH from glia and its breakdown by the ectoenzyme gamma-glutamyltranspeptidase (gammaGT) maintains [GSH] in neurons. In older cultures, inhibition of gammaGT by acivicin caused significant depletion of neuronal GSH. After inhibition of GSH synthesis by BSO, inhibition of the glia-neuron trafficking pathway by acivicin caused widespread neuronal death. Such neurotoxicity was independent of the endogenous glutamate and nitric oxide synthase, suggesting that it is not due to secondary excitotoxicity.

Animals↗

Exploration of the role of reactive oxygen species in glutamate neurotoxicity in rat hippocampal neurones in culture.

1. Exposure of hippocampal neurones to glutamate at toxic levels is associated with a profound collapse of mitochondrial potential and deregulation of calcium homeostasis. We have explored the contributions of reactive oxygen species (ROS) to these events, considered to represent the first steps in the progression to cell death. 2. Digital imaging techniques were used to monitor changes in cytosolic Ca2+ concentration ([Ca2+]c; fura-2FF) and mitochondrial potential (Deltapsim; rhodamine 123); rates of ROS generation were assessed using hydroethidium (HEt); and membrane currents were measured with the whole-cell configuration of the patch clamp technique. 3. Inhibitors of lipid peroxidation (trolox plus ascorbate) and scavengers of superoxide or hydrogen peroxide (manganese(III) tetrakis(4-benzoic acid) porphyrin (MnTBAP) and TEMPO plus catalase), had only minimal impact on the mitochondrial depolarisation and the sustained increase in [Ca2+]c during and following a 10 min exposure to glutamate. 4. The antioxidants completely suppressed ROS generated by xanthine with xanthine oxidase. No significant increase in ROS production was detected with HEt during a 10 min glutamate exposure. 5. A combination of antioxidants (TEMPO, catalase, trolox and ascorbate) delayed but did not prevent the glutamate-induced mitochondrial depolarisation and the secondary [Ca2+]c rise. However, this was attributable to a transient inhibition of the NMDA current by the antioxidants. 6. Despite their inability to attenuate the glutamate-induced collapse of Deltapsim and destabilisation of [Ca2+]c homeostasis, the antioxidants conferred significant protection in assays of cell viability at 24 h after a 10 min excitotoxic challenge. The data obtained suggest that antioxidants exert their protective effect against glutamate-induced neuronal death through steps downstream of a sustained increase in [Ca2+]c associated with the collapse of Deltapsi(m).

Animals↗

15-deoxy-delta12,14-prostaglandin J2-induced apoptosis in amnion-like WISH cells.

Apoptosis at the site of rupture has been proposed to play a role in premature rupture of the fetal membranes, a condition associated with increased risk of neonatal sepsis and preterm birth. We investigated the ability of peroxisome proliferator-activated receptor (PPAR)-gamma ligands 15-deoxy-delta12,14PGJ2 (15d-PGJ2), delta12PGJ2, ciglitizone and rosiglitazone to induce apoptosis in the amnion-like WISH cell line. 15d-PGJ2 (10 microM) induced morphological characteristics of apoptosis within 2 h, with biochemical indices (caspase activation and substrate cleavage) following shortly after; maximum cell death (approximately 60%) was observed by 16 h, with an EC50) of approximately 7 microM 15d-PGJ2. Delta12-PGJ2 also induced apoptosis but was less potent and acted at a much slower rate. While ciglitizone also induced apoptosis, rosiglitazone had no effect on cell viability. The mechanism of induction of apoptosis by 15d-PGJ2 and delta12PGJ2, which may be independent of PPAR-gamma activation, requires further elucidation.

Amino Acid Chloromethyl Ketones↗

Excitotoxic mitochondrial depolarisation requires both calcium and nitric oxide in rat hippocampal neurons.

1. Glutamate neurotoxicity has been attributed to cellular Ca2+ overload. As mitochondrial depolarisation may represent a pivotal step in the progression to cell death, we have used digital imaging techniques to examine the relationship between cytosolic Ca2+ concentration ([Ca2+]c) and mitochondrial potential (DeltaPsim) during glutamate toxicity, and to define the mechanisms underlying mitochondrial dysfunction. 2. In cells of > 11 days in vitro (DIV), exposure to 50 mM potassium or 100 microM glutamate had different consequences for DeltaPsim. KCl caused a small transient loss of DeltaPsim but in response to glutamate there was a profound loss of DeltaPsim. In cells of 7-10 DIV, glutamate caused only a modest and reversible drop in DeltaPsim. 3. Using fura-2 to measure [Ca2+]c, responses to KCl and glutamate did not appear significantly different. However, use of the low affinity indicator fura-2FF revealed a difference in the [Ca2+]c responses to KCl and glutamate, which clearly correlated with the loss of DeltaPsim. Neurons exhibiting a profound mitochondrial depolarisation also showed a large secondary increase in the fura-2FF ratio. 4. The glutamate-induced loss of DeltaPsim was dependent on Ca2+ influx. However, inhibition of nitric oxide synthase (NOS) by L-NAME significantly attenuated the loss of DeltaPsim. Furthermore, photolysis of caged NO at levels that had no effect alone promoted a profound mitochondrial depolarisation when combined with high [Ca2+]c, either in response to KCl or to glutamate in cultures at 7-10 DIV. 5. In cells that showed only modest mitochondrial responses to glutamate, induction of a mitochondrial depolarisation by the addition of NO was followed by a secondary rise in [Ca2+]c. These data suggest that [Ca2+]c and nitric oxide act synergistically to cause mitochondrial dysfunction and impaired [Ca2+]c homeostasis during glutamate toxicity.

Animals↗

Glutamate-induced mitochondrial depolarisation and perturbation of calcium homeostasis in cultured rat hippocampal neurones.

1. The objective of this study was to clarify the relationships between loss of mitochondrial potential and the perturbation of neuronal Ca2+ homeostasis induced by a toxic glutamate challenge. Digital fluorescence imaging techniques were employed to monitor simultaneously changes in cytoplasmic Ca2+ concentration ([Ca2+]i) and mitochondrial potential (DeltaPsim) in individual hippocampal neurones in culture coloaded with fura-2 AM or fura-2FF AM and rhodamine 123 (Rh 123). 2. In most cells (96 %) at 6-7 days in vitro (DIV) and in a small proportion of cells (29 %) at 11-17 DIV the [Ca2+]i increase induced by exposure to 100 microM glutamate for 10 min was associated with a small mitochondrial depolarisation, followed by mitochondrial repolarisation, and a degree of recovery of [Ca2+]i following glutamate washout. In the majority of neurones at 11-17 DIV (71 %), exposure to glutamate for 10 min induced a profound mono- or biphasic mitochondrial depolarisation, which was clearly correlated with a sustained [Ca2+]i plateau despite the removal of glutamate. 3. Addition of glutamate receptor antagonists (15 microM MK-801 plus 75 microM 6-cyano-7-nitroquinoxaline-2, 3-dione (CNQX)) to the washout solution did not affect the post-glutamate [Ca2+]i plateau in neurones exhibiting a profound mitochondrial depolarisation but greatly improved [Ca2+]i recovery in those neurones undergoing only a small mitochondrial depolarisation, suggesting that the release of endogenous glutamate delays [Ca2+]i recovery in the postglutamate period. 4. Cyclosporin A (500 nM) or N-methyl Val-4-cyclosporin A (200 nM) delayed or even prevented the development of the second phase of mitochondrial depolarisation in cells at 11-17 DIV and increased the proportion of neurones exhibiting a small monophasic mitochondrial depolarisation and [Ca2+]i recovery upon glutamate removal. 5. We have thus described a striking correlation between mitochondrial depolarisation and the failure of cells to restore [Ca2+]i following a toxic glutamate challenge. These data suggest that mitochondrial dysfunction plays a major role in the deregulation of [Ca2+]i associated with glutamate toxicity.

Adenosine Triphosphate↗

Heightened resistance of the neonatal brain to ischemia-reperfusion involves a lack of mitochondrial damage in the nerve terminal.

Mitochondria are known targets of ischemia-reperfusion injury in adult brain. Although neonates are more resistant to ischemic episodes, the mechanisms accounting for this are not yet fully understood. The aim of this study therefore was to determine whether a difference in post-ischemic mitochondrial function may play a role in the heightened recovery of the neonatal brain following ischemia-reperfusion. We have therefore compared the effects of an in vitro model of ischemia on the enzymes of the mitochondrial respiratory chain in isolated nerve terminals (synaptosomes) from neonatal and adult rats. Ischemia caused a significant, reversible decrease in mitochondrial Complex I activity in both adult and neonatal preparations. In neonatal preparations alone, ischemia also led to a significant decrease in mitochondrial Complexes II-III activity. Following 30 min of reperfusion mitochondrial Complexes II-III and IV exhibited decreased activity in synaptosomes from adult, but not neonatal rats. These data suggest a difference in the susceptibility of adult as compared to neonatal nerve terminal mitochondria to ischemia-reperfusion. These data show for the first time that nerve terminal mitochondria from immature animals remain undamaged following a period of ischemia and reperfusion, in contrast to nerve terminal mitochondria from the adult brain. This adds to the growing body of evidence that mitochondrial function plays a key role in neuronal death following cerebral ischemia reperfusion.

Analysis of Variance↗

Prostaglandin H synthase-2 and cytosolic phospholipase A2 in the hypoxic-ischemic brain: role in neuronal death or survival?

The breakdown of membrane phospholipids and subsequent arachidonic acid metabolism to prostanoids is a well-documented brain response to cerebral ischemia. To further elucidate the components of this signal transduction pathway, immunocytochemistry was used to determine the levels of two potentially important enzymes, cytosolic phospholipase A2 (cPLA2) and prostaglandin H synthase-2 (PGHS-2), in the immature rat brain following moderate unilateral hypoxic-ischemia (HI). The CA1 pyramidal cells of the hippocampus which undergo delayed neuronal death on the injured side following HI demonstrated a significant induction of PGHS-2 immunoreactivity 48 h post-insult. However, a consistent increase in PGHS-2 was also evident in the resistant dentate granule cells at an earlier time point. Although PGHS-2 is present in both susceptible and resistant cell populations following HI, the possibility remains that divergence further down-stream in the pathway is responsible for selective vulnerability. In contrast to the neuronal PGHS-2 expression, cPLA2 immunoreactivity appears to be of glial origin with increases in and around the CAI-2 pyramidal cell layer at the 72-168-h time points. These results suggest that prostanoids are likely to serve important roles in HI brain damage and repair in infant brain.

Animals↗

Inhibition of N-acetylaspartate production: implications for 1H MRS studies in vivo.

The effect of specific irreversible inhibitors of complexes I, III, IV and V of the mitochondrial respiratory chain, (rotenone, myxothiazol, cyanide and oligomycin, respectively) on mitochondrial N-acetylaspartate production, and its relationship to oxidative phosphorylation (ATP production and oxygen consumption) were investigated in isolated rat brain mitochondria. Mitochondrial N-acetylaspartate production, ATP production and oxygen consumption were all significantly decreased in the presence of each of the inhibitors used compared with control incubations, and correlated positively with each other. It is postulated that decreased N-acetylaspartate levels seen in disease states by 1H NMR spectroscopy in vivo may reflect primarily an impaired mitochondrial energy production rather than neuronal cell loss.

Analysis of Variance↗

Nitric oxide and antioxidant status in glucose and oxygen deprived neonatal and adult rat brain synaptosomes.

Nitric oxide (NO.) has been implicated in the process of cerebral ischemia/reperfusion injury. We have examined the production of NO., as reflected by nitrite (NO2-) + nitrate (NO3-) accumulation, from synaptosomes isolated from neonatal or adult rat brain and subjected to a period of glucose and oxygen deprivation. There was a significant increase in the amount of NO2- + NO3- production from adult synaptosomes under these conditions, whereas there was no difference compared to control in the production of NO2- + NO3- from the neonatal synaptosomes. The total antioxidant status of the synaptosomes at these different stages of brain development was found to be the same. These data suggest that the vulnerability of the adult brain to ischemia/reperfusion injury may be associated with the production of NO. from nerve terminals. The ratios of antioxidant capacity to NO. production under such conditions have been shown here to be different between the neonatal and adult nerve terminals. Thus the well documented resistance of neonatal brain to ischemia/reperfusion injury may involve the neonatal nerve terminal being under less oxidative stress than the adult.

Aging↗

Activin-A stimulates, while transforming growth factor beta 1 inhibits, chorionic gonadotrophin production and aromatase activity in cultured human placental trophoblasts.

Transforming growth factor-beta (TGF-beta) and activin-A, two members of a ubiquitous family of regulators of growth, differentiation and hormonogenesis, are produced by the human placenta. Their effects on placental hCG, inhibin, and oestrogen production in vitro, either alone or in combination, were investigated using cultured Percoll-purified placental trophoblasts. Inhibin and hCG were measured by immunoassay, while aromatase activity (i.e. oestrogen production) was measured using the tritiated water method. Aromatase activity and production of hCG, but not inhibin, were inhibited (up to approximately 30 per cent) in a dose-dependent fashion by 48 h treatment with TGF-beta. The effects were significant at all doses tested, from 0.1-10 ng/ml. In contrast, activin stimulated hCG production and aromatase activity over the doses tested (0.25-25 ng/ml). The maximum effect (approximately 50 per cent stimulation above control) was seen at the 2.5 ng/ml dose, with lesser effects seen at the lower and higher doses. This characteristic bell-shaped dose-response curve was maintained in the presence of TGF-beta (10 ng/ml) or a maximally-effective dose of forskolin (6.7 microM). This suggests that the actions of activin were independent of those of TGF-beta, and were not mediated by the protein kinase-A pathway. Activin had a weak stimulatory effect on inhibin production. The results indicate that in the placenta activin and TGF-beta have opposing actions on hormonogenesis. Both factors may play a role in regulating placental function and the timing and progression of labour.

Activins↗

Intrasynaptosomal free calcium concentration during rat brain development: effects of hypoxia, aglycaemia, and ischaemia.

The effects of hypoxia, aglycaemia, and hypoxia-aglycaemia on intrasynaptosomal free Ca2+ concentration ([Ca2+]i) have been investigated in rat brain synaptosomes prepared from animals aged 5, 10, 15, 20, 25, and 60 days. After 60 min of hypoxia there was no significant difference, when compared with controls, in basal [Ca2+]i or [Ca2+]i following depolarisation in all of the ages studied. Following 60 min of aglycaemia there was no significant difference from controls in [Ca2+]i of synaptosomes prepared from pups of < or = 20 days, although a significant rise in [Ca2+]i was seen in preparations from animals > 20 days old. Sixty minutes of hypoxia-aglycaemia led to a significant rise in [Ca2+]i only in preparations from animals 15-60 days old. With both aglycaemia and hypoxia-aglycaemia a progressive increase in the magnitude of the rise in [Ca2+]i was seen with development. These data suggest increases in [Ca2+]i in adult nerve terminals following prolonged aglycaemia and hypoxia-aglycaemia but no change following prolonged hypoxia. In contrast, no significant changes in [Ca2+]i values were apparent in neonatal nerve terminals under any of these conditions. In control synaptosomes with glucose and oxygen freely available, a decrease in resting and depolarised [Ca2+]i during development was seen, suggesting a change in calcium homeostasis within the nerve terminal as the brain develops. It is suggested that the mechanism underlying the relative resistance to ischaemic damage of neonatal brain as compared with adult brain may be related to the regulation of calcium at the nerve ending.

Age Factors↗

Serum concentrations of human chorionic gonadotrophin and immunoreactive inhibin in early pregnancy and recurrent miscarriage: a longitudinal study.

Serum concentrations of immunoreactive inhibin (ir-inhibin) and human chorionic gonadotrophin (HCG) have been measured during the first trimester in a longitudinal study of pregnant women attending a recurrent miscarriage clinic. In 30 singleton pregnancies (Group 1) that continued successfully to term, the median concentration of ir-inhibin initially declined from 1,140 pg/mL at week 4-5 then rose back to comparable values between weeks 7 and 10 but to decline again to reach the significantly lower level of 840 pg/mL (p < 0.01) at week 15-16. Serum levels of HCG showed the classical profile of normal pregnancy reaching a median peak value of 65,600 IU/L (1st IRP) at week 8-9. In 7 pregnancies that miscarried but earlier had evidence on ultrasound of an active fetal heart, HCG levels in the first 9 weeks were consistently below the 10th percentile for Group 1 pregnancies (p < 0.001). Levels of ir-inhibin were also suppressed but to a lesser extent. In 6 of 7 a fetal pregnancies, HCG levels during the first 9 weeks were again markedly subnormal. The levels of ir-inhibin varied between high normal and subnormal. In none of the pregnancy groups was a correlation found between ir-inhibin and HCG concentrations. In a single pregnancy with an anencephalic fetus, while levels of ir-inhibin and HCG were not depressed, peak values were not reached until week 12. The study shows that the level of ir-inhibin in the maternal serum in early pregnancy is of little value as a prognostic indicator of pregnancy outcome. It confirms that a subnormal HCG level is a useful predictor of early pregnancy failure.

Abortion, Habitual↗

Postnatal development of the complexes of the electron transport chain in synaptic mitochondria from rat brain.

The postnatal development of the complexes of the electron transport chain in mitochondria isolated from rat brain synaptosomes was investigated. Synaptosomal brain mitochondria were isolated from rats aged 10-60 days, and the activities of mitochondrial complex I, complex II-III, complex IV and complex V were measured. There was a significant increase in the activity of II-III from day 10 to day 15 and complex IV from day 10 to day 21, thereafter the activities of complexes I-III and IV did not change significantly. The activity of complex I did not change significantly during the period 10-60 days post partum. In synaptic mitochondria, complex V activity was higher than in non-synaptic mitochondria, whereas the activity of complex I was lower than in non-synaptic mitochondria. These data show that the complexes of the respiratory chain within synaptic mitochondria have activities different from those of non-synaptic mitochondria and may have major implications for the relative susceptibility of mitochondria in different brain cell types to neurotoxins such as MPP+, hypoxic/ischaemic damage and oxidative stress.

Acetylcholinesterase↗

Comparative regulation of inhibin, activin and human chorionic gonadotropin production by placental trophoblast cells in culture.

In the present study, we investigated the roles of cyclic adenosine monophosphate (cAMP), intracellular calcium, glucocorticoids, protein kinase-C and gonadotrophin-releasing hormone (GnRH) in regulating human chorionic gonadotrophin (hCG), inhibin and activin production in cultured human term placental trophoblast cells. Inhibin and hCG were measured in conditioned media by radioimmunoassay, while putative forms of inhibin and activin were characterized by western blotting using affinity-purified antisera directed against the inhibin alpha- and beta A-subunits. Inhibin and hCG secretion were stimulated by dexamethasone (0.2 microM), GnRH (5-25 microM), calcium ionophore A23187 (0.2-1 microM), phorbol-12-myristate-13-acetate (22 nM) and epinephrine (1 microM), with increasing response over successive 24-h treatment periods. Two molecules Mr approximately 30 and 32 kDa appeared to be the predominant dimeric forms of inhibin secreted by the cells, while 26 kDa activin was present in excess over inhibin. Large amounts of 40-44 kDa protein were detected by the alpha-directed antisera only, which may be a form of the inhibin alpha-subunit precursor protein. Secretion of activin was responsive to phorbol ester-mediated stimulation but not to the presence of GnRH or elevated cAMP concentrations. The divergence in maternal serum inhibin and hCG concentrations during late pregnancy remains unexplained by these findings.

Activins↗

A radioimmunoassay for plasma dehydroepiandrosterone sulphate incorporating placental steroid sulphatase as a hydrolysing reagent.

We describe a method for the measurement of plasma dehydroepiandrosterone sulphate (DHAS) which incorporates a Triton X-100 solubilised preparation of human placental steroid sulphatase as a hydrolysing agent and a direct radioimmunoassay of liberated DHA using a specific antiserum. The hydrolysis procedure is carried out at 50 degrees C for 1 h and an assay run can be completed in 4 h. As determined by the method, plasma concentrations of DHAS in 32 normal adult men (ages 23-58 yr) had a mean value +/- SD of 5.5 +/- 1.89 mumol/l. For 30 normal adult cyclic women (ages 22-35 yr) the mean plasma concentration of DHAS +/- SD was 3.1 +/- 1.35 mumol/l which was significantly lower (P less than 0.01) than found for men. Plasma DHAS concentration were also measured in 50 hirsute female patients. The mean value +/- SD was 5.03 +/- 2.52 mumol/l which was significantly higher (P less than 0.01) than the value for the normal female group. Some 42% of the hirsute patients had DHAS concentrations above the upper 95% probability limit of the normal range for premenopausal women.

Adult↗