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Biomedical subjects

P Morley

Publications and source records attributed to P Morley.

At least 19 recordsLinked to original sources

Ca2+ x calmodulin prevents myristoylated alanine-rich kinase C substrate protein phosphorylation by protein kinase Cs in C6 rat glioma cells.

Ionomycin stimulated membrane-associated protein kinase Cs (PKCs) activity in C6 rat glioma cells as much as the potent PKCs stimulator 12-O-tetradecanoyl phorbol 13-acetate (TPA). However, while TPA, as expected, powerfully stimulated the phosphorylation of the PKCs' 85-kDa myristoylated alanine-rich protein kinase C substrate (MARCKS) protein, ionomycin unexpectedly did not. Instead, ionomycin reduced the basal MARCKS phosphorylation. Pretreating the glioma cells with ionomycin prevented TPA-stimulated PKCs from phosphorylating the MARCKS protein. The stimulation of membrane PKCs activity and the prevention of MARCKS phosphorylation by ionomycin required external Ca2+ because they were both abolished by adding 5 mM EGTA to the culture medium. Recently (Chakravarthy, B. R., Isaacs, R. J., Morley, P., Durkin, J. P., and Whitfield, J. F. (1995) J. Biol. Chem. 270, 1362-1368), we proposed that Ca2+ x calmodulin complexes block MARCKS phosphorylation by the activated PKCs in keratinocytes stimulated by raising the external Ca2+ concentration. In the present experiments calmodulin prevented MARCKS phosphorylation by TPA-stimulated PKCs in glioma cell lysates, and this blockade was lifted by a calmodulin antagonist, the calmodulin-binding domain peptide. But, physiologically more significant, pretreating intact glioma cells with a cell-permeable calmodulin antagonist, calmidazolium, prevented ionomycin from blocking MARCKS phosphorylation by PKCs in unstimulated and TPA-stimulated cells. The effect of ionomycin on MARCKS phosphorylation was not due to the stimulation of Ca2+ x calmodulin-dependent phosphoprotein phosphatase, calcineurin, because cyclosporin A, a potent inhibitor of this phosphatase, did not stop ionomycin from preventing MARCKS phosphorylation. The ability of ionomycin to prevent TPA-stimulated PKCs from phosphorylating MARCKS depended on whether ionomycin was added before, with, or after TPA. Maximum blockade occurred when ionomycin was added before TPA but was less effective when added with or after TPA. These results indicate that Ca2+ x calmodulin can profoundly affect PKCs' signaling at the substrate level.

Amino Acid Sequence

Glutamate receptor-mediated calcium surges in neurons derived from P19 cells.

Retinoic acid-treated murine P19 embryonal carcinoma cells differentiate into cells with neuronal morphology that display typical neuronal markers. In this study, the presence of glutamate receptors linked to Ca(2+)-signaling mechanisms on these neurons was demonstrated by testing the effects of glutamate agonists and antagonists on the intracellular calcium ion concentration ([Ca2+]i). Glutamate (1 mM) induced either sustained or transient increases in [Ca2+]i. The sustained glutamate-induced increase in [Ca2+]i was mimicked by NMDA (40 microM). The NMDA-triggered [Ca2+]i response was abolished by incubating the cells in Ca(2+)-free medium or by pretreating them with Mg2+ (2 mM) or MK-801 (0.1 microM). These responses were unaffected by the non-NMDA antagonist CNQX (10 microM), but they required glycine (3-30 microM). Kainate (40 microM) and AMPA (40 microM) did not affect [Ca2+]i. Without external Ca2+, glutamate triggered transient, sometimes oscillating, increases in [Ca2+]i. These responses were mimicked by the metabotropic agonist trans-(1S, 3R)-1-amino-1,3-cyclopentanedicarboxylic acid (300 microM). These results suggest that neurons derived from P19 embryonal carcinoma cells have NMDA and metabotropic, but not AMPA/kainate receptors, which are linked to Ca(2+)-signaling mechanisms. These cells could provide a consistent and reproducible model with which to study neuronal differentiation, neurotoxicity, and glutamate receptor-signaling mechanisms.

Animals

N-methyl-D-aspartate- or glutamate-mediated toxicity in cultured rat cortical neurons is antagonized by FPL 15896AR.

The neuroprotective action of (S)-alpha-phenyl-2-pyridineethanamine dihydrochloride (FPL 15896AR), a novel noncompetitive N-methyl-D-aspartate (NMDA) receptor antagonist, was examined in primary rat cortical neuronal cultures. Exposure of cortical cultures to NMDA (50 microM) or glutamate (50 microM) for 15 min resulted in the death of 85-95% of the neurons during the next 24 h. This neurotoxicity was completely eliminated by adding FPL 15896AR (50 microM) to the cultures during the time of NMDA or glutamate exposure. Neuroprotective concentrations of FPL 15896AR also inhibited other acute effects of NMDA. FPL 15896AR (50 microM) prevented the loss of membrane-associated protein kinase C activity that developed by 4 h after transient exposure to 50 microM NMDA or 50 microM glutamate. FPL 15896AR also reduced by approximately 35% the magnitude of NMDA-triggered increases in intracellular free Ca2+ concentration in the cortical cultures. These data indicate that NMDA-mediated toxicity in cultured cortical neurons can be blocked by the NMDA antagonist FPL 15896AR.

Animals

Thapsigargin increases cytoplasmic free Ca2+ without influencing steroidogenesis in chicken granulosa cells.

The effects of thapsigargin on intracellular Ca2+ concentration ([Ca2+]i) and progesterone production were determined in granulosa cells from the two largest preovulatory follicles of laying hens. [Ca2+]i was measured in cells loaded with the Ca(2+)-responsive fluorescent dye Fura-2. Thapsigargin stimulated a 4.6 +/- 0.2-fold increase in [Ca2+]i from a resting level of 55 +/- 6 nM up to 233 +/- 23 nM (n = 8) in 100% of the cells tested (n = 86). However, two different response patterns were observed. Dependent on the cell populations, a maximally effective concentration of thapsigargin (100 nM) stimulated either a rapid (within 16 +/- 2 s) transient increase in [Ca2+]i or a slowly (99 +/- 20 s) developing and sustained increase in [Ca2+]i. Both [Ca2+]i responses were concentration (0.001-1 microM)-dependent with an EC50 around 40 nM. The transient [Ca2+]i response occurred in the absence of extracellular Ca2+ and was unaffected by pretreating the cells with the Ca2+ channel blockers methoxyverapamil (50 microM) or lanthanum (1 mM). The plateau phase of the sustained [Ca2+]i response returned to resting level in the absence of extracellular Ca2+, but remained elevated in the presence of methoxyverapamil (50 microM) or lanthanum (1 mM). Despite its ability to cause transient or prolonged increases in [Ca2+]i, thapsigargin (0.001-1 microM) did not affect basal or luteinizing hormone-stimulated progesterone production by chicken granulosa cells.

Animals

The effect of muscarinic cholinergic agonists on intracellular calcium and progesterone production by chicken granulosa cells.

The effects of the muscarinic cholinergic receptor agonist carbachol on intracellular calcium ion concentration ([Ca2+]i) and progesterone production was determined in granulosa cells from the two largest preovulatory follicles of laying hens. [Ca2+]i was measured in cells loaded with the calcium-responsive fluorescent dye fura-2. Resting [Ca2+]i was 96 +/- 5 nM (n = 13). There was a 4- to 8-fold increase in [Ca2+]i in 85% (n = 80) of the cells within 10 sec after the addition of a maximally stimulating concentration (2 mM) of carbachol. The initial [Ca2+]i spike was followed by a sustained, but lower, calcium elevation, with superimposed oscillations which returned to resting level after several minutes. Both phases of the calcium transient were inhibited by pretreating the cells with atropine (1 microM), pirenzepine (2 microM) or 4-diphenylacetoxy-N-methylpiperidine methiodide (1 microM). The sustained phase of the response with its superimposed oscillations, but not the initial spike, was inhibited by pretreating the cells with the calcium channel blockers lanthanum (1 mM), cobalt (5 mM), or methoxyverapamil (50 microM), or by incubating the cells in calcium-free medium. Nifedipine (0.5-20 microM) did not affect the carbachol-induced calcium transient. 8-(N,N-Diethylamino)octyl-3,4,5-trimethoxybenzoate hydrochloride (50 microM) blocked the sustained-oscillatory phase of the carbachol-induced [Ca2+]i transient, but did not affect the initial spike when added before carbachol (2 mM). Despite its ability to stimulate [Ca2+]i surges, carbachol (10(-6)-10(-3) M) did not affect basal or LH-stimulated cAMP or progesterone production in 24-h cultures. These studies demonstrate that activation of chicken granulosa cell muscarinic receptors causes a rapid increase in [Ca2+]i through the release of Ca2+ from intracellular stores, followed by a sustained elevation of Ca2+ with superimposed oscillations caused by the influx of extracellular Ca2+. These results also indicate that an increase in [Ca2+]i in chicken granulosa cells does not alone stimulate steroidogenesis, since the carbachol-induced increases in [Ca2+]i were not accompanied by increased progesterone production.

Acetylcholine

Muscarinic cholinergic stimulation elevates intracellular pH in chicken granulosa cells by a Ca(2+)-dependent, Na(+)-independent mechanism.

Various hormones and growth factors act at least in part by raising the cytosolic pH of the target cell. In the present studies we examined the influence of the muscarinic cholinergic agonist carbachol on intracellular pH (pHi) in chicken granulosa cells. The pHi in granulosa cells from the two largest preovulatory follicles of hens was determined spectrofluorometrically using the pH-sensitive dye 2',7'-bis-(carboxyethyl)- 5(6)-carboxyfluorescein (BCECF). Carbachol (0.1-2 mM) induced a concentration-dependent increase in pHi, which reached a maximum of 0.23 +/- 0.02 pH units at a concentration of 1 mM. Cytosolic alkalinization was observed within 10 min of the addition of carbachol and lasted over the 60-min observation period. The effect of carbachol was mimicked by acetylcholine (1 mM) and muscarine (1 mM), but not by nicotine (0.1 mM). The carbachol-induced alkalinization was blocked by pretreating the cells with the muscarinic cholinergic receptor antagonists atropine (1 and 10 microM) and pirenzepine (0.01 and 0.1 mM). The increase in pHi did not appear to be mediated by a conventional mechanism involving the Na+/H+ antiporter, because it was unaffected by replacement of extracellular Na+ with the nonpermeant choline chloride or the presence of antiporter inhibitors, such as amiloride, dimethylamiloride, or ethylisopropylamiloride. However, the mechanism required external Ca2+, but did not involve Ca2+ channels, because it was unaffected by the general Ca2+ channel blocker methoxyverapamil (50 microM). Thus, Ca(2+)-dependent and Na(+)-independent intracellular alkalinization may be a part of the signalling mechanism by which muscarinic receptor activation regulates chicken granulosa cell function.

Animals

A new, nongenomic estrogen action: the rapid release of intracellular calcium.

We have investigated the effects of steroids on the intracellular calcium ion concentration [Ca2+]i in chicken granulosa cells obtained from the two largest preovulatory follicles of laying hens. [Ca2+]i was measured in cells loaded with the Ca(2+)-responsive fluorescent dye fura-2. The resting [Ca2+]i in these cells was 100 +/- 5 nM. There was an immediate (i.e. less than 5 sec) 4- to 8-fold increase in [Ca2+]i in all of the 76 cells examined after the addition of 10(-7) M estradiol-17 bdta. Estradiol-17 beta was effective between 10(-10)-10(-6) M. Estradiol-17 alpha, estrone, and estriol (10(-8)-10(-6) M) were as effective as estradiol-17 beta, but the progestins, pregnenolone, and progesterone, and the androgens, testosterone, androstenedione, or 5 alpha-dihydrotestosterone were ineffective at concentrations up to 10(-5) M. The prompt estradiol-17 beta-induced [Ca2+]i spike was not affected by incubating the cells in Ca(2+)-free medium containing 2 mM EGTA or by pretreating them with the Ca2+ channel blockers lanthanum (1 mM), cobalt (5 mM), methoxyverapamil (D600; 50 microM), or nifedipine (20 microM). The estrogen-triggered [Ca2+]i surge was also not affected by pretreating the cells with the conventional estrogen receptor antagonist tamoxifen (10(-5) M), or the RNA and protein synthesis inhibitors actinomycin D (1 microgram/ml) and cycloheximide (1 microgram/ml), but was abolished by pretreating the cells with inhibitors of inositol phospholipid hydrolysis, neomycin (1.5 mM) and U-73,122 (2.5 microM). The closely related, but inactive, compound U-73,343 (1 microM) did not affect the estrogen-triggered [Ca2+]i surge. Estradiol-17 beta (10(-7) M), but not progesterone (10(-5) M), also triggered a large [Ca2+]i surge in pig granulosa cells, which, like the [Ca2+]i surge in chicken granulosa cells, was almost immediate, transient, and unaffected by incubation in Ca(2+)-free medium or pretreatment with methoxyverapamil (D600; 50 microM), lanthanum (1 mM), or tamoxifen (10(-5)M). However, granulosa cells from immature rats primed with diethylstilbestrol or PMSG did not respond to estradiol-17 beta, even at concentrations as high as 10(-5) M, although they promptly generated a [Ca2+]i transient upon exposure to LHRH (10(-5) M). These results suggest that estrogens almost instantaneously trigger the release of Ca2+ from intracellular stores which may be mediated through phosphoinositide breakdown. The striking rapidity of this estrogen-induced internal Ca2+ mobilization is consistent with the activation of a cell surface receptor which is different from the conventional slowly acting, gene-stimulating nuclear estrogen receptor.

Androgens

Role of chloride ions in progesterone production by chicken granulosa cells.

The importance of chloride ions in luteinizing hormone (LH)-stimulated progesterone production by chicken granulosa cells from the two largest preovulatory follicles was investigated in vitro. Reduction of the extracellular chloride concentration from 147.8 mM to 2.8 mM, by substitution with equimolar concentrations of non-permeant glutamate and aspartate, inhibited the ability of LH to stimulate progesterone production and cAMP accumulation during a 4 h incubation. LH-stimulated granulosa cell progesterone production was also suppressed in a concentration-dependent manner by the chloride channel blockers 4-acetamido-4'-isothiocyanostilbene-2,2'-disulphonic acid (SITS; 10(-8)-5 x 10(-5) M) or 4,4'-diisothiocyanostilbene-2,2'-disulphonic acid (DIDS; 10(-8)-5 x 10(-5) M). The inhibitory effect was observed within 30 min of the addition of the blockers and was irreversible. DIDS appeared to act at a site(s) proximal to the generation of cAMP, since concentrations of DIDS (10(-8)-10(-6) M) which inhibited LH- and human chorionic gonadotropin-stimulated progesterone production, did not affect progesterone production stimulated by dibutyryl cAMP, 8-bromo cAMP or forskolin. In addition, concentrations of DIDS (10(-8)-10(-6) M) which attenuated LH-stimulated progesterone production also reduced the accumulation of extracellular cAMP. These studies suggest that chloride ions may play an important role in the stimulatory action of LH on chicken granulosa cell progesterone production.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid

Ultrasound changes in sclerosing peritonitis following continuous ambulatory peritoneal dialysis.

Sclerosis of the peritoneum, with encapsulation of the small bowel is one of the most serious complications of continuous ambulatory peritoneal dialysis (CAPD), and carries a high mortality. The abnormalities seen on ultrasound are described for 14 patients and comprise increased small bowel peristalsis, tethering of the bowel to the posterior abdominal wall, intraperitoneal echogenic strands and, in the late stages of the disease, membrane formation. Optimal visualization of these features in the early stages of the disease was obtained by examining the patients with dialysis fluid present in the abdomen. Sclerosing peritonitis should be suspected in patients being treated by CAPD who develop abdominal pain and progressive loss of ultrafiltration and subsequent investigation should include the use of ultrasound.

Adult

Acute renal vein thrombosis in renal allografts: new Doppler ultrasonic findings.

We report two cases of renal vein thrombosis in renal transplants, both diagnosed by Doppler ultrasound. In both cases Doppler ultrasound showed complete absence of venous flow. In addition, the arterial signal showed a sharp systolic peak with a notch on the reverse diastolic component resembling an 'inverted M', a finding previously undescribed. This arterial waveform was present at both hilar and interlobar level. We postulate that this 'inverted M' sign may be more specific for renal vein thrombosis in that it may represent non-occlusive thrombus, despite the lack of detectable venous flow, whereas the previously described plateau-like reverse diastolic flow seen in some cases of renal vein thrombosis, also occurs in severe allograft rejection and is therefore a non-specific sign.

Acute Disease

Epidermal growth factor elevates intracellular pH in chicken granulosa cells.

Many bioregulators, such as epidermal growth factor (EGF), induce intracellular alkalinization by activating a membrane bound Na+/H+ antiporter. The present studies were designed to examine the influence of EGF on intracellular pH (pHi) in chicken granulosa cells. pHi in granulosa cells from the two largest preovulatory follicles of hens was determined spectrofluorometrically using the dye 2',7'-bis(carboxyethyl-5(6)-carboxyfluorescein. The resting pHi was 6.81 +/- 0.006 (n = 30) when the extracellular pH and sodium concentration (Na+o) were 7.3 and 144 mM, respectively. EGF (5-100 ng/ml) induced a concentration-dependent increase in pHi, which reached a maximum of 0.217 +/- 0.009 pH units at a concentration of 100 ng/ml EGF. Cytosolic alkalinization was observed within 10 min of the addition of EGF and lasted over the 60 min observation period. The increase in pHi was dependent upon the presence of Na+o, since the EGF effect was attenuated when Na+o was substituted with equimolar concentrations of nonpermeant choline chloride. The EGF-induced pHi change was also inhibited by amiloride, dimethyl amiloride, and ethylisopropyl amiloride, inhibitors of the Na+/H+ antiporter. The alkalinization effect of EGF was mimicked by transforming growth factor-alpha but not by insulin, insulin-like growth factor-I, or transforming growth factor-beta. These studies suggest for the first time that intracellular alkalinization resulting from activation of the Na+/H+ antiporter may be a part of the transmembrane signaling pathway in the action of EGF on chicken granulosa cells.

Animals

Epidermal growth factor elevates intracellular pH in chicken granulosa cells by activating protein kinase C.

Previous studies from our laboratory have demonstrated that epidermal growth factor (EGF), induces intracellular alkalinization in chicken granulosa cells by activating a sodium-dependent and amiloride-sensitive Na+/H+ antiporter. In the present investigation we have examined the possible involvement of protein kinase C (PKC) in the regulation of intracellular pH (pHi) by EGF in chicken granulosa cells. Intracellular pH in granulosa cells obtained from the two largest preovulatory follicles was determined spectrofluorometrically using the dye 2',7'-bis-(carboxyethyl)-5(6)-carboxyfluorescein. The resting pHi was 6.81 +/- 0.01 (n = 30) when the extracellular pH and sodium concentration were 7.3 and 144 mM, respectively. 12-O-Tetradecanoyl-phorbol-13-acetate (TPA; 50-400 ng/ml) and 1-oleoyl-2-acetylglycerol (OAG; 1-75 micrograms/ml) mimicked the actions of EGF by inducing a concentration-dependent increase in pHi which reached a maximum of 0.25-0.30 pH units. 4 alpha-Phorbol 12,13-didecanoate, a phorbol ester with no tumor promoting activity had no effect on pHi. Cytosolic alkalinization was observed within 10 min of the addition of each agent and increased over the 60-min observation period. Like EGF-induced cytosolic alkalinization, the increases in pHi in response to TPA or OAG were dependent on the presence of sodium concentration and were inhibited by amiloride, an inhibitor of the Na+/H+ antiporter. The effects of EGF, TPA, and OAG were attenuated by the PKC inhibitors 5-isoquinolinylsulfonyl-2-methyl piperazine and trifluoperazine. Down-regulation of granulosa cell PKC by pretreatment with TPA (200 ng/ml) for 2.5 h inhibited EGF-, TPA-, and OAG-induced cytosolic alkalinization. The effects of maximally stimulatory concentrations of EGF and TPA on cytosolic alkalinization were not additive. The increases in pHi induced by TPA and OAG, but not by EGF, were dependent on the presence of extracellular Ca++. These studies suggest that the EGF-induced intracellular alkalinization in chicken granulosa cells involves a PKC-mediated activation of the Na+/H+ antiporter.

Animals

Comparison of colour Doppler ultrasound with venography in the diagnosis of axillary and subclavian vein thrombosis.

The primary imaging technique in suspected venous occlusive disease has for many years been contrast venography. Recent studies have shown ultrasound with the addition of colour Doppler imaging to be a suitable alternative method in the diagnosis of lower limb venous thrombosis. We have applied these techniques to the upper limb venous system, and have performed a prospective study of 19 patients (30 limbs) comparing colour Doppler ultrasound with venography in the diagnosis of axillary and subclavian vein thrombosis, for which colour Doppler ultrasound has a sensitivity and specificity of 100%. If vein stenosis is included, the sensitivity falls to 89%. We propose that colour Doppler ultrasound is a suitable first-line alternative to venography in the diagnosis of axillary and subclavian vein thrombosis. In addition to showing the major venous drainage of the upper limb, ultrasound routinely assesses patency of the internal jugular vein, which is, on occasion, of clinical relevance when determining possible future sites of venous access. If, however, colour Doppler ultrasound is normal then bilateral upper limb venography is indicated to exclude a more central venous problem or localized stenotic lesion.

Adolescent

Catecholamines inhibit steroidogenesis by cultured porcine thecal cells.

The ovaries of many species contain catecholamines and beta-adrenergic receptors. The present studies were done to determine if catecholamines play a role in the regulation of androgen production by porcine theca cells. Basal and luteinizing hormone (LH)-stimulated androstenedione production was significantly inhibited by noradrenaline and isoproterenol. The inhibitory effects were dose-dependent and were enhanced when the cultures contained the carboxy-O-methyl transferase inhibitor, U-0521. The inhibitory effect of isoproterenol was reversed by the beta-adrenergic antagonist, metoprolol. Isoproterenol caused a generalized inhibition of LH-stimulated steroidogenesis, decreasing the accumulation of pregnenolone, progesterone, androstenedione and estradiol in the culture medium. These studies suggest that catecholamines may be important regulators of thecal androgen production.

Androstenedione

Site at which ovarian nerve extracts inhibit thecal androgen production.

We have recently reported that extracts of the superior ovarian nerve (SON) of rats inhibit porcine theca cell androstenedione production. Theca cells obtained from prepubertal gilts were cultured under serum-free conditions for 48 h. The inhibitory effect of SON extracts occurred within 6 h of treatment, was irreversible and independent of the dose of luteinizing hormone (LH) employed. The SON extracts' actions were exerted at a site(s) distal to the generation of adenosine 3',5'-monophosphate (cyclic AMP), since they did not affect extracellular cyclic AMP accumulation, while causing a significant inhibition of androstenedione production. The SON extract decreased 17 alpha-hydroxyprogesterone, androstenedione, testosterone, estradiol and estrone production while increasing progesterone and pregnenolone production, suggesting that the SON extract causes an inhibition of the 17 alpha-hydroxylase:C17-20 lyase complex. These results indicate that a factor(s) in the SON may play an important role in the regulation of follicular development, since thecal androgens are substrates for granulosa cell estrogen biosynthesis and are also involved in follicular atresia.

17-alpha-Hydroxyprogesterone

Insulin enhances luteinizing hormone-stimulated steroidogenesis by porcine theca cells.

It has been shown recently that insulin enhances differentiation of rat, pig, and human granulosa cells. The present studies were done to determine if insulin also plays a role in the regulation of theca cell steroidogenesis. Theca cells were obtained from prepubertal gilts and cultured under serum-free conditions for 48 h. Theca cell androstenedione production under basal and luteinizing hormone (LH)-stimulated conditions was significantly increased by adding insulin (1 microgram/ml) to the culture medium. Treatment of basal and LH-stimulated cultures with increasing concentrations of insulin (0.001-10 micrograms/ml) caused dose- and time-dependent increments in androstenedione production, but the effect was independent of the dose of LH employed. The ability of insulin to enhance thecal cell androstenedione production was mimicked by somatomedin C, but not by relaxin. Studies to determine the mechanism(s) of action of insulin showed that insulin action is exerted, at least in part, at a site(s) proximal to cyclic adenosine 3'5'-monophosphate (cAMP) generation, since insulin enhanced both basal and LH-stimulated accumulation of extracellular cAMP in addition to increasing androstenedione production. This effect was further enhanced by 3-isobutyl-1-methyl xanthine, an inhibitor of phosphodiesterase activity. Insulin treatment also caused dose-dependent increments in forskolin- and prostaglandin E2-stimulated accumulation of extracellular cAMP and androstenedione. Insulin also increased both the basal and LH-stimulated production of progesterone and its precursor pregnenolone, in addition to the increases in androstenedione.(ABSTRACT TRUNCATED AT 250 WORDS)

1-Methyl-3-isobutylxanthine

Catecholestrogens inhibit basal and luteinizing hormone-stimulated androgen production by porcine thecal cells.

It has been shown recently that catecholestrogens are produced by cultured porcine granulosa and thecal cells, and that they influence porcine granulosa cell steroidogenesis in a similar manner to estradiol-17 beta (E2). The present studies were performed to determine if catecholestrogens also play a role in the regulation of porcine thecal cell steroidogenesis and to compare their actions to those of E2. Thecal cells were obtained from prepubertal gilts and cultured in a serum-free medium for 48 h. Thecal cell androstenedione production under basal and luteinizing hormone (LH)-stimulated conditions was significantly inhibited by adding E2 or catecholestrogens to the culture medium. Treatment of basal and LH-stimulated cultures with increasing concentrations of E2 or catecholestrogens (0.1-10 micrograms/ml) caused a dose-and time-dependent inhibition of androstenedione production. The inhibitory effect of the catecholestrogens, but not of E2, was enhanced when the cultures contained the catechol-O-methyl transferase inhibitor, U-0521. Studies to determine the mechanism(s) of action of the catecholestrogens showed that E2 and catecholestrogen actions are exerted at a site(s) distal to cyclic adenosine 3'5' monophosphate (cyclic AMP) generation, because neither agent affected the basal or LH-stimulated accumulation of extracellular cyclic AMP, while causing a significant inhibition of androstenedione production. E2 or catecholestrogen treatment also inhibited androstenedione production stimulated by prostaglandin E2 and dibutyryl cyclic AMP. In addition, both E2 and catecholestrogen treatment significantly decreased basal and LH-stimulated 17 alpha-hydroxyprogesterone production, while significantly increasing pregnenolone production. Progesterone production in the presence of E2 or catecholestrogens showed small but statistically insignificant increases.(ABSTRACT TRUNCATED AT 250 WORDS)

17-alpha-Hydroxyprogesterone

Ovarian nerve extracts influence androgen production by cultured ovarian thecal cells.

There is growing evidence that ovarian steroidogenesis is controlled not only by pituitary gonadotropins but also by ovarian nerves. Nerves reach the ovary via the plexus nerve and via the superior ovarian nerve (SON), which runs in the suspensory ligament, and innervate theca cells of all sizes of follicles. To investigate the role of ovarian nerves in steroidogenesis we have examined the effects of adding an extract of SON from adult rats on androgen production by cultured porcine theca cells. Addition of SON extract to cultured theca interna from 3 to 6 mm diameter follicles of prepubertal gilts significantly inhibited (p less than 0.05) LH-stimulated androstenedione production in a dose-dependent manner; significant inhibition (10.8%) occurred with the addition of the extract of 2 mg of SON/ml culture medium, and near maximal inhibition (83%) resulted when the SON extract was increased to 60 mg SON/ml. Extracts of sciatic nerves, used as non-ovarian nerve controls, failed to inhibit, and in fact significantly increased (p less than 0.05) androstenedione production over the same concentration range of neural tissue extract. The inhibitory effect of the SON extract was unaffected by chymotrypsin digestion or by the presence of the beta-adrenergic antagonist propranolol (10(-6) M), but was removed by charcoal treatment. These results suggest that the nervous system has the potential for modulation of follicular steroid biosynthesis via direct innervation of the ovaries, in addition to the well-established indirect mechanism of neural control exerted via the hypothalamic-pituitary system.

Adipose Tissue