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Biomedical subjects

J L Pate

Publications and source records attributed to J L Pate.

At least 37 records · Page 2Linked to original sources

Involvement of immune cells in regulation of ovarian function.

Primary cultures of luteal cells have been used to determine both acute and chronic effects of cytokines on luteal cell function and viability. Gonadotrophin-stimulated progesterone production is inhibited by interleukin 1 beta (IL-1 beta), tumour necrosis factor alpha (TNF-alpha), or gamma-interferon (IFN-gamma), the last two cytokine being more effective than IL-1. In contrast, all three cytokines are potent stimulators of prostaglandin production by these cells. The mechanism by which prostaglandin synthesis is enhanced may differ slightly for each cytokine. In luteal cells, TNF-alpha appears to act primarily through stimulation of phospholipase A2, whereas IL-1 beta may activate phospholipase C and prostaglandin endoperoxide synthase (PGS) in addition to phospholipase A2. The mechanism of action of IFN-gamma has not yet been determined. In addition to the observed functional effects, cytokines may also promote cell death during luteal regression. Although the three cytokines mentioned have little or no effect on viability of cultured luteal cells when administered separately, combined treatment with TNF-alpha and IFN-gamma results in a substantial decrease in the number of viable cells. Inhibition of cytokine-stimulated prostaglandin production does not alter the cytotoxic effect of these cytokines. Expression of major histocompatibility (MHC) class I molecules on luteal cells is enhanced, and MHC class II molecules are induced, by exposure to IFN-gamma. This is especially intriguing, as MHC class II expression increases before luteal regression in vivo, and is suppressed in early pregnancy. In summary, evidence is rapidly accumulating that supports the hypothesis that the function or structural integrity of luteal cells may be modulated by resident immune cells. Future research will probably address how these local events are hormonally controlled, and if they can be modified to regulate corpus luteum function.

Animals↗

Effect of exercise intensity on plasma prostaglandin concentrations in horses.

Exertion has an effect on plasma, serum, and/or urine prostanoid concentrations in many species. We investigated the effect of exercise intensity on plasma prostaglandin concentrations during and after exercise in horses. Six Thoroughbreds completed 4 trials: 3 exercise trials (low-, medium-, and high-speed) and 1 nonexercise (control) trial on a high-speed treadmill. Blood samples were collected from a jugular catheter before, during, and after exercise. The PCV and blood lactate, plasma protein, plasma prostacyclin (6-keto-PGF1 alpha), thromboxane B2 (TXB2), and prostaglandin E2 (PGE2) concentrations were measured before, during, and after exercise. Exercise significantly (P = 0.001) increased plasma TXB2 concentration during and after exercise in the low-, medium-, and high-speed trials, although effect of exercise intensity was not detected. Exercise was associated with an increase in PCV and blood lactate and plasma protein concentrations. There was no effect of exercise on plasma 6-keto-PGF1 alpha concentrations; PGE2 was not detected in plasma from any horse in any trial.

Analysis of Variance↗

Regulation of prostaglandin synthesis by interleukin-1 beta in cultured bovine luteal cells.

Prostaglandins produced within the CL may serve as local modulators of CL function. The present study was designed to characterize the cellular mechanisms by which the cytokine interleukin-1 beta (IL-1 beta) stimulates prostaglandin production in cultured luteal cells. Cycloheximide (CHX) and actinomycin D (Act D) did not affect basal, but completely inhibited IL-1 beta-stimulated prostaglandin F2 alpha (PGF2 alpha) production (p < 0.05). The phospholipase A2 (PLA2) inhibitor, aristolochic acid (PLA2X), and the phospholipase C (PLC) inhibitor, compound 48/80 (PLCX), suppressed IL-1 beta-stimulated (p < 0.05), but not basal, PGF2 alpha production. The addition of exogenous arachidonic acid (AA) restored the stimulatory effect of IL-1 beta in PLCX-treated, but not in PLA2X-treated, cells, suggesting that PLA2 is a key regulatory point of IL-1 beta action. Chronic exposure of the luteal cells to IL-1 beta resulted in stimulatory effects beyond that of increasing AA availability, presumably by up-regulation of prostaglandin endoperoxide (PGH) synthase. Chronic exposure of luteal cells to IL-1 beta also inhibited progesterone production, but this effect appeared to be independent of endogenous PGF2 alpha production. The ability of IL-1 beta to comprehensively stimulate luteal PGF2 alpha production while inhibiting luteal progesterone production is suggestive that IL-1 beta may facilitate regression of the CL.

Animals↗

Cellular components involved in luteolysis.

In the domestic species, regression of the corpus luteum is dependent on uterine release of prostaglandin (PG)F2 alpha. Despite the central role of PGF2 alpha in luteolysis, very little is known about the actual mechanism of prostaglandin-induced regression at the level of the luteal cell. Many studies have focused on the cellular site of action of PGF2 alpha, and it seems likely that this compound exerts multiple effects on luteal cells. Large luteal cells probably respond initially to the luteolytic signal, but intercellular communication between large and small cells, as well as between luteal and non-luteal cells, is probably required for regression to proceed. The immune system seems to be actively involved in the process of luteolysis, and it is possible that luteal cells actively signal certain types of immune cells. It is now known that luteal cells respond to a variety of immune cell secretory products, and this knowledge may lead to the discovery of additional mechanisms involved in regression of the corpus luteum.

Animals↗

Progesterone regulation of luteinizing hormone receptors on cultured bovine luteal cells.

During development of the corpus luteum (CL), the numbers of luteinizing hormone (LH) receptors increase. Cultured bovine luteal cells from developing and mature CL were used to examine the influence of progesterone (P4) on this receptor. CL were obtained from dairy cows during the early or middle phase of the estrous cycle. In early CL, the number of receptors per cell was increased by exogenous progesterone treatment but there was no effect on receptor numbers in cells from midcycle CL. Binding affinities did not change with respect to age or treatment. Forskolin elevated endogenous progesterone and also enlarged the receptor population. The action did not appear to be an unmasking of cryptic receptors since the effect was not seen in luteal particulates. Elevation of LH receptor numbers by progesterone in immature CL may be a form of intraluteal regulation contributing to the functional maturation of these steroidogenic cells.

Animals↗

Tumor necrosis factor-alpha alters bovine luteal cell synthetic capacity and viability.

Tumor necrosis factor-alpha (TNF-alpha) is a macrophage-derived cytokine that is also reportedly produced by granulosal cells and is localized in luteal cells. The present study employed serum-free culture of midcycle bovine luteal cells to investigate the effects of TNF-alpha, alone and with other cytokines, on luteal function. TNF-alpha (1-1000 ng/ml) produced a dose-dependent increase in prostaglandin (PG)F2 alpha and 6-keto-PGF1 alpha synthesis on all days of culture, but had no effect on basal progesterone (P4) production. TNF-alpha, in combination with other known stimulators of luteal PG synthesis, interleukin-1 beta (2.5 ng/ml) or interferon-gamma (IFN-gamma, 100 U/ml), had synergistic effects on PGF2 alpha production (greater than 50-fold above control, P less than 0.05) whereas interferon-alpha (1000 U/ml) significantly suppressed TNF-alpha-stimulated PGF2 alpha production. By day 7 of culture, TNF-alpha inhibited LH-stimulated P4 production (P less than 0.05). Luteal cell numbers were significantly reduced by IFN-gamma but not by TNF-alpha alone. However, the combination of TNF-alpha + IFN-gamma was extremely cytotoxic (only 20% of cells maintained as compared to control). Finally, TNF-alpha (100 ng/ml) enhanced the expression of Class I major histocompatibility complex antigens on cultured bovine luteal cells but did not alter IFN-gamma induction of Class II major histocompatibility complex antigens. In light of these findings, it appears that TNF-alpha, in conjunction with other cytokines, is a modulator of luteal cell function in vitro. The stimulation of PG synthesis, as well as cytotoxic effects of TNF-alpha, may suggest a role in luteolysis.

6-Ketoprostaglandin F1 alpha↗

Localization of prostaglandin F2 alpha inhibition of lipoprotein use by bovine luteal cells.

Prostaglandin F2 alpha (PGF2 alpha) inhibits lipoprotein-stimulated progesterone production by bovine luteal cells in vitro and the objective of this study was to localize the site of action of PGF2 alpha. Cultured bovine luteal cells were treated with PGF2 alpha for seven days, and then with either lipoproteins or 25-hydroxycholesterol in the presence of aminoglutethimide (which inhibits cholesterol side-chain cleavage) for the final 48 h. The effects of PGF2 alpha on progesterone production, cellular cholesterol content, mitochondrial cholesterol content and cholesterol side-chain cleavage activity were determined. As expected, PGF2 alpha inhibited (P less than 0.05) lipoprotein-stimulated progesterone production. However, PGF2 alpha did not inhibit low-density lipoprotein-stimulated, or high density lipoprotein-stimulated, increases in cellular cholesterol (P less than 0.05) or inhibit lipoprotein-induced increases in mitochondrial cholesterol content (P less than 0.05). Additionally, cholesterol content of mitochondria increased (P less than 0.05) in the presence of PGF2 alpha alone. To determine if the PGF2 alpha-induced inhibition of steroidogenesis occurred at, or after, the side-chain cleavage reaction, we treated cells with the readily diffusable sterol, 25-hydroxycholesterol. Prostaglandin F2 alpha did not inhibit 25-hydroxycholesterol-stimulated progesterone production (P less than 0.05). Prostaglandin F2 alpha may therefore exert its luteolytic effect at a site after cholesterol transport to the mitochondria but before cholesterol side-chain cleavage.

Aminoglutethimide↗

Modulation of bovine luteal cell synthetic capacity by interferon-gamma.

Previous work from our laboratory has demonstrated that major histocompatibility complex (MHC) antigens are expressed on cultured bovine luteal cells following exposure to the T lymphocyte-derived cytokine, interferon-gamma (IFN-gamma). In light of these actions of IFN-gamma, it was of interest to investigate the effects of this cytokine on other aspects of luteal function. Therefore, bovine luteal cells were cultured for 7 days in the presence or absence of IFN-gamma, and luteal progesterone (P4), prostaglandin F2 alpha (PGF2 alpha), and 6-keto-prostaglandin F1 alpha (6-keto-PGF1 alpha) production were evaluated. After a 24-h exposure to IFN-gamma (100 U), both PGF2 alpha and 6-keto-PGF1 alpha production were decreased approximately 50% (p less than 0.05). However, as time in culture progressed, IFN-gamma markedly increased the synthesis of both prostaglandins approximately 400% above controls (p less than 0.05). Stimulation of prostaglandin production by IFN-gamma was abrogated by the addition of exogenous P4. During the period of IFN-gamma-stimulated prostaglandin synthesis, LH-stimulated P4 production was inhibited by IFN-gamma treatment. However, the suppression of P4 production by IFN-gamma was not mediated by the increase in prostaglandins since concomitant treatment with indomethacin did not reverse the inhibition of steroidogenesis. These results suggest that IFN-gamma, in addition to an indirect role in promoting immune response mechanisms, may also directly affect luteal function by enhancing luteal prostaglandin synthesis and by inhibiting luteal steroidogenesis.

6-Ketoprostaglandin F1 alpha↗

Expression of major histocompatibility complex antigens on the bovine corpus luteum during the estrous cycle, luteolysis, and early pregnancy.

Treatment of cultured bovine luteal cells with the cytokine, interferon-gamma, induces the expression of Class II major histocompatibility complex antigens (MHC Ags). To determine if Class II MHC Ags are present on the CL in vivo and if the degree of Ag expression changes during luteal life span, bovine corpora lutea were obtained on Day 6, Days 10-12, and Day 18 of the estrous cycle and MHC Ag expression was evaluated via indirect immunofluorescence. Flow cytometry was used to determine the percentage of MHC Ag-positive cells on cell populations distinguished by cell size and intracellular density. Minimal Class II MHC Ag expression was detected on Day 6 CL (approximately 25%), which consisted primarily of smaller cells. The midcycle and late CL consisted of these small cells (SC) and two populations of large cells that differed in intracellular density, or right-angle light scatter. In midcycle CL, few (less than 25%) SC or large, dense cells (LDC) expressed the Class II MHC Ag whereas a high percentage (75%) of the large, less-dense cells (LLDC) were Class II MHC Ag-positive. Class II MHC Ag expression remained negligible on the LDC of the Day 18 CL; however, there was an elevation in the percentage of SC and LLDC expressing Class II Ag (p less than 0.05). To determine if Class II MHC Ag expression also varied with different functional states of the CL, bovine CL were collected after prostaglandin (PG) F2 alpha-induced regression and on Day 18 of early pregnancy. When luteolysis was allowed to progress in vivo, the percentage of Class II MHC Ag-positive cells was increased in all cell populations (p less than 0.05). Class II MHC Ag expression was significantly lower (p less than 0.05) on the three cell populations comprising the CL of pregnancy as compared to the Day 18 cyclic CL. It is hypothesized that enhanced expression of Class II MHC Ags on the late CL and during PGF2 alpha-induced regression may potentiate immune response mechanisms for luteolysis.

Animals↗

Lipopolysaccharidelike immunological properties of cell wall glycoproteins isolated from Cytophaga johnsonae.

Glycoproteins (GP) previously shown to be involved in the gliding motility of Cytophaga johnsonae were examined for biological activities characteristic of lipopolysaccharide (LPS). These integral membrane proteins activated 70Z/3 pre-B cells to synthesize immunoglobulin M, induced B cells to synthesize non-antigen-specific polyclonal immunoglobulin, induced macrophages to produce tumor necrosis factor, and modulated the antibody response to type III pneumococcal polysaccharide in the absence of thymus-derived (T) lymphocytes. Except for the GP activity in the 70Z/3 assay, all activities of the GP were comparable to or greater than those of LPS. No LPS was detected in the preparations of GP used or in the phenol-water extracts of C. johnsonae. The mechanism by which these GP exerted their biological activities was distinct from that of LPS, since LPS-resistant C3H/HeJ mice responded to GP. Furthermore, biologically inactive diphosphoryl lipid A obtained from nontoxic LPS of Rhodopseudomonas sphaeroides (an analog of toxic lipid A), which is an antagonist of LPS, did not block the induction of tumor necrosis factor by GP in macrophages. These results showed that the cell surface GP from C. johnsonae are potent LPS-like activators of B cells and macrophages. We suggest that these GP might be good candidates for use in developing an effective adjuvant system.

Animals↗

Interleukin-1 beta is a potent stimulator of prostaglandin synthesis in bovine luteal cells.

Interleukin-1 (IL-1) is a polypeptide that has both local and systemic effects on numerous tissues, including endocrine cells. To evaluate the effect of IL-1 on luteal function, bovine luteal cells were cultured for 5 days with increasing concentrations (0.1, 0.5, 1.0, 2.5, 5.0, 10.0 ng/ml) of recombinant bovine interleukin-1 beta (rbIL-1 beta). IL-1 beta increased the production of luteal 6-keto-prostaglandin-F1 alpha (6-keto-PGF1 alpha), prostaglandin E2 (PGE2), and prostaglandin F2 alpha (PGF2 alpha) in a dose-dependent manner, but had no effect on progesterone (P4) production. Treatment with the cyclooxygenase inhibitor, indomethacin (5 micrograms/ml), inhibited basal, as well as rbIL-1 beta-stimulated prostaglandin production. Addition of Iloprost (a synthetic analogue of prostacyclin, 5 ng/ml) suppressed basal production of PGF2 alpha and PGE2, but did not reduce the stimulatory effect of rbIL-1 beta. Similarly, PGF2 alpha suppressed basal, but not IL-1 beta-stimulated, production of 6-keto-PGF1 alpha. PGE2 had no effect on the synthesis of either PGF2 alpha or 6-keto-PGF1 alpha. P4 (1.75 micrograms/ml) reduced basal as well as rbIL-1 beta-stimulated production of 6-keto-PGF1 alpha, PGE2, and PGF2 alpha. These results indicate that IL-1 beta could serve as an endogenous regulator of luteal prostaglandin production. It appears that IL-1 beta action is not modified by exogenous prostaglandins, but is at least partially regulated by elevated P4. It is possible that the role of IL-1 beta in stimulation of luteal prostaglandin production may be confined to a period characterized by low P4 levels, such as during luteal development or regression.

6-Ketoprostaglandin F1 alpha↗

Use of nonmotile mutants to identify a set of membrane proteins related to gliding motility in Cytophaga johnsonae.

Nonmotile mutants of the gliding bacterium Cytophaga johnsonae were examined to identify proteins that might be involved in gliding motility. Wild-type and mutant cell proteins were solubilized and fractionated by using Triton X-114, and the proteins that partitioned into the aqueous phase or the detergent phase were analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis for proteins that differed between wild-type and mutant cells. Seventeen proteins, ranging in size from 16 to 150 kilodaltons, were implicated by this technique as having some relationship to gliding and were designated Gld-1 through Gld-17. All Gld proteins behaved as integral membrane proteins, partitioning into the detergent phase. All 56 mutants examined exhibited changes in 1 or more of the Gld proteins, with the number of proteins altered in any mutant varying from 1 to 11. Several lines of evidence suggested that proteins Gld-12 through Gld-15 are glycoproteins. Analysis of banding patterns of detergent-fraction proteins of motile revertants supported the idea that the Gld proteins have a role in gliding motility.

Bacterial Proteins↗

Youngsters with moderate or severe mental retardation and severe spoken language impairments. I: Extant communicative patterns.

This study characterizes the communicative patterns of youngsters with moderate or severe mental retardation and severe spoken language impairments who are not independent speakers with conversational partners at home and at school. Nine subjects were observed during six 1-hr mealtime sampling periods in both settings for a total of 12 hr. Live continuous observations were made, employing a coding scheme designed to record occurrences of the subjects' communicative behaviors. Findings are discussed with respect to the modes and functions of the youngsters' communications with home and school conversational partners.

Adolescent↗

Interferon-gamma induction of major histocompatibility complex antigens on cultured bovine luteal cells.

To investigate immunological mechanisms that may be involved in luteal function, the presence of Class I and Class II major histocompatibility complex (MHC) antigens on cultured bovine luteal cells was examined. After 72 h in serum-free culture, Class I antigens were markedly expressed on luteal cells, as determined by indirect immunofluorescence, whereas expression of Class II antigens was limited. The expression of MHC antigens on luteal cells was increased by treatment with the T-lymphocyte factor, interferon-gamma (IFN-gamma). Class I and II antigens were elevated 25% and 370% above controls, respectively, after IFN-gamma exposure. Since the corpus luteum is regulated by luteinizing hormone (LH), luteal cells were treated with either hormone alone or hormone in addition to IFN-gamma, and antigen expression was determined. LH treatment attenuated IFN-gamma-induction of Class II antigens on bovine luteal cells. These observations are the first to demonstrate the presence of MHC antigens on bovine luteal cells and the modulation of antigen expression by the lymphokine IFN-gamma and by LH.

Animals↗

Regulation of steroidogenesis and cholesterol synthesis by prostaglandin F-2 alpha and lipoproteins in bovine luteal cells.

Bovine luteal cells can utilize low density lipoprotein (LDL) or high density lipoprotein (HDL) as a source of cholesterol for steroidogenesis, and administration of PGF-2 alpha in vitro suppresses lipoprotein utilization. The objective of this study was to examine the mechanism by which PGF-2 alpha exerts this effect. Cultured bovine luteal cells received 0.25 microCi[14C]acetate/ml, to assess rates of de-novo sterol and steroid synthesis, with or without lipoproteins. Both LDL and HDL enhanced progesterone production (P less than 0.01), but caused a significant reduction in the amount of radioactivity in the cholesterol fraction. PGF-2 alpha treatment inhibited the increase in lipoprotein-induced progesterone synthesis (P less than 0.01), but did not prevent the reduction in de-novo cholesterol synthesis brought about by LDL or HDL. PGF-2 alpha alone reduced cholesterol synthesis (P less than 0.01), but it was not as effective as either LDL or HDL. Both lipoproteins and PGF-2 alpha also decreased the amount of radioactivity in the progesterone fraction (P less than 0.01), and the effect of PGF-2 alpha was similar to that of the lipoproteins. It is concluded that lipoproteins can enhance progesterone production and also suppress de-novo cholesterol synthesis in bovine luteal cells, but only the former effect of lipoproteins is inhibited by PGF-2 alpha. Therefore, it is suggested that PGF-2 alpha allows entry of lipoprotein cholesterol into the cell, but prevents utilization for steroidogenesis. In addition, PGF-2 alpha alone can suppress cholesterol synthesis, as well as decrease conversion of cholesterol to progesterone.

Animals↗

Regulation of prostaglandin synthesis by progesterone in the bovine corpus luteum.

The objective of the present study was to investigate the influence of progesterone on prostaglandin synthesis by the corpus luteum (CL). Corpora lutea were obtained from dairy cows on days 4, 6, 10, and 18 of the estrous cycle, dissociated, and placed in serum-free culture. The addition of luteinizing hormone (LH) resulted in a slight, but non-significant (p greater than 0.05), increase in levels of 6-keto-PGF1 alpha, and had no effect on PGF2 alpha. Progesterone treatment caused a significant, dose-dependent decrease in both PGF2 alpha and 6-keto-PGF1 alpha in 6-day and 10-day corpora lutea, but not in 4-day or 18-day corpora lutea. In the 6- and 10-day corpora lutea, progesterone treatment resulted in a greater inhibition of PGF2 alpha than 6-keto-PGF1 alpha production. Therefore, progesterone treatment brought about an increase in the 6-keto-PGF1 alpha to PGF2 alpha ratio in these cells (12.9 vs. 21.3). It is concluded from these studies that progesterone can modulate luteal prostacyclin and PGF2 alpha synthesis, suggesting an interaction of progesterone and prostaglandin production within the corpus luteum.

Animals↗

Establishment of symbolic communication in persons with severe retardation.

For persons with severe retardation, learning to communicate symbolically is a complex long-term process requiring the coordination of many components to succeed. Three of four institutionalized adolescents and young adults with severe retardation who participated in this study learned to use lexigrams to request foods and, subsequently, objects. Although their request skill did not initially generalize to labeling and to comprehension tasks, additional request experience with lexigrams resulted in consistent improvement in performance in both tasks. The emergence of subject-initiated lexigram communications and the facilitation of spoken language comprehension and/or production were also observed.

Adolescent↗

Response competition and target word detection during shadowing in a dichotic listening task.

College students (N = 24) served as subjects in a within-subjects study of auditory attention in which four tasks were performed. In the easiest task, a single passage was presented and shadowed while target word detections were indicated by pressing a key. The other three tasks also required target word detection, but a second passage was presented simultaneously. One task had no target words in the unshadowed passage; the other two tasks required a key-pressing response to the target words in both passages, either with one hand or with each hand. We expected performance to decrease as task complexity increased; this was partially confirmed. The task of shadowing and detecting target words is too difficult to be used to test perception or response limitations of attention.

Adult↗