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Biomedical subjects

T Audhya

Publications and source records attributed to T Audhya.

At least 37 records · Page 2Linked to original sources

Interactions of the thymic polypeptide hormone thymopoietin with neuronal nicotinic alpha-bungarotoxin binding sites and with muscle-type, but not ganglia-type, nicotinic acetylcholine receptor ligand-gated ion channels.

Studies were conducted to assess the ability of the thymic polypeptide hormone thymopoietin (TPO) to interact with proto-typical ganglia-type or muscle-type nicotinic acetylcholine receptor ion channels (nAcChoR). Also investigated were interactions of TPO with neuronal nicotinic alpha-bungarotoxin binding sites (nBgtS), which share many features with nAcChoR and may belong to an extended nAcChoR family but do not appear to function as simple ligand-gated ion channels. TPO and alpha-bungarotoxin (Bgt) share the capacity for high affinity (IC50 values in the nanomolar range) interaction with nBgtS, which are expressed as high affinity radioiodinated Bgt binding sites by cells of the SH-SY5Y or IMR-32 human neuroblastomas. TPO and Bgt also share the capacity for high affinity interaction with muscle-type nAcChoR, which are expressed as high affinity binding sites for radioiodinated Bgt or tritium-labeled acetylcholine by cells of the TE671/RD human clone or the BC3H-1 mouse muscle cell line or on membrane preparations from Torpedo electroplax. TPO and Bgt act acutely as high affinity antagonists of muscle-type nAcChoR functional responses, which are measured using an isotopic rubidium ion efflux assay, on TE671/RD or BC3H-1 cells. In contrast, neither TPO nor Bgt are effective, at doses of up to 1 microM, as antagonists of ganglia-type nAcChoR function on SH-SY5Y or IMR-32 cells, nor are they potent as inhibitors of high affinity tritium-labeled acetylcholine binding to sites on putative ganglia-type nAcChoR expressed by SH-SY5Y or IMR-32 cells. These data indicate that some members of the extended nAcChoR family, including nBgtS and functional muscle-type nAcChoR but not ganglia-type nAcChoR, can interact with either Bgt or TPO. The results suggest that TPO may be an endogenous ligand active in both the nervous and immune systems and that some of its actions may be mediated via nBgtS or via functional blockade of muscle-type nAcChoR.

Acetylcholine↗

Thymopoietin inhibits function and ligand binding to nicotinic receptors at the neuromuscular junction.

Thymopoietin is a 48 to 49 amino acid polypeptide hormone of the thymus, which regulates immune function. The present experiments show that the polypeptide can cause a complete block of transmission of the phrenic nerve diaphragm junction of the rat in vitro; contractile responses evoked by phrenic nerve stimulation were blocked by concentrations of thymopoietin as low as 10(-8) M. The thymopoietin-induced inhibition of indirectly evoked muscle contractions was dose- and time-dependent, with the polypeptide being only slightly less potent than alpha-bungarotoxin (alpha-BGT). Twitch responses to direct electrical stimulation of the muscle were not affected by thymopoietin, indicating that it did not inhibit muscle tension by an action on the muscle contractile mechanism per se. Furthermore, thymopoietin did not alter resting or stimulated release of acetylcholine from the phrenic nerve, suggesting that it did not interact at a presynaptic level. On the other hand, thymopoietin inhibited the binding of [125I]alpha-BGT to the nicotinic receptor of rat hemidiaphragm. In intact muscle tissue, the IC50 value for inhibition of [125I]alpha-BGT binding by thymopoietin was 2.1 x 10(-7) M, a value similar to the concentration of polypeptide required to inhibit phrenic nerve-induced muscle contraction (IC50 value, 0.75-1.6 x 10(-7) M). In a muscle membrane preparation, the potency of thymopoietin to affect [125I]alpha-BGT binding was increased (IC50 value, 0.35 nM); thus thymopoietin has the potential to interact at the nicotinic receptor in the nM range. To conclude, the present results show that thymopoietin inhibits neuromuscular activity by an effect that appears to be a specific interaction at the nicotinic receptor.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

Thymopoietin, a thymic polypeptide, regulates nicotinic alpha-bungarotoxin sites in chromaffin cells in culture.

The identity of the neuronal nicotinic alpha-bungarotoxin (alpha-BGT) site, which appears to be distinct from the functional nicotinic receptor, is unclear. Recent work in our laboratory has shown that the thymus-derived polypeptide thymopoietin potently and specifically interacts at the nicotinic alpha-BGT site in brain. The present results show that thymopoietin also interferes with the binding of 125I-alpha-BGT to chromaffin cells in culture; a dose-dependent inhibition in binding was observed, with an IC50 of 10(-8) M. To assess the long term effect(s) of thymopoietin in nervous tissue, chromaffin cells were exposed to the polypeptide for varying periods of time. Incubation of the cells in culture with thymopoietin (10(-9) to 3 x 10(-7) M) for 2 to 7 days resulted in an approximate 3-fold increase in alpha-BGT binding. Saturation analysis indicated this was due to an increase in the Bmax. The thymopoietin-induced increase in binding could be reversed with nicotine: thus, the sites can be regulated by a nicotinic receptor ligand. Although thymopoietin potently interacted at the nicotinic alpha-BGT receptor, nicotinic receptor responsiveness was not affected after short or long term exposure to the peptide. Neither basal nor nicotinic receptor-stimulated tyrosine hydroxylase activity was altered by thymopoietin. As well, resting and acetylcholine-evoked noradrenaline release remained similar to control after exposure of the cells to the polypeptide. These results indicate that the thymic polypeptide thymopoietin specifically interacts with the nicotinic alpha-BGT receptor population and, furthermore, can regulate the toxin binding sites in chromaffin cells in culture.

Acetylcholine↗

Structural characterization and localization of corticotropin-releasing factor in testis.

To sequence and thereby definitively characterize corticotropin-releasing factor (CRF)-like material from a representative peripheral tissue, CRF was obtained from 76 ovine testes. The novel extraction procedure involved use of an immunoaffinity column to which a high-affinity CRF monoclonal antibody was attached as well as fast protein liquid chromatography. The complete sequence was elucidated by gas-phase sequencing, carboxyamidopeptidase digestion and cyanogen bromide cleavage. Aside from microheterogeneity at position 39, all the other amino acids were identical to ovine hypothalamic CRF. Additionally, in immunohistochemical studies in the rat, CRF was localized to the Leydig cell. These findings along with related observations by ourselves and others are compatible with the hypothesis that CRF plays a significant local role, possibly by paracrine or autocrine mechanisms.

Amino Acid Sequence↗

Thymopoietin, a thymic polypeptide, specifically interacts at neuronal nicotinic alpha-bungarotoxin receptors.

alpha-Bungarotoxin (alpha-BGT), a snake venom polypeptide, interacts potently and specifically with a nicotinic receptor population in neuronal tissue. However, the identity of this site is unclear, because, unlike at the neuromuscular junction and in electroplax, in nervous tissue the toxin does not block nicotinic cholinergic responses. Therefore, we sought endogenous compounds other than acetylcholine that could interact with the neuronal alpha-BGT site. In the present experiments, thymopoietin, a polypeptide isolated from the thymus, is shown to inhibit potently alpha-BGT binding to brain membranes in a dose-dependent manner (IC50 = 3.1 nM). This effect was not shared by a wide variety of other peptides, including thysplenin, a closely related polypeptide. Thymopoietin did not inhibit the binding of other radioligands known to interact with different populations of cholinergic receptors, such as [3H]nicotine and [3H]methylcarbachol, which bind to nicotinic receptors, or [3H]quinuclidinylbenzilate, which binds to muscarinic receptors. These results show that thymopoietin potently and specifically affects 125I-alpha-BGT binding to brain membranes and suggest that thymopoietin might be an endogenous ligand for alpha-BGT receptors in neuronal tissue.

Animals↗

GHRF causes biphasic stimulation of SRIF secretion from rat hypothalamic cells.

The complex interactions of the hypothalamic releasing peptides somatostatin (SRIF) and growth hormone (GH)-releasing hormone (GHRF), which regulate GH secretion, are still incompletely understood. To further scrutinize these interactions, we have studied the effects of GHRF on SRIF secretion from dispersed adult rat hypothalamic cells. Rat GHRF caused calcium- and dose-dependent stimulation of SRIF release in static 1-h incubations. SRIF release was stimulated by GHRF in a concentration range of 1-100 nM. However, the extended dose-response curve was biphasic in nature, with a significantly lower SRIF response in the presence of 1 microM GHRF vs. 100 nM GHRF. SRIF release, stimulated by another secretagogue (10 microM veratridine), was not affected by the presence or absence of 1 microM GHRF, suggesting the lack of toxic impairment of hypothalamic cell function by GHRF at this concentration. In conclusion, a biphasic stimulatory pattern of SRIF secretion in response to GHRF was observed in experiments employing dispersed rat hypothalamic cells. The biphasic SRIF response pattern to GHRF may be relevant in the physiological regulation of GH secretion.

Animals↗

Corticotropin-releasing factor levels in the peripheral plasma and hypothalamus of the rat vary in parallel with changes in the pituitary-adrenal axis.

Impressive evidence has emerged indicating that immunoassayable and bioassayable CRF, which is immunoneutralizable, is present not only in the hypothalamus but in many peripheral tissues as well. Using highly specific and sensitive RIAs and immunoaffinity chromatography to investigate whether this extrabrain CRF circulates in the rat, we found low but clearly measurable levels in peripheral plasma (mean, 11.4 +/- 0.8 pg/ml). Immunological findings were corroborated by fast protein liquid chromatography, which resolves peptides by both hydrophobicity and ionic charge. With this approach the major immunoreactive peak was eluted at the position of synthetic rat CRF standard. To assess whether levels of peripheral plasma CRF-like immunoreactivity (CRF-LI) vary in parallel with those of hypothalamic CRF-LI, we performed studies with low and high dose dexamethasone administration and withdrawal, adrenalectomy, and hypophysectomy. Seven days after oral administration of dexamethasone, there was a decrement in the levels of peripheral plasma and hypothalamic CRF-LI. Depending on the dose, recovery was also found 7 days after cessation of the treatment. After either adrenalectomy or hypophysectomy, there were increments in the levels of CRF-LI in both peripheral plasma and hypothalamus. Thus, concentrations of CRF-LI in the peripheral plasma and in the hypothalamus vary in parallel in response to alterations in the pituitary-adrenal axis.

Adrenalectomy↗

Growth hormone-releasing factor releases ACTH from an AtT-20 mouse pituitary tumor cell line but not from normal pituitary cells.

Corticotropin-releasing factor (CRF) and both human pancreatic growth hormone-releasing factor (hp-GRF) and rat hypothalamic GRF (rh-GRF) stimulated ACTH release from neoplastic AtT-20 mouse pituitary tumor cells in a dose-dependent fashion, with CRF inducing a 10-fold increase and GRF a maximal increment of approximately one-half that of CRF. Neither rh-GRF nor hp-GRF induced ACTH release in normal anterior pituitary cells. Pretreatment with either dexamethasone or somatostatin prior to the addition of rh-GRF inhibited the increase in ACTH release. Both ovine CRF and rh-GRF stimulated adenosine 3,5-monophosphate production in AtT-20 cells. The weak but clearly discernible effect of GRF on ACTH release from AtT-20 cells may be due to an abnormality in the AtT-20 cell receptor.

Adrenocorticotropic Hormone↗

Calcium-dependent effect of the thymic polypeptide thymopoietin on the desensitization of the nicotinic acetylcholine receptor.

The effects of the thymic polypeptide thymopoietin (Tpo) on the properties of the nicotinic acetylcholine receptor (AcChoR) were investigated by patch clamp techniques on mouse C2 myotubes and by biochemical assays on AcChoR-rich membrane fragments purified from the Torpedo marmorata electric organ. At high concentrations (greater than 100 nM), Tpo inhibits the binding of cholinergic agonists to the AcChoR in a Ca2+-insensitive manner. At lower concentrations (2 nM), Tpo applied on C2 myotubes simultaneously with nondesensitizing concentrations of acetylcholine results in the appearance of long closed times separating groups of openings. This effect depends on the presence of Ca2+ in the external medium. Outside-out recordings, performed with various concentrations of EGTA in the intracellular medium, suggest that Ca2+ acts on the cytoplasmic face of the membrane after entry through acetylcholine-activated channels. Parallel studies with T. marmorata AcChoR-rich membranes show that in the presence of Ca2+ Tpo causes a decrease in the apparent equilibrium dissociation constant of the noncompetitive blocker [3H]phencyclidine, enhances, at low concentrations, the binding of [3H]acetylcholine, and also alters the binding kinetics of the fluorescent agonist 6-(5-dimethylamino-1-naphthalenesulfonamido)-n-hexanoic acid beta-(N-trimethylammonium bromide) ethyl ester to the AcChoR. It was concluded that, in the presence of Ca2+, Tpo displaces the conformational equilibrium of the AcChoR towards a high-affinity desensitized state and increases the transition rate towards the same state.

Acetylcholine↗

Isolation and complete amino acid sequence of human thymopoietin and splenin.

Human thymopoietin and splenin were isolated from human thymus and spleen, respectively, by monitoring tissue fractionation with a bovine thymopoietin RIA cross-reactive with human thymopoietin and splenin. Bovine thymopoietin and splenin are 49-amino acid polypeptides that differ by only 2 amino acids at positions 34 and 43; the change at position 34 in the active-site region changes the receptor specificities and biological activities. The complete amino acid sequences of purified human thymopoietin and splenin were determined and shown to be 48-amino acid polypeptides differing at four positions. Ten amino acids, constant within each species for thymopoietin and splenin, differ between the human and bovine polypeptides. The pentapeptide active site of thymopoietin (residues 32-36) is constant between the human and bovine thymopoietins, but position 34 in the active site of splenin has changed from glutamic acid in bovine splenin to alanine in human splenin, accounting for the biological activity of the human but not the bovine splenin on the human T-cell line MOLT-4.

Amino Acid Sequence↗

Purification and partial chemical characterization of a glycoprotein with antifertility activity from human seminal plasma.

The preparation of a highly purified antifertility factor from human seminal plasma is described, and some of its biochemical properties have been determined. Purification was achieved by ultracentrifugation of particle-free human seminal plasma, followed by chromatography of the precipitate using carboxymethyl cellulose, concanavalin A, and Sepharose 6B columns. An occasional contaminant was further removed by preparative isoelectric focusing. During the purification procedures, the activity of the fractions was monitored by mixing them with capacitated mouse spermatozoa for 20 min before adding an aliquot to intact mouse oocytes, and determining fertilization after 24 h. The I50 (amount causing a 50% reduction in fertilization as compared to the control) of the final purified factor was 45 micrograms protein. Purity was established by standard and sodium dodecyl sulfate disc gel electrophoresis, isoelectric focusing, high-pressure liquid chromatography, and sedimentation analysis. These methods, as well as Sepharose gel filtration, were also used for the molecular weight estimations; good agreement was obtained between the various techniques. The factor appears to be a glycoprotein with a molecular weight of about 200,000. It consists of two subunits with molecular weights of about 125,000 and 72,000 and s-20,w of 6.2 s and 4.3 s. The factor contains relatively high amounts of aspartic acid and glutamic acid residues as well as leucine and serine, but only small amounts of tryptophan and no methionine was detected. The carbohydrate fraction is particularly rich in galactose and N-acetylgalactosamine but also contains mannose and N-acetylglucosamine and small amounts of fucose and sialic acid.

Amino Acids↗

Antibodies to thymopoietin following implantation of paper disks derivatized with synthetic Cys-thymopoietin.

A synthetic peptide corresponding to Cys-thymopoietin 28-39 was synthesized and coupled by diazo linkages to aminophenyl thioether-derivatized paper disks. Disks were implanted in the peritoneal cavities of mice, initially after soaking in complete Freund's adjuvant and subsequently, at 3 week intervals, without further treatment. After four implantations, 6/6 mice developed antibodies reacting with the synthetic peptide and with native thymopoietin. In contrast, mice conventionally immunized with peptide alone (six mice) or with peptide complexed with thyroglobulin (six mice) all failed to develop antibodies. Mice immunized with disks derivatized with Cys-thymopoietin 9-20, corresponding to the other hydrophilic region of thymopoietin, also failed to develop antibodies. Thymopoietin 28-39 corresponds to an antigenic hydrophilic region of thymopoietin that contains the pentapeptide active site (thymopoietin 32-36, Arg-Lys-Asp-Val-Tyr).

Animals↗

Immunoreactive thymopoietin in the mouse central nervous system.

A thymopoietin-immunoreactive substance (TP-IRS) has been detected in homogenates of mouse spinal cord and brain using a radioimmunoassay; levels were maximal at birth. TP-IRS was also detected in supernatants of mouse neuroblastoma (NIE-115) and primary spinal cord cultures but not human astrocytic and meningeal tumors or mouse primary astrocyte cultures. With affinity purified rabbit anti-TP globulin, immunofluorescent staining was seen in mouse spinal cord cultures in association with nuclear membranes of neurons and, to a lesser degree, flat background cells. From supernatants of NIE-115 cells grown in tritiated leucine and lysine, proteins of approximately 8000 and 4500 Da were isolated by TP affinity chromatography (compared with 5562 Da for thymic thymopoietin). When injected into mice, these neural proteins partially blocked neuromuscular transmission in a manner similar to thymic thymopoietin.

Animals↗

Tripeptide structure of bursin, a selective B-cell-differentiating hormone of the bursa of fabricius.

Differentiation of lymphoid precursor cells in a variety of species is induced by polypeptide hormones such as thymopoietin for T cells and bursin for B cells. In the present experiments, bursin isolated from the bursa of Fabricius of chicken was found to induce the phenotypic differentiation of mammalian and avian B precursor cells but not of T precursor cells in vitro. Similarly, bursin increased cyclic guanosine monophosphate in cells of the human B-cell line Daudi but not in cells of the human T-cell line CEM. These inducing properties of bursin are the reverse of the inducing properties of thymopoietin produced by the thymus and are appropriate to a physiological B-cell-inducing hormone. A tripeptide sequence (lysyl-histidyl-glycyl-amide) was determined for bursin and confirmed by synthesizing this proposed structure and demonstrating chemical identity of the natural and synthetic peptides. Similarity of biological action was indicated in induction assays by elevation of cyclic adenosine monophosphate and guanosine monophosphate in Daudi B cells but not in CEM T cells.

Animals↗

Immunohistochemical localization of thymopoietin with an antiserum to synthetic Cys-thymopoietin28-39.

Thymopoietin-containing cells in the thymus were identified immunohistochemically using murine antiserum generated by immunization with synthetic Cys-thymopoietin28-39 (Cys-TP28-39). human thymopoietin, This antiserum, previously shown to react with both bovine and human thymopoietin, gave reactivity restricted to cortical and medullary epithelial cells of bovine and human thymus. Monoclonal antibodies with reactivity restricted to native bovine thymopoietin did not react with tissue sections of bovine thymus; most likely the epitopes recognized by monoclonal antibodies are not expressed on the inactive precursor forms of thymopoietin within thymic epithelial cells.

Animals↗

Binding of thymopoietin to the acetylcholine receptor.

Thymopoietin is a polypeptide hormone of the thymus with physiological effects on the immune system and on acetylcholine-mediated transmission at the neuromuscular synapse. Elucidation of the structure and function of the nicotinic acetylcholine receptor has been facilitated by the use of the electric organs of Torpedo ray or Electrophorus eel as rich sources of the receptor and by the use of snake polypeptide toxins such as alpha-bungarotoxin as highly selective labels of the acetylcholine binding site. We now show that thymopoietin binds with high affinity (Ka approximately equal to 2.5 X 10(9) M-1) to the acetylcholine binding region of the acetylcholine receptor of Torpedo californica, as evidenced by similar and complete inhibition of the binding of radiolabeled thymopoietin or alpha-bungarotoxin by either of these polypeptides. These findings raise intriguing questions concerning the mechanisms whereby alpha-bungarotoxin and the thymopoietin affect acetylcholine receptor function, since these two polypeptides with such similar binding properties have very different functional effects.

Acetylcholine↗