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Des-acetyl MSH and gamma-MSH act as partial agonists to alpha-MSH on the Anolis melanophore.

The biological activities of alpha-MSH des-acetyl MSH, gamma-MSH and LPH37-58 were compared using the Anolis rate method of bioassay. Dose-response data showed LPH37-58 to be equipotent with alpha-MSH, but des-acetyl MSH and gamma-MSH were found to be much less active. The effect of LPH37-58 was additive to that of alpha-MSH, indicating that LPH37-58 is a full agonist of alpha-MSH. The lower potency peptides des-acetyl MSH and gamma-MSH reduced the effect of alpha-MSH and are, therefore, partial agonists of alpha-MSH. The action of MSH peptides in vivo may be modulated by interaction with agonists.

Amino Acid Sequence↗

The major immunoreactive alpha-melanocyte-stimulating hormone (alpha MSH)-like substance found in human fetal pituitary tissue is not alpha MSH but may be desacetyl alpha MSH (adrenocorticotropin1-13NH2).

Pituitary glands were obtained from human abortuses during the second half of gestation. Acid extracts were made from the anterior and neurointermediate lobes, and alpha MSH immunoreactivity (alpha MSHi) was quantified by RIA. alpha MSHi was found in both lobes of the pituitary gland, with 20-80% of the total pituitary alpha MSHi being present in extracts of the anterior lobe. Anterior and neurointermediate lobe extracts subjected to gel filtration on Sephadex G-50 revealed one peak of alpha MSHi having an elution profile identical to those of alpha MSH and desacetyl alpha MSH (ACTH1-13NH2). To characterize further the alpha MSHi extracts were subjected to high pressure liquid chromatography. No alpha MSH could be identified in extracts of the anterior lobe, and most of the alpha MSHi had an elution profile identical to that of desacetyl alpha MSH. Although small amounts of alpha MSH might be present in the neurointermediate lobe, most of the alpha MSHi in this lobe coeluted with desacetyl alpha MSH. Since alpha MSH was not converted to desacetyl alpha MSH during the extraction and chromatographic procedures, we hypothesize that the predominant form of alpha MSH-like material in the human fetal pituitary gland may be desacetyl alpha MSH.

Adrenocorticotropic Hormone↗

Des-acetyl-alpha-MSH and not alpha-MSH is the major form of alpha-MSH in amniotic fluid.

Immunoreactive alpha-melanocyte stimulating hormone (IR-alpha-MSH)-like activity was measured by radioimmunoassay (RIA) in at term pregnancy amniotic fluid prior and after adsorption on a Sep-pak C18 cartridge. alpha-MSH activity was 3-4 times lower after Sep-pak purification but, unlike the levels of IR-alpha-MSH in the fluid analyzed in toto, increased linearly with the volume of fluid analyzed. Furthermore, fractionation by high pressure liquid chromatography (HPLC) revealed that IR-alpha-MSH recovered from the Sep-pak was due to several peptides rather than to a single peptide. The most abundant of them (50% of total activity) behaved like authentic des-acetyl-alpha-MSH. Since des-acetyl-alpha-MSH is also the most abundant alpha-MSH-like peptide in the fetal pituitary gland, the present results suggest that the fetal pituitary is a main source of des-acetyl-alpha-MSH in the amniotic fluid.

Amniotic Fluid↗

Agouti antagonism of melanocortin-4 receptor: greater effect with desacetyl-alpha-melanocyte-stimulating hormone (MSH) than with alpha-MSH.

Desacetyl-alpha-MSH is more abundant than alpha-MSH in the brain, the fetus, human blood, and amniotic fluid, but there is little information on its ability to interact with melanocortin receptors. The aim of this study is to compare and contrast the ability of desacetyl-alpha-MSH and alpha-MSH to couple melanocortin receptors stably expressed in HEK293 cells, to the protein kinase A (PKA) signaling pathway. Desacetyl-alpha-MSH activated mouse MC1, MC3, MC4 and MC5 receptors with EC50s = 0.13, 0.96, 0.53, and 0.84 nM, and alpha-MSH activated these receptors with EC50s = 0.17, 0.88, 1.05, and 1.34 nM, respectively. Mouse agouti protein competitively antagonized alpha-MSH and desacetyl-alpha-MSH coupling to the MC1-R similarly. In contrast, mouse agouti protein antagonized desacetyl-alpha-MSH much more effectively and potently than alpha-MSH coupling the MC4-R to the PKA signaling pathway. Furthermore, mouse agouti protein (10 nM) significantly reduced (1.4-fold) the maximum response of mMC4-R to desacetyl-alpha-MSH and 100 nM mouse agouti significantly increased (4.8-fold) the EC50. Minimal antagonism of alpha-MSH coupling mMC4-R to the PKA signaling pathway was observed with 10 nM mouse agouti, whereas both 50 and 100 nM mouse agouti appeared to reduce the maximum reponse (1.1- and 1.3-fold, respectively) and increase the EC50 (2.5- and 3.4-fold respectively). Mouse agouti protein did not significantly antagonize either alpha-MSH or desacetyl-alpha-MSH coupling mouse MC3 and MC5 receptors. Understanding the similarities and differences in activation of melanocortin receptors by desacetyl-alpha-MSH and alpha-MSH will contribute to delineating the functional roles for these endogenous melanocortin peptides.

Adenylyl Cyclases↗

Noncompetitive enzyme immunoassay (hetero-two-site enzyme immunoassay) for gamma 2-melanocyte-stimulating hormone (gamma 2-MSH) and measurement of immunoreactive gamma 2-MSH in plasma of healthy subjects.

A noncompetitive enzyme immunoassay (hetero-two-site enzyme immunoassay) for gamma 2-melanocyte-stimulating hormone (gamma 2-MSH) was developed. gamma 2-MSH (1-12) was biotinylated, trapped onto an anti-gamma 2-MSH (1-12) IgG-coated polystyrene bead, eluted at pH 1 after washing to eliminate other biotinylated substances, and measured using two streptavidin-coated polystyrene beads and affinity-purified anti-gamma 2-MSH (1-12) Fab'-peroxidase conjugate. The detection limit of gamma 2-MSH (1-12) was 10-30 amol (16-48 fg)/assay and 130-400 fmol (210-630 pg)/L of plasma. There was little or only slight cross reaction with alpha-MSH, beta-MSH, and gamma 1-MSH. By this immunoassay, the concentration and molecular size of immunoreactive gamma 2-MSH in plasma of healthy subjects were examined, and the results were compared with those by competitive enzyme immunoassay. Immunoreactive gamma 2-MSH measured by competitive enzyme immunoassay was a mixture of substances with high molecular weights (100-500 kDa), and its concentration was calculated to be 50-60 pmol/L using gamma 2-MSH (1-12) as standard. Immunoreactive gamma 2-MSH detected by the noncompetitive enzyme immunoassay after removal of high molecular weight substances was not homogeneous and smaller than gamma 2-MSH (1-12), and its concentration was approximately 1 pmol/L. The exact nature of these immunoreactive gamma 2-MSHs remains to be elucidated. gamma 2-MSH (1-12) added to plasma was degraded rapidly, and the concentration of gamma 2-MSH (1-12) was very low, if any, in plasma of healthy subjects.

Adult↗

Characterization of alpha-melanocyte-stimulating hormone (alpha-MSH)-like peptides in discrete regions of the rat brain. In vitro release of alpha-MSH from perifused hypothalamus and amygdala.

The neuropeptide alpha-melanocyte-stimulating hormone (alpha-MSH) is synthesized by discrete populations of hypothalamic neurons which project in different brain regions including the cerebral cortex, hippocampus and amygdala nuclei. The purpose of the present study was to identify the alpha-MSH-immunoreactive species contained in these different structures and to compare the ionic mechanisms underlaying alpha-MSH release at the proximal and distal levels, i.e. within the hypothalamus and amygdala nuclei, respectively. The molecular forms of alpha-MSH-related peptides stored in discrete areas of the brain were characterized by combining high-performance liquid chromatography (HPLC) separation and radioimmunoassay detection. In mediobasal and dorsolateral hypothalamic extracts, HPLC analysis confirmed the existence of a major immunoreactive peak which co-eluted with the synthetic des-N alpha-acetyl alpha-MSH standard. In contrast, 3 distinct forms of immunoreactive alpha-MSH, which exhibited the same retention times as synthetic des-, mono- and di-acetyl alpha-MSH, were resolved in amygdala nuclei, hippocampus, cortex and medulla oblongata extracts. The proportions of acetylated alpha-MSH (authentic alpha-MSH plus diacetyl alpha-MSH) contained in these extrahypothalamic structures were, respectively, 78, 80, 60 and 92% of the total alpha-MSH immunoreactivity. In order to compare the ionic mechanisms underlaying alpha-MSH release from hypothalamic and extrahypothalamic tissues, we have investigated in vitro the secretion of alpha-MSH by perifused slices of hypothalamus and amygdala nuclei. High potassium concentrations induced a marked increase of alpha-MSH release from both tissue preparations. However, a higher concentration of KCl was required to obtain maximal stimulation of amygdala nuclei (90 mM) than hypothalamic tissue (50 mM).(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylation↗

Alpha-melanocyte-stimulating hormone (MSH) and [Nle4,D-Phe7]-alpha-MSH: effects on core temperature in rats.

The thermoregulatory effects of alpha-melanocyte stimulating hormone (MSH), its potent analog, [Nle4,D-Phe7]-alpha-MSH (NDP-MSH), and the 1-7, 4-10, and 7-13 amino acid fragments of NDP-MSH were examined by administering these substances to the anterior hypothalamic-preoptic area (AHPOA) of rats. In Experiments 1a (MSH) and 1b (NDP-MSH), animals received 0, 0.5, 1, 5, 10, or 50 pM peptide in 0.5 microliters sterile saline (n = 6/group), with core rectal temperatures being recorded 0, 10, 20, 30, 40, 50, and 60 min after injection. In Experiment 2, subjects received 5 pM NDP-MSH1-7, NDP-MSH4-10, NDP-MSH7-13, NDP-MSH, or the vehicle, 0.5 microliters sterile saline, in a counterbalanced fashion (n = 13). Results indicated a significant effect of dose for both MSH, F(5, 30) = 2.81, p = 0.03, and NDP-MSH, F(5, 30) = 4.98, p = 0.002. A Newman-Keul's analysis indicated that mean temperatures for all groups receiving MSH or NDP-MSH were significantly greater than for the group that received saline (p < 0.05). An analysis of the data from Experiment 2 indicated a significant effect of substance, F(4, 48) = 17.31, p < 0.001. Mean temperature of animals receiving NDP-MSH, the 4-10, or the 7-13 fragments, did not differ from each other but were significantly greater than mean temperatures for animals receiving sterile saline or the 1-7 fragment of NDP-MSH (p < 0.05).

Animals↗

Neuropeptide Y inhibits spontaneous alpha-melanocyte-stimulating hormone (alpha-MSH) release via a Y(5) receptor and suppresses thyrotropin-releasing hormone-induced alpha-MSH secretion via a Y(1) receptor in frog melanotrope cells.

In amphibians, the secretion of alpha-MSH by melanotrope cells is stimulated by TRH and inhibited by NPY. We have previously shown that NPY abrogates the stimulatory effect of TRH on alpha-MSH secretion. The aim of the present study was to characterize the receptor subtypes mediating the action of NPY and to investigate the intracellular mechanisms involved in the inhibitory effect of NPY on basal and TRH-induced alpha-MSH secretion. Y(1) and Y(5) receptor mRNAs were detected by RT-PCR and visualized by in situ hybridization histochemistry in the intermediate lobe of the pituitary. Various NPY analogs inhibited in a dose-dependent manner the spontaneous secretion of alpha-MSH from perifused frog neurointermediate lobes with the following order of potency porcine peptide YY (pPYY) > frog NPY (fNPY) > porcine NPY (pNPY)-2-36) > pNPY-(13-36) > [D-Trp(32)]pNPY > [Leu(31),Pro(34)]pNPY. The stimulatory effect of TRH (10(-8)6 M) on alpha-MSH release was inhibited by fNPY, pPYY, and [Leu(31),Pro(34)]pNPY, but not by pNPY-(13-36) and [D-Trp(32)]pNPY. These data indicate that the inhibitory effect of fNPY on spontaneous alpha-MSH release is preferentially mediated through Y(5) receptors, whereas the suppression of TRH-induced alpha-MSH secretion by fNPY probably involves Y(1) receptors. Pretreatment of neurointermediate lobes with pertussis toxin (PTX; 1 microg/ml; 12 h) did not abolish the inhibitory effect of fNPY on cAMP formation and spontaneous alpha-MSH release, but restored the stimulatory effect of TRH on alpha-MSH secretion, indicating that the adenylyl cyclase pathway is not involved in the action of fNPY on TRH-evoked alpha-MSH secretion. In the majority of melanotrope cells, TRH induces a sustained and biphasic increase in cytosolic Ca(2+) concentration. Preincubation of cultured cells with fNPY (10(-7) M) or omega-conotoxin GVIA (10(-7) M) suppressed the plateau phase of the Ca(2+) response induced by TRH. However, although fNPY abrogated TRH-evoked alpha-MSH secretion, omega-conotoxin did not, showing dissociation between the cytosolic Ca(2+) concentration increase and the secretory response. Collectively, these data indicate that in frog melanotrope cells NPY inhibits spontaneous alpha-MSH release and cAMP formation through activation of a Y(5) receptor coupled to PTX- insensitive G protein, whereas NPY suppresses the stimulatory effect of TRH on alpha-MSH secretion through a Y(1) receptor coupled to a PTX-sensitive G protein-coupled receptor.

Adenylate Cyclase Toxin↗

The melanocyte-stimulating hormone (MSH) receptor in M2R mouse melanoma tumours: solubilization and properties of the receptor-MSH complex and its covalently crosslinked conjugate.

Several properties of the MSH receptor in solid melanotic and amelanotic mouse M2R tumour isografts were studied in C57BL mice. Using cell membrane fractions prepared from such tumours and the superpotent [Nle4,D-Phe7]alpha MSH analogue, the affinity and receptor contents of the two tumour variants were found to be similar. When occupied by MSH, the receptor-MSH complex (R.MSH) was readily soluble in cholate. In the solubilized form, R.MSH was extremely stable and dissociated to an extent of only 30% within 12 days at 4 degrees C. While this high stability can be maintained in the pH range of 7.0-8.5, the solubilized R.MSH complex becomes increasingly unstable below pH 7.0 and totally dissociates at a pH < 6.0. In the membrane-bound form, the R.MSH complex shows a parallel pH stability profile which is shifted down by approximately two pH units. In addition to low pH, the R.MSH complex becomes unstable and totally dissociates in the presence of 10 mM EGTA, suggesting that the calcium-sensitive function of the receptor is still associated with the receptor in the detergent-soluble state. The R.MSH complexes in the soluble and membrane-bound forms are also totally resistant to proteolytic digestion by V8 protease, but were slowly digested by trypsin. Treatment of R.MSH with 1-ethyl-3-(3-dimethylamino-propyl)carbodiimide hydrochloride or bis (sulphosuccinimidyl) suberate led to covalent crosslinking of MSH to the receptor molecule. The electrophoretic mobility on SDS-PAGE of the 43/46 kD doublet of the receptor-MSH conjugate (R*MSH) was identical to the photoaffinity labelled MSH receptor product described earlier in cultured M2R cells. However, the efficiency of production of the crosslinked product was approximately 30%, much higher than that achieved previously by photoaffinity labelling. Using rabbit polyclonal anti-alpha MSH antibodies, the R*MSH conjugate was identifiable on Western immunoblots. These results provide a basis for further development of procedures for purification of the MSH receptor molecule and studying its protein structure.

Animals↗

Pulsatile secretion of alpha-MSH and the differential effects of dexamethasone and haloperidol on the secretion of alpha-MSH and ACTH in dogs.

This study was performed to determine whether, in the dog, there is at any time pulsatile release of alpha-MSH and whether secretion of ACTH from the pars intermedia (PI) contributes to the circulating concentrations of ACTH. The 24-h secretory profiles of alpha-MSH, ACTH, and cortisol were determined in eight dogs. Plasma samples were obtained at 10-min intervals via an indwelling jugular catheter during two 12-h periods. Pulsatile secretion of alpha-MSH was found in all dogs, with wide variations in peak height. Plasma alpha-MSH levels were usually low (mean 15 pmol/l), but brief, distinct periods of increased plasma alpha-MSH concentrations as high as 489 pmol/l were found. Analysis of pulse frequency revealed a mean of 4.75 significant alpha-MSH peaks/24 h. The highest alpha-MSH peaks were associated with definite changes in the plasma concentrations of ACTH. In separate studies, the influence of dexamethasone on the 6-h secretory profiles and on the haloperidol-stimulated secretion of alpha-MSH, ACTH, and cortisol was investigated. In these two studies, plasma ACTH was measured by a highly sensitive immunoradiometric assay. Dexamethasone pretreatment significantly suppressed the plasma concentrations of ACTH, cortisol, and alpha-MSH to 10.3%, 3.9%, and 74.6% respectively. Dexamethasone pretreatment also significantly reduced the haloperidol-stimulated secretion of ACTH and cortisol, but had no influence on the haloperidol-stimulated secretion of alpha-MSH. After the administration of haloperidol to the dexamethasone-pretreated dogs, there were small increases in the plasma concentrations of ACTH and cortisol, the latter being significant. These data demonstrate that alpha-MSH is secreted spontaneously in a pulsatile manner in the dog and suggest that the canine PI contributes to circulating ACTH concentrations.

Adrenocorticotropic Hormone↗

Calcium sites in MSH stimulation of xenopus melanophores: studies with photoreactive alpha-MSH.

Photo-affinity labelling of MSH receptors on tail-fin melanophores of Xenopus tadpoles with p-azidophenylalanine 13-alpha-MSH (Pap13)-alpha-MSH) or p-azidophenylacetyl-serine1-alpha-MSH ([Apac-Ser1]-alpha-MSH) resulted in a long-lasting stimulation of the melanophores which cannot be reversed despite continuous washing. The generation of this irreversible response is inhibited when photo-affinity labelling is performed in a Ca2+-free medium or in the presence of Ca2+ antagonists. The irreversible stimulation produced in normal medium is completely reversed upon removal of Ca2+ , but is not affected by Ca2+ antagonists or melatonin. Re-addition of Ca2+ after temporary removal restores to irreversible stimulation, even in the presence of Ca2+ antagonists or melatonin. This proves that covalent alpha-MSH-receptor complexes remain fully functional despite temporary deprivation of ca2+. Racemized alpha-MSH, which binds 'tightly' to the receptor and produces a long-lasting effect, is removed from the receptor in Ca2+-free medium, but not by Ca2+ antagonists or melatonin. These results confirm earlier results showing that at least 2 Ca2+ sites are involved in alpha-MSH action, one associated with MSH-receptor binding and the other with the subsequent generation of the effect. The dual role of Ca2+ is not the result of EGTA present; it is specific (Mg2+ has no effect) and is identical for the two different photoreactive alpha-MSH derivatives.

Affinity Labels↗

Regulation of cellular alpha-MSH and beta-endorphin during stimulated secretion from intermediate pituitary cells: involvement of aspartyl and cysteine proteases in the control of cellular levels of alpha-MSH and beta-endorphin.

The regulation of cellular levels of alpha-melanocyte stimulating factor (alpha-MSH) and beta-endorphin in response to stimulated secretion from intermediate pituitary cells in primary culture was investigated in this study. Regulation of the cell content of alpha-MSH and beta-endorphin occurred in two phases consisting of (a) initial depletion of cellular levels of these peptide hormones during short-term secretion (3 h) induced by isoproterenol, forskolin, or phorbol myristate acetate (PMA) which was followed by (b) long-term (24 h) increases in cellular levels of alpha-MSH and beta-endorphin in response to stimulated secretion induced by isoproterenol and PMA. In short-term experiments (3 h), cellular levels of alpha-MSH and beta-endorphin were reduced by 30-50% during stimulated secretion of these peptide hormones by isoproterenol (agonist for the beta-adrenergic receptor), forskolin that activates protein kinase A (PKA), and PMA that activates protein kinase C (PKC). Moreover, dopamine inhibited isoproterenol-induced depletion of cellular alpha-MSH and beta-endorphin. During long-term incubation of cells (24 h) with isoproterenol, cellular alpha-MSH and beta-endorphin were increased to twice that of controls (unstimulated cells). Treatment with PMA for 24 h also increased cellular levels of alpha-MSH and beta-endorphin. Moreover, cellular levels of alpha-MSH and beta-endorphin were decreased during long-term treatment of cells with an aspartyl protease inhibitor, pepstatin A, and with the cysteine protease inhibitor E64c. These results implicate aspartyl and cysteine proteases in the cellular production of alpha-MSH and beta-endorphin that requires proteolytic processing of their common precursor proopiomelanocortin (POMC). These findings demonstrate the parallel regulation of cellular levels of alpha-MSH and beta-endorphin during their cosecretion, which may involve aspartyl and cysteine proteases in the metabolism of these peptide hormones.

Animals↗

alpha-MSH and desacetyl-alpha-MSH signaling through melanocortin receptors.

The functional significance of N-terminal acetylation of ACTH[1-13]NH(2) is unknown. N-terminal acetylation of ACTH[1-13]NH(2) (known as desacetyl-alpha-MSH) to produce alpha-MSH enhances some activities of ACTH[1-13]NH(2) and virtually eliminates others. To determine whether alpha-MSH and desacetyl-alpha-MSH diverge in their coupling to melanocortin receptors in vitro, we measured the sensitivity of MC1, MC3, MC4, and MC5 receptors stably expressed in HEK293 cells to these peptides, functionally coupling them to adenylyl cyclase and a calcium signaling pathway. alpha-MSH and desacetyl-alpha-MSH similarly coupled these overexpressed receptors to both signaling pathways. In contrast, we discovered that alpha-MSH significantly increased primary rat osteoblast proliferation while for desacetyl-alpha-MSH there was only a trend to do the same. Osteoblast cells expressing very low levels of endogenous melanocortin receptors, in contrast with transfected HEK293 cells overexpressing a single melanocortin receptor, may provide an in vitro model for differentiating between alpha-MSH and desacetyl-alpha-MSH signaling.

Adenylyl Cyclases↗

Plasma and cerebrospinal fluid alpha-MSH levels in the rat after hypophysectomy and stimulation of pituitary alpha-MSH secretion.

Immunoreactive alpha-MSH was measured in cerebrospinal fluid (CSF) and plasma of rats. While treatment with haloperidol increased alpha-MSH levels in the plasma concentration of alpha-MSH in the CSF showed little change. Hypophysectomy also had little effect on the concentration of alpha-MSH in the CSF despite the fall in plasma alpha-MSH levels. This lack of correlation between alpha-MSH levels in the CSF and plasma suggests that the systemic circulation does not deliver alpha-MSH to the CSF. The apparently normal levels of alpha-MSH in the hypothalamus after hypophysectomy suggests that this tissue is able to synthesize alpha-MSH and it is possible that the hypothalamus is a source of the alpha-MSH in the CSF.

Animals↗

Serum MSH levels and the hypothalamic enzymes involved in the formation of MSH-RF during the estrous cycle in the rat.

Mitochondrial preparations from stalk median eminence of female rats were shown to contain an enzymatic system which yielded MSH-RF upon incubation with oxytocin. These enzymes were found present in the hypothalamus of rats at proestrus and estrus and absent in the other stages of the cycle. The MSH contained in plasma was also determined during the estrous cycle in the rat. Serum MSH was released on the morning of proestrus, reached a maximum value at 10.00 a.m., and remained high until 4.00 p.m. Thereafter serum MSH decreased to undetectable levels in the other stages of the cycle. MSH was released into the serum about tectable levels in the other stages of the cycle. MSH was released into the serum about 6 h before the proestrous peak of the gonadotrophin. A correlation was demonstrated between the hypothalamic enzymes responsible for the formation of both MSH-F-IF and MSH-RF and the MSH released into the serum.

Animals↗

Photoaffinity labelling of MSH receptors on Anolis melanophores: irradiation technique and MSH photolabels for irreversible stimulation.

Excised dorsal skin of Anolis carolinensis was exposed to high intensity UV-irradiation in the presence of different photoreactive alpha-MSH derivatives. The resulting covalent binding of the hormone to its receptor induced irreversible pigment dispersion. The duration of the longlasting response depended on the type and length of irradiation; it was maximal after two 5 min irradiation phases with a light intensity of approximately 180 mW/cm2 and a spectrum from 310 to 550 nm, fresh hormone being added after the first phase. [N alpha-(4-Azidophenylacetyl-serine1]-alpha-MSH (I), [2'-(2-nitro-4-azidophenylsulphenyl)-tryptophan9]-alpha-MSH (II) and [p-azidophenylalanine13]-alpha-MSH (III) all inserted into the receptor to about the same extent, as judged from the persistence of the longlasting signal. In contrast, [D-alanine1, p-azidophenylalanine2, norvaline4]-alpha-MSH (IV) and [N alpha-(4-azidophenylacetyl)-serine1, leucine9]-alpha-MSH (V) gave much less insertion and [leucine9, p-azidophenylalanine13]-alpha-MSH (VI) hardly any insertion when applied in the same relative excess (5-fold the concentration inducing a maximal response). Covalent attachment of the cleavable photolabel [N alpha-(4-azidophenyl)-1, 3'-dithio-propionyl-serine1]-alpha-MSH (VII) and subsequent washing of the skin in buffer containing 1% beta-mercaptoethanol released the peptide from the receptor. Insertion of the C-terminal photolabel [p-azidophenylalanine13]-alpha-MSH was reduced by the weak antagonist H-Phe-Ala-Trp-Gly-Gly-Pro-Val-NH2. These experiments prove that hormone receptors can be covalently labelled in tissue with very limited light transparency.

Affinity Labels↗

Acute phase response to endotoxin: rise in plasma alpha-MSH and effects of alpha-MSH injection.

Endotoxins, cell wall components of bacteria, cause a number of biological effects, presumably via induction of potent cytokines. Previous research suggests that the neuropeptide alpha-melanocyte-stimulating hormone (alpha-MSH) and its COOH-terminal tripeptide reduce the effects of cytokines. These molecules evoke antipyretic and anti-inflammatory effects in vivo. Localization of alpha-MSH within lymphocytes and recent observations that alpha-MSH receptors are widespread and that circulating alpha-MSH increases after systemic injection of endogenous pyrogen, a cytokine-containing extract, suggest that the peptide modulates host defense reactions. One aim of the present experiments was to learn whether a rise in circulating alpha-MSH occurs in synchrony with aspects of the acute phase response (APR) in conscious rabbits given endotoxin. A second aim was to learn whether administration of a single large dose of alpha-MSH inhibits all aspects of the APR induced by a low dose of endotoxin. The results indicate that the concentration of circulating alpha-MSH in rabbits does increase along with other changes in the APR (e.g., increase in corticosterone), which suggests that the peptide is widely available to modulate cytokine effects after endotoxin. Contrary to expectations based on previous results, a large dose of the peptide given intravenously inhibited only fever and not other aspects of the APR. The results suggest that the rise in circulating alpha-MSH is an aspect of the APR and that an acute increase in the circulating peptide caused by intravenous injection does not inhibit all other aspects of the host response to endotoxin.

Acute-Phase Reaction↗

Stimulation of adenosine 3',5'-monophosphate production in rat Sertoli cells by alpha-melanotropin-stimulating hormone (alpha MSH) and des-acetyl alpha MSH.

Proopiomelanocortin and its derivative peptides alpha MSH and beta-endorphin are produced by Leydig cells. beta-Endorphin or another testicular opiate is believed to suppress Sertoli cell hypertrophy. The goal of this study was to determine the effects of another proopiomelanocortin-derived peptide on Sertoli cells. The activities of both alpha MSH and des-acetyl alpha MSH have been compared, since this latter peptide has been identified in testicular extracts. Both alpha MSH and des-acetyl alpha MSH stimulated cAMP accumulation in the media of primary Sertoli cell cultures when incubated in the presence of a phosphodiesterase inhibitor, FSH or forskolin. Both peptides shifted the FSH dose-response curve to the left, making the cells more sensitive to this gonadotropin. The apparent potencies of alpha MSH and its des-acetyl derivative, as measured in Sertoli cells, were similar. We conclude that the MSHs are one of a group of modulators regulating Sertoli cells via the cAMP system, and Sertoli cells are equally responsive to alpha MSH and des-acetyl alpha MSH, unlike central nervous system and melanocytes which show differential responses to these peptides.

1-Methyl-3-isobutylxanthine↗