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Biomedical subjects

H Papkoff

Publications and source records attributed to H Papkoff.

At least 55 records · Page 3Linked to original sources

Presence of a neurophysin-like precursor in the green turtle (Chelonia mydas).

A glycoprotein of neurohypophysial origin was found to have cofractionated with FSH prepared from pituitary glands of the green turtle, Chelonia mydas. Antiserum raised against this preparation contained high antibody titres and affinity for the neurohypophysial component and allowed development of a specific radioimmunoassay to monitor its purification and distribution in the brain. Immunocytochemistry revealed that the glycoprotein was concentrated in the pars nervosa and associated nerve tracts passing through the median eminence to the supraoptic and paraventricular nuclei; similar distributions were observed in turtles and rats. The antiserum to the turtle material bound radiolabelled rat vasopressin (VP)-neurophysin and precipitated precursors of this neurophysin, but it did not cross-react with rat oxytocin-neurophysin. An amino-terminal alanine was also consistent with the structure of rat VP-neurophysin, but the turtle molecule was larger than the corresponding rat molecule. Limited tryptic digests of the turtle glycoprotein contained two components, one of which bound to lysine VP. Both components contained carbohydrate, but only the one which bound to VP cross-reacted in a radioimmunoassay for rat VP-neurophysin. The apparent surge in plasma immuno-FSH at the time of oviposition previously described in the turtle probably represented release of a neurophysin-like 'carrier' molecule associated with secretion of the neurohypophysial hormone (e.g. arginine vasotocin; AVT) responsible for oviduct contractility. These data suggest that the neurohypophysial glycoprotein represents a partially processed AVT precursor and provide the first biochemical evidence of a mammalian-like biosynthetic pathway for neurohypophysial hormones in a non-mammalian species.

Amino Acids↗

Development and characterization of a homologous radioimmunoassay for equine prolactin.

A specific and sensitive homologous radioimmunoassay has been developed for equine prolactin, suitable for measuring prolactin concentrations in serum of horses. The sensitivity of the assay ranged from 0.4 to 0.6 ng/ml and the intra- and inter-assay coefficients of variation averaged 6.9 and 15.4%, respectively, for five doses of hormone. Cross-reactivity with other mammalian and nonmammalian prolactins and growth hormones was less than 20 and 0.3%, respectively. Cross-reactivity with equine growth hormone was less than 0.07%. Equine serum and pituitary extracts showed parallel dilution-response curves with equine prolactin. The percentage recovery of exogenous equine prolactin in serum was 89%. Preliminary analysis of several physiological samples (stallions, pregnant, and nonpregnant mares) yielded values from 0.6 to 12.0 ng/ml.

Animals↗

Effect of tyrosine modification on the biological and immunological properties of equine chorionic gonadotropin.

The tyrosine residues of equine chorionic gonadotropin have been nitrated with tetranitromethane and the resulting effects on the biological and immunological activities of the hormone studied. All of the tyrosine residues in equine chorionic gonadotropin were found to react with tetranitromethane when a 100-fold molar excess of reagent was used or with an 8.6 molar excess in the presence of 5 M guanidine hydrochloride. Complete nitration abolished the biological activities and decreased the immunological activity of the hormone. The nitration of one tyrosine residue resulted in the loss of 70% of the LH activity of equine chorionic gonadotropin; the FSH activity declined in a similar fashion. Maximal nitration resulted in the loss of about 50% of the immunological activity of the native hormone. Nitrated derivatives of equine chorionic gonadotropin were unable to compete with the native hormone in the rat Leydig cell assay for LH. The results indicate that the tyrosine residues of equine chorionic gonadotropin play an important role in the manifestation of both the FSH and LH activity of the hormone.

Animals↗

Effect of diverse mammalian gonadotropins on estrogen and progesterone production by cultured rat granulosa cells.

The ability of gonadotropins from six mammalian species to stimulate estrogen and progesterone production was investigated in granulosa cells of hypophysectomized estrogen-primed immature female rats. Granulosa cells were cultured for 2 days in the presence of delta 4-androstenedione (10(-7) M) with or without various gonadotropin preparations. Treatment with follitropin (follicle-stimulating hormone, FSH) from human, rat, ovine, porcine, equine, and bovine origins resulted in dose-dependent increases in steroidogenesis from negligible amounts to maximal levels of approximately 4-8 and 12-30 ng/10(5) cells for estrogen and progesterone, respectively. The ED50 values of the FSH preparations for stimulation of steroidogenesis were: human: 1-4 ng/ml; ovine: 2.5-30 ng/ml; rat: 1.6-4.0 ng/ml; porcine: 7.5-20 ng/ml; equine 2.5-6 ng/ml; and bovine greater than 100 ng/ml. Lutropin (luteinizing hormone, LH) from rat, ovine, bovine, and porcine origins, human chorionic gonadotropin (hCG), the alpha-subunit of human FSH and the beta-subunit of human LH were ineffective in stimulating steroidogenesis, indicating the specificity of the assay system for FSH. In a high concentration (600 ng/ml), the beta-subunit of human FSH-stimulated steroidogenesis to a small extent. Furthermore, pregnant mare serum gonadotropin and equine LH also caused a dose-dependent stimulation of estrogen and progesterone production, the half-maximal response values (ED50) being 1.8-4 and 7.5-10 ng/ml, respectively. This is consistent with previous in vivo and in vitro findings, showing the potent FSH activities of these hormones. Thus, the cultured rat granulosa cell system provides a sensitive assay for measuring FSH activities of gonadotropins from various mammalian species.

Animals↗

Subunits of an avian (ostrich) follicle-stimulating hormone and their hybridization with subunits of mammalian gonadotropins.

Follicle-stimulating hormone (FSH) from the ostrich, Struthio camelus, was dissociated by methods previously used to prepare subunits from mammalian gonadotropins. Two chemically dissimilar subunits were obtained from the ostrich FSH and these resembled the alpha- and beta-subunits of mammalian FSH in amino acid composition. The subunits were relatively inactive in radioimmunoassay, radioreceptorassay, and bioassay when tested alone, but significant activity was regenerated upon their recombination. Incubations of mixtures of one of the ostrich subunits with the opposing subunit of ovine FSH also resulted in a significant regeneration of binding and biological activity in FSH assays. These hybrid recombinants demonstrated that the species specificity of the FSH molecule is conferred entirely by the source of the beta-subunit; in fact, hybrids formed between ovine LH-alpha and either ovine or ostrich FSH-beta were more potent in FSH assays than were those containing even two homologous FSH subunits. In contrast, there was little regeneration of LH bioactivity when FSH subunits (from ostrich or sheep) were combined with the subunits of ovine LH, although some LH binding activity was obtained when the mixture contained either one of the LH subunits; i.e., even LH-alpha + FSH-beta showed significant enhancement of binding activity for LH receptors. Thus, the subunits of avian FSH show biochemical and functional homologies to those of mammalian FSH, but there is only limited interchangeability with ovine LH subunits.

Amino Acids↗

Biological and binding activities of pituitary hormones from the ostrich, Struthio camelus.

Biological and binding activities of adenohypophysial hormones purified from the ostrich (ost), Struthio camelus, were compared to those of the corresponding hormones derived from mammalian and other avian species. The potency of ostrich prolactin was comparable to those of other avian preparations and slightly less active than the ovine hormone when tested in the pigeon crop-sac assay, but ostrich growth hormone (GH) was more potent than several other avian preparations and was comparable to mammalian GH in the rat tibia bioassays. Marked discrepancies were evident in the activities of both ostrich gonadotropins (ostGn) when they were tested in a variety of in vivo and in vitro bioassays and radioreceptor assays (RRAs). Both the ostrich follicle-stimulating hormone (ostFSH) and luteinizing hormone (ostLH) were among the most potent tested thus far in in vivo bioassays for total gonadotropin in a lizard and a cockerel; a high sialic acid content may account for these high potencies. OstFSH was also the most potent nonmammalian Gn tested in two FSH specific mammalian bioassays, an in vivo (ovarian augmentation) and an in vitro (cAMP production) rat bioassay; in fact, ostFSH behaved more like a mammalian than an avian hormone in these assays. However, the binding activity of ostFSH was not unlike that of other avian FSH preparations when tested in either mammalian or nonmammalian FSH-RRA systems. OstLH was more potent than other avian preparations in an in vitro mammalian bioassay, but not in avian or amphibian LH bioassays; species specificity was pronounced among these LH assays. Binding activities of ostLH in mammalian and avian LH-RRAs were generally consistent with potencies in the two species of bioassays. However, a marked discrepancy was apparent in the behavior of ostLH in FSH-RRAs. Although ostLH had very low FSH activity when tested by radioimmunoassay, by bioassay, or by FSH-RRA with avian gonads, it was equipotent to ostFSH in competing for FSH-binding sites on the mammalian gonad; in this respect it was more like turkey than chicken LH. The ability of ostLH to antagonize the biological activities of ostFSH in the stimulation of cAMP by rat seminiferous tubules confirms that ostLH binds to the same functional receptors as FSH on the rat testis, even though it does not induce the characteristic physiological response associated with FSH.

Animals↗

Effects of gonadectomy on polymorphism in stored and circulating gonadotropins in the bullfrog, Rana catesbeiana. II. Gel filtration chromatography.

Marked polymorphism was revealed in both stored and circulating forms of immunoreactive follicle-stimulating hormone (FSH) and luteinizing hormone (LH) in the bullfrog, Rana catesbeiana, by exclusion chromatography on columns of Sephracyrl-S200. FSH behaved as a more homogeneous and larger molecule than LH from the same pituitary or plasma, but the properties of both hormones in the plasma were markedly affected by gonadectomy. Chromatographic profiles of FSH stored in the pituitaries were similar in intact and gonadectomized frogs, but pituitary LH in the latter was comprised of a larger proportion of early eluting activity. Previously purified preparations of bullfrog FSH and LH were more homogeneous than these extracts. Differences between pituitary hormones in intact and gonadectomized frogs were small compared with those between circulating hormones. Plasma FSH and lH from gonadectomized frogs behaved as more homogeneous and larger molecules than those from intact frogs in which plasma gonadotropins were elevated normally or by injections with gonadotropin releasing hormone (GnRH). Some differences in circulating hormones were also observed between a normal male and female and both differed from gonadectomized an GnRH-treated intact frogs. Chromatographs of plasma gonadotropins in GnRH-treated animals generally resembled those of the hormones stored in the pituitary, whereas plasma FSH and LH in gonadectomized frogs appeared more homogeneous and larger than the pituitary-stored forms. Those pronounced differences in chromatographic properties of gonadotropins in intact and gonadectomized frogs correlate with previously observed effects of gonadectomy on clearance profiles of circulating FSH and LH.

Animals↗

Internalization of ovine luteinizing hormone/human chorionic gonadotropin recombinants: differential effects of the alpha- and beta-subunits.

The rate of internalization and degradation of radioiodinated hCG and ovine LH (oLH) as well as homologous and heterologous recombinants of their subunits was studied in suspensions of ovine luteal cells. Hormone bound to the plasma membrane was quantified by treating the cells with acidic buffer (pH 3.0) and quantification of the radioactivity that was removed from receptor. The radioactivity remaining in the cell pellet was considered to be intracellular. The extent of degradation of the radioactive hormones was determined by subjecting the radioactivity released into the medium during incubation to precipitation with 20% trichloroacetic acid. The non-precipitable radioactivity was considered to have been degraded. Radioactivity was lost from the cell membrane with a t1/2 of 16.8 +/- 2.5 h for radioiodinated hCG, 22.8 +/- 3.8 h for the alpha-subunit of hCG recombined with radioiodinated beta-subunit of hCG, 8.9 +/- 4.5 h for the alpha-subunit of oLH recombined with the radioiodinated beta-subunit of hCG, 0.5 +/- 0.1 h for the alpha-subunit of hCG recombined with the radioiodinated beta-subunit of oLH, 0.5 +/- 0.1 h for radioiodinated oLH, and 0.7 +/- 0.2 h for the alpha-subunit of oLH recombined with the radioiodinated beta-subunit of oLH. In general, the levels of radioactivity that were intracellular and the rate of degradation of the hormone were inversely related to the quantities of hormone that remained on the plasma membrane. The preparations that contained the beta-subunit of hCG were all internalized at a slower rate (t1/2 = 9-22 h) and consequently were degraded more slowly than any of the preparations that contained the beta-subunit of oLH (t1/2 = 0.5-0.7 h). When the radioiodine in oLH was present in the beta-subunit, intracellular levels of radioactivity were higher and degradation occurred more rapidly than when the radioiodine was in the alpha-subunit. Although the differences were less dramatic, hCG with radioiodine in the beta-subunit also reached higher levels intracellularly, but was degraded to a lesser extent at 16 and 24 h than was hCG with radioiodine in the alpha-subunit. These data demonstrated a dramatic difference (approximately 30-fold) in the rate of loss of oLH vs. that of hCG from the membrane of ovine luteal cells. Further, it appears that the beta-subunit of each of the two hormones is the major factor in determining the rate of internalization of the intact hormone. The differences is how the two hormones are processed at the receptor level may help explain the known differences in their steroidogenic potencies.

Animals↗

Ovarian and endocrine responses in the cat after coitus.

LH release leading to ovulation was induced in 17 of 29 oestrous periods. The time of ovulation after coitus was determined by histological examination or by observation at laparotomy of ovaries in situ. Histological methods revealed that ovulation was complete in most follicles (9 of 13) at 32 h post coitum and in all follicles that were involved in the ovulatory process by 36 h. When laparotomy was used, no signs of preovulatory change were noted at the first observation time, 22 h post coitum, but in 4 cycles in which the entire process of ovulation was observed, the ovulatory process occurred between 23 and 28 h (3 follicles), 23 and 27 h (2 follicles), 25 and 28 h (3 follicles), and 25 and 29 h (3 follicles) post coitum. The first ovulatory process noted was complete at 25 h post coitum. In cats, LH release continued over a 16-h period before returning to baseline (long surge), values being 616 +/- 180 ng/ml at 1/2 h and 941 +/- 154 ng/ml at 2 h post coitum. In 6 cats the LH release pattern was limited to a 4-h period (short surge), values being 537 +/- 218 ng/ml at 1/2 h and 353 +/- 245 ng/ml plasma at 2 h and basal (49 +/- 18 ng/ml) by 4 h post coitum. Decreased secretion of oestrogen by follicles in animals undergoing ovulation was first observed at 16 h post coitum. It is concluded that coitus induces LH release within minutes in the cat and that ovulation begins about 24 h later and finishes by about 32 h post coitum. Only one coital input can cause LH release for as long as 16-20 h although shorter periods of LH release (4 h or less) can result in ovulation.

Animals↗

Testosterone administration to mares during estrus: duration of estrus and diestrus and concentrations of LH and FSH in plasma.

To study the possible role of ovarian androgens in regulation of follicle stimulating hormone (FSH) secretion in the cycling mare, five mature, intact mares were treated with testosterone (20 micrograms/kg of body weight) daily during estrus; five control mares received safflower oil on the same schedule. Mares were teased for estrus and samples of jugular blood were drawn daily through one full estrous cycle. Concentrations of FSH in plasma were measured by a newly developed radioimmunoassay based on anti-ovine FSH serum and radioiodinated equine FSH. Testosterone treatment during estrus had no effect on duration of estrus, diestrus or the total cycle. Concentrations of FSH in plasma during estrus were unaffected by testosterone treatment. However, FSH concentrations in testosterone-treated mares were elevated (P less than .05) compared with controls during mid-diestrus (d 6 through 11). The magnitude and timing of the LH peaks were unaffected by treatment, as was the day on which the first elevated progesterone concentration occurred. These data are consistent with a model of FSH secretion in which ovarian androgens cause an accumulation of FSH in the pituitary during estrus in preparation for the surges that occur in FSH secretion during diestrus.

Animals↗

Equine luteinizing hormone possesses follicle-stimulating hormone activity in hypophysectomized female rats.

The ability of equine luteinizing hormone (eLH) to promote follicular growth and maturation in hypophysectomized rats has been assessed. A single injection of equine LH has been shown to promote the growth of a large number of antral and preovulatory follicles. In addition, equine LH markedly increased serum estrogen levels and uterine weight. Furthermore, equine LH, like equine chorionic gonadotropin (eCG; PMSG) was able to significantly enhance the incorporation of [3H]thymidine into ovarian DNA, an activity shown to be specific to hormones having follicle-stimulating hormone (FSH) activity. Equine LH treated with an FSH antibody immunoaffinity column to remove any possible contamination still exhibited the above activity, demonstrating that the FSH activity is intrinsic to the eLH molecule. Equine LH has also been shown to be capable of inducing LH receptors in granulosa cells of ovaries of hypophysectomized rats, an activity specific to FSH-like hormones. From the doses required of eLH and the degree of response observed, it is concluded, however, that eLH in the hypophysectomized rat is less active than eCG as an FSH.

Animals↗

Variations in the properties of equine chorionic gonadotropin.

The objectives of this paper are to review the chemical and biological properties of equine chorionic gonadotropin (eCG, PMSG) isolated from the serum. Comparisons are made with eCG isolated from endometrial cups, trophoblast cell culture medium, and low titer serum. The results show that eCG can vary, depending on the source, in both chemical and biological (LH and FSH activity) properties.

Journal Article↗

Isolation and characterization of gonadotropin isohormones from the pituitary gland of pike eel (Muraenesox cinereus).

Pike eel gonadotropins were isolated from pituitary glands by 40% alcohol-6% ammonium acetate, pH 5.1 extraction and were purified by DEAE-cellulose chromatography and electrophoresis into four electrophoretically homogeneous forms. These four isohormones were biologically identified as gonadotropins by the stimulation of 32 P-uptake in 1 day-old chick testes, by the induction of ovulation in catfish, and by the in vitro production of testosterone from isolated rat Leydig cells and of androgen from carp testes. The amino acid composition of the isohormones were similar to other known piscine gonadotropins (carp and salmon) and were composed of two non-identical subunits with Tyr and Ser as N-terminal amino acid residues. The molecular weights of two subunits were 15000 and 10500, respectively, as estimated by SDS-gel disc electrophoresis.

Amino Acids↗

Characteristics of growth hormone isolated from sturgeon (Acipenser güldenstädti) pituitaries.

GH was isolated and characterized from pituitaries of a primitive bony fish, sturgeon (Acipenser güldenstädti). Sturgeon GH was very active in a mammalian GH assay, the rat tibia test. Relative to ovine GH (NIH-GH-S9), sturgeon GH gave a parallel dose-response slope and had a potency of 0.4. Sturgeon GH also showed strong cross-reaction in a snapping turtle GH RIA, comparable to that shown by tetrapod GHs and much greater than that of modern bony fish (teleost) GH. These results, predicted by earlier experiments using pituitary extracts of related species, support the hypothesis that GHs from primitive fish are more closely related to tetrapod GHs than are teleost GHs. Chemical characterization of sturgeon GH, including amino acid terminal residue analyses, amino acid composition, molecular weight determination, and electrophoresis on polyacrylamide gels, indicated that this GH is similar to GHs previously isolated from a teleost and representative species of every tetrapod class. These data provide strong additional evidence that the molecular structure of GH has been highly conserved during evolution. (Endocrinology 108: 377, 1981)

Amino Acids↗

Effect of the alpha subunit of equine LH on the FSH induced cAMP production in rat seminiferous tubule cells.

Previous observations from our laboratory have shown that equine LH can suppress the FSH induced cyclic AMP production in rat seminiferous tubule cells in vitro. The present investigation was carried out to determine the effect of various subunits in this system. The ratios (w/w) of subunits to equine FSH tested was 1:3, 3:1 and 30:1 with a standard dose of 0.3 microgram of the FSH. It was noted that equine LH-beta was not effective up to a 10 microgram concentration in inhibiting the cyclic AMP production induced by equine FSH. Under these conditions, equine LH-alpha suppressed the FSH activity in a dose dependent manner. However, alpha subunits derived from several other species of LH were without any effect on FSH action. Histidine modified derivative of equine LH and its alpha subunit, both of which lack biological activity in the rat Leydig cell assay for LH, were found to be inactive as inhibitors of the equine FSH response. Thus, these results show that the suppressive effect of equine LH on FSH action in the rat seminiferous tubule is a function of the equine LH alpha subunit.

Animals↗