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Biomedical subjects

H Papkoff

Publications and source records attributed to H Papkoff.

At least 73 records · Page 4Linked to original sources

Studies on the disappearance of equine chorionic gonadotropin from the circulation in the rat: tissue uptake and degradation.

Equine CG (eCG) both radioiodinated and unlabeled, was injected iv into male rats, and the disappearance of the hormone from the circulation was studied. The uptake and inactivation of the hormone by various tissues was also examined. The disappearance curve of eCG consisted of two exponential components with apparent t1/2 of 0.2 and 6 h. Gel filtration analysis of a blood sample 60 min after injection of eCG indicated that residual plasma eCG is intact and is active in both RIA and bioassay. Along with the disappearance of radiolabeled eCG from plasma, its uptake and release was recorded in liver, kidneys, and testis. The label also appeared rapidly in the urine and the thyroid gland. However, gel filtration profiles of urine samples did not show the presence of any intact eCG. Furthermore, overnight in vitro incubation of eCG with plasma, liver, and kidney tissues destroyed 58%, 64%, and 96% of the biological activity of the hormone, respectively. Thus, these results suggest that eCG disappears from the circulation in a biphasic manner, and the plasma, liver, and kidneys may play an important role in the inactivation and metabolism of the hormone.

Animals↗

Purification and characterization of the gonadotropin secreted by cultured horse trophoblast cells.

Equine chorionic gonadotropin (eCG) secreted by horse trophoblast cells cultivated in vitro was isolated and its chemical, immunochemical, and biological characteristics were compared to those of the gonadotropin secreted in vivo and isolated from PMS. It was also compared with eCG isolated from the tissue of origin, the endometrial cups. The gonadotropin secreted in vitro had a smaller molecular size, contained appreciably less carbohydrate, and showed different amino-terminal residues from that secreted in vivo. In addition, there were significant differences in amino acid composition between eCG secreted in vivo and that secreted in vitro. The reactivity of eCG (isolated from the medium of cultured trophoblast cells) in homologous eCG (isolated from PMS) and equine LH and FSH RIAs suggested close antigenic similarities to eCG isolated from PMS. However, compared to serum-derived eCG, eCG secreted in vitro showed reduced activity in both LH (13%) and FSH (9-24%) bioassays and in LH and FSH radioreceptor assays (40-50%). The differences in bioassay potencies may be accounted for in part by the lower sialic acid content of the gonadotropin secreted in vitro. With respect to both bioactivity and chemical composition, the eCG secreted in vitro more closely resembled the eCG isolated from endometrial cups than that isolated from serum.

Amino Acids↗

Purification and characterization of donkey chorionic gonadotrophin.

Serum of the pregnant donkey, like that of the mare, contains a gonadotrophin of chorionic origin. The chorionic gonaditrophin of the donkey (dCG) has been isolated in purified form from the serum of pregnant donkeys using methodology previously employed for the purification of pregnant mare chorionic gonadotrophin (eCG). Unlike eCG, dCG is predominatly an LH in biological tests. In the in-vitro rat Leydig cell assay, dCG was as active as eCG, but in the in-vitro rat seminiferous tubule assay for FSH and in the augmentation assay, dCG was considerably less potent than eCG (1-10%). Specific rat testis radioreceptor assays for LH and FSH also showed dCG to be at least nine times more potent in LH than in FSH activity. Chemically, dCG was found to be similar to eCG in fractionation behaviour and glycoprotein nature. However, dCG had significantly less carbohydrate (31%) than had eCG (45%) and several differences were noted in a comparison of amino-acid compositions. A single amino-terminal residue, phenylalanine, was detected in dCG. Immunologically, dCG cross-reacted in homologous radio-immunoassays for eCG, equine LH and equine FSH, but its inhibition curves were all nonparallel with those of the respective equine gonadotrophin standards.

Amino Acids↗

Biological and binding activities of equine pituitary gonadotrophins and pregnant mare serum gonadotrophin.

The biological and binding activities of pregnant mare serum gonadotrophin (PMSG) were compared with those of highly purified FSH and LH from the pituitary gland of the same species. Pregnant mare serum gonadotrophin showed activity in bioassays considered to be specific for both FSH (e.g. the Steelman-Pohley ovarian augmentation test and cyclic AMP production by rat seminiferous tubules) and LH(androgen production by rat Leydig cells), as well as activity in a variety of radioreceptor assay systems previously considered to be specific for one of the two types of gonadotrophin. The potency of PMSG was high compared with that of purified ovine FSH or LH standards in all assays but PMSG was considerably less active than equine FSH and LH in vitro. In radioreceptor assays employing rat, pig and horse tissues, the activity of PMSG was equivalent to only 1--5% of equine FSH in competing for FSH-binding sites and only 3--35% of equine LH in competing for LH-binding sites. Pregnant mare serum gonadotrophin was least active in homologous binding assays with horse testis and equine LH as radioligand. In the rat Leydig cell bioassay, the activity of PMSG was only 2.0% that of equine LH. Furthermore, in some assays equine LH was found to resemble PMSG in exhibiting a high degree of FSH-like activity that could not be accounted for by cross-contamination. The FSH immunoactivity of equine LH was less than 0.5% that of equine FSH, but equine LH was up to 63% as potent as equine FSH in competition for FSH-binding sites and it was 20% as active in the Steelman-Pohley ovarian augmentation bioassay. Equine LH did not, however, show the expected activity in the cyclic AMP production bioassay. Thus, the FSH-binding sites and physiological receptors may not be identical. Overall, comparison of PMSG with pituitary gonadotrophins from homologous species shows that the apparent dual activity of PMSG may not be a unique feature of this pregnancy hormone since equine LH also exhibits some FSH activities. The chemical resemblance between PMSG and equine LH is noteworthy in this regard.

Animals↗

Physicochemical and biological characterizations of pregnant mare serum gonadotropin and its subunits.

Pregnant mare serum gonadotropin and its subunits have been further characterized. Ultracentrifugation of the gonadotropin at pH 1.3 and 11.5 showed little evidence of dissociation compared to pH 8.2. Highly purified subunits are obtained by urea dissociation and ion-exchange chromatography followed by gel-filtration. Circular dichroism spectra of the gonadotropin and its subunits are much like those of ovine lutropin and its subunits in that there is little evidence for secondary structure and one or more tyrosine residues are inaccessible in the intact gonadotropin compared to the subunits. The alpha-subunit possesses almost 3 times as much total carbohydrate as the beta-subunit; the individual sugar composition of each was determined as well as the amino acid composition. The alpha-subunit begins with the sequence NH2-Phe-Pro (Gly or Pro) ... and terminates with isoleucine. The beta-subunit has the sequence NH2-Ser-Pro-Gly ...; no C-terminal residue is detectable by either carboxypeptidase or hydrazinolysis. Biological studies show the gonadotropin to be active in assays specific for both lutropin and follitropin. Precipitin test in agar with rabbit antiserum against the gonadotropin show that the beta subunit cross-reacts whereas the alpha subunit does not.

Amino Acids↗