PubMed Health⌕ Search

Biomedical subjects

L Pitzel

Publications and source records attributed to L Pitzel.

At least 19 recordsLinked to original sources

Effects of estradiol-17beta, testosterone and a black cohosh preparation on bone and prostate in orchidectomized rats.

Estradiol (E2) and testosterone (T) effectively prevent orchidectomy (orx) induced osteoporosis. T, however, stimulates prostate proliferation which may lead to malignancy. We showed that a Cimicifuga racemosa (CR) preparation had bone-sparing effects without exerting estrogenic effects in the uterus. We studied therefore whether a CR preparation has also antiosteoporotic effects in orx rats substituted with E2, T or CR via pelleted food over a period of 3 months. Average daily intake per animal was: T: 25 mg; E2: 0.325 mg, CR low dose: 33 mg; CR high dose: 133 mg. E2, T and CR at the high dose partially prevented development of osteoporosis as measured by quantitative computer tomography in the metaphysis of the tibia. E2, but not T or CR reduced serum osteocalcin and the metabolic products of collagen-1alpha1. Gene expression of collagen-1alpha1 and tartrate-resistant acid phosphatase was decreased by E2 and the higher dose of the CR extract but increased in the T-treated animals. In the prostate T inhibited androgen receptor, estrogen receptor alpha and insulin-like growth factor-1 gene expression but stimulated the expression of the ERbeta gene. These effects were not shared by E2 or both doses of the CR extract. It is concluded that E2, T and CR exert antiosteoporotic effects in the metaphysis of the tibia of orx rats. T has profound effects in the prostate which were not seen in the E2- and CR-treated animals. Therefore, the Cimicifuga racemosa extract BNO 1055 may be useful to prevent osteoporosis in aged male patients with reduced testosterone production.

Analysis of Variance↗

LH pulses and the corpus luteum: the luteal phase deficiency LPD).

The proper function of the GnRH pulse generator in the hypothalamus is essential for normal ovarian function, hence also for proper function of the corpus luteum. During the luteal phase LH pulses stimulate progesterone release, which is essential for normal endometrial transformation. Approximately one-half of all luteal phase deficiencies (LPD) are due to improper function of the GnRH pulse generator. Obviously, following ovulation the increased serum progesterone levels oversuppress the GnRH pulse generator, resulting in too few LH pulses and therefore improper luteal function. Also, latent hyperprolactinemia may lead to an LPD which can be effectively treated with plant extracts containing dopaminergic (prolactin-suppressing) compounds. Our increasing knowledge of auto- and paracrine mechanisms between nonsteroidogenic and steroidogenic cells now allow subclassification of LPDs of ovarian origin. The so-called small luteal cells are LH-responsive. If they develop improperly the regularly occurring LH pulses are unable to stimulate progesterone secretion from the small luteal cells, which results in what we call the small luteal cell defect. In addition, there is also evidence that the large luteal cells may function improperly. Hence, basal progesterone release is too low while LH-stimulated progesterone release from the small luteal cells appears to be intact. This subclassification of luteal phase deficiency results in the suggestion of different treatments. In cases where the corpus luteum is LH-responsive, such as the hypothalamic corpus luteum insufficiency and the large luteal cell defect, HCG treatment or pulsatile treatment with GnRH is advisable. In the case of LH/hCG-unresponsive small luteal cell defect a progesterone substitution is suggested.

Animals↗

Secretion and gene expression of metalloproteinases and gene expression of their inhibitors in porcine corpora lutea at different stages of the luteal phase.

We hypothesize that spontaneous regression of corpora lutea (CL) involves short-lasting restructure of luteal tissue with an activation of matrix metalloproteinases (MMPs) and their respective inhibitors (tissue inhibitors of metalloproteinase, TIMPs). This was tested by determining the gene expression of MMP-1, MMP-2, and MMP-9 and respective TIMP-1 and TIMP-2 in luteal tissue from sows at the early, midluteal, and late luteal phase (Days 6-8, Days 9-11, and Days 13-15 of estrous cycle). Gene expression of the three MMPs was low in early, slightly higher in midluteal, and significantly elevated (P < 0.05) in regressing CL. An inverse pattern was found for gene expression of TIMP-1 and TIMP-2. Under culture conditions, the release of MMPs was determined from steroidogenic large luteal cells (LLC). LLC harvested from regressing CL released significantly (P < 0.05) more active MMPs than cells obtained from CL at the early luteal phase. As luteolysis can be induced by prostaglandin F(2alpha) (PGF(2alpha)) and tumor necrosis factor alpha (TNF), we studied their effects on LLC under culture conditions. Treatment of cells with PGF(2alpha) or TNF (10(-7) M or 3 x 10(-9) M, respectively) induced a significantly higher release of MMPs, and gene expression was also significantly stimulated in comparison to that in untreated LLC. The gene expression of TIMPs remained unaffected by either treatment. It is concluded that at the beginning of luteolysis, MMPs are expressed and released in high amounts and that this is essential for the structural regression of the CL.

Animals↗

Stimulation of matrix-metalloproteinase-1 and tissue inhibitor of metalloproteinase-1 gene expression in rats by the preovulatory prolactin peak.

Since structural luteolysis involves deterioration of tissue, the gene expression of matrix-metalloproteinase-1 (MMP-1) and the respective tissue inhibitor of this metalloprotease (TIMP-1) were measured at various times on the day of pro-oestrus and in animals in which the preovulatory prolactin surge was blocked for the duration of 3 cycles by bromocriptine. An additional group of prolactin-blocked rats received a prolactin replacement injection on the afternoon of pro-oestrus. In spontaneously pro-oestrous rats, MMP-1 and TIMP-1 gene expression increased significantly (P<0.01) prior to the occurrence of the preovulatory LH surge but simultaneously with the onset of the preovulatory prolactin surge. When prolactin release was blocked by bromocriptine for 3 cycles, no such changes were observed during the afternoon of pro-oestrus. However, an intraperitoneal injection of bovine prolactin at the time when the preovulatory prolactin surge occurs normally, increased MMP-1 and TIMP-1 gene expression (P<0.01). These results indicate that MMP-1 and TIMP-1 gene expression are stimulated by the preovulatory prolactin surge. Previous work has shown that the preovulatory LH surge activates the enzymatic cascade which leads to increased collagenase activity.

Animals↗

Synergistic effects of prostaglandin F2alpha and tumor necrosis factor to induce luteolysis in the pig.

There is ample evidence that prostaglandin F2alpha (PGF2alpha) is a luteolytic substance in sows, however, there is also some evidence that it may stimulate progesterone (P4) secretion in young corpora lutea (CL). In vitro studies also suggested that tumor necrosis factor alpha (TNF) is inhibitory to luteal cell P4 and estradiol-17beta (E2) release. Since E2 is a strong luteotropic substance in porcine CL, we studied the effects of intraluteal application of PGF2alpha and TNF alone and in combination on the secretion of P4 and E2 in freely moving sows. Furthermore, the effects of intraluteal infusion of E2 and its stereoisomer, estradiol-17alpha, on luteal function, were also determined. Microdialysis systems were implanted into CL at Day 10 of the estrous cycle. After a 24-h recovery period, PGF2alpha (10(-6) M) or E2 (10(-6) M) was applied daily for 6 h into the CL. PGF2alpha caused a stimulation of E2 and P4, and E2 also stimulated P4 secretion at Days 11 and 12, but the stimulatory effect of both substances diminished as the CL approached luteolysis. Intraluteal TNF application resulted in a transient increase of P4 secretion, which was followed by a dramatic reduction of P4 release. When TNF-pretreated CL were exposed to PGF2alpha at Day 11 of the estrous cycle, the prostaglandin was no longer able to stimulate but rather inhibited E2 and P4 secretion. Intraluteal application of estradiol-17alpha had no effect on P4 secretion. These results are suggestive that the PGF2alpha-induced E2 secretion in young and middle-aged CL is stimulatory to P4 secretion. Under the influence of macrophage-derived TNF production, E2 secretion is inhibited, and thereby PGF2alpha and TNF cause functional luteolysis.

Animals↗

Analytical and clinical evaluation of an electrochemiluminescence immunoassay for the determination of CA 125.

The CA 125 II assay on the Elecsys(R) 2010 analyzer was evaluated in an international multicenter trial. Imprecision studies yielded within-run CVs of 0.8-3.3% and between-day CVs of 2.4-10.9%; CVs for total imprecision in the manufacturer's laboratory were 2.4-7.8%. The linear range of the assay extended to at least 4500 kilounits/L (three decades). Interference from triglycerides (10.3 mmol/L), bilirubin (850 micromol/L), hemoglobin (1.1 mmol/L), anticoagulants (plasma), and several widely used drugs was undetectable. Method comparisons with five other CA 125 II assays showed good correlation but differences in standardization. A 95th percentile cutoff value of 35 kilounits/L was calculated from values measured in 593 apparently healthy (pre- and postmenopausal) women. In 95% of patients with benign gynecological diseases CA 125 was </=190 kilounits/L; 63% of patients with newly diagnosed ovarian carcinoma had values >190 kilounits/L. A comparison of CA 125 values obtained with the Elecsys test and with other common CA 125 tests in monitored patients being treated for ovarian cancer showed identical patterns. In conclusion, the Elecsys CA 125 II assay is linear over a broad range, yields precise and accurate results, is free from interferences, and compares well with other assays.

Adult↗

Immune-endocrine interactions affecting luteal function in pigs.

The formation, normal function and destruction of corpora lutea are essential features of normal reproduction. Although the formation of corpora lutea from follicles is largely dependent on pituitary gonadotrophins, the process of luteolysis is locally regulated and poorly understood. The corpus luteum consists of several steroidogenic and nonsteroidogenic cell types that interact with each other in a paracrine manner. Under cell culture conditions, large luteal cells that stem from follicular granulosa cells can be identified easily under the microscope and collected individually for single cell RT-PCR. As each of the 120 large luteal cells express the gene encoding 3 beta-hydroxysteroid dehydrogenase, it appears that all large luteal cells are steroidogenic. Large luteal cells also express the oestrogen receptor gene and as they are known to produce oestradiol, it can be concluded that the steroid acts in an auto- or intracrine manner in large luteal cells. Since we showed previously that oestradiol stimulates progesterone release under in vitro and in vivo conditions, it can be concluded that the steroid is an important intraluteally acting luteotrophic signal. At the time of luteal regression, macrophages invade the corpora lutea and their cytokine products, particularly tumour necrosis factor alpha (TNF alpha), appear to be involved in reduced steroid secretion. Indeed, TNF alpha inhibits production of progesterone and oestradiol from cultivated luteal cells. In sows, oestradiol is a strong luteotrophic factor and the production of oestradiol and of its receptor is downregulated by TNF alpha. Thereby, TNF alpha not only exerts direct luteolytic effects but also prevents the luteotrophic effects of oestradiol. Hence, it has an anti-luteotrophic action. In most species, functional luteolysis is accompanied by morphological regression of the corpus luteum. This structural luteolysis also appears to involve TNF alpha, as we have shown in pigs that expression of TNF alpha gene is high during luteolysis. Furthermore, TNF alpha stimulates programmed cell death (apoptosis) in luteal cells kept under culture conditions.

Animals↗

Luteotropic and luteolytic effects of oxytocin in the porcine corpus luteum.

The presence and the release of oxytocin (OT) by corpora lutea (CL) of a number of species (Wathes et al. 1986, Watkins and Choy 1988) including ruminants (Ivell and Richter 1984, Hirst et al. 1986, Rodgers et al. 1983, Sawyer et al. 1986), primates (Dawood and Khan-Dawood 1986, Khan-Dawood 1987, Maas et al. 1992, Khan-Dawood et al. 1993), and the pig (Pitzel et al. 1984, Einspanier et al. 1991, Jarry et al. 1992) have been amply verified. Conflicting results concerning the effects of OT on steroidogenesis have been published; the peptide has been shown to be luteotrophic (Sawyer et al. 1986, Maas et al. 1992, Jarry et al. 1990), to have no effects (Rodgers et al. 1985) or to be luteolytic (Auletta et al. 1984, Auletta et al. 1988, Pitzel et al. 1988) and it appears that this confusion is only in part due to species differences but also the age of the luteal tissue seems to be of crucial importance for the understanding of the effects of OT (Schams et al. 1983, Wuttke et al. 1993, 1994). In the present contribution we will focus largely on our results obtained in the pig and where applicable, compare them with those obtained in other species. We will thus demonstrate that OT is released by luteal cells (Jarry et al. 1990, Einspanier et al. 1991, Jarry et al. 1992) and that luteal cells have OT receptors (Sernia et al. 1989, Pitzel et al. 1993a) which mediate the effects of the peptide on steroidogenesis. Finally, we will address the question whether OT is inhibitory or stimulatory to progesterone (P) and estradiol (E2) release, and we will come to the conclusion that OT is both luteotropic and luteolytic (Wuttke et al. 1993, 1994). The CL of all species investigated so far consists of two steroidogenic cell types. The so-called large luteal cells stem from follicular granulosa cells and they appear to be barely responsive to luteinizing hormone (LH)/human chorionic gonadotrophin (hCG) but they are highly receptive to prostaglandin F2 alpha (PGF2 alpha) (Hansel and Dowd 1986, Pitzel et al. 1990). Furthermore, they appear to produce OT (Rodgers et al. 1983, Theodosis et al. 1986). The small luteal cells are believed to derive from the follicular theca cells (Hansel and Dowd 1986, Pitzel et al. 1990). They are LH-receptive but synthesize few, if any, regulatory peptides. In the last few years it has become increasingly evident that cells deriving from the white blood cell line are involved in processes such as ovulation and luteolysis. Of crucial importance for the understanding of luteolysis is the morphological observation that macrophages invade the CL at the time of luteal regression (Adashi 1990, Paavola 1977, Kirsch et al. 1981).

Animals↗

Different steroidogenic response of young and aged porcine small and large luteal cells to prostaglandin F2 alpha, oxytocin and estradiol.

The role of oxytocin (OXT) and prostaglandin F2 alpha (PGF2 alpha) in the process of luteal regulation, particularly their function in the early luteal phase is poorly understood. Therefore the effects of both compounds on in vitro steroid release of porcine luteal cells harvested from young/middle-aged (day 4-6, day 0 = 1st estrous day) or old (day 12-14) corpora lutea were tested. As corpora lutea (CL) contain at least two different steroidogenic cell populations, fractions of the so called small (SLC) and large (LLC) luteal cells were prepared and tested in separate experiments. In SLC as well as LLC from young CL OXT and PGF2 alpha inhibited progesterone (P) production but induced a strong increase of estradiol (E2) release. In old SLC and LLC OXT and PGF2 alpha were still inhibitory to P release but OXT was ineffective and PGF2 alpha had a moderate stimulatory effect on luteal E2 secretion. In SLC cultures from young but not from old CL E2 exerted a powerful stimulatory effect on progesterone (P) secretion, i.e. E2 has strong luteotrophic effects in the early luteal phase. Indeed, the pronounced inhibitory effect of OXT and PGF2 alpha on P release from SLC could be counteracted by the addition of exogenous E2 to the culture media. Therefore, we suggest that in the early luteal phase OXT as well as PGF2 alpha have an indirect, E2-mediated luteotrophic effect on P release which is stronger than the direct inhibitory action on P secretion.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Luteotrophic and luteolytic actions of ovarian peptides.

Corpora lutea of all species investigated so far, including the human, produce oxytocin and a variety of other regulatory peptides. The role of these peptides is largely unknown. The subtypes of large luteal cells are able to produce tumour necrosis factor (TNF) and at the end of the luteal phase TNF-producing macrophages invade the aged corpus luteum, indicating that this cytokine may be involved in the process of luteolysis. The present contribution reviews briefly the known functions of oxytocin and substance P in the corpus luteum and then elaborates the possible involvement of luteal and macrophage TNF during luteolysis. Oxytocin applied to intact corpus luteum stimulates the secretion of progesterone and oestradiol. The stimulation of progesterone secretion by oxytocin is due to the stimulated oestrogen production. TNF, when tested in vitro, inhibits both luteal cell progesterone and oestradiol production. The TNF-mediated inhibition of aromatase activity therefore prevents the luteotrophic effects of a variety of peptides including oxytocin. This appears to be the mechanism by which TNF induces luteolysis.

Animals↗

Demonstration of oxytocin receptors in porcine corpora lutea: effects of the cycle stage and the distribution on small and large luteal cells.

Recent investigations have demonstrated an inhibitory effect of oxytocin (OXT) on luteal cell progesterone (P) release under in vitro conditions. This inhibitory effect was counteracted by an OXT antagonist, indicating that it was receptor-mediated. In the present investigation, we demonstrated the presence of OXT binding sites in porcine luteal tissue using a radioiodinated OXT antagonist, [1-(beta mercapto-beta,beta-cyclopentamethylene propionic acid),2-(ortho-methyl)-Tyr2-Thr4-Orn8-Tyr-NH2] vasotocin (OTA), as ligand. For membrane fractions of porcine luteal tissue, Kd values of 0.7-0.8 nM were obtained; these are comparable to those of porcine myometrial fractions, measured under the same experimental conditions. Competition studies with luteal membrane fractions yielded a Ki(OXT) of 10(-9) M. This is a dose of OXT that exerts inhibitory effects on P release under both in vitro and in vivo conditions. To evaluate putative variations of luteal OXT receptor concentrations during the estrous cycle, membrane fractions prepared from corpora lutea (CL) of the early or midluteal (Days 2-6) and late luteal phase (Days 9-11) were used. While no differences in Kd values were observed, OXT binding capacities were significantly (p < 0.05) higher in CL from the early/midluteal phase (Bmax(E/M) = 116 +/- 12 fmol/mg protein) compared to CL from the late luteal phase (Bmax(L) = 65 +/- 10 fmol/mg protein). OXT binding sites were present in both small (SLC) and large luteal cells (LLC). SLC but not LLC responded to hCG with a significant increase of OXT binding sites, whereas E2 augmented OXT receptor binding in SLC as well as in LLC.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects and interactions of prostaglandin F2 alpha, oxytocin, and cytokines on steroidogenesis of porcine luteal cells.

In the porcine corpora lutea (CL), prostaglandin F2 alpha (PGF2 alpha) and oxytocin (OXT) inhibit progesterone (P) but stimulate estradiol (E2) secretion from luteal cells kept under primary culture conditions. In vivo, both compounds are reported to have luteolytic properties when administered during the late luteal phase; in young CL, however, both substances stimulate P secretion, an effect which is E2-mediated. During the late luteal phase luteal cells appear to produce cytokines, and in addition, cytokine-producing macrophages invade the CL. We tested therefore whether cytokines, particularly tumor necrosis factor-alpha (TNF), have effects on basal or human CG-stimulated steroidogenesis. Furthermore, the interactions of cytokines with PGF2 alpha and/or OXT were investigated. TNF, and less potently interleukin (IL)-1 and IL-2 but not IL-6, inhibited basal as well as human CG-stimulated release of P and E2 in both small and large luteal cells. The inhibiting effect of PGF2 alpha and OXT on P secretion was augmented by these active cytokines. The stimulatory effect of PGF2 alpha and OXT on small and large luteal cell E2 production was completely inhibited. A profound stimulatory effect of E2 and small luteal cell P secretion was completely prevented by the cytokines, with TNF being more potent than IL-1 or -2. We conclude that the cytokines, particularly TNF, have luteolytic functions by their direct inhibiting effects on luteal cell P production. In addition, the cytokines inhibit synthesis and action of PGF2 alpha- and OXT-stimulated E2 secretion. Since E2 is a potent stimulator of luteal cell P production, this luteotropic signal is eliminated by cytokines, which add to the process of luteolysis.

Androstenedione↗

Demonstration of oxytocin release by bovine luteal cells utilizing the reverse hemolytic plaque assay.

Corpora lutea (CL) of a number of species produce oxytocin (OXT). In the present experiments we studied basal, prostaglandin (PG) F2 alpha-stimulated and ascorbate-stimulated OXT release from individual bovine luteal cells utilizing the reverse hemolytic plaque assay (RHPA). Using a mixture of C- and N-terminus-specific antisera against OXT, we were able to demonstrate OXT plaque formation by individual luteal cells. CL consist of two steroidogenic cell types: large luteal cells (LLC), believed to derive from granulosa cells and to produce and secrete OXT, and small luteal cells (SLC), thought to derive from theca cells. To distinguish between these two cell types, we designated cells greater than 20 microns as LLC and those less than 20 microns as SLC. On the basis of this morphological parameter, OXT release from both LLC and SLC was demonstrable. After an incubation period of 15 h, 7% of both cell types formed OXT plaques. PGF 2 alpha and ascorbate increased the size of plaques surrounding both LLC and SLC to more than 200% and 240%, respectively (basal plaque size = 100%). The number of plaque-forming cells increased only slightly in the presence of either PGF 2 alpha or ascorbate in comparison to basal conditions. We suggest that the RHPA can be used to demonstrate peptide release from luteal cells. It is concluded that LLC may be subdivided into functional subclasses because less than 10% of bovine luteal cells release OXT. Known OXT secretagogues increased the amount of OXT released. It appears that not only LLC but also SLC secrete this peptide.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of substance-P and neuropeptide-Y on in vitro steroid release by porcine granulosa and luteal cells.

The presence of substance-P (SP)- and neuropeptide-Y (NPY)-like immunoreactivity was recently shown in nerves that innervate the ovary. In the present in vitro study we demonstrate that both peptides have direct effects on ovarian steroidogenesis. In cultured porcine granulosa (G-) cells, neither peptide affected progesterone (P) production under basal conditions, but they both inhibited gonadotropin-stimulated P secretion. In luteal (L-) cell cultures, basal as well as hCG-stimulated P release were dose-dependently inhibited by NPY (ED50, 4 x 10(-9) M; identical for both, basal and stimulated release), while SP had only a moderate inhibitory effect (ED50, 6 x 10(-8) M). In the presence of AP13, a specific SP antagonist, the inhibitory effect of SP on P release was abolished, which suggests a receptor-mediated effect. In addition, we determined androstenedione (A) and estradiol (E2) release into G- and L-cell culture media. While E2 production in G-cell cultures was not influenced by SP and NPY, both peptides had a dose-dependent stimulatory effect on E2 secretion by L-cells. In contrast to E2 release, A secretion by G- as well as L-cell cultures was increased by gonadotropins. Both SP and NPY decreased gonadotropin-stimulated A secretion by G- and L-cells under basal as well as hCG-stimulated conditions. Furthermore, we demonstrate SP immunoreactivity in media of G- and L-cell cultures with a HPLC retention time identical to that of synthetic SP. This may suggest ovarian synthesis, in which case the peptide exerts auto- and/or paracrine effects on ovarian steroidogenesis. From these in vitro results we suggest that SP and NPY have a modulatory effect on ovarian function in pigs not only by their well known regulatory effects of blood supply, but also by a direct effect on ovarian steroidogenesis.

Androstenedione↗

Determination of secretion rates of estradiol, progesterone, oxytocin, and angiotensin II from tertiary follicles and freshly formed corpora lutea in freely moving sows.

Two days before ovulation ovarian follicles of sows were implanted with microdialysis systems (MDS) which function like artificial capillaries with exteriorized inlets and outlets. Steroid hormones and paracrine acting factors such as oxytocin (OXT) and angiotensin II (AII) diffuse from ovarian tissue into the fluid, which is pumped through the MDS and collected in fractions. This allows determination of dynamic changes of estradiol (E2), progesterone (P), OXT, and AII secretion during the pre-, peri-, and postovulatory periods in freely moving sows. More than 80% of such implanted follicles ovulate and form competent corpora lutea (CL) allowing continuation of experimentation during the early luteal phase. Follicular E2 release increases before ovulation and decreases with increasing blood LH concentrations. Twenty to 30 h after beginning of the preovulatory LH surge P secretion increases gradually. Both peptides OXT and AII are released episodically by the preovulatory follicle. During the time of decreased E2 and not yet increased P secretion, i.e. during the periovulatory period, mean AII secretion was highest in comparison to the late follicular and early luteal phase. E2 remains measurable during the early luteal phase. OXT and AII were also topically applied into the follicular wall and after ovulation into the CL. AII had no effect on steroidogenesis of both structures. Although OXT was ineffective in the follicle, in young CL it stimulated P secretion. These results indicate that the MDS can be used to study late follicular and early luteal steroid and peptide secretion. The function of OXT and AII in the follicle remains obscure, whereas OXT has a luteotropic effect in young porcine CL.

Angiotensin II↗

Effects of oxytocin on in vitro steroid release of midstage small and large porcine luteal cells.

Previously, we have demonstrated an inhibitory effect of oxytocin (OXT) on progesterone (P) and androstenedione (A) release of porcine luteal cell cultures. The present study examines whether OXT modulates P, A, or estradiol (E2) release of so-called small luteal cells (SLC) or of granulosa-derived large luteal cells (LLC). To ensure clean Percoll-gradient separation of the 2 cell types, corpora lutea not older than 6 days were used. SLC, but not LLC, responded to human (h)CG (6 ng/ml) with increased P and A, but not E2, release. When OXT was added to the culture system, both basal as well as hCG-stimulated P release of SLC, but not of LLC, were dose dependently reduced. In contrast, E2 production of SLC and LLC was significantly stimulated by OXT whereas A release of SLC cultures, but not of LLC, was inhibited in response to OXT. In the presence of a specific OXT-antagonist, this inhibitory effect of OXT on P release was abolished, indicating a specific receptor-mediated effect of OXT on porcine luteal cells. When E2 was added to the culture medium, a dose-dependent stimulatory effect on P release of SLC was demonstrated. The presence of the E2 receptor antagonist monohydroxy-tamoxifen in the culture system prevented the E2-induced increase of P release of SLC. E2 was able to counteract dose dependently the OXT-induced inhibition of P release in SLC cultures. These results suggest that OXT may have a dual function in young corpora lutea. The reduction of P and A production can be interpreted as a luteolytic effect of OXT. The simultaneous increase of E2 production, however, may also point to an indirect luteotropic effect since E2 was shown to stimulate luteal P release and to counteract OXT-induced inhibition of P release excessively.

Androstenedione↗

Release and effects of oxytocin on estradiol and progesterone secretion in porcine corpora lutea as measured by an in vivo microdialysis system.

Individual corpora lutea (CL) of Göttinger miniature pigs were implanted with an in vivo microdialysis system. This system functions like an artificial capillary, allowing diffusion of intraluteally secreted substances into the lumen of the dialysis system and administration of hormones into individual CL and simultaneous measurement of the response. After surgery the sows are fully awake and unrestrained. In the present study the in vivo release rates and secretion dynamics of progesterone (P) and oxytocin (OXT) were investigated. The dialysis system was implanted at day 2-4 of the estrous cycle, and dialysis experiments were performed throughout the next 3 days. Fractions were collected at 30 min intervals, and the concentrations of P and OXT were measured by RIA. Three major observations were made: Spontaneous intraluteal secretion of P and OXT occurred in a pulsatile manner. OXT secretion episodes in individual CL often coincide, indicating a simultaneous release from many CL of one ovary but also from the CL located in the contralateral ovary. OXT episodes also often coincide with P pulses; statistical evaluation revealed a significant correlation between P and OXT secretion. Intraluteal application of OXT stimulated luteal P and estradiol (E2) release in a dose-dependent manner. E2 added to the perfusates was also stimulatory to P release. The stimulation of P release by OXT could be antagonized by prior treatment of the CL with tamoxifen. We demonstrate for the first time in vivo the secretion of OXT from porcine CL. The microdialysis system enabled us to collect samples at the site of steroid and peptide release, i.e. within the intact luteal tissue. Our results suggest a stimulatory effect of OXT on P release from young and middle-aged CL and are in marked contrast to the previously demonstrated inhibitory effect of OXT on P release when luteal cells were cultured in vitro. A possible explanation for this apparent discrepancy is that OXT stimulates intraluteal release of E2, which is a powerful P releasing hormone, overcoming the direct inhibitory effect of OXT. This suggestion is substantiated by the observation that E2, when added to the perfusion medium, indeed stimulated P release.

Animals↗

[Dose-dependent effect of locally administered sulprostone gel on serum luteal and placental hormones in cervix priming in the 1st trimester].

In a prospective, randomised study 30 primigravidae were treated with 25 micrograms, 50 mu, or 100 micrograms sulprostone gel in order to soften the cervix prior to first trimester termination of pregnancy. 10 multigravidae received only the gel vehicle tylose. For objective demonstration of the priming effect, the force required for dilatation of the cervical canal was measured in Newton by a special tonometer before prostaglandin (PG) application and before operation. Serum progesterone, 17-beta-estradiol and hP1 levels were determined radioimmunologically prior to PG application and at two-hours intervals until curettage. A sonographic examination for determing the vitality of the pregnancy was performed before PG administration and immediately before the surgical intervention. There were no significant differences in the primig effect between the 50 micrograms and 100 micrograms sulprostone-treated group; the application of 25 micrograms sulprostone was significantly less effective. After 100 micrograms sulprostone gel abortion occurred in 2 patients, 6 women showed a marked decrease in hPl concentrations, progesterone levels were found to be reduced to 31.6-78.7% and 17-beta-estradiol to 10-40% of the initial values before PG application. We found a close time correlation between the occurrence of contraction-induced lower abdominal pain and the fall in hormone concentrations. No abortions occurred in any of the patients treated with 50 micrograms sulprostone gel; in 9 women without clinical symptoms no significant changes of the hormone concentrations were observed. In contrast to the previously published literature our results indicate that effective cervical ripening can be achieved by this method without disturbance of the feto-placental unit and the trophoblast respectively.

Abortifacient Agents↗