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R M Brenner

Publications and source records attributed to R M Brenner.

At least 37 records · Page 2Linked to original sources

Progesterone-dependent expression of keratinocyte growth factor mRNA in stromal cells of the primate endometrium: keratinocyte growth factor as a progestomedin.

In vitro studies have shown that keratinocyte growth factor (KGF, also known as FGF-7) is secreted by fibroblasts and is mitogenic specifically for epithelial cells. Therefore, KGF may be an important paracrine mediator of epithelial cell proliferation in vivo. Because stromal cells are thought to influence glandular proliferation in the primate endometrium, we investigated the hormonal regulation and cellular localization of KGF mRNA expression in the rhesus monkey uterus. Tissues were obtained both from naturally cycling monkeys in the follicular and luteal phases of the cycle, and from spayed monkeys that were either untreated or treated with estradiol (E2) alone, E2 followed by progesterone (P), E2 plus P, or E2 plus P plus an antiprogestin (RU 486). Northern blot analysis of total RNA with 32P-labeled probes revealed that the level of KGF mRNA in the endometrium was 70-100-fold greater in the luteal phase or after P treatment than in untreated, E2-treated, or follicular phase animals. Northern analysis also showed that KGF mRNA was present in the myometrium but was unaffected by hormonal state. RU 486 treatment prevented the P-induced elevation of endometrial KGF mRNA. P-dependent elevation of endometrial KGF expression was confirmed by measurement of KGF protein in tissue extracts using a two-site enzyme-linked immunosorbent assay. In situ hybridization with nonradioactive digoxigenin-labeled cDNA probes revealed that the KGF mRNA signal, which was present only in stromal and smooth muscle cells, was substantially increased by P primarily in the stromal cells located in the basalis region. Smooth muscle cells in the myometrium and the walls of the spiral arteries also expressed KGF mRNA, but the degree of this expression did not differ with hormonal state. P treatment led to increased proliferation in the glandular epithelium of the basalis region and to extensive growth of the spiral arteries. We conclude that the P-dependent increase in endometrial KGF resulted from a dual action of P: (a) a P-dependent induction of KGF expression in stromal cells, especially those in the basalis (zones III and IV), and (b) a P-dependent increase in the number of KGF-positive vascular smooth muscle cells caused by the proliferation of the spiral arteries. KGF is one of the first examples in primates of a P-induced, stromally derived growth factor that might function as a progestomedin.

Animals↗

Oestrogen action in the endometrium and oviduct of rhesus monkeys during RU486 treatment.

Two experiments were conducted to determine how RU486 affected oestradiol action in the non-human primate female reproductive tract. In the first experiment, spayed rhesus monkeys were first treated with a sequential regimen of oestradiol and progesterone to cause regression and deciliation in the oviduct and progestational development in the endometrium. The ability of oestradiol to stimulate oviductal differentiation and endometrial regeneration in the presence of RU486, progesterone, and progesterone plus RU486 was then tested. RU486 was found to block the ability of oestradiol to increase endometrial growth but did not prevent oestradiol-dependent oviductal differentiation. Also, in the endometrium but not the oviduct, RU486 action differed from simple progesterone withdrawal by causing stromal compaction and glandular apoptosis. In the second experiment, spayed monkeys were first treated with oestradiol for 2 weeks to produce a fully differentiated, ciliated-secretory oviduct and an hypertrophied, proliferative endometrium. The ability of oestradiol to maintain these conditions in oviduct and endometrium during treatment with RU486, progesterone, and progesterone plus RU486 was then tested. It was found that RU486 suppressed the ability of oestradiol to maintain the endometrium in a hypertrophied state but not its ability to maintain the oviduct in a fully ciliated-secretory state. As before, RU486 induced extensive glandular apoptosis and stromal compaction in the endometrium, but not the oviduct. These endometrial effects appeared to be due to a combination of a decrease in proliferation, an increase in epithelial cell death by apoptosis, an increase in stromal compaction and a concomitant decrease in interstitial fluid content, all of which led to a decrease in endometrial wet weight and thickness. These effects of RU486 on oestradiol action were similar in the presence and absence of progesterone and were therefore separate and distinct from the classical antiprogestin effects of RU486. Because RU486 did not inhibit the ability of oestradiol to either stimulate or maintain oviductal differentiation or wet weight, these results suggest that the endometrium is much more sensitive to the anti-proliferative effects of RU486 than the oviducts.

Animals↗

RU 486 action after estrogen priming in the endometrium and oviducts of rhesus monkeys (Macaca mulatta).

Recently, we reported that in rhesus monkeys, RU 486 treatment could inhibit the ability of estradiol (E2) to stimulate endometrial regeneration without inhibiting E2-dependent oviductal regeneration. In that work, RU 486 had been administered at the end of an artificial luteal phase when the oviducts were regressed, the endometrium was in a late secretory state, and estrogen and progestin receptors (ER and PR, respectively) were at minimal levels in both organs. In the current work, we administered RU 486 after 2 weeks of estrogen priming when the oviducts were fully differentiated, the endometrium was in a proliferative state, and ER and PR levels were maximal. Our goal was to determine whether the degree to which RU 486 inhibited E2 action in either organ varied depending on their initial state. Spayed rhesus monkeys were primed with E2 for 2 weeks and then treated in four different ways for an additional 2 weeks as follows: I) E2; II) E2 plus P; III) E2, P, and RU 486; and IV) E2 plus RU 486. Menstruation was not induced by any of the four treatments. In group I, continuous treatment with E2 maintained a typical proliferative endometrium with abundant Ki-67-positive cells, low levels of apoptosis, and elevated ER and PR; the oviducts were also maintained in a fully ciliated-secretory state. In group II, P induced a typical progestational secretory state in the endometrium, with few proliferating (Ki-67-positive) epithelial cells, undetectable apoptosis, and decreased ER and PR; as expected, the oviducts were fully regressed, with few Ki-67-positive or ciliated epithelial cells and low levels of ER and PR. In the endometria of monkeys treated with RU 486 and E2, either with (group III) or without (group IV) P, the effects of E2 on wet weight, thickness, and epithelial proliferation were more dramatically inhibited than in our previous study. However, the oviducts of the RU 486-treated animals had remained in a hypertrophied, fully ciliated-secretory state as in our previous study, with elevated ER and nuclear PR, although epithelial proliferation was suppressed. The degree to which RU 486 can inhibit estrogen-dependent growth in the endometrium can apparently be affected by the state of differentiation and/or steroid receptor level at the time the antiprogestin treatment is begun, but this effect is not evident in the oviduct, which shows only modest antiproliferative effects of the RU 486 treatment.

Animals↗

Radioligand binding assay of progesterone receptors in the primate corpus luteum after in vivo treatment with the 3 beta-hydroxysteroid dehydrogenase inhibitor, trilostane.

We and others have detected progesterone receptors (PR) in the primate (macaque and human) corpus luteum by immunocytochemistry. However, we have been unable to measure PR in the corpus luteum by conventional ligand binding assay, presumably because high endogenous concentrations of progesterone (P) in luteal tissue prevented specific binding of radiolabeled hormone to PR during the assays. To test this hypothesis, we treated monkeys with the 3 beta-hydroxysteroid dehydrogenase inhibitor, Trilostane, to reduce levels of endogenous P before conducting binding assays for PR in luteal tissue. To obtain adequate tissue for saturation analysis, rhesus monkeys (n = 6) were superovulated by treating them with hFSH beginning at menses (day 1) for 6 days, then with hFSH and hLH (days 6-9), followed by hCG (day 10). Trilostane (600 mg) was given 5 days after hCG treatment (day 15), and binding assays were conducted 18 h later. Trilostane significantly reduced mean (+/- SE) serum levels of P from 97.8 +/- 16 to 2.7 +/- 1.3 nmol/L within 18 h (P < 0.001). Strong nuclear staining of PR was detected by immunocytochemistry in both Trilostane-treated and control (not Trilostane-treated) tissue, but ligand binding was measurable only in Trilostane-treated monkeys. Scatchard transformations of saturation curves revealed high affinity binding of [3H] R5020 in luteal cytosol and nuclear extracts with an approximate dissociation constant (Kd) of 4.8 and 1.37 nmol/L, respectively. Also, the PR-specific monoclonal antibody, JZB-39, shifted a [3H]R5020-bound luteal macromolecule on sucrose gradients. Mean cytosolic and nuclear binding of [3H]R5020 were 0.31 +/- 0.09 and 0.06 +/- 0.02 fmol/micrograms DNA, respectively. Similar binding of [3H]R5020 was demonstrated in corpora lutea obtained during spontaneous menstrual cycles after Trilostane treatment (n = 3). These results show unequivocally that the PR in macaque luteal tissue can bind P with high affinity and suggest a receptor-mediated action of P in the primate corpus luteum.

3-Hydroxysteroid Dehydrogenases↗

Changes in oestrogen receptor protein, mRNA expression and localization in the endometrium of cyclic and pregnant gilts.

Conceptus secretion of oestrogen on Day 11 of gestation is involved with establishment of pregnancy in the pig. Changes in oestrogen receptor (ER) protein, mRNA and cellular localization in the endometrium were evaluated during the oestrous cycle and early pregnancy of the gilt. In nonpregnant gilts, concentration of nuclear ER in the endometrium increased from Days 0 to 12 followed by a decline on Day 15 of the oestrous cycle. In pregnant gilts, changes in endometrial nuclear ER during Days 10, 12, 15 and 18 were similar to that in cyclic pigs. Analysis of endometrial ER mRNA expression did not detect any difference between cyclic and pregnant pigs between Days 10 and 15 postoestrus. Expression of ER mRNA in endometrium of cyclic and pregnant gilts was greatest on Day 10 followed by a decline on Day 15. Endometrial ER mRNA increased on Day 18 of the oestrous cycle, but remained low during pregnancy. Immunocytochemical localization of ER in the endometria of cyclic and pregnant gilts indicated that there was intense staining for ER in stromal cells and moderate to strong staining in surface and glandular epithelial cells during oestrus (Day 0) and Day 18 of the oestrous cycle. However, stromal ER staining was absent from Days 5 to 15 of the oestrous cycle and continued to be suppressed on Day 18 of pregnancy. Immunocytochemical staining of ER in the surface and glandular epithelium was readily detectable from Days 0 to 12 of the oestrous cycle and during pregnancy. Intensity of staining for ER declined in surface epithelial cells on Day 15 in both cyclic and pregnant pigs whereas positive staining for ER in glandular epithelium was absent. Staining for ER on uterine surface epithelial cells increased during pro-estrus (Day 18) of cyclic gilts but remained similar to Day 15 in pregnant gilts. Changes in endometrial ER protein, mRNA and localization in surface epithelium are consistent with a physiological role for conceptus oestrogen secretion in uterine function and maternal recognition of pregnancy in the pig.

Animals↗

Localization of estrogen receptor messenger ribonucleic acid in rhesus monkey uterus by nonradioactive in situ hybridization with digoxigenin-labeled oligodeoxynucleotides.

Previous immunocytochemical studies indicate that receptor regulation varies in different uterine cell types. In primates, progesterone (P) suppresses estrogen receptor (ER) in glandular epithelial cells in the functionalis, but fails to suppress ER in the glandular epithelial (GE) cells of the basalis. P also fails to suppress ER in the perivascular stromal and smooth muscle cells of the spiral arteries in the functionalis. We used nonradioactive in situ hybridization to determine whether similar cell type differences occur at the ER mRNA level. We used digoxigenin-labeled oligodeoxynucleotides (oligo-DNAs; 45-mer) as probes and detected the hybrids immunocytochemically with horseradish peroxidase-labeled antidigoxigenin antibody. This technique can discriminate between positive and negative cells in closely packed histological associations. In spayed monkeys, most of the GE cells as well as endometrial stromal cells were positive for ER mRNA, while all vascular smooth muscle, endothelium, and perivascular stromal cells were negative. Estradiol treatment for 14 days markedly increased ER mRNA staining in the GE cells, most stromal cells, and the vascular smooth muscle and perivascular stromal cells of spiral arteries in the functionalis. However, in the basalis, these components of the spiral arteries were negative as were the small basal arteries of the basalis. In most positive cells, ER mRNA was not homogeneously distributed in the cytoplasm, but, rather, was concentrated in their perinuclear regions. The GE cells in the basalis had especially intense concentrations of perinuclear signal at their apical poles. After sequential estradiol plus P treatment, the signal was greatly reduced in the GE cells of the functionalis, but not in the GE cells of the basalis or in the vascular smooth muscle or perivascular stromal cells of the spiral arteries of the functionalis. In myometrium, ER mRNA was localized to the perinuclear region of smooth muscle cells, but the staining intensity was not dramatically affected by hormonal manipulation. Unexpectedly, we observed clusters of stromal cells characterized by extremely high positive signals for ER mRNA ("hot cells") at the endometrial/myometrial border and deeper in the connective tissue of the myometrium, although such cells did not express high levels of ER protein. In general, however, the cellular distribution of ER mRNA and its hormonal regulation paralleled those of ER protein.

Animals↗

Estrogen action in the reproductive tract of rhesus monkeys during antiprogestin treatment.

We previously reported that RU486 can reverse progesterone (P)-induced suppression of the estrogen receptor (ER) in the uterus of pregnant rhesus monkeys, but we did not determine whether estrogen (E) could act through its receptor in the presence of P and RU486. To pursue this question, we treated spayed rhesus monkeys with various hormonal regimens and evaluated the effects of E in the oviduct and endometrium, with and without RU486 treatment, on ER and progestin receptor (PR) levels, morphology, apoptosis, and degree of proliferation. The latter was assessed immunocytochemically with a monoclonal antibody (Ki-67) against a nuclear antigen present only in proliferating cells. Animals were treated for 2 weeks with 17 beta-estradiol (E2) and then for 2 weeks with E2 plus P to produce a regressed oviduct and a secretory endometrium. The animals were then treated for 2 more weeks with four different treatments, as follows: I) E2, P, and vehicle; II) E2 and vehicle; III) E2, P, and RU486; and IV) E2 and RU486 (n = 4 each). In group I, menstruation did not occur, and the endometrium exhibited stromal cell enlargement, extensive development of the spiral arteries, few Ki-67-positive cells, and low levels of ER and PR. Oviducts in group I remained regressed, Ki-67-positive epithelial cells were few, and levels of ER and PR were low. In contrast, in groups II, III, and IV, the oviducts had responded to E2 and were fully ciliated and secretory, with elevated levels of ER and nuclear PR. All animals in these three groups menstruated and then regenerated their endometrium. The regenerated endometria expressed elevations in ER, nuclear PR, and epithelial Ki-67 index. However, the endometria of RU486-treated monkeys in groups III and IV had significantly more epithelial cell death by apoptosis, increased stromal cell compaction, and fewer Ki-67-positive stromal cells than in the E2 controls (group II). In group IV, RU486 caused a significant decrease in endometrial weight. Thus, RU486 blocked P action and allowed E2 to act in a normal fashion in the oviduct and endometrium on several end points, but it also had antiproliferative effects that opposed E2 action, especially in the endometrium.

Animals↗

Steroid hormone receptors in the adrenal glands of fetal and adult rhesus monkeys.

Sex steroid hormone receptors have been identified in the adrenal glands of rodents and may have a role in adrenal function. The highly estrogenic environment during pregnancy has been proposed to influence steroidogenesis by the fetal zone of the primate fetal adrenal gland. In order to determine whether these effects involve receptor-mediated mechanisms, we have examined the concentration and distribution of estrogen receptor (ER), androgen receptor, and progesterone receptor (PR) in the adrenal glands of fetal, immature, and adult rhesus monkeys. Monoclonal antibodies were used for immunocytochemistry (ICC), and in a gradient shift assay, for determination of receptor distribution and concentrations, respectively. There was no difference between the concentrations of ER in the adrenal glands from male and female adult animals (12.4 +/- 2.2, n = 3 and 13.2 +/- 2.0 fmol/mg DNA, n = 7; respectively); however, the concentration of ER in the fetal adrenal glands was markedly lower than in the adults (combined adult 12.7 +/- 1.6, n = 10, and fetal 0.9 +/- 0.4 fmol/mg DNA, n = 7; P less than 0.01). The concentration of ER in the adrenal glands of immature animals was also lower compared to adult animals (6.1 +/- 1.6, n = 6, P less than 0.05). In the adult, ICC revealed that staining for ER was restricted to the cell nucleus and was most dense in the zone fasciculata, with lesser staining in the zona glomerulosa and zona reticularis, and with no detectable staining in the medulla. ER staining was virtually absent in the fetal zone which comprises the major portion of the fetal gland; however, some staining was observed in the narrow definitive zone. The distribution of androgen receptor was similar to that of ER, whereas there was no detectable staining for PR in the adrenals of either adult or fetal animals. We conclude: 1) that the lower concentration of ER in fetal adrenal glands is due to the absence of ER in the fetal zone; 2) the lack of ER and PR in the fetal zone suggests that estrogens and progestins do not influence the growth or function of the fetal zone by receptor-mediated mechanisms; 3) estrogens and androgens may influence the function of the adult adrenal cortex.

Adrenal Glands↗

Immunorecognition of estrogen receptors by monoclonal antibody H222 in reproductive tissues of the red-sided garter snake.

A study was conducted to determine if a monoclonal antibody (MAB), H222, prepared against human breast cancer estrogen receptors (ER) would recognize ER in the oviduct and liver of garter snakes (Thamnophis sirtalis parietalis). Using sucrose gradient analysis of antibody-ER complexes bound to [3H]estradiol we have determined that the MAB H222 binds to an ER in the cytosolic and nuclear extracts of snake tissues. The snake ER is not bound by nonspecific MABs in the sucrose gradient analysis. Further, the snake ER does not bind to other steroids, including a synthetic progestin, R5020, or the androgens 5 alpha dihydrotestosterone and R1881. The quantity of ER in the snake oviduct (200-700 fmol/mg DNA) is within an order of magnitude of that found in the oviduct of the nonhuman primate. These results suggest that the MAB H222 and 17 beta-estradiol bind to an ER in the snake that shares common properties with mammalian ER.

Animals↗

Localization of androgen receptor in the follicle and corpus luteum of the primate ovary during the menstrual cycle.

Ovarian androgens may act locally to modulate follicular and luteal function in various species. This study examined the distribution of androgen receptors within the primate ovary throughout the menstrual cycle. Ovaries were collected from rhesus and cynomolgus monkeys during the early, mid-, and late (n = 3-5 per stage) follicular and luteal phases of the cycle. The tissues were processed for indirect immunocytochemical localization of androgen receptors with a specific monoclonal antibody against human androgen receptor (AN1-15). In addition, ovaries (n = 3) were collected from rhesus monkeys for biochemical detection of androgen receptor using 3H-androgen and AN1-15. Specific immunocytochemical staining, as determined by comparing adjacent tissue sections incubated with either AN1-15 or a nonspecific control antibody, was exclusively nuclear. Androgen receptor was detected in the germinal epithelium and ovarian stroma at all stages of the cycle. The thecal and granulosa cells of growing follicles, and of many but not all atretic follicles, contained androgen receptors. Luteinizing granulosa cells of the periovulatory follicle and luteal cells from the early and midluteal phase stained intensely for androgen receptor. Regressing corpora lutea of the late luteal phase also stained for androgen receptor; however, fully regressed corpora lutea in the early follicular phase of the next cycle did not exhibit receptor staining. Luteal cells that were androgen receptor-positive also stained histochemically for the presence of 3 beta-hydroxysteroid dehydrogenase. Sucrose gradient analysis with radiolabeled androgen demonstrated a shift in the androgen receptor peak in monkey ovarian tissue upon addition of AN1-15, confirming the presence of androgen receptor.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Androgen receptor and 5 alpha-reductase activity in the ductuli efferentes and epididymis of adult rhesus macaques.

We measured androgen receptors (AR) and 5 alpha-reductase activity (5 alpha RA) in the ductuli efferentes and epididymides from adult rhesus macaques. Tissue samples were either assayed biochemically for AR or stained immunocytochemically (ICC) with a monoclonal antibody against AR. To estimate 5 alpha RA, tissue microsomes were incubated with [1 alpha,2 alpha-3H]testosterone, and the [3H]dihydrotestosterone formed was quantified. We found significant regional differences in the levels of both 5 alpha RA and AR in the excurrent ducts. In general, both enzyme activity and AR levels were higher in the caput and corpus epididymis than in ductuli efferentes and cauda epididymis. With ICC, positive nuclear AR staining was detected in all epithelial cell types, whereas variable numbers of stromal cells were positively stained. Our data demonstrate that there are segmental differences in the concentrations of 5 alpha RA and AR in epididymis and suggest that there may be regional differences in the regulation of epididymal functions by androgen.

Animals↗

Titrating luteinizing hormone surge requirements for ovulatory changes in primate follicles. II. Progesterone receptor expression in luteinizing granulosa cells.

The events in granulosa cells that are initiated by the midcycle LH surge during luteinization of the primate follicle are poorly defined. This study was designed 1) to determine whether an ovulatory dose of hCG can induce progesterone receptors (PR) in macaque granulosa cells, and if so, 2) to begin titrating gonadotropin requirements for PR expression and progesterone production by luteinizing granulosa cells. Rhesus monkeys were treated with human FSH and LH for up to 9 days to stimulate the growth of multiple follicles. The next day, animals (n = 4-5/group) received: 1) no ovulatory stimulus; 2) 1000 IU hCG, im; 3) one injection of 100 micrograms GnRH, sc (GnRH-1); 4) three injections of GnRH (GnRH-3) at 3-h intervals (0800, 1100, and 1400 h); or 5) two injections of 50 micrograms GnRH agonist (GnRHa), sc, 8 h apart (0800 and 1700 h). Granulosa cells obtained by follicle aspiration 27 h after the hCG or initial GnRH/GnRHa injection or on days 8 or 10 from animals receiving no ovulatory stimulus were processed for indirect immunocytochemistry using a monoclonal antibody to human PR (JZB39). Specific staining for PR, determined by comparing cells incubated with PR antibody vs. a nonspecific antibody, was undetectable in granulosa cells from monkeys without an ovulatory stimulus. In contrast, the majority (64 +/- 5%) of cells from hCG-treated animals stained intensely for PR. In the GnRH/GnRHa groups, granulosa cells from only one animal (i.e. one GnRH-3 monkey) showed positive staining for PR. During 24-h culture in Ham's F-10 medium containing 10% monkey serum, basal progesterone production by cells from the hCG-treated group (2163 nmol/L.8 x 10(4) cells) was higher than that by cells from the no ovulatory stimulus/GnRH-1/GnRH-3/GnRHa groups (60, 111, 194, and 332 nmol/L, respectively). However, granulosa cells from the hCG-treated group were less responsive to hCG in vitro in terms of enhanced progesterone production (2 times control levels) than cells from the other four groups (up to 30 times control levels). This study provides direct evidence that an ovulatory dose of hCG induces PR expression in granulosa cells of luteinizing follicles during stimulated cycles in rhesus monkeys. However, repeated injections of GnRH/GnRHa that produced surge levels (greater than 100 ng/mL) of endogenous LH for up to 14 h failed to induce PR expression or progesterone production by granulosa cells. Thus, an extended LH surge more typical of that in the normal menstrual cycle (48-50 h) may be necessary for PR expression and luteinization of granulosa cells in primate follicles.

Animals↗

Estrogen receptors, progestin receptors and DNA synthesis in the macaque endometrium during the luteal-follicular transition.

We have suggested that in the nonhuman primate endometrium, stromal cells might play a role in mediating the effects of estrogen on the epithelium, especially during the luteal-follicular transition (LFT) when target cells normally escape from the inhibitory influence of progesterone (P). We now report that like estrogen receptors (ER), endometrial progestin receptors (PR) are detectable only in stromal cells until the fifth day of the LFT. With a technique that combined immunocytochemistry and autoradiography on the same sections, we characterized the cellular distribution of ER or PR coincidentally with the localization of [3H]thymidine taken up in vitro by endometria from monkeys undergoing an LFT. DNA synthesis in the glands of the upper endometrium was E2-dependent, but the distribution of [3H]thymidine was not positively correlated with the presence of ER or PR. Readministration of P to animals on days 3 or 4 of the LFT significantly reduced the [3H]thymidine labeling index of the glandular epithelium and caused stromal ER to decline, but P did not block the eventual appearance of ER in epithelial cells on day 5 of the LFT. Thus, E2 stimulated DNA synthesis in epithelial cells that lacked ER, and P suppressed DNA synthesis in these cells even though PR was only detected in the stroma when P treatment began. These data are consistent with a role for endometrial stromal cells in mediating the effects of E2 and P on the epithelium during the LFT.

Animals↗

Sulfhydryl-reactive heavy metals increase cell membrane K+ and Ca2+ transport in renal proximal tubule.

The cellular mechanisms by which nephrotoxic heavy metals injure the proximal tubule are incompletely defined. We used extracellular electrodes to measure the early effects of heavy metals and other sulfhydryl reagents on net K+ and Ca2+ transport and respiration (QO2) of proximal tubule suspensions. Hg2+, Cu2+, and Au3+ (10(-4)M) each caused a rapid net K+ efflux and a delayed inhibition of QO2. The Hg2(+)-induced net K+ release represented passive K+ transport and was not inhibited by barium, tetraethylammonium, or furosemide. Both Hg2+ and Ag+ promoted a net Ca2+ uptake that was nearly coincident with the onset of the net K+ efflux. A delayed inhibition of ouabain-sensitive QO2 and nystatin-stimulated QO2, indicative of Na+, K(+)-ATPase inhibition, was observed after 30 sec of exposure to Hg2+. More prolonged treatment (2 min) of the tubules with Hg2+ resulted in a 40% reduction in the CCCP-uncoupled QO2, indicating delayed injury to the mitochondria. The net K+ efflux was mimicked by the sulfhydryl reagents pCMBS and N-ethylmale-imide (10(-4) M) and prevented by dithiothreitol (DTT) or reduced glutathione (GSH) (10(-4) M). In addition, both DTT and GSH immediately reversed the Ag(+)-induced net Ca2+ uptake. Thus, sulfhydryl-reactive heavy metals cause rapid, dramatic changes in the membrane ionic permeability of the proximal tubule before disrupting Na+, K(+)-ATPase activity or mitochondrial function. These alterations appear to be the result of an interaction of the metal ions with sulfhydryl groups of cell membrane proteins responsible for the modulation of cation permeability.

Animals↗

Progesterone treatment suppresses estrogen receptor in the sex skin of Macaca nemestrina.

We measured tightly bound nuclear estrogen receptors (ER) in sex skin biopsies obtained from pig-tailed macaques (Macaca nemestrina) which were previously ovariectomized and treated with an estradiol-progesterone regimen. Incubation of fresh tissue slices with a saturating concentration of [3H]estradiol (E2) was done to determine the capacity of nuclear acceptor sites to bind activated ER with high affinity. The radiolabeled ER was extracted from nuclei with 0.5 M KCl, complexed with an anti-ER monoclonal antibody, and quantitated by analysis on sucrose gradients. Even though serum E2 levels were unchanged, 7 and 14 days of sequential progesterone (P) treatment decreased ER amounts below those found after 7, 14 and 21-23 days of E2 treatment. ER regulation in sex skin of this species is similar to that found in macaque reproductive tract; P suppresses ER levels even in the presence of continuous E2. The tissue responses of sex skin to the hormone treatments correlated well with the measured fluctuations of tightly bound nuclear ER, which suggests the functional significance of this ER component.

Animals↗

Localization and regulation of estrogen, progestin and androgen receptors in the seminal vesicle of the rhesus monkey.

We have used monoclonal antibodies against the estrogen (E), progestin (P) and androgen (A) receptors (R) to study receptor localization and regulation in the seminal vesicles of rhesus monkeys under different hormonal conditions. The antibodies caused substantial shifts of the appropriately labeled receptors on sucrose gradients. ER levels were lower in intact males than in immature, castrate, and estrogen-treated castrates. With immunocytochemistry, ER were detectable only in stromal and smooth muscle cells, not the epithelium. The number of ER-positive stromal cells was significantly lower in intact males than in immature, castrate, and estrogen-treated castrates, and low in a DHT-treated castrate animal. Androgen receptors were localized in epithelial as well as stromal and smooth muscle cells, and the number of AR-positive stromal cells was highest in intact adults and lowest in castrated and immature animals. Estrogen treatment at the time of castration induced PR in the ER-positive stromal cells, prevented a decline in the number of AR-positive stromal cells, and caused stromal hypertrophy. In summary, in the seminal vesicle, as in the prostate, ER is restricted to the fibromuscular stroma, is suppressed by androgens, and can mediate induction of PR on estrogen treatment. Androgen receptors are present in epithelial as well as stromal and smooth muscle cells, but variations in hormonal state appear to affect regulation of AR more in the stroma than the epithelium.

Animals↗