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Biomedical subjects

G F Erickson

Publications and source records attributed to G F Erickson.

At least 19 recordsLinked to original sources

Granulosa cells of polycystic ovaries: are they normal or abnormal?

Understanding whether granulosa cells are normal or abnormal in women with polycystic ovary syndrome (PCO) could have clinical importance. For this purpose, we compared the ability of normal and PCO granulosa cells to synthesize oestrogen and progesterone in vitro in response to follicle stimulating hormone (FSH) and/or insulin-like growth factor-I (IGF-I). The normal granulosa cells were from a 7 mm dominant follicle from a women with regular menstrual cycles. The PCO granulosa cells were from 5-7 mm follicles of three patients who had classical PCO. Several interesting points emerge from the comparison: in each PCO patient there was a high level of bioactive FSH in the follicular microenvironment (greater than or equal to 5 mIU/ml; greater than or equal to 250 ng/ml). This is paradoxical because the concentration of steroids in follicular fluid suggests that PCO follicles are highly atretic and therefore should not contain detectable FSH activity. The capacity to secrete progesterone when challenged with a maximally effective dose of FSH and/or IGF-I, was markedly reduced (8- to 10-fold) in PCO compared to normal granulosa cells. This is in sharp contrast to the oestradiol responses which were much the same for PCO and normal granulosa cells. Also, the time course and dose-response effects of FSH showed some major differences between normal and PCO cells, that is, PCO cells lost their capacity to produce oestradiol when treated continuously with a maximally effective dose of FSH. They were also significantly more sensitive to FSH and failed to become more sensitive to IGF-I when treated with FSH.(ABSTRACT TRUNCATED AT 250 WORDS)

Cells, Cultured

Cyclic changes in insulin-like growth factor-binding protein-4 messenger ribonucleic acid in the rat ovary.

We have previously shown that the mRNA for insulin-like growth factor-binding protein-4 (IGFBP-4) is present in adult rat ovaries, being localized predominantly to granulosa cells of atretic follicles. Now we have considered the following questions. What class of atretic follicles expresses IGFBP-4 mRNA? How does IGFBP-4 mRNA expression change during the estrous cycle? In keeping with our earlier work, a strong hybridization signal for IGFBP-4 mRNA was present in subpopulations of follicles throughout the estrous cycle. In all cases, the hybridization signal was localized to granulosa cells. Among the various types of follicles, IGFBP-4 mRNA was present almost exclusively in atretic graafian (antral) follicles. Morphologically, the outer layer of granulosa cells was positive, while cells in the cumulus oophorous were negative. By Northern analysis and in situ hybridization, the levels of IGFBP-4 mRNA were found to change over the estrous cycle. At 1000 h on proestrus (before the LH/FSH surge), the hybridization signal was relatively weak, being restricted in some (but not all) atretic Graafian follicles. At 2000 h on proestrus, (after the LH/FSH surge), essentially all atretic Graafian follicles were strongly positive for the message. The pattern of hybridization was similar at 0200 h on estrus, but the signal was less intense. At 1000 h on estrus, the hybridization signal was variable, ranging from very strong to weak or undetectable in atretic follicles. At this stage, however, the highest levels of IGFBP-4 mRNA were measured by Northern analysis; interestingly, a strong signal became apparent in the stromal cells. On diestrous day 1, the message levels decreased, and the signal was restricted to some atretic follicles. On diestrous day 2, the hybridization signal was very weak. There was virtually no detectable IGFBP-4 mRNA in any healthy follicle. In summary, we found that IGFBP-4 mRNA is 1) not detected in healthy dominant follicles; 2) localized almost exclusively to atretic Graafian follicles, except on estrus when it also appears in stromal cells; 3) localized predominantly to the mural granulosa cells in atretic follicles; and 4) undergoes changes during the cycle, being most prominent around estrous morning. The possibility that IGFBP-4 plays a role in the cyclic destruction of cohort Graafian follicles at estrus, perhaps by mechanisms involving hormones, is discussed.

Animals

Localization of insulin-like growth factor-binding protein-5 messenger ribonucleic acid in rat ovaries during the estrous cycle.

To investigate the potential role of insulin-like growth factor-binding protein-5 (IGFBP-5) in ovarian physiology, we employed in situ hybridization and Northern analysis to localize IGFBP-5 mRNA in rat ovaries during the estrous cycle. By Northern analysis, the mRNA was abundant at all stages of the cycle. Two species of mRNAs were detected, with sizes of 6.0 and 1.8 kilobases, respectively. The relative amounts of the two transcripts changed throughout the cycle. By in situ hybridization, IGFBP-5 mRNA was expressed in only a few cell types: 1) granulosa cells of some atretic follicles, 2) some secondary interstitial cells, 3) some corpora lutea, and 4) the surface epithelium. The levels of message in both the granulosa and secondary interstitial cells changed over the cycle. At 1000 h on proestrus (before the LH/FSH surge), the message was expressed in only a few follicles. Interestingly, all were small atretic preantral (200-250 microns) follicles. At 2000 h on proestrus (after the LH/FSH surge), the IGFBP-5 mRNA was more abundant; now almost every atretic preantral follicle showed a strong hybridization signal. At 0200 and 1000 h on estrus, the mRNA appeared for the first time in granulosa cells of some atretic antral follicles and in secondary interstitial cells. Hence, virtually all atretic follicles, preantral and antral, now showed IGFBP-5 gene expression. In contrast to that on proestrus and estrus, the hybridization signal on diestrous days 1 and 2 was much less prominent and was found in only a few atretic preantral follicles. Throughout the cycle, IGFBP-5 mRNA was evident in some corpora lutea, but it was not particularly prominent. Abundant IGFBP-5 mRNA was evident in the surface epithelium, and no change was detected over the cycle. Dominant follicles were devoid of IGFBP-5 mRNA. In conclusion, this paper presents the first evidence that the IGFBP-5 gene is expressed in the adult rat ovary. The IGFBP gene is expressed in a cell-specific manner, e.g. in atretic granulosa, secondary interstitial cells, corpora lutea, and the surface epithelium, and the stage of the cycle significantly affected message levels, especially in atretic granulosa and secondary interstitial cells around estrous morning. These findings suggest that IGBP-5 may be an autocrine/paracrine regulator of ovarian physiology, particularly in relation to preantral follicle atresia.

Animals

Progesterone production by human granulosa cells cultured in serum free medium: effects of gonadotrophins and insulin-like growth factor I (IGF-I).

There is evidence that insulin-like growth factor I (IGF-I) is a potent regulator of oestradiol synthesis by human granulosa and luteal cells; however, the question of whether IGF-I regulates progesterone synthesis by these cell types has yet to be answered. As a first step towards this goal, we have compared the effects of IGF-I, follicle stimulating hormone (FSH), and human chorionic gonadotrophin (HCG) on progesterone production by human granulosa cells obtained from individual dominant and cohort follicles, and granulosa luteal cells from preovulatory follicles of patients undergoing in-vitro fertilization (IVF). Granulosa cells from normal, unstimulated follicles cultured in serum-free medium as controls (no additions) produced some progesterone spontaneously. In all cases, FSH stimulated basal progesterone levels (10-fold average increase) and the effect was dose-dependent (ED50 of FSH = 9.1 +/- 3.9 ng/ml). Similar effects were observed when granulosa cells from large follicles were incubated with HCG (ED50 of HCG = 6.9 +/- 2.8 ng/ml). By comparison, the effects of IGF-I on progesterone production were not marked, being absent in 80% of the follicles tested. However, granulosa cells from healthy follicles co-incubated with IGF-I and FSH or HCG produced more progesterone compared with cells treated with the gonadotrophins alone; this effect of IGF-I was dose dependent (ED50 of IGF-I = 10 ng/ml). When the effect of each agonist was tested on IVF granulosa luteal cells, HCG but not FSH or IGF-I stimulated basal progesterone levels but the HCG effect required a two-day lag phase.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Cyclic changes in follistatin messenger ribonucleic acid and its protein in the rat ovary during the estrous cycle.

The purpose of this research was to characterize the localization of follistatin mRNA and protein in the adult rat ovary during the 4-day estrous cycle. Analysis of ovarian sections using in situ hybridization and immunohistochemistry demonstrated the presence of follistatin messenger RNA (mRNA) and its protein in granulosa and luteal cells; no follistatin (message or protein) was detected in any of the other ovarian cell types. An important observation was that the intensity of follistatin signals changed during granulosa differentiation and the estrous cycle. During folliculogenesis, the first detectable hybridization signal appeared in the granulosa cells of secondary follicles, but the signal was weak. However, when a preantral follicle reached the early tertiary stage (beginning antrum formation), the message signal was very strong, being expressed in all granulosa cells of all such follicles (300-400 microns in diameter). In atretic follicles, follistatin mRNA was localized to granulosa cells, but only during the early stages. The above hybridization pattern of follistatin mRNA in prenatral and atretic follicles appeared constant throughout the estrous cycle. Interestingly, immunohistochemistry studies showed that the follistatin protein was detected only in certain follicles, being restricted to those which were healthy. On the morning of estrus, the follistatin protein was localized to a subpopulation of early tertiary follicles, presumably the dominant follicles selected to ovulate in the next cycle. As the dominant preovulatory follicles matured through diestrus and proestrus, the follistatin mRNA and protein signals appeared more intense in the granulosa cells. After ovulation, the hybridization and immunohistochemical signals continued to be strong in the newly formed corpora lutea on estrus morning. After luteolysis on diestrus-I, neither the follistatin message nor the protein was detectable in the corpora lutea. In conclusion, these results suggest that the follistatin message is present in all the granulosa cells of every developing follicle throughout the estrous cycle, but the follistatin protein appears to be present in only the selected dominant follicles. Accordingly, the possibility that follistatin might be an important regulatory molecule for selection/atresia should be considered.

Animals

Tissue-specific expression of four insulin-like growth factor-binding proteins (1, 2, 3, and 4) in the rat ovary.

We investigated the possible presence of the mRNAs encoding four insulin-like growth factor-binding proteins (IGFBP-1, -2, -3, and -4) in the rat ovary. It has been demonstrated previously by Northern analysis that adult rat ovaries contain mRNA transcripts for IGFBP-2 and -3. Here we show by Northern analysis that adult rat ovaries contain mRNA for IGFBP-4, but the mRNA for IGFBP-1 was below the limit of detection. Using in situ hybridization, IGFBP-1 mRNA was not detected in any of the ovaries tested. The IGFBP-2 mRNA was localized specifically in thecal interstitial cells (TIC) and secondary interstitial cells of all ovaries. The IGFBP-2 signal was very strong in TIC of all Graafian follicles (healthy and atretic) and very strong in all secondary interstitial cells located in different regions of the ovary, but weak in TIC of preantral follicles. The IGFBP-3 hybridization signal was localized specifically to some corpora lutea. Here the hybridization single for IGFBP-3 was strong and distributed throughout the corpus luteum, strong but localized to only some luteal cells, or not detectable. The IGFBP-4 mRNA was localized almost exclusively to granulosa cells of atretic follicles. The intensity of the IGFBP-4 signals appeared to increase as the level of atresia increased. In some cases, IGFBP-4 signals were detected in the TIC, but they were weak and variable. These results show that the mRNAs for IGFBP-2, -3, and -4 are localized to the interstitial cells, corpora lutea, and atretic granulosa cells, respectively. The tissue-specific synthesis of IGFBP subtypes in specialized ovarian cells provides an excellent system to study the manner in which IGFBP synthesis is controlled and their potential role as an autocrine and paracrine factors.

Animals

The effects of insulin and insulin-like growth factors-I and -II on estradiol production by granulosa cells of polycystic ovaries.

The objective of this work was to examine the effects of insulin-like growth factors (IGFs) on estradiol (E2) production by granulosa cells obtained from ovaries of patients with polycystic ovary disease (PCO). Granulosa cells, isolated from ovaries of three PCO patients, were cultured in serum-free medium containing either androstenedione alone (10(-7) M) or androstenedione plus graded doses of FSH, IGF-I, IGF-II, and/or insulin. At the end of the culture period (2, 4, or 6 days) E2 levels in the medium were measured by RIA. The results from each patient were similar, and therefore, the data were pooled. In the 6-day time-course experiments, the control (untreated) cells produced relatively high levels of E2 at 2 days; however, none was detected thereafter. Treatment with FSH (30 ng/mL) stimulated E2 production 4-fold at 2 days, but the stimulatory effects of FSH were not sustained during culture. IGF-I at 30 ng/mL mimicked the effects of FSH. Concomitant treatment with FSH and IGF-I caused synergistic increases in E2 production (3-, 13-, and 33-fold at 2, 4, and 6 days, respectively). Dose-response studies revealed that FSH and IGF-I stimulated E2 production in a dose-dependent fashion (ED50 of FSH and IGF-I, were 1.1 +/- 0.3 and 7.6 +/- 7.2 ng/mL, respectively). In the presence of a maximally effective dose of FSH (30 ng/mL), the cells appeared to become more responsive to IGF-I (ED50 of IGF-I plus FSH, 1.09 +/- 0.29 ng/mL); however, this effect was not significant (P = 0.086). In the presence of a maximally effective dose of IGF-I (30 ng/mL), the stimulatory effect of FSH on E2 production was dramatically amplified, but the IGF-I did not significantly (P = 0.85) change the potency of FSH (ED50 of FSH plus IGF-I, 1.07 +/- 2.3 ng/mL). Treatment with IGF-II over the concentration range of 0.1-100 ng/mL had no effect on either control or FSH-stimulated E2 production. Treatment with insulin, either alone or together with FSH, increased the levels of E2, but the insulin effects were seen only at the highest doses tested (0.3-10 micrograms/mL). The results in these in vitro experiments with PCO granulosa cells indicate that 1) physiological concentrations of IGF-I are as effective as FSH in stimulating E2 production; 2) IGF-I and FSH act synergistically to control the level of E2 production; and 3) this synergy was not observed with insulin or IGF-II.

Adult

Insulin-like growth factor-I selectively stimulates cholesterol side-chain cleavage expression in ovarian theca-interstitial cells.

Evidence accumulating in the literature supports the concept that insulin-like growth factor I (IGF-I) may be an important local regulator of ovarian function. Recent studies have demonstrated that IGF-I synergistically augments LH stimulation of theca-interstitial cell (TIC) androgen biosynthesis. The purpose of the present studies was to begin to elucidate the molecular mechanisms of the interaction between IGF-I and LH. TIC were purified from ovaries of hypophysectomized immature rats by Percoll gradient centrifugation. When isolated TIC (5 x 10(6) viable cells per dish) were cultured (4 days) in serum-free medium, low amounts (less than 10 ng/ml) of androsterone were produced. Basal androsterone production was not changed by incubation with IGF-I (30 ng/ml). Treatment with LH (50 ng/ml) caused an 85-fold stimulation of androsterone synthesis that was further increased 2.1-fold by concomitant treatment with IGF-I. Immunoblot analysis demonstrated that untreated TIC contained low levels of 17 alpha-hydroxylase/C17-20 lyase enzyme (P450(17 alpha] that were unchanged by incubation with IGF-I alone. LH treatment increased P450(17 alpha) content 5.5-fold and coincubation with LH plus IGF-I increased P450(17 alpha) content 16-fold above control levels. Cholesterol side chain cleavage enzyme (P450scc) was readily detected in immunoblots from untreated TIC. P450scc content was increased 2.6-fold by LH treatment and 4.2-fold by LH plus IGF-I. Interestingly, IGF-I alone induced a 2-fold increase in P450scc. To determine if the increases in P450scc content were associated with increased enzyme activity, progesterone production was measured.(ABSTRACT TRUNCATED AT 250 WORDS)

Androgens

Insulin-like growth factor-I regulates aromatase activity in human granulosa and granulosa luteal cells.

The purpose of this research was to test the hypothesis that insulin-like growth factor-I (IGF-I) regulates estradiol (E2) synthesis in human granulosa and granulosa luteal cells. Cells from individual follicles from spontaneous and human menopausal gonadotropin/CG-stimulated cycles were cultured in serum-free medium containing androstenedione, IGF-I, FSH, and/or CG. At 2, 4, and 6 days, E2 in the medium was measured by RIA. In the granulosa experiments, control cells produced basal levels of E2 at 2 days, and the levels increased with increasing follicle size. Treatment with FSH stimulated E2 production (on the average, 5-fold), and the effect was dose dependent (ED50 = 5 ng/mL or 16 mIU/mL). Incubation with IGF-I alone caused increases in E2 production comparable to those caused by FSH, and the IGF-I effect was dose dependent (ED50 = 8 ng/mL). In most cases, coincubation with FSH and IGF-I augmented E2 levels more than either hormone alone, and at 4 and 6 days the interaction was synergistic. The data from dose-response experiments suggested that the basis of the synergy between FSH and IGF-I was a marked potentiation by either hormone (approximately 10-fold) in the potency of the complementary hormone to stimulate E2 production. In the experiments with granulosa luteal cells from spontaneous and in vitro fertilization preovulatory follicles, the controls synthesized very high levels of E2 spontaneously at 2 days; however, E2 production declined 700% at 4 days, and no E2 was produced by control cells at 6 days. Treatment with FSH, CG, or IGF-I did not cause a significant increase in the high basal levels of E2 at 2 days. During subsequent culture, however, all three hormones stimulated E2 production at 4 and 6 days, but the increases were modest and not sustained. In contrast, coincubation of granulosa luteal cells with FSH plus IGF-I or CG plus IGF-I dramatically enhanced E2 production at 4 and 6 days (on the average, 4-fold), and the effects were sustained throughout the culture period. (ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Extrapituitary action of gonadotropin-releasing hormone: direct inhibition ovarian steroidogenesis.

Gonadotropin-releasing hormone (GnRH) and its agonistic analogs inhibited the follicle-stimulating hormone (FSH)-induced increase of estrogen and progesterone production in vitro by rat ovarian granulosa cells. Likewise, GnRH analogs inhibited FSH-induced changes in ovarian function in hypophysectomized rats in vivo. These results indicate that GnRH, in addition to its well-known gonadotropin-releasing action in the pituitary, exerts a direct inhibition of ovarian steroidogenesis.

Animals

Endocrine studies of normal and polycystic ovarian tissues in vitro.

The purpose of this study was to compare the steroidogenic potential of the granulosa, theca, and medullary tissues from polycystic and normal ovaries. These ovarian endocrine compartments were isolated from appropriate ovaries and were cultured in vitro for three days in the absence (control) and presence of follicle-stimulating hormone (FSH)/luteinizing hormone (LH) (1 lU/ml), N6,O2-dibutyryladenosine-3':5''-cyclic monophosphoric acid (Bu2cAMP) (10(-2)M), and adrenocorticotropic hormone (ACTH) (1.3 U/ml). After the incubation, steroids in the media were measured by radioimmunoassay. Granulosa cells (10(5) cells per dish) from 4 to 7 mm follicles of normal and polycystic ovaries secreted progesterone spontaneously during the culture period and the production of progesterone was markedly stimulated (between tenfold and thirtyfold) by gonadotropins and Bu2cAMP but not by ACTH. Little, if any, androgen (androstenedione, dehydroepiandrosterone, and testosterone) or estrogen (estrone and estradiol) accumulated in the media of any granulosa cell culture. The control cultures of theca tissue from normal and polycystic ovaries secreted large amounts of androstenedione and progesterone and the production of these steroids by normal and polycystic ovary theca was stimulated in most cases by LH/FSH and Bu2cAMP but not by ACTH. Both normal and polycystic ovary theca secreted some testosterone and dehydroepiandrosterone but little, if any, estrone or estradiol accumulated in any theca culture. The medullary tissue of normal and polycystic ovaries produced only trace amounts of steroids in vitro except for the results from one polycystic ovary with hyperthecosis in which case significant quantities of C19 and C18 steroids were secreted. These experiments have demonstrated that isolated granulosa and theca cells from midantral follicles of normal and polycystic ovaries have a similar capacity to secrete C21 and C19 steroids in the absence and presence of trophic agents. Therefore, it seems probable that chronic anovulation in patients with polycystic ovaries is not caused by an obvious deficiency in the de novo steroidogenic potential of the multiple midantral follicles of the polycystic ovaries or by the absence of gonadotropin receptors on the polycystic ovary follicular cells.

Adrenocorticotropic Hormone

Progesterone receptor in the rat ovary: further characterization and localization in the granulosa cell.

We have recently described a progesterone receptor in the cytosol of ovaries of hypophysectomized, estrogen-primed, immature rats. This progesterone receptor was shown to be a thermolabile, saturable protein, which is specific for progestins (R5020 and progesterone), and elutes at the void volume of a Sephadex G-200 column. In the present study, we performed a more detailed analysis of the biochemical properties of this receptor and examined its cellular localization within the ovary. Treatment of the ovary cytosol with protamine sulfate and N-ethyl maleimide abolishes the specific binding of 3H-R5020, indicating that the receptor is an acidic protein containing cysteine residues necessary for binding. Gel exclusion chromatography shows the progesterone receptor to have a mean Stokes radius of 86 A and a molecular weight of approximately 300,000 daltons. Kinetic analysis indicates that the receptor--R5020 complex dissociates very rapidly, with a t1/2 of 10 minutes. The cytosol of isolated granulosa cells bind 3H-R5020 specifically, demonstrating that the ovarian progesterone receptor is present in the granulosa cell.

Animals