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Follicular Atresia, follicular fluid hormones, and circulating hormones during the midluteal phase of the estrous cycle in pigs.

The incidence of atresia, concentrations of follicular fluid steroids, and circulating concentrations of estradiol, FSH, and progesterone were investigated to determine whether there was any evidence for a wave of follicular activity or atresia between Days 7 and 15 of the estrous cycle in pigs, Cyclic pigs (gilts) were slaughtered on Days 7, 9, 11, 13, and 15 (4, 4, 4, 4, and 3 pigs per day), and 287 follicles > 2 mm were dissected from ovaries to recover follicular fluid and granulosa cells. Apoptotic (Ao) granulosa cells were those containing sub-diploid DNA fluorescence as determined by flow cytometry. follicles with > or = 10% Ao granulosa cells were classified as atretic, and those with < 10% Ao granulosa cells were designated nonatretic. The percentage of atretic follicles (AF) per pig was 35.5 +/- 4.7 (mean +/- SEM), and while the percentage of AF ranged from 12% to 73%, means did not differ significantly among days. Mean follicular estradiol concentration was higher (p < 0.05) in nonatretic follicles (NAF) than in AF; in NAF, the concentration decreased (p < 0.05) from 15 ng/ml on Day 7 to 2.5 ng/ml on Day 11 and then increased (p < 0.05) to 10 ng/ml on Day 15 of the cycle. Mean follicular progesterone concentration was higher (p < 0.05) in AF than in NAF, while follicular androstenedione concentration (20 +/- 1.5 ng/ml, overall mean +/- SEM) did not differ between AF and NAF. Mean plasma estradiol, FSH, and progesterone concentrations did not differ among days of the cycle or differ significantly during the last 42 h before slaughter. Plasma estradiol and FSH concentrations were not significantly correlated with percentage of AF or with follicular steroid concentrations. These results support the notion of continuous growth and atresia of ovarian follicles in pigs independent of changes in plasma FSH and follicular steroid concentration, without evidence for a dominant cohort of follicles during the luteal phase of the estrous cycle.

Animals↗

Secretory pattern of inhibin A, inhibin B and inhibin pro-alpha C during induced follicular atresia and subsequent follicular development in the golden hamster (Mesocricetus auratus).

The changes in plasma concentrations of inhibins A, B and pro-alpha C were determined in the cyclic golden hamster during follicular atresia induced with antiserum against luteinizing hormone releasing hormone (LHRH-AS) at 1100 h on day 4 (day 1=day of ovulation). Follicular status in the ovary was also studied by determining the number of follicles ovulating in response to human chorionic gonadotrophin (hCG) injection. The time-courses of changes in plasma concentrations of inhibins A, B and pro-alpha C were different from each other during induced follicular atresia and subsequent follicular development. Plasma concentrations of inhibin A decreased to 58.6% of initial values by 24 h after LHRH-AS treatment, and then remained relatively low until at least 60 h later. Plasma concentrations of inhibin B decreased to 64.2% of the initial values by 18 h after LHRH-AS treatment and remained at basal values for 36 h, but increased abruptly to greater than initial values at 42 h after the treatment. Plasma concentrations of inhibin pro-alpha C increased at 6 and 12 h, decreased suddenly to 21.9% of the initial values by 24 h after LHRH-AS treatment, and then gradually increased until 60 h after LHRH-AS. The number of follicles responding to hCG decreased gradually between 0 and 30 h after LHRH-AS, when no ovulations were observed, and then gradually increased until 60 h. The changes in follicular ovulatory responses to hCG correlated with the plasma profile of inhibin A throughout the experiment. These results suggest that inhibin A is mainly secreted by large antral follicles. In contrast, during the subsequent follicular development, the plasma concentration of inhibin B increased earlier than that of inhibin A. These results suggest that inhibin B is secreted by small and large antral follicles. Plasma concentrations of inhibin pro-alpha C were high at a time when plasma concentrations of oestradiol-17 beta had already decreased, indicating that inhibin pro-alpha C is secreted not only from healthy follicles but also from early atretic antral follicles.

Animals↗

Induced follicular atresia in rhesus monkeys: strength-duration relationships of the estrogen stimulus.

We have demonstrated that 17 beta-estradiol (E2) administered to monkeys for 24 or 48 h from day 6 of the menstrual cycle results consistently in degeneration of the preovulatory follicle. The present experiments were conducted to determine the strength-duration characteristics of this effect and to evaluate the occurrence of partial atresia together with subsequent effects on luteal function. Square wave increments in circulating amounts of estrogen were achieved by varying the number and size of Silastic capsules containing E2. Treatments included 0.5, 1, 2, 4, or 10 capsules placed sc for 6, 12, or 24 h. Forty-six menstrual cycles were studied in 33 animals. Increments in serum concentrations of estrogen approximating 300-400 pg/ml and sustained for 24 h or those greater than 600 pg/ml for only 6 h were maximally effective, while 300-400 pg/ml for 12 h or 100 pg/ml for 24 h were almost as effective. Increments less than about 60 pg/ml were essentially ineffective in inducing atresia. After induced atresia, follicular phases were extended by about 8 days, permitting a substitute follicle to develop. Partial atresia, represented by delayed ovulation of the original follicle, was noted in only three cycles. However, another apparent effect of estrogen on follicular development was evident in the form of luteal phase defects which occurred with high incidence in all groups, whether the corpus luteum resulted from the original or substitute follicle. Thus, full atresia induced by estrogen is largely an all or none phenomenon, but lesser effects may be manifested as deficient luteal function. This atretogenic effect of estrogen may be exerted at the ovarian level or may be mediated by the transient suppression of FSH. On the other hand, increases in FSH after treatment may stimulate development of a substitute follicle or maintain follicles not undergoing full atresia.

Animals↗

Mechanism of granulosa cell death during follicular atresia depends on follicular size.

Changes in granulosa cell lysosomal and mitochondrial functions in relation to follicular size and to the stage of atresia were studied by fluorescent emission spectra and intensity using flow cytometry. Antral follicles were grouped by size in two groups: small, 3-6 mm and large, >6mm in diameter, and classified into three stages of atresia: non-atretic, initially atretic and advanced atretic. Differences in Rhodamine 123 (Rh123) and Acridine Orange (AO) fluorescent intensity indicated that changes in mitochondrial function are the primary mechanism of granulosa cell death in atretic follicles 3-6 mm in diameter, while its role in granulosa cell death in >6 mm atretic follicles seemed to be less important. However, modifications in lysosomal function (shown by a decrease in fluorometric intensity of AO incubated granulosa cells) were mainly associated with cell death in large atretic follicles. Our results support the hypothesis that the pathway of granulosa cell death during follicular atresia depends on the state of energy metabolism or on the production of hypoxic conditions related to follicular size. Changes in mitochondrial membrane potential and production of permeability transition pores were the main changes found in small follicles, while lysosomal function destabilization seemed to be the major cause of granulosa cell death during atresia in large follicles.

Acridine Orange↗

Involvement of apoptosis in ovarian follicular atresia and postovulatory regression.

In the ovary, greater than 99% of the follicles present at birth are destined to degenerate during life. In humans, less than 400 of the more than 400,000 follicles found at puberty will eventually ovulate whereas the overwhelming majority of follicles undergo atresia. Although follicular atresia plays a critical role during the recruitment of follicles for ovulation, the exact mechanism of this process is unknown. In chicken and porcine ovaries, atretic follicles can be morphologically distinguished from their healthy counterparts of the same size. Adapting a sensitive 3'-end labeling method for DNA analysis, we identified internucleosomal cleavage of cellular DNA in atretic (but not normal) follicles of both animal species, resembling that found during programmed cell death in embryogenesis, autoimmune T-cell removal and prostate regression. The present findings provide a basis for elucidating the hormonal signals involved in the initiation of follicular atresia during follicle recruitment, reproductive aging and premature ovarian failure.

Animals↗

Role of gelatinase on follicular atresia in the bovine ovary.

Follicular atresia, like follicular growth and ovulation, is characterized by excessive tissue remodeling. It is hypothesized that probably one of the tissue-remodeling enzymes, such as the gelatinases, could be playing an important role in this process. The present study was undertaken to determine the role of gelatinase on follicular atresia in the cow. Follicles of 2-6 mm in diameter were dissected from ovaries, and follicular fluid was categorized according to the morphological appearance of the cumulus-oocyte complexes. Gelatinase activity within the follicular fluid was analyzed by gelatin zymography, and film in situ zymography was employed in order to localize gelatinase. TUNEL was performed on cryosectioned ovaries to understand follicular health. The concentrations of steroids in follicular fluid were also measured by solid phase fluoroimmunoassay. ProMMP-2 was detected in all normal and atretic categories of follicular fluid. The active form of MMP-2 and an additional band of proMMP-9 were detected only in atretic follicular fluid. Gelatinase activity was recorded in both granulosa cells (GCs) and theca cells (TCs) but were found in comparatively higher numbers in those follicles that exhibited a thinned and partially detached granulosa layer. TUNEL confirmed that apoptosis had commenced in the GCs of follicles of the latter category. The estradiol-17beta (E(2)):progesterone (P(4)) ratio was found to be significantly lower in atretic follicles than in normal follicles. These results suggest a plausible role for gelatinase in follicular health, especially the active form of MMP-2 and proMMP-9, and that bovine follicular fluid may be a key indicator of atresia.

Animals↗

Caspase-3 in the rat ovary: localization and possible role in follicular atresia and luteal regression.

Apoptosis, the cellular mechanism of ovarian follicular atresia and luteal regression, is triggered by the activation of a proteolytic cascade of cysteine aspartate-specific proteases (caspases). The principle downstream effector of cell death is caspase-3, but little is known about the role or regulation of this enzyme in ovarian apoptosis. Two substrates of caspase-3, actin and poly(ADP-ribose) polymerase (PARP), are inhibitors of DNase I, which is the endonuclease responsible for ovarian apoptotic DNA degradation. We therefore investigated the proteolytic cleavage of actin and PARP as well as the localization of caspase-3 during follicular atresia (induced by gonadotropin withdrawal) and luteal regression (induced by prostaglandin F2alpha) in the rat ovary. Apoptotic DNA degradation was evident during both follicular atresia and luteal regression, but cleavage of PARP and actin was observed only during luteal regression. Caspase-3 was localized in luteal cells of healthy corpora lutea (CL) and in theca, but not in granulosa cells of healthy follicles. However, caspase-3 immunostaining was evident in granulosa cells of atretic follicles in a pattern similar to that of the localization of granulosa cell death. There was no difference between healthy and apoptotic CL in the distribution or intensity of caspase-3 staining. These results demonstrate that the cleavage of actin and PARP are not necessary for activation of apoptotic DNA degradation during ovarian apoptosis. In addition, the presence of caspase-3 in granulosa cells of atretic, but not healthy, follicles suggests that the expression of this enzyme is regulated by gonadotropin and may be up-regulated as part of the apoptotic process in granulosa cells.

Animals↗

Follicular atresia and LH concentrations during the follicular phase of the estrous cycle in the goat (Capra hircus).

The objective of the study was to identify the effects of LH on the final follicle maturation process as well as the incidence of atresia during the follicular phase of the goat's estrous cycle. In Experiment 1, concentrations of the LH were measured during the follicular phase of a synchronized cycle in 8 Canary goats. In Experiment 2, the same animals were synchronized again. On each day of a 4-day experimental period (day 0 = day of sponges withdrawal), 2 of the goats were bilaterally ovariectomized. Follicles with a diameter > 1 mm were dissected out to obtain qualitative histological data in normal, early atretic I, early atretic II, advanced atretic I and advanced atretic II follicles. The total interval from sponge withdrawal to LH peak was 77.5 +/- 9.8 h. LH peak concentration averaged 44 +/- 5.3 ng/ml and the mean length of the preovulatory surge (amounts over 10 ng/ml) was 8.9 +/- 0.9 h. During the total follicular phase, there were more atretic follicles than normal follicles (58 vs. 30, P < 0.05). The number of early and advanced atretic follicles was similar. There were more early atresia I than early atresia II follicles (23 vs. 6, P < 0.05). On day 2, the number of advanced atretic follicles was greater than early atretic follicles (10 vs. 4, P < 0.05). There was an increase in the number of early atretic follicles from day 2 to day 4 (4 vs. 9, P < 0.05), which was consistent with the effects of the preovulatory LH surge.

Administration, Intravaginal↗

Follicular atresia as an apoptotic process: atresia-associated increase in the ovarian expression of the putative apoptotic marker sulfated glycoprotein-2.

OBJECTIVE: To evaluate the possibility that morphologically confirmed/hypophysectomy-induced ovarian follicular atresia, a putative apoptotic process, is coupled to alterations in the steady-state levels of ovarian sulfated glycoprotein-2 (SGP-2) transcripts. METHODS: Hypophysectomy-induced follicular atresia in immature rats, morphologically confirmed at the light and electron microscopic levels, was correlated with alterations in the steady-state levels of ovarian SGP-2 transcripts as assessed by a solution hybridization/RNase protection assay. Cellular localization was accomplished by in situ hybridization technology. RESULTS: Hypophysectomy of the 24-day-old immature rat, an established precipitant of follicular atresia, led (3 days later) to a significant (P < .05) increase (up to 3.3-fold) in the relative abundance of densitometrically quantified ovarian SGP-2 transcripts compared with age-matched intact controls. Detailed time-course analysis after hypophysectomy revealed significantly (P < .05) increased ovarian SGP-2 mRNA expression as early as 2 days after hypophysectomy; no further increments were noted on days 4 or 8. Light microscopic analysis of comparable ovarian material 4 days after hypophysectomy revealed increased numbers of atretic follicles displaying large numbers of degenerating granulosa cells. Electron microscopic analysis of the degenerating cells of atretic follicles (from hypophysectomized rats) disclosed nuclear condensation and cytoplasmic shrinkage as well as apoptotic bodies at all levels of the granulosa cell layer. In situ hybridization established the granulosa cell of the intact untreated rat as the somatic cell concerned with SGP-2 gene expression. In turn, hypophysectomy led to an increase in SGP-2 expression at the level of the theca-interstitial cell, an effect prevented by the concurrent provision of pregnant mare serum gonadotropin (PMSG). The hypophysectomy-induced increase in ovarian SGP-2 transcripts was similarly reversed (54% inhibition by day 27) by the concomitant provision of FSH, an established antiatretic principle. The delayed administration (day 26) of a single dose of PMSG to rats hypophysectomized on day 24 eliminated the hypophysectomy-induced increase in ovarian SGP-2 transcripts as assessed on day 28. Qualitatively similar but quantitatively more pronounced increments in ovarian SGP-2 gene expression were obtained when atresia was induced by hypophysectomy of PMSG-primed immature rats. CONCLUSIONS: These observations establish the immature rat ovary as a site of SGP-2 gene expression and reveal hypophysectomy-induced follicular atresia to result in the up-regulation of ovarian (specifically, theca-interstitial) SGP-2 gene expression, an effect prevented by the concurrent provision of FSH or PMSG. To the extent that SGP-2 is an acceptable apoptotic marker, the present findings support the hypothesis that ovarian follicular atresia may be an apoptotic process.

Animals↗

[Effect of angiotensin II on follicular atresia in mouse].

The effect of angiotensin II (Ang II) on the follicular development was studied by using an animal model of follicular atresia induced by pregnant mare s serum gonadotropin (PMSG). The results showed that: (1) a large number of atretic follicles were found in the ovary of 24-day-old mouse after 6-day treatment of PMSG. Deoxyribonucleic acid (DNA) extracted from granulosa cells clearly showed a ladder band under agarose gel electrophoresis analysis. (2) the contents of Ang II in the ovary extremely increased with the development of follicular atresia. (3) Ang II significantly antagonized the stimulating effect of the follicle-stimulating hormone (FSH) on estradiol (E(2)) generation of granulosa cells. It is suggested that Ang II may be involved in the regulation of follicular atresia in mouse.

Angiotensin II↗

Light microscopic, enzyme biochemical and steroid analytical investigations of follicular atresia in the ovary of domestic goose.

Follicular atresia in the ovary of the domestic goose was investigated by light microscopic, steroid RIA and lysosomal enzyme activity measuring methods during the spring reproduction cycle. Degenerative processes are associated with the transformation and proliferation of granulosa, internal and external thecal cells in the follicle. Seven types of atretic follicles were identified on the basis of the presence, absence or dominance of cells containing lipids and synthesizing steroids. Conclusive evidence for the relation between cell type and hormone content was found only in one type: in type 6, stromal glandular cells show an extremely intensive PROG synthesizing activity. In the other types it was shown that glandular type of cells which become proliferative during atresia possess a relatively uniform steroid synthesizing ability. This uniformity is also seen in the high activity of lysosomal enzymes regardless of the size and type of atretic follicles.

Acid Phosphatase↗

Is follicular atresia biphasic?

OBJECTIVE: To examine the rate of human follicular depletion and the interpretation of curved scatters on log-linear plots. DESIGN: Four mathematical models were tested with use of data drawn from published autopsy studies and histologic analyses of ovaries. SETTING: None. PATIENT(S): None. INTERVENTION(S): None. MAIN OUTCOME MEASURE(S): None. RESULT(S): Human oocyte depletion data do not support the inference of a biphasic follicular atresia. On original measurement scales there is no perturbation in the data between ages 37 and 40, and the instantaneous rate of follicle loss is lower after age 40 than ever before. CONCLUSION(S): There is no abrupt increase in the "rate" of follicular atresia that corresponds with a drop in fecundability or an increase in risk of chromosomal abnormalities at approximately age 38. The apparent abrupt increase in rate of follicular depletion is an artifact of log-linear transformation.

Adolescent↗

[Mechanism, regulation, and manipulations of follicular atresia].

In ovaries of mammals, an intense loss of germinal cells occurs by follicular atresia throughout the life. In atretic antral follicles, granulosa cells stop proliferating and become apoptotic. Main effectors of apoptosis are caspases which are activated by two ways in granulosa cells, the one involving Fas/TNF-alpha receptor, the other involving factors of the bel-2 family. Atresia is triggered when some essential factors supporting follicular development are lacking. Particularly, terminal follicular development is strictly dependent upon gonadotropin (FSH, then LH in the final preovulatory stage) supply, but factors acting in a paracrine way (growth factors, cytokines, steroids, constituents of extracellular matrix) play also important roles in amplifying gonadotropin action in follicular cells. Some pathological situations such as premature ovarian failure would result from accelerated follicular atresia, triggered by interactions between follicular cells and cells of the immune system. Current methods to control atresia consist in administrating exogenous gonadotropins, or indirectly increasing endogenous gonadotropins, or increasing follicular cell responsiveness to gonadotropins.

Apoptosis↗

Expression and activity of Apaf1 and caspase-9 in granulosa cells during follicular atresia in pig ovaries.

Apoptosis in granulosa cells plays a crucial role in ovarian follicular atresia, but the intracellular regulating mechanism, especially the mitochondrion-dependent apoptosis signalling pathway, is still largely unknown. This study examined whether the mitochondrial pathway is associated with granulosa cell apoptosis during atresia in pig ovaries. Both mRNAs of caspase-9 and apoptotic protease-activating factor 1 (Apaf1), which are major signal transducing components in the mitochondrial pathway, were detected in granulosa cells in healthy, early atretic and progressed atretic follicles by RT-PCR. No changes in the expression of Apaf1 mRNA were seen during follicular atresia, but the expression of caspase-9 mRNA increased during atresia. Apaf1 protein was steadily detected in granulosa cells prepared from healthy, early atretic and progressed atretic follicles by western blot analysis, but high expression of the precursor of caspase-9 (procaspase-9) was detected only in granulosa cells of healthy follicles. Decreased procaspase-9 protein was demonstrated during follicular atresia. Proteolytic activity of caspase-9 increased during atresia, in agreement with the diminution of procaspase-9 protein. Intensive expression of caspase-9 mRNA was demonstrated in the granulosa cells of early atretic and progressed atretic follicles but not in those of healthy follicles. These results indicate that the mitochondrial signalling pathway, which is mediated by Apaf1 and caspase-9, plays a crucial role in determining the fate of granulosa cells during atresia in pig ovaries.

Animals↗

Theca interna: the other side of bovine follicular atresia.

Currently, histological classifications of ovarian follicular atresia are almost exclusively based on the morphology of the membrana granulosa without reference to the theca interna. Atresia in the bovine small antral ovarian follicle has been redefined into antral or basal atresia where cell death commences initially within antral or basal regions of the membrana granulosa, respectively. To examine cell death in the theca interna in the two types of atretic follicles, bovine ovaries were collected and processed for immunohistochemistry and light microscopy. Follicles were classified as healthy, antral atretic, or basal atretic. Follicle diameter was recorded and sections stained with lectin from Bandeiraea simplicifolia to identify endothelial cells or with an antibody to cytochrome P450 cholesterol side-chain cleavage to identify steroidogenic cells and combined with TUNEL labeling to identify dead cells. The numerical density of steroidogenic cells within the theca interna was significantly reduced (P < 0.001) in basal atretic follicles in comparison with other follicles. Cell death was greater in both endothelial cells (P < 0.05) and steroidogenic cells (P < 0.01) of the theca interna of basal atretic follicles compared with healthy and antral atretic follicles. Thus, we conclude that the theca interna is susceptible to cell death early in atresia, particularly in basal atretic follicles.

Analysis of Variance↗

Biochemical identification of apoptosis (programmed cell death) in granulosa cells: evidence for a potential mechanism underlying follicular atresia.

In the present study, we examined the possibility that granulosa cell death during ovarian follicular atresia occurs by apoptosis (programmed cell death). To investigate this possibility, atresia was induced in immature female rats by injecting 15 IU PMSG. Controls received either vehicle or no treatment. PMSG-treated animals were killed on days 1-5 post-injection while controls were killed on days 1 or 5. The onset of atresia was assessed histologically by light microscopic inspection of 5 microns tissue sections and functionally by quantification of serum progesterone and estrogen levels. Apoptosis is characterized by the cleavage of genomic DNA into oligonucleosomal length fragments by a Ca2+/Mg(2+)-dependent endogenous endonuclease. Such fragments form a distinctive ladder pattern when separated electrophoretically. Accordingly, the occurrence of apoptosis in granulosa cells was assessed by examining the pattern of fragmented DNA in cell lysates after agarose gel electrophoresis. Gels were stained with ethidium bromide and DNA visualized by UV transillumination. The earliest morphological signs of atresia were detected 4 days after PMSG injection as evidenced by degeneration and detachment of granulosa cells from the basal lamina. Serum estrogen increased from basal to levels 7-fold over controls by day 3 after PMSG treatment, falling to control values by day 4 and thereafter. In contrast, progesterone remained basal for the first 3 days, rising to levels 3-fold and 8-fold above controls 4 and 5 days after PMSG treatment, respectively. Such shifts in the ratio of estrogen to progesterone production are known to be characteristic of follicular atresia. Finally, electrophoretic analysis of low mol wt DNA in granulosa cell lysates revealed a definitive ladder pattern of oligonucleosomal length DNA fragments (characteristic of apoptosis) on days 4 and 5 after PMSG injection. This pattern was not detectable on days 1 and 2 after treatment. Lysates obtained 3 days after PMSG treatment showed a faint apoptotic-like pattern of DNA fragments; a result consistent with other systems in which DNA cleavage begins before any morphological signs of death. Interestingly, a ladder pattern of DNA fragments was present in control lysates suggesting that granulosa cell death under normal (vs. induced) conditions of atresia in immature rats occurs by apoptosis. These data demonstrate an intimate association between apoptotic-like events and dying granulosa cells and thus support the possibility that apoptosis is involved in the induction of follicular atresia.

Animals↗

Temporal changes in inhibin, steroid hormones, and steroidogenic enzymes during induced follicular atresia in the hypophysectomized cyclic hamster.

The time course for loss of ability of Graafian follicles to secrete inhibin and estradiol was investigated during induced follicular atresia. Cyclic hamsters were hypophysectomized on Day 1 (estrus) and injected s.c. with 30 IU eCG. Thereafter, these animals were given a single i.p. injection of antiserum to eCG on the morning of Day 4 to induce follicular atresia in a rapid and predictable manner. A drastic fall in plasma levels of estradiol and testosterone was noted within 1 h, whereas relatively high levels of plasma inhibin were maintained until 12 h, followed by an abrupt decline by 24 h. The first histological signs of pyknosis in granulosa cells appeared by 4 h, and breakdown of the mural granulosa layer was observed in most follicles by 8-12 h after immunoneutralization of circulating eCG. According to immunohistochemical analysis, inhibin activity was unchanged in granulosa cells at 12 h followed by a slight decline by 24 h, whereas positive reaction for aromatase in these cells rapidly declined by 8 h. Immunoreactivity of 17alpha-hydroxylase/C17,20-lyase (CYP 17) was also reduced in theca cells by 8 h. These results indicate that granulosa cells continue to secrete inhibin during the process of follicular atresia, although these cells quickly shut off the secretion of estradiol, and theca cells shut off the secretion of testosterone. The present results indicate as well that a rapid decline of estradiol and testosterone in plasma is an early sign of atresia in antral follicles. These results, therefore, suggest that the loss of enzymatic activity of aromatase in granulosa cells and CYP 17 in theca cells is a part of the process of follicular atresia.

Animals↗