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L L Ewing

Publications and source records attributed to L L Ewing.

At least 19 recordsLinked to original sources

The requirement of the testis in establishing the sensitivity of the canine prostate to develop benign prostatic hyperplasia.

A long-term study on the requirement of the testis in establishing the sensitivity of the canine prostate to develop benign prostatic hyperplasia (BPH) was conducted using 23 aging beagles both with and without their testes. The dogs had received long-term restoration of testosterone and estrogen through silicone implants. When young beagles (0.5 to 1 year of age) were castrated and normal serum testosterone and estrogen levels restored during aging to 5 years, only 50% of these dogs developed BPH in the absence of their testes as opposed to 100% BPH development in intact controls. In addition, two-thirds of the prostates in the treated groups were remarkably reduced in size, being smaller than any prostate observed in the intact controls. If, following castration, the steroid restoration was withheld for 4 years during aging and subsequently administered starting at 5 years of age and continuing for a 6-month period, none of the animals developed complex BPH. Moreover, two-thirds of the prostate glands were reduced in size by more than 60% and were atrophied in spite of the maintenance of normal prostatic tissue dihydrotestosterone levels. Regardless of the time of steroid restoration to a castrate beagle, the periurethral zone of the canine prostate exhibits various degrees of atrophy indicating functional regions within the canine prostate that are sensitive to the requirements of the testes during aging. This study implicates the importance of the testis in increasing the probability and/or sensitivity for the full development of canine BPH.

Aging

Soy of dietary source plays a preventive role against the pathogenesis of prostatitis in rats.

This study examined the effects of diet on the development of prostatitis in male rats. Adult male rats were placed on either of two specially formulated diets which differed from one another by the presence or absence of soy as the protein source. A third group of rats (control) was fed standard laboratory rat chow which also includes soy as a source of protein. After 11 weeks, it was found that rats maintained on soy-free diet developed prostatitis mainly in the lateral lobe of the prostate. Increased severity and incidence of prostatitis in rats maintained on the soy-free diet coincided with a significant decrease in urinary excretion of various phytoestrogens. There was no evidence of prostatitis in rats maintained on soy-containing diets. Urinary excretion of phytoestrogens in rats maintained on soy-containing diet was also not different from controls. These results suggest that soy as a dietary source plays a protective role against the development of prostatitis in rats, and indicate that the ventral, lateral and dorsal lobes of the rat prostate have different sensitivities to alterations in dietary factors.

Animals

Immature rat Leydig cells are intrinsically less sensitive than adult Leydig cells to ethane dimethanesulfonate.

Leydig cells from immature rat testes appear to be insensitive to doses of ethane-1,2-dimethanesulfonate (EDS) which eliminate Leydig cells from adult rat testes. We sought to determine whether this differential response to EDS is intrinsic to the Leydig cell or mediated by other intra- or extratesticular differences between adult and immature rats. To differentiate among these possibilities, Leydig cells were exposed to EDS (1) in vivo, (2) through in vitro testicular perfusion, or (3) in highly purified Leydig cell primary cultures. Four days after ip injections of 85 mg EDS/kg body wt Leydig cells were eliminated from testes of adult, but not immature rats. Total androgen production by testes perfused in vitro with 94 micrograms EDS/ml was dramatically reduced in adult, but not immature rats. Highly purified adult, but not immature, rat Leydig cells were far more sensitive to the effects of EDS on luteinizing hormone-stimulated androgen production (functional effects; apparent EC50 = 94 for adult and 407 micrograms/ml for immature rat Leydig cells) and on [35S]methionine incorporation (cytotoxic effects; apparent EC50 = 140 for adult and 1000 micrograms/ml for immature rat Leydig cells). Finally, the in vitro effects of EDS were both cell type and chemical specific. Since the differential response of adult and immature rat Leydig cells to EDS was manifest in vivo, during in vitro testicular perfusion, and in highly purified Leydig cell primary cultures, we conclude that immature rat Leydig cells are intrinsically less sensitive to the specific cytotoxic effects of EDS than adult rat Leydig cells.

Aging

Hormonal control of Leydig cell differentiation.

Leydig cell progenitors contain significant concentrations of androgen receptors. When the metabolism of DHT to 3 alpha-DIOL is blocked, DHT stimulates testosterone production by Leydig cell progenitors, most probably via an androgen receptor dependent mechanism. Rapid metabolism by 3 alpha-HSD may limit the potency of exogenous DHT to stimulate differentiation of Leydig cell progenitors in vitro. Insulin-like growth factor-I enhances androgen production by purified immature Leydig cells. The elevated sensitivity of immature Leydig cells versus adult Leydig cells to IGF-I stimulation indicates that this peptide hormone has a role in their differentiation during puberty.

Androgens

Estradiol regulation of the rabbit corpus luteum: in vivo and in vitro studies.

The objective of this study was to determine whether estradiol has a direct effect on progesterone secretion by the rabbit corpus luteum. Empty or estradiol-filled Silastic capsules were implanted sc into pseudopregnant rabbits (day 0). Ten days later (day 10), peripheral blood was obtained via the marginal ear vein, and Silastic capsules were removed. Twenty-four hours after capsule removal (day 11), blood samples were obtained and ovaries removed for in vitro perfusion. The artery and vein of each ovary were individually cannulated, and ovaries were perfused in vitro for 6 h. Mean progesterone secretion rates were determined from perfusate samples taken every 30 min. On day 10, serum progesterone concentrations were similar in control and estradiol-treated animals. On day 11, 24 h after withdrawal of Silastic capsules, serum progesterone concentration in the estradiol-treated rabbits decreased significantly compared to controls. The withdrawal of estradiol also significantly reduced the secretion of progesterone by in vitro perfused ovaries in estradiol-withdrawn rabbits compared to empty capsule controls. Addition of estradiol or 25-hydroxycholesterol (25-OH) to the perfusion medium significantly increased progesterone secretion by ovaries from estradiol-withdrawn rabbits but not to control values. In contrast, a combination of estradiol plus 25-OH restored progesterone secretion to control levels. Although estradiol together with 25-OH stimulated progesterone secretion 24 h after estradiol withdrawal, progesterone secretion in vitro was unaffected 48 h after capsule removal, whereas pregnenolone stimulated secretion 5-fold. These results demonstrate that estradiol has a direct and acute stimulatory effect on progesterone secretion by the rabbit corpus luteum.

Animals

Male reproductive toxicology.

The objective of this paper is to discuss recent developments in the application of biological markers to animal models of male reproductive toxicology. We have divided this paper into three major sections: First, a discussion of the testing protocols currently under investigation by the National Toxicology Program (NTP) and the EPA's Health Effects Research Laboratory; second, an examination of what we consider to be important and practical biological markers available to investigators to assess the effects of toxicants on the male reproductive system; and third, a discussion of promising new technologies, such as molecular and immunological probes, and in vitro techniques using isolated and cultured cells, which in the future may be exploited for the development of additional biological markers of male reproductive toxicity. Where appropriate we have made specific recommendations for the use of these biological markers in animal protocols and have pointed out those noninvasive markers which have application to screening human males.

Animals

Sources of error in the estimation of Leydig cell numbers in control and atrophied mammalian testes.

The effects of assuming (i) that testicular tissue shrinks equally regardless of species or treatment at fixing and processing, (ii) that all Leydig cells in a given testis have spherical nuclei of identical size, and (iii) that testicular volume (i.e. the reference volume) is constant regardless of species or treatment, on the estimation of Leydig cell numbers in mammalian testes were investigated. This was accomplished by comparing the results of stereological analyses of Leydig cell numerical density and Leydig cell number in control testes of hamster, guinea-pig, and rat and in atrophied testes of hamster, and rat, obtained via the disector method which is unbiased with respect to the particle shape under study, and the Floderus equation which assumes that the particles under study are identical spheres. In control hamster, and also in guinea-pig, the effects of the three assumptions on the estimates of Leydig cell number per testis were negligible, because in these two treatment groups, the total shrinkage of testis tissue at fixing and processing (ST%) was low, Leydig cell nuclear profiles were circular in section, and the average volume of a testis was close to unity (i.e. 1 cm3). By contrast, in hamsters, and rats with atrophied testes, these assumptions produced incorrect estimates in Leydig cell number per testis, because the ST% was high, the majority of Leydig cell nuclear profiles were pleomorphic, and the average volume of a testis was lower than control. In summary, this study documents that the assumptions of equal shrinkage in testis tissue at fixing and processing, a constant testicular reference volume, and spheroidal shape of Leydig cell nuclei may contribute significant errors in estimates of Leydig cell number in mammalian testes. The magnitude of the errors introduced by these assumptions depends upon the species and the experimental treatment.

Animals

To what extent can spermatogenesis be maintained in the hypophysectomized adult rat testis with exogenously administered testosterone?

In a previous study it was demonstrated that spermatogenesis can be maintained quantitatively with exogenously administered testosterone in adult intact rats that lack LH. The studies described herein were designed to examine the extent to which spermatogenesis can be maintained quantitatively with exogenously administered testosterone in adult rats that lack all pituitary hormones. Adult male rats were hypophysectomized and testosterone was administered at the time of hypophysectomy via sustained release polydimethylsiloxane (PDS) capsules of increasing lengths. We used the PDS capsules to clamp testosterone at defined concentrations within the seminiferous tubule fluid over a 2- to 3-month treatment period. Mean testis weights and advanced spermatid numbers per testis stabilized by 8 weeks of testosterone treatment regardless of testosterone dose. Both testis weight and advanced spermatid number responded to testosterone dose, reaching plateaus of 1.2 g and 170 x 10(6) per testis, respectively. These values were 60% of, and significantly less than, the respective control values. This result was in striking contrast to the results of our previous study of LH-suppressed intact rats, in which exogenously administered testosterone resulted in testis weights and advanced spermatid numbers that plateaued at values not significantly different from those in controls. These different effects of testosterone in intact and hypophysectomized rats occurred despite the fact that the seminiferous tubule fluid testosterone concentrations achieved in the hypophysectomized rats (up to 25 ng/ml) were greater than the minimal testosterone concentration found previously to be required to maintain spermatogenesis quantitatively in LH-suppressed intact rats (13 ng/ml). Taken together, these results demonstrate clearly that intratesticular testosterone doses that are as high as or higher than those that maintain spermatogenesis quantitatively in intact rats lacking LH fail to maintain spermatogenesis quantitatively in rats lacking all pituitary hormones.

Animals

Restoration of spermatogenesis by exogenously administered testosterone in rats made azoospermic by hypophysectomy or withdrawal of luteinizing hormone alone.

The major objective of the studies presented herein was to compare the extent to which exogenously administered testosterone is able to restore spermatogenesis in adult rats made azoospermic by withdrawal of all pituitary hormones (hypophysectomy for 4 weeks) vs. withdrawal of LH alone [testosterone- and estradiol-filled (TE) polydimethylsiloxane implants of 2.5 and 0.1 cm, respectively, for 8 weeks]. In hypophysectornized (Hypox) rats, serum LH and FSH were both undetectable; in the rats that received TE implants, serum LH was undetectable, but FSH was unaffected compared to control values. Seminiferous tubule fluid testosterone concentrations were reduced significantly from their control values of 60-65 to 1.4-1.7 ng/ml in the azoospermic Hypox and TE rats. These rats then received testosterone-filled implants of 4, 12, 18, or 24 cm and were killed 2 months later. In both the Hypox and TE rats, seminiferous tubule fluid testosterone concentrations rose linearly with increasing capsule sizes, and with each of the implant sizes, these concentrations did not differ significantly between the Hypox and TE rats. This made it possible for the first time to examine the effects of comparable intratesticular testosterone concentrations on the numbers of advanced spermatids per testis that could be restored in the azoospermic testes of rats lacking all pituitary factors vs. those lacking only LH. The results that we present demonstrate that the numbers of restored advanced spermatids were consistently and significantly lower in Hypox than in TE rats despite equivalent seminiferous tubule fluid testosterone concentrations. These results provide quantitative conclusive evidence to support the contention that pituitary factors in addition to LH are required for the quantitative restoration of spermatogenesis in the adult rat testis.

Animals

Differentiation of Leydig cell precursors in vitro: a role for androgen.

An enriched fraction of mesenchymal-like cells was isolated from the testes of 21 day old rats. Testosterone production (ng/10(6) cells.24 hours) by these cells when cultured in vitro was measured by radioimmunoassay of HPLC-purified extracts of culture medium. In the presence of LH + DHT there was a significant increase in testosterone secretion from 22 +/- 10 ng after day 1 of culture to 284 +/- 75 ng on day 3 (P less than 0.01). By contrast, LH or DHT alone were without significant effect. We conclude that LH alone is insufficient but that androgen and LH induce mesenchymal-like Leydig cell precursors from 21 day old rats to produce testosterone.

Animals

Luteinizing hormone causes rapid and transient changes in rat Leydig cell peroxisome volume and intraperoxisomal sterol carrier protein-2 content.

The aim of the present study was to investigate the effects of a single injection of LH on rat Leydig cell peroxisome volume and peroxisomal sterol carrier protein-2 (SCP2) content. Sexually mature Sprague-Dawley rats (n = 5) were injected sc with 500 micrograms LH and euthanized, and trunk blood was collected at 0, 0.5, 1, 2, and 3 h. Additionally, LH-treated rats were whole body perfused-fixed, and their testes were processed for qualitative and quantitative histochemical and immunocytochemical studies at 0, 0.5, 1, and 2 h. Peroxisomes were identified by cytochemical staining for catalase activity with the alkaline 3,3'-diaminobenzidine tetrahydrochloride method. Catalase and SCP2 were immunolocalized in Leydig cell organelles via 10-nm AuroProbe EM protein-A gold particles. Peak plasma testosterone concentrations were observed 1 and 2 h after the single sc LH injection. The average volume of a Leydig cell was unchanged by the LH treatment at all time points tested. Similarly, the absolute volumes of smooth endoplasmic reticulum and mitochondria per Leydig cell were unchanged at all time points tested. By contrast, the absolute volume of peroxisomes per Leydig cell increased 3-fold 0.5 h after LH injection (P less than 0.01) and then returned to control values by 2 h. The absolute volume of negative bodies (single membrane-bound cytoplasmic organelles lacking catalase) per Leydig cell was elevated above the control value 0.5 and 1 h after LH injection. Western blot analysis demonstrated a single protein at 14 and 60 kDa with anti-SCP2 and anticatalase, respectively, for both homogenates obtained from liver and purified Leydig cells. Quantitative immunocytochemical studies demonstrated that the gold particle density representing SCP2 over peroxisomes increased 5-fold 0.5 h after the LH injection (P less than 0.01) and then returned to control values by 2 h. In contrast, the gold particle density representing catalase over peroxisomes was not different in control and LH-injected groups. We conclude that a single sc injection of LH causes a rapid, specific, and transient increase in both the volume of peroxisomes and the peroxisomal content of SCP2 in Leydig cells.

Animals

Reversal of long-term LH deprivation on testosterone secretion and Leydig cell volume, number and proliferation in adult rats.

The purpose of this study was to determine whether Leydig cell volume and function could recover fully from long-term LH deprivation upon restoration of endogenous LH secretion, and whether the restoration of LH would elicit a mitogenic response, i.e. stimulate Leydig cell proliferation or affect Leydig cell number per testis. LH secretion was inhibited by treating adult rats with testosterone and oestradiol-filled (TO) silicone elastomer implants (16 weeks), and was restored by removing the implants. Changes in serum concentrations of LH and FSH, LH-stimulated testosterone secretion by testes perfused in vitro, Leydig cell volume and number per testis, average Leydig cell volume and Leydig cell [3H]thymidine incorporation were measured at weekly intervals following implant removal. The TO implants inhibited (P less than 0.01) LH secretion, but serum concentrations of FSH were not significantly different (P greater than 0.10) from control values. After implant removal, serum LH returned to control values within 1 week, whereas serum FSH increased twofold (P less than 0.01) and returned to control values at 4 weeks. LH-stimulated in-vitro testosterone secretion was inhibited by more than 99% in TO-implanted rats, but increased (P less than 0.01) to 80% of control values by 8 weeks after implant removal. The total volume of Leydig cells per testis and the volume of an average Leydig cell were 14 and 19% of control values respectively, after 16 weeks of TO implantation (P less than 0.01), but returned to 83 and 86% of controls (P greater than 0.10) respectively, by 6 weeks after implant removal. Leydig cell proliferation ([3H]thymidine labelling index) was low (less than 0.1%) in both control and TO-implanted rats, increased (P less than 0.01) fivefold from 1 to 4 weeks after implant removal and then declined to control values at 6 weeks. The increase in Leydig cell [3H]thymidine incorporation was mimicked by treating TO-implanted rats with exogenous LH, but not FSH. Leydig cells were identified in both the interstitium and the lamina propria of the seminiferous epithelium. The proportion of Leydig cell nuclei in the lamina propria was 30-fold greater (P less than 0.01) at 1 and 3 weeks after implant removal (3%) compared with that for control and TO-implanted rats (0.1%). Total Leydig cell number per testis was marginally but not significantly (P = 0.06) decreased in rats treated with TO implants for 16 weeks when compared with controls (18.4 +/- 2.2 vs 25.4 +/- 1.2 x 10(6)).(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Determination of canine prostatic size in situ: comparison of direct caliper measurement with radiologic and transrectal ultrasonographic measurements.

The use of transrectal ultrasonography to estimate canine prostatic size in situ was evaluated and compared to that of direct measurement via calipers and an in situ radiologic procedure. The length, width, and depth of prostates were measured by transrectal ultrasound in both the transverse and sagittal planes from which prostatic volume was calculated. Prostatic volumes were subsequently transformed into prostatic weights using the following nomogram: prostatic Weight (g) = 0.602 x prostatic Volume (cm3) + 1.16. Prostatic weights estimated by ultrasound as well as by direct measurement with caliper were similar (P greater than 0.10) to the true gravimetric weight; however, prostate weights estimated by the radiological X-ray procedure were significantly (P less than 0.01) lower. The relationship between true gravimetric prostate weight and that estimated by ultrasound was described by the following regression equation: estimated weight (g) = 1.127 gravimetric weight (g) - 1.665; r = 0.900; P less than 0.001; n = 23. In summary, the results of this study demonstrate that transrectal ultrasonography can be used to accurately predict canine prostatic weight.

Animals

Maintenance of testosterone production by purified adult rat Leydig cells for 3 days in vitro.

Using a preparation of highly purified, adult rat Leydig cells and conditions of culture which we found to optimize testosterone production during 24 h, we sought to maintain optimal testosterone production for 3 d. Leydig cells cultured on Cytodex 3 beads at 19% O2 in Dulbecco's modified Eagle's medium-Ham's nutrient mixture F12 (1:1; vol/vol) containing 0.5 mg/ml total bovine lipoproteins (less than 1.222 g/ml) with maximal luteinizing hormone (LH) stimulation failed to maintain a constant amount of testosterone for 3 d. These cells did however secrete a similar amount of total delta 4-3-ketosteroids on each of the 3 culture d, indicating that their viability was preserved. The predominance of progesterone and 170H-progesterone relative to the amount of androstenedione found on Days 2 and 3 suggested that the activity of the cytochrome P450 C17-hydroxylase-C17,20-lyase enzyme in the smooth endoplasmic reticulum was diminished when Leydig cells were maintained in our primary culture for longer than 24 h. Decreasing the oxygen tension of the cultures from 19 to 5%, and decreasing the concentration of LH used to stimulate the Leydig cells from 100 to 0.1 ng/ml, were necessary to achieve maintenance of testosterone secretion without accumulation of other delta 4-3-ketosteroids during a 3-d period. Cells cultured in this fashion were still able to respond to maximal LH stimulation during Day 3, producing as much testosterone as if cultured for 24 h on Day 1 at 19% O2 with 100 ng/ml LH stimulation.

17-alpha-Hydroxyprogesterone

Kinetic studies on the development of the adult population of Leydig cells in testes of the pubertal rat.

The objective of this study was to determine whether postnatal increases in rat Leydig cell number result from differentiation of precursor cells, division of existing Leydig cells, or both. Our approach was 1) to examine changes in the absolute number of Leydig cells and potential precursor cells (macrophages, pericytes, and mesenchymal, endothelial, and myoid cells) per testis on day 19 of gestation (day -2) and days 7, 14, 21, 28, and 56 postpartum; 2) to examine the frequency with which mesenchymal and Leydig cells divide during prenatal and postnatal development; and 3) to identify and examine the fate of the progeny of Leydig and mesenchymal cell divisions during prenatal and postnatal development. Stereological methods were used to show that mesenchymal cells comprised 44% of the total interstitial cell population and Leydig cells 16% on day -2, whereas by day 56 postpartum the relationship had reversed; mesenchymal cells comprised 3% and Leydig cells 49%. These results suggested a precursor-product relationship between mesenchymal and Leydig cells because no such reciprocal relationship was observed between Leydig cells and macrophages, pericytes, endothelial, or myoid cells. Autoradiographic analysis of [3H]thymidine incorporation into mesenchymal and Leydig cells was consistent with this interpretation. In a series of pulse-chase experiments, the percentage of labeled mesenchymal and Leydig cells was measured after a single injection of [3H]thymidine on days 2, 14, 28, and 56 postpartum, each followed by sampling at timed intervals (between 1 h and 14 days) thereafter. Starting on day 14, the percentage of labeled Leydig cells was approximately 1% immediately after injection of [3H]thymidine and increased significantly to approximately 6% by 6 days after injection. No such increase was observed when rats were similarly injected starting on days 2, 28, and 56 postpartum. The rise in Leydig cell labeling between days 14 and 28 postpartum did not result in a decline in the number of silver grains over labeled Leydig cell nuclei, indicating that the increase in the percentage of labeled cells was not caused by Leydig cell division. These observations led us to conclude that the increase in Leydig cell labeling from days 14 to 28 was the result of recruitment from a compartment of labeled mesenchymal cells. In contrast, our analysis indicated that from day 28 postpartum and thereafter until the mature number of Leydig cells is attained, Leydig cells are generated by division of morphologically recognizable Leydig cells.

Animals

Restoration of advanced spermatogenic cells in the experimentally regressed rat testis: quantitative relationship to testosterone concentration within the testis.

We examined the effect of exogenously administered testosterone (T) on the quantitative restoration of advanced spermatogenic cells in adult rat testes rendered azoospermic by treating rats with polydimethylsiloxane (PDS) implants of T and estradiol (E). Experimental rats received PDS-TE implants for an initial 8-week period; control rats received empty implants. By 8 weeks of PDS-TE treatment, rats became severely oligospermic, and the T concentration within the seminiferous tubule fluid (STF) was reduced approximately 80% (from 57.8 ng/ml in controls to 9.6 ng/ml). After the initial 8-week PDS-TE treatment, PDS-TE implants were removed from one group of rats; a second group of PDS-TE-implanted rats received an additional PDS-T implant of 24 cm. Eight weeks after the removal of PDS-TE implants or the implantation of additional T, testis weight and numbers of advanced spermatogenic cells were restored to those of control rats. The STF T concentration 8 weeks after the removal of PDS-TE implants also was restored to that in control rats. In contrast, the STF T concentration increased to only 40% of control values in the rats that received an additional T implant. Despite this 60% reduction in T concentration compared to the control value, advanced spermatogenic cell number was restored to a value indistinguishable from that of intact controls. These observations indicate that spermatogenesis can be quantitatively restored in PDS-TE-implanted rats with exogenously administered T, and moreover, that this restoration does not require the high T concentration found in the STF of intact control rats.

Animals

Maintenance of advanced spermatogenic cells in the adult rat testis: quantitative relationship to testosterone concentration within the testis.

The studies described herein were designed to examine whether there is a threshold concentration of testosterone (T) within the seminiferous tubules that is required to maintain spermatogenesis in the rat, or alternatively, whether there is a dose-response relationship between the intratesticular T concentration and the maintenance of spermatogenesis. T was administered to intact adult male rats via sustained release polydimethylsiloxane capsules in order to experimentally clamp T at well defined concentrations within the seminiferous tubules. Implantation of T-filled capsules of increasing sizes resulted in linear increases in T concentrations in serum, interstitial fluid, and seminiferous tubule fluid (STF). We examined the effect of step decreases in intratesticular T concentration on the numbers of advanced spermatogenic cells maintained by the testis over a 2-month period. Quantitatively complete spermatogenesis was maintained despite an 80% reduction in the STF T concentration (to approximately 13 ng/ml) from control values. The ability of the testis to maintain complete spermatogenesis was extremely sensitive to further decreases in STF T concentration. Thus, reduction of the STF T concentration from approximately 13 to 9 ng/ml resulted in a reduction in the number of advanced spermatids that were maintained in the testis by approximately 100 x 10(6). Reduction of the STF T concentration to approximately 4 ng/ml resulted in a further reduction in the number of advanced spermatids per testis by 100 x 10(6). Taken together, these data support the contention that there is far more T present within the seminiferous tubules of intact rat testes than is required to maintain quantitatively normal spermatogenesis and reveal for the first time that there is a dose-response relationship between the STF T concentration and the quantitative maintenance of advanced spermatogenic cells in the rat testis.

Animals