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[Relation between glutathione and cytoplasmic protein sulfhydryl groups in the rat: a rapid procedure for analytical determination].

A simple rapid determination of glutathione (GSH) and cytoplasmic protein bound SH groups (PBSH), appropriate to study their relationship in tissues, in rat liver, kidney and testis was developed. Hepatic GSH and PBSH were measured after treatment with methyl iodide (400, 800 mg/kg, after 0.5 h), diethyl maleate (2 ml/kg, after 1h), carbon tetrachloride (1.2 ml/kg, after 3 h), phenobarbital (80 mg/kg for 3 days). Methyl iodide and diethyl maleate showed a decrease of GSH and PBSH; after treatment with phenobarbital an increase of GSH and PBSH was observed; no decrease of GSH and PBSH was found after carbon tetrachloride intoxication.

Animals↗

The hormonal control of sexual development.

The formation of the testis or ovary is a critical step in development. The pioneering studies of Professor Alfred Jost showed that the hormones produced by the embryonic rabbit testis are essential for development of the male phenotype. Sexually dimorphic hormones play a key role in the transition from an undifferentiated gonad into the mature testis and ovary. Marsupials, with their altricial young, provide an accessible model for the study of sexual differentiation because most of these events occur postnatally, while the young are attached to teats within their mothers' pouches. The relatively long time-course for the marsupial sexual differentiation has provided an excellent opportunity to correlate morphological changes with the genes and hormones that control them. Using this model species we have demonstrated that not all sexual dimorphisms are controlled by hormones. Virilization of the prostate and phallus is androgen dependent but appears to rely on circulating 5alpha-androstane-3alpha, 17beta-diol which is converted to dihydrotestosterone in these target tissues. Collectively these studies have led to the development of new paradigms to explain the hormonal mechanisms mediating sexual differentiation.

Animals↗

Evidence for the presence of 5'-deiodinase in mammalian seminal plasma and for the increase in enzyme activity in the prepubertal testis.

Thyroid hormones are critical for structural and functional development of the testis and Sertoli cells are considered true target cells for triiodothyronine (T3). However, the role of thyroid hormones in the adult testis seems to be minimal and the mechanism by which they affect testicular function is not known. Due to the existing blood-testis barrier the concentration of thyroid hormones in seminal plasma is kept lower than in blood plasma. We have found that T3 may reach the testis not only from the circulation but also from local enzymic conversion of thyroxine to T3. The presence of the enzymic activity responsible for thyroxine 5'deiodination and for generating T3 locally was also found in boar's seminal plasma. The seminal plasma 5'-deiodinase (5'-D) appeared to be predominantly the propylthiouracil (PTU)-insensitive type II isoenzyme found, so far, in tissues where it plays a role in paracrine signalling. It contains selenocysteine in its molecule (inhibition by aurothioglucose), and has an apparent Km for reverse-T3 as substrate of 0.36 nM and a Vmax 23.8 fmol I-/mg protein/min. Because the seminal plasma 5'-D is partially, but uncompetitively, inhibited by PTU, the presence in seminal plasma of two 5'-D isoenzymes (type I and II) cannot be excluded. The 5'-D activity in testes increased significantly between week 3 and 4, and this increase was concomitant with increase in testicular size. The relationship between testicular weight gain and age showed a similar characteristic change and corresponded to the change in 5'-D activity. Unlike in rodents, the testis of the prepubertal pig has thyroid hormone receptors in Sertoli cells, and suggests that in growing piglets, testicular 5'-D is a key factor regulating local supply of biologically active T3, and is an essential factor in testicular paracrine function. The present results are the first demonstration and characterization of the 5'-deiodinase in seminal plasma.

Animals↗

FGF9 promotes survival of germ cells in the fetal testis.

In addition to its role in somatic cell development in the testis, our data have revealed a role for Fgf9 in XY germ cell survival. In Fgf9-null mice, germ cells in the XY gonad decline in numbers after 11.5 days post coitum (dpc), while germ cell numbers in XX gonads are unaffected. We present evidence that germ cells resident in the XY gonad become dependent on FGF9 signaling between 10.5 dpc and 11.5 dpc, and that FGF9 directly promotes XY gonocyte survival after 11.5 dpc, independently from Sertoli cell differentiation. Furthermore, XY Fgf9-null gonads undergo true male-to-female sex reversal as they initiate but fail to maintain the male pathway and subsequently express markers of ovarian differentiation (Fst and Bmp2). By 14.5 dpc, these gonads contain germ cells that enter meiosis synchronously with ovarian gonocytes. FGF9 is necessary for 11.5 dpc XY gonocyte survival and is the earliest reported factor with a sex-specific role in regulating germ cell survival.

Animals↗

Early differentiation of the testis in the native cat, Dasyurus viverrinus (Marsupialia).

The development of the testis in the native cat Dasyurus viverrinus (Marsupialia) is described, from Day 3 to 2.5 months post partum. The gonad rudiment consists of a mass of undifferentiated blastema cells of mesenchymal origin. The primordial germ cells populate the rudiment around the neonatal period. On Day 3 two cell types autodifferentiate from the gonadal blastema (pre-Sertoli and stroma cells) and the tunica albuginea begins to form. Pre-Sertoli cells are large, pale, cells which encompass the primordial germ cells and come to form a zone just beneath the tunica albuginea. By the end of the second week the cell complex has become transformed into a series of sex cords which encircle the gonad rudiment peripherally and converge on the rete cord in the hilar region. The stroma cells are fibroblast-like cells and occupy the central portion of the rudiment; by the eighth week, Leydig cells are appearing among them. No evidence was found for mesothelial invaginations or mesonephric contributions to the gonad. The classically recognised regions of 'cortex' and 'medulla' cannot be recognised and the seminiferous tubules differ in arrangement from that in eutherians.

Aging↗

Cadherin in developing and maturing cysts of Torpedo Marmorata Testis.

We investigated the presence of cadherins, Ca++ dependent cell-cell adhesion molecules, during the development and maturation of cysts in the testis of the spotted ray Torpedo marmorata. Using different anti-cadherin antibodies, we provide evidence by means of immunohistochemistry and immunoblotting that cadherins are involved in the interaction between Sertoli and germ cells. During the development and maturation of cysts, in fact, cadherins occur between Sertoli and germ cells when they begin to interact to build a cyst. Later on, the presence of cadherins between Sertoli and germ cells persists; furthermore, during the formation of spermatoblast, it is also evident at the level of indentations, arising from Sertoli cells and encompassing germ cells. Finally, the present findings strongly suggest that cadherins are also involved in the spermiogenesis as germ cells, when male gamete differentiation starts, are intensively stained, while, when spermiation is completed, the spermatozoa appear unlabeled.

Animals↗

Fine needle tissue aspiration biopsy of the testis.

OBJECTIVE: To develop a fine needle tissue aspiration biopsy technique that provides sufficient tissue for accurate histological assessment and research purposes. DESIGN: After assessing different needles and developing a method for handling small amounts of tissue, 87 patients underwent fine needle tissue aspiration biopsy. The quantity, quality, and appearance of the tissue was examined and adverse effects of the procedure were noted. Fine needle tissue aspiration and open biopsy samples were compared in 26 patients. Suitability of the tissue for flow cytometry and electron microscopy was also assessed. RESULTS: The 20-gauge, 5-cm Menghini and Turner biopsy needles penetrated the testis more readily and recovered larger quantities of tissue. Adequate samples were recovered from 83% of cases (average of 21.8 tubule sections per testis) with the frequency of recovery and the amount of tissue obtained increasing through-out the study. Some distortions of the tissue were seen but these rarely interfered with the diagnosis. Although many patients suffered slight discomfort during the injection of the anesthetic, no serious complications were encountered during or after the procedure. Comparison of fine needle tissue aspiration and open biopsy diagnoses found either full agreement (56%) or slight differences (38%) in the degree of hypospermatogenesis. CONCLUSIONS: Fine needle tissue aspiration biopsy was found to be a quick, easy, repeatable, and reproducible method of obtaining testicular tissue. No serious adverse effects of the procedure were detected and the diagnoses were found to be comparable to those obtained by open biopsy.

Adult↗

Cellular distribution of transforming growth factor betas 1, 2, and 3 and their types I and II receptors during postnatal development and spermatogenesis in the boar testis.

Transforming growth factor betas (TGF betas) 1, 2, and 3 and their types I and II receptors (TGF betas RI and RII) were immunolocalized 1) during testicular development from the perinatal to the adult period and 2) in maturing germ cell populations at successive seminiferous epithelium stages. In the perinatal testis, TGF beta isoforms and receptors were both preponderant in Leydig cells and in spermatogonia. At prepuberty, their expression appeared in Sertoli cells, while germ cells showed specific TGF beta1 and TGF betaRI staining in the spermatocytes. In the adult testis, TGF beta ligands exhibited a preferential tubular distribution. TGF beta1 was mainly detected in young spermatocytes, TGF beta2 in Sertoli cells, and TGF beta3 in Sertoli and premeiotic germ cells. Although the two receptors were systematically observed together in various cells, our data indicate a predominance of one in comparison with the other depending on the cell type. TGF betaRI was predominant in meiotic and differentiated germ cells and TGF betaRII in somatic cells. Finally, in the adult testis, TGF betas 1, 3, and RI showed a germ-cell pattern that depended upon the stage of the seminiferous epithelium cycle. Specifically, staining for the ligands was predominant before meiosis, and TGF betaRI was present particularly during meiosis and spermiogenesis. Together, the temporal and spatial distribution of the TGF beta system components suggests that these signaling molecules may play a crucial role during specific steps of testicular development and during different waves of seminiferous epithelium maturation leading to spermatogenesis.

Animals↗

Postnatal development of lectin-binding pattern in the rat testis and epididymis.

Seven rhodamine-conjugated lectins were utilized to study the distribution of glycoproteins in the developing rat testis and epididymis. In the testis a clear developmental pattern was found in Leydig cells and the cell boundaries between Sertoli and spermatogenic cells, as well as during acrosome formation. Some of the first degenerating meiotic cells and the apical extensions of the Sertoli cells at the time of spermiation also displayed a characteristic lectin binding. The epididymal differentiation was characterized by an increasing lectin binding of the subapical Golgi zone and apical surface, and intratubular secretion prior to the arrival of sperm. After the accumulation of tubular secretion and sperm some epithelial cells were transformed into narrow (initial segment) and light cells (distal caput, cauda) with a strong affinity for some lectins. These cells appeared to be responsible for the absorption and digestion of tubular material derived from the testis and of surplus secretion and/or sperm structures.

Animals↗

A classification for intravaginal torsion of the testis.

We have developed a new classification for intravaginal testicular torsion by comparing the testes in 36 cases of intravaginal torsion with those of 30 cases undergoing castration for prostatic cancer. The classification was made by our new criteria as follows: bell-clapper type (type III) in which torsion very easily occurs; intermediate type (type II), which can be further divided into two subtypes, type IIb in which torsion easily occurs and type IIa in which torsion hardly occurs, and normal type (type I) in which torsion never occurs. We believe that our new classification is simple and useful for definite clinical understanding.

Adolescent↗

Isolation of highly purified type A spermatogonia from prepubertal rat testis.

We have developed a new method that allows isolation of highly purified type A spermatogonia from prepubertal rats. The procedure is based on the maximal release of spermatogonia from the seminiferous epithelium obtained by the complete enzymatic digestion of the tubular basal lamina, followed by removal of contaminating somatic cells through adhesion to plastic dishes coated with the lectin Datura stramonium agglutinin and fractionation on a discontinuous Percoll gradient. The cell suspension obtained contains up to 85% type A spermatogonia. Besides morphological criteria, the identification of germ cells and somatic cells has been performed by means of immunocytochemical markers, such as c-kit receptor, which is present only in germ cells, and vimentin, which is present only in somatic cells. All type A spermatogonia isolated were c-kit positive, thus suggesting that c-kit receptor is present in both undifferentiated and differentiating type A spermatogonia. Preliminary culture experiments demonstrate that spermatogonia survival in vitro was significantly improved by the addition of 10% fetal calf serum or horse serum to the culture medium; however, optimal culture conditions remain to be established. In vitro studies on isolated spermatogonia may provide a significant contribution toward elucidation of the mechanisms regulating spermatogonial proliferation and differentiation.

Animals↗

Testicular gonadotropin receptors, testicular testosterone, dihydrotestosterone and androstenedione in the developing bull.

The testis homogenate from Red bull (3-17 months of age) show specific binding of hLH and hFSH with Kd of 1.3 +/- 0.1 X 10(-10)M and 1.5 +/- 0.1 X 10(-9)M, respectively. Prepubertal bulls (3-5 3/4 months) exhibit the highest binding capacity of both LH and FSH, revealing the fact that LH and FSH receptors are present in high concentrations prior to the first rise in plasma T. The testicular T concentration was significantly higher in the four prepubertal bulls than in the four older animals in spite of the fact that circulating T is lower before puberty. Thus, local androgen effects within the testis may occur before peripheral androgenization. The prepubertal bull Leydig cell also displayed steroidogenic capacity. The ratio of biologically active (testosterone, dihydrotestosterone) to inactive androgens (androstenedione) increased as the animals approached puberty. Such qualitative changes in steroid production may be one of the factors responsible for peripheral androgenization.

Androgens↗

Thyroid hormone receptors in neonatal, prepubertal, and adult rat testis.

Thyroid hormone (TH) is involved in the differentiation and development of rat testis, whereas its role in adult testis function is still undefined. The aim of our work has been to further analyze the presence in the testis of rats of various ages of messenger RNA (mRNA) coding the different TH receptor (TR) subtypes using a sensitive assay, such as reverse transcriptase-polymerase chain reaction (RT-PCR). To rule out the possibility of an "illegitimate transcription," we have analyzed both T3-binding capacity of adult rat testis and the presence in the same organ of TR proteins by immunohistochemistry, using specific antibodies directed against the various TR isoforms. Messenger RNA coding for TR alpha1 and alpha2 isoforms was clearly visible in gels prepared from RT-PCR samples obtained from the testis of rats of all ages, including adults, whereas mRNA for the TR beta1-beta2 was absent. The T3 maximal binding capacity (Cmax) by nuclear extracts of testicular homogenates gradually decreased from birth to adulthood, still remaining significantly detectable in adult testis, and represented approximately 1% of the Cmax observed in the liver. The immunostaining technique revealed an intense nuclear staining along the basement membrane of testicular tubules prepared from rats of all ages and incubated with an antipeptide antibody specific for TR alpha1 (alpha1-403). Staining with an antipeptide antibody specific for TR beta1 (beta-62) was never present. Our data show that mRNAs coding for the functional TR alpha1, and also for the still undefined alpha2, are present in the testis of rats of all ages. T3-binding activity and immunohistochemical studies confirmed that the message is translated into proteins. The transcriptional activity clearly decreased from birth to adulthood, but it still remained significantly present. The presence of a TR alpha1 message indicates that the adult rat testis may be directly responsive to T3 and, therefore, suggests an action of TH on rat testis that is not only developmental, but also metabolic.

Aging↗

Expression of the p63 and Notch signaling systems in rat testes during postnatal development: comparison with their expression levels in the epididymis and vas deferens.

The role of tubular structures that contribute to the passage of spermatozoa is not solely passive; these structures actively contribute to their own functions, although these tubules and ducts are contiguous and collaborate in the development of the male gamete along their lengths. The testis has the specific function to generate spermatozoa and spermatozoa undergo numerous changes as they pass through the epididymis. A member of the p53 family of genes, p63, is highly expressed in the basal layers of epithelial tissues and plays a key role in maintaining their cell populations, whereas Notch 1 and its ligand Jagged 2 have an important role in the differentiation of germ cells and Jagged 2 is up-regulated by TAp63, one of the p63 isoforms, which transactivates p53 target genes and induces apoptosis. Although the presence of p63 in most epithelia is established, the role of p63 and its possible relationship with the Notch system in the seminiferous epithelium have not been examined. Therefore, we investigated the expression of p63, Jagged 2, and Notch 1 in the testis during postnatal development in comparison with their expression levels in the vaso-epididymal epithelium. In the testis, the expression of TAp63 mRNA increased at day 14 after birth and the expressions of Jagged 2 and Notch 1 mRNA increased at day 16 after birth, suggesting that TAp63-mediated Jagged 2 induction activates the Notch signaling system. On the other hand, the strong signal of DeltaNp63 mRNA was already recognized in the vas deferens at day 0 after birth and advanced chronologically along the duct to the caput epididymis and p63 protein was expressed in basal cells in their epithelium, whereas the mRNAs of Jagged 2 and Notch 1 were maintained at a low level. Consequently, examination of our data raises the probability that TAp63 has an important role for maintenance of germ cell numbers, triggering or balancing the development, differentiation, and apoptosis of germ cells in the testis, which is completely different from the role of DeltaNp63 in other epithelial tissues.

Animals↗

Genes involved in testicular development and function.

The development of the testis requires the highly regulated expression of a series of genes. Many of the genes involved are transcription factors, such as steroid hormone receptors and growth factors. Investigators have used gene cloning, mutation analysis, transgenic mice, and gene-deletion studies to define the role of specific genes in testicular development and function. In the past 5 years, investigators have defined a gene on the Y chromosome, SRY, thought to be required for testis determination. This protein is a member of a larger family of related transcription factors. Expression of this gene triggers a cascade of events that leads to the development of the Sertoli cell, Leydig cells, and the testis. The development of the male phenotype is dependent on the presence and action of androgens, which exert their effect after combining with a receptor in the nucleus of the target cell that stimulates gene transcription. Defects in the androgen receptor gene lead to a full spectrum of morphological defects in the male. Interestingly, mutations in other members of the steroid receptor superfamily, such as the estrogen receptor gene, also affect male fertility. A number of "orphan" receptors (i.e., receptors whose ligans have not been identified) are also required for normal testicular development and function, as are several genes normally thought to be tumor-suppressor genes (e.g., Wilms' tumor-suppressor gene). In contrast, alpha-inhibin has been thought to be an endocrine hormone, yet it functions as a tumor-suppressor gene in the testis. Testicular development and normal spermatogenesis require the proper function and coordination of a large number of transcription factors, steroid hormone and orphan receptors, and growth factors. There are likely to be a large number of other, as yet unidentified genes that are necessary for male gonadal development.

Animals↗

Gene structure, multiple alternative splicing, and expression in gonads of zebrafish Dmrt1.

Many basic cellular processes are shared across vast phylogenetic distances, whereas sex-determining mechanisms are highly variable between phyla although the existence of two sexes is nearly universal in the animal kingdom. The only molecular similarity in sex determination found so far between phyla is among the fly doublesex, worm mab-3, and vertebrate Dmrt1/DMY, which contain a zinc-finger-like DNA-binding motif, DM domain. Here we report that three isoforms of the zebrafish Dmrt1 were generated in gonads by multiple alternative splicing, which encoded predicted proteins with 267, 246, and 132 amino acids, respectively. By cDNA cloning and genomic structure analysis, we found that there were seven exons of Dmrt1, which were alternatively spliced to generate the Dmrt1 isoforms. Northern blotting analysis revealed that expression of zebrafish Dmrt1 was higher in testis than ovary. Real time fluorescent quantitative RT-PCR indicated that expression of isoform a of Dmrt1 was dominantly higher than those of Dmrt1 b and c. Furthermore, in situ hybridization to gonads sections showed that Dmrt1 was expressed in developing germ cells of both testis and ovary, suggesting that the Dmrt1 gene is not only associated with testis development, but also, may be important in ovary differentiation of zebrafish.

Alternative Splicing↗

Cellular distribution of EGF, TGFalpha and their receptor during postnatal development and spermatogenesis of the boar testis.

The epidermal growth factor (EGF), the transforming growth factor alpha (TGFalpha) and the epidermal growth factor receptor (EGFr) have been immunolocalized, (i) during the testicular postnatal development (i.e. at the perinatal, prepubertal and adult periods), and (ii) during the seminiferous epithelium cycle in the different germ cell types. While TGFalpha was essentially observed in somatic cells, specifically in perinatal Leydig cells and in mature Sertoli cells, EGF was localized both in germ cells and in somatic cells with a preferential tubular expression. Furthermore, identification of EGFr in different testicular cell types indicates that during postnatal development and spermatogenesis, testicular cells are potentially responsive to EGF in that they express EGFr. Indeed, in the course of the gonadal development, the EGFr distribution was evidenced both in somatic and germ cells with a specific germ cell pattern depending upon the seminiferous epithelium cycle. A predominant EGFr staining was evidenced during the meiotic process and the spermiogenesis. Together, the present data are in favor of the involvement of the TGFalpha/EGF system in the local control of testicular cells during development and particularly of its potential direct implication in crucial steps of spermatogenesis such as meiosis and spermiogenesis.

Aging↗

Does one gene determine whether a C57BL/6J-Y(POS) mouse will develop as a female or as an hermaphrodite?

Two studies were conducted to further our understanding of the inherited condition in mice known as C57BL/6J-Y(POS) (B6-Y(POS)) sex reversal. One study determined what proportion of B6 XY(POS) mice develop as females or hermaphrodites. We found that 75% develop as females and the remainder develop as hermaphrodites regardless of whether the analysis is conducted at 14.5-16 days of embryonic development (based on gonad phenotype) or at weaning (based on the appearance of external genitalia and presence of mammary-associated yellow pigmented hair). We also found that 75 % of the gonads in B6 XY(POS) mice develop as ovaries and the remainder develop as ovotestes; none develop as a testis. We conclude that if any testicular tissue develops, sufficient testosterone is produced to cause at least some masculinization of the external genitalia. The second study tested the hypothesis that development of testicular tissue in B6 XY(POS) mice is due to the presence of a POS-derived gene, whereas B6 homozygosity of this gene guarantees ovarian development. The results did not support the POS gene theory. Therefore, we conclude it is a matter of chance that 75 % of B6 XY(POS) mice develop as females and 25 % develop as hermaphrodites.

Animals↗