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Developmental expression of mRNAs encoding thymosins beta 4 and beta 10 in rat brain and other tissues.

In the course of screening a fetal rat cerebellum cDNA library for developmentally regulated sequences, we have identified a cDNA clone identical in sequence to that encoding a protein originally isolated from thymus, thymosin beta 10. Based on northern hybridization analyses with gene-specific oligonucleotide probes derived from the 3'-untranslated regions of thymosin beta 10 mRNA and the closely related beta 4 mRNA, we showed that both thymosin mRNAs were present at highest levels in fetal cortex and cerebellum but also were present at varying levels in all other fetal tissues examined (thymus, spleen, lung, kidney, adrenal, heart, and liver). Steady-state levels of thymosin beta 10 mRNA in cerebellum declined to negligible levels after day 14 of postnatal development. Its levels exhibited a similar pattern in developing cortex, although the adult cortex had slightly higher thymosin beta 10 mRNA levels. These results suggest that thymosin beta 10 mRNA is subject to strong developmental regulation in the rat central nervous system. Reduction of thymosin beta 10 mRNA levels also was seen during development of kidney, heart, and liver. Levels of both thymosin beta 10 and beta 4 mRNAs remained relatively constant during development of thymus, spleen, and lung. Thymosin beta 4 mRNA levels dropped much less sharply during brain development than did levels of the beta 10 mRNA. Testis and ovary contained the highest relative levels of thymosin beta 10 mRNA among adult tissues, but little thymosin beta 4 mRNA. A novel thymosin beta 10 mRNA species unique to adult testis was detected. These results indicate that both thymosins must function in the development of brain and many other organs, as well as in different subsets of organs in the adult.

Animals↗

A novel messenger ribonucleic acid homologous to human MAGE-D is strongly expressed in rat Sertoli cells and weakly in Leydig cells and is regulated by follitropin, lutropin, and prolactin.

We have cloned a novel complementary DNA whose expression was decreased in rat Sertoli cell cultures after treatment with FSH. This complementary DNA encodes a protein of 570 amino acids and shares 92% homology with the human MAGE-D protein. In contrast to other MAGE genes (A, B, or C), we have shown that MAGE-D expression was ubiquitous in healthy rat tissues. In the seminiferous tubules, the MAGE-D was expressed in Sertoli cells but not in germ cells as demonstrated by RT-PCR and in situ hybridization, whereas for the other MAGE genes, expression has been shown to be restricted to germ cells. Interestingly, MAGE-D was also detected for the first time in the female gonad by Northern blotting. In MLTC-1 cells (mouse Leydig tumor cell line-1), LH and PRL stimulated MAGE-D expression. Using hypophysectomized rats, it was confirmed that FSH decreased MAGE-D expression, whereas LH and PRL increased MAGE-D messenger RNA level in the whole testis most probably through a direct action on Leydig cells. As MAGE-D is present in both the seminiferous compartment and interstitium and hormonally regulated in each, it is possible that it has specific functions in each compartment during the development and the maintenance of the testis.

Amino Acid Sequence↗

Long day photoperiods and temperature of 20 degrees C induce spermatogenesis in blinded and non-blinded marbled newts during the period of testicular quiescence.

Adult male marbled newts (Triturus marmoratus) were collected at the end of the spermatogenesis period and exposed to different photoperiods (natural-daylength-simulated photoperiod, total darkness, 8L:16D, 12L:12D, 16L:8D, and continuous light) for 3 mo. Temperature was maintained at 20 degrees C. Two additional groups of newts were blinded and exposed to either the natural-simulated photoperiod and to 16 h of light per day respectively. Quantitative histologic studies on testicular development and germ cell volume per testis were performed. The newts captured in the field at the beginning (initial controls) or at the end of the experiments (final controls) were in the period of testicular quiescence. Newts kept in total darkness or exposed to a short photoperiod (8L:16D) showed germ cell development up to primary spermatocytes, whereas germ cell development in the newts exposed to long photoperiods (12L:12D or 16L:8D) progressed to elongated spermatids. The newts exposed either to intermediate photoperiods (natural-simulated photoperiod) or to constant light showed an intermediate degree of germ cell development (up to round spermatids). No significant differences between non-blinded and blinded animals were found. These results suggest that (1) mild temperature initiates testicular development in the period of testicular quiescence, (2) long photoperiods associated with mild temperatures produce spermatogenesis in this period, (3) complete darkness or constant light are less effective than some intermediate photoperiod, and (4) the effect of photoperiod on testicular function in newts is not related to ocular photoreception.

Animals↗

Diethylstilboestrol: II, pharmacology, toxicology and carcinogenicity in experimental animals.

Diethylstilboestrol (DES) exerts several toxic effects in experimental animals, by mechanisms which are still unclear. The genotoxicity of the drug has been attributed to a quinone metabolite and is mainly clastogenic, including sister chromatid exchange, unscheduled DNA synthesis, chromosomal aberrations, disruption of mitotic spindle and aneuploidy. There is evidence that genotoxic effects may occur also transplacentally. Intrauterine and early postnatal exposure to DES can cause a variety of dysplasias. In the offspring of female mice exposed to DES during pregnancy, histological changes are observed in the vaginal and cervical epithelium, the endometrium, the ovary, the testis and the epididymis. Prenatal exposure of rats to DES led to decreased litter size and to urethrovaginal cloaca, penile and testicular hypoplasia, and cryptorchidism. Vaginal ridging, vaginal adenosis, testicular hypoplasia and cryptorchidism have been observed in rhesus monkeys following prenatal exposure. There is sufficient evidence that diethylstilboestrol is carcinogenic in experimental animals, after either prenatal or postnatal exposure. Mice show a similar type of carcinogenicity to that observed in humans, target organs being vagina, cervix, uterus, ovary, mammary gland and testis. In rats, prenatal exposure to DES produces mostly mammary and pituitary tumours, but also some tumours of the vagina. Hamsters develop tumours of vagina, cervix, endometrium, epididymis, testis, liver and kidney. DES induces ovarian papillary carcinomas in dogs, and malignant uterine mesotheliomas in squirrel monkeys. Some experimental evidence points to the possibility of a transgenerational carcinogenic effect, since prenatal treatment of mice with DES is followed by an increased incidence of uterine and ovarian carcinomas in the second-generation descendants. Experimental results could have been used to predict the adverse effects of DES observed in humans in the early 1970s: DES had been reported to be carcinogenic in mice in the 1930s, while experiments in the 1960s had provided evidence that exposure during pregnancy could result in an increased cancer risk in the progeny.

Abnormalities, Drug-Induced↗

Recent developments in the pathology of germ cell tumors.

This article describes some of the recent developments in the pathology of germ cell tumors of the testis. Many germ cell tumors show different types of differentiation. Two different explanations for this phenomenon include the differentiation of other germ cell elements from totipotential embryonal carcinoma cells or the direct differentiation of neoplasms from a malignant intratubular germ cell. Although the concept that there is a subset of seminomas having a poorer prognosis still exists, the histologic identification of such "anaplastic seminoma" remains an unachieved goal, and we, therefore, do not recommend the use of the term anaplastic seminoma at present. A recent analysis of spermatocytic seminomas has failed to demonstrate that they are capable of meiotic division. They are composed of cells differentiating in the direction of spermatocytes, but they have not achieved that stage. The prognosis, in general, remains excellent, although recently sarcomas have been reported in association with spermatocytic seminomas with metastasis of the sarcomatous elements. The presence of human chorionic gonadotropin-producing syncytiotrophoblastic giant cells in otherwise pure seminomas does not appear to adversely affect the prognosis. Yolk sac tumors have a varied histology that many pathologists do not recognize. The presence of intercellular basement membrane (parietal differentiation) is useful in the recognition of yolk sac tumor. Sometimes solid foci of yolk sac tumor may be mistaken for seminoma, and alpha-fetoprotein and cytokeratin stains may be useful in this situation, although the presence of basement membrane, hyaline globules, and focal microcysts by light microscopy may obviate the need to use them. Hepatic and enteric (or endometrioid) differentiation may occur in yolk sac tumors and cause diagnostic confusion. The development most "non-germ" cell malignancies in patients with germ cell tumors appears to occur by transformation of aneuploid teratomatous elements at the primary or metastatic site. The identification of such malignancies depends on the recognition of invasion by the elements rather than on high-grade cytologic atypia. Unusual patterns of choriocarcinoma and yolk sac tumor may be encountered following chemotherapy, and there is circumstantial evidence that some sarcomas and carcinomas occurring in patients with testis cancer may develop directly from yolk sac tumor.

Drug Therapy↗

Expression of type 2 11beta-hydroxysteroid dehydrogenase and corticosteroid hormone receptors in early human fetal life.

In adult life, the type 2 isozyme of 11beta-hydroxysteroid dehydrogenase (11betaHSD2) protects the mineralocorticoid receptor (MR) from glucocorticoid by inactivating cortisol to cortisone. 11betaHSD2 activity has been reported in human fetal tissues, where glucocorticoids may impair fetal growth yet are also required for normal fetal development. Using digoxigenin-labeled complementary ribonucleic acid (RNA) probes and an in-house 11betaHSD2 antiserum, we have analyzed the expression of 11betaHSD2, MR, and glucocorticoid receptor (GR) in human fetal tissues of gestational age 6-17 weeks (n=15). 11BetaHSD2 expression was absent at gestational age 6+ weeks, but was expressed in abundance in many fetal tissues between 8-12 weeks. At this time, 11betaHSD2 colocalized with GR messenger RNA (mRNA) expression in metanephros, gut, muscle, spinal cord and dorsal root ganglia, periderm, sex chords of testis, and adrenal. In particular within fetal kidney, intense expression of 11betaHSD2 and GR mRNA was observed over Bowman's capsule and the vascular tufts of developing glomeruli as they migrated from the surface of the kidney to the inner cortex. Only lung and adrenal medullary rests demonstrated high levels of GR mRNA but low levels of 11betaHSD2. 11BetaHSD2 mRNA and immunoreactivity staining patterns were similar, with the exception of the fetal adrenal, where mRNA was localized to the outer definitive zone but immunoreactivity was localized to the inner fetal zone. Colocalization of 11betaHSD2 (and GR mRNA) with MR mRNA was observed principally within epithelial cells of collecting ducts, particularly after 16 weeks gestation when the pattern of distribution of 11betaHSD2 became more adult in nature. High levels of MR mRNA were observed within developing bone. The data indicate that 11betaHSD2 in fetal life principally modulates ligand access to the GR in most fetal tissues, notably glomeruli and tubules in the developing kidney, testis, and periderm, and this may be have ramifications for fetal sodium homeostasis and differentiation. The development of tissues previously shown to have a critical requirement for glucocorticoids, such as lung and adrenal medulla, is facilitated by the expression of GR mRNA, but not 11betaHSD2. The expression of MR mRNA in high abundance in bone suggests a role for corticosteroids in human bone development, and the low/absent expression of 11betaHSD2 at this site suggests that it is functionally acting as a GR.

11-beta-Hydroxysteroid Dehydrogenases↗

Effects of unilateral torsion of the spermatic cord on the contralateral testis in human and guinea pig.

The fine structure of the contralateral, so-called unaffected, testis of two of three patients with unilateral testicular torsion revealed varying degrees of abnormalities, apparently related to the time course of the condition. In one patient (H-87) with unilateral torsion of 16 days duration, the contralateral testis revealed various morphological abnormalities. These included abnormal nuclear condensation in spermatids, disappearance of the inner component of the basal lamina, degeneration of the germinal epithelium, and "intermixing" of germinal epithelial cells with peritubular components. In the other patient (H-109) with severe atrophy of one testis as a result of torsion, the contralateral testis revealed abnormalities which included spermatids with degenerating heads and tails within the Sertoli cell cytoplasm near the basal lamina and peritubular thickening accompanied by a greater than usual number of Leydig cells. In guinea pigs with experimentally induced unilateral torsion, abnormal spermatid development was seen in the contralateral testis of those animals in which the affected testis was severely damaged. Moreover, the Sertoli cells exhibited a high degree of phagocytic activity. Fewer abnormal spermatids in the spermatogonial compartment were found in the contralateral testis of the animals which had only moderately altered histology of the affected testis. No fine structural change was noted in the contralateral testis of control or sham operated animals or in those which displayed only minimal damage in the affected testis. This study suggests that unilateral torsion of the spermatic cord resulting in moderate to severe damage to the affected testis may be associated with morphological abnormalities in the contralateral testis.

Adolescent↗

Male-specific cell migration into the developing gonad is a conserved process involving PDGF signalling.

Male-specific migration of cells from the mesonephric kidney into the embryonic gonad is required for testis formation in the mouse. It is unknown, however, whether this process is specific to the mouse embryo or whether it is a fundamental characteristic of testis formation in other vertebrates. The signalling molecule/s underlying the process are also unclear. It has previously been speculated that male-specific cell migration might be limited to mammals. Here, we report that male-specific cell migration is conserved between mammals (mouse) and birds (quail-chicken) and that it involves proper PDGF signalling in both groups. Interspecific co-cultures of embryonic quail mesonephric kidneys together with embryonic chicken gonads showed that quail cells migrated specifically into male chicken gonads at the time of sexual differentiation. The migration process is therefore conserved in birds. Furthermore, this migration involves a conserved signalling pathway/s. When GFP-labelled embryonic mouse mesonephric kidneys were cultured together with embryonic chicken gonads, GFP+ mouse cells migrated specifically into male chicken gonads and not female gonads. The immigrating mouse cells contributed to the interstitial cell population of the developing chicken testis, with most cells expressing the endothelial cell marker, PECAM. The signalling molecule/s released from the embryonic male chicken gonad is therefore recognised by both embryonic quail and mouse mesonephric cells. A candidate signalling molecule mediating the male-specific cell migration is PDGF. We found that PDGF-A and PDGF receptor-alpha are both up-regulated male-specifically in embryonic chicken and mouse gonads. PDGF signalling involves the phosphotidylinositol 3-kinase (PIK3) pathway, an intracellular pathway proposed to be important for mesonephric cell migration in the mammalian gonad. We found that a component of this pathway, PI3KC2alpha, is expressed male-specifically in developing embryonic chicken gonads at the time of sexual differentiation. Treatment of organ cultures with the selective PDGF receptor signalling inhibitor, AG1296 (tyrphostin), blocked or impaired mesonephric cell migration in both the mammalian and avian systems. Taken together, these studies indicate that a key cellular event in gonadal sex differentiation is conserved among higher vertebrates, that it involves PDGF signalling, and that in mammals is an indirect effect of Sry expression.

Animals↗

Expression of TAK1, a mediator of TGF-beta and BMP signaling, during mouse embryonic development.

TGF-beta activated kinase 1 (TAK1) is a MAP kinase kinase kinase (MAPKKK) that has been shown to function downstream of BMPs and TGF-beta (J. Biol. Chem. 275 (2000) 17647; EMBO J. 17 (1998) 1019; Science 270 (1995) 2008), as well as in the interleukin-1 (IL-1) signaling pathway (J. Biol. Chem. 276 (2001) 3508; Nature 398 (1999) 252). Using immunohistochemistry (IHC), we demonstrate that TAK1 is expressed ubiquitously during early development. At mid-gestation, TAK1 expression becomes more restricted, with high levels seen specifically during development of diverse organs and tissues including the nervous system, testis, kidney, liver and gut. Additionally, TAK1 expression is seen in the developing lung and pancreas. Our results suggest that TAK1 may play multiple roles in mouse development.

Animals↗

Annexin XI co-localises with calcyclin in proliferating cells of the embryonic mouse testis.

Mammalian sex determination relies on the expression of SRY, which triggers a tightly regulated cascade of gene expression leading to male differentiation. Many elements of this pathway remain to be identified. Here, we characterise Annexin XI (Anxa11), a gene whose major site of embryonic expression was within the undifferentiated and differentiating testis. Lower level expression was also observed in both sexes in the Müllerian and Wolffian ducts, the somitic dermamyotome, and the dorsal intermediate zone of the neural tube. Anxa11 transcripts were detected in the indifferent gonad from 10.5 days post coitum (dpc), becoming male specific as development proceeded. Expression was within the testis cords, initially in germ cells, and then in both Sertoli and germ cells. Annexin XI protein was seen in the testis cords from 12.5 dpc, localising to the cytoplasm of the Sertoli cells. Expression of calcyclin (S100a6), shown previously to interact with annexin XI in vitro, was also observed in proliferating cells of the embryonic testis, supporting a possible in vivo interaction.

Animals↗

Lamina propria of sex cords in human fetal testis: an immunohistological and stereological study.

Testicular peritubular cells are located in the lamina propria of seminiferous tubules. These cells, significantly contributing to the basal membrane of seminiferous epithelium, have been studied in a number of species. However, there is a lack of data on the development of the lamina propria in the human testis. The aim of our survey was to investigate the characteristics of the lamina propria and, in particular, peritubular cells in the fetal human testes by immunohistological and stereological methods. Therefore, testes (14-39 weeks of gestation, n = 45) were dissected and fixed in a 4% buffered paraformaldehyde solution. Several pieces of each testis were embedded in paraffin and processed for immunohistochemical and stereological analysis. All investigated testes have shown sex cords in the process of development and differentiation. Morphologically, peritubular cells in the lamina propria can be divided into two types: fibroblast-like (FL) and myoid-like (ML) type (cells which much resemble mature myoid cells). By immunohistochemistry, both FL and ML cells are found to be strongly positive for the intermediate filament desmin, but negative for alpha-smooth actin. While FL cells intensively express Ki-67 demonstrating proliferative activity, ML cells are found to be negative. The basement membrane of sex cords as well as the blood vessels of the interstitium show strong positivity to collagen IV and laminin. Concerning the correlation between the appearance of the investigated antigens with the gestational age, all antigens have been expressed (in the manner described above) already in the 14th week of gestation. The stereological analysis of the number (Nv) and volume (Vv) of peritubular cells indicates a pulsatile development of these cells in the lamina propria of the human fetal testis. While the stereological variables determined for FL cells show a gradual decrease, the same variables determined for ML cells demonstrate a successive increase. It appears that the lamina propria of the fetal human testes shares many of the properties previously discovered in rodents.

Cell Count↗

Atypical development of Sertoli cells and impairment of spermatogenesis in the hypogonadal (hpg) mouse.

Testes of hypogonadal (hpg) mice show arrested postnatal development due to congenital deficiencies of gonadotrophin-releasing hormone (GnRH) and gonadotrophin synthesis and secretion. Follicle-stimulating hormone (FSH), androgen or oestrogen treatment restore qualitatively normal spermatogenesis in hpg testes. Understanding the cellular and molecular changes accompanying hormone-induced spermatogenesis in hpg mice requires detailed morphological analyses of the germ cells and Sertoli cells in the untreated hpg testis. We compared seminiferous epithelial cytology in adult hpg, immature and adult wild-type mice using unbiased optical disector-based stereology, immunolocalization of Sertoli cell microtubules (MT), espin (a component of the blood-testis barrier), markers of Sertoli cell maturity (p27(kip1) and WT-1), and electron microscopy. Hpg testes had marked reductions in weight, seminiferous cord volume and length, and severe spermatogenic impairment with germ cells per testis < 1% of adult wild-type testes. Sertoli cell nuclei expressed WT-1 in hpg testes, but often were centrally located, similar to 9-14-day-old wild-type testes, and they expressed p27(kip1), indicating that hpg Sertoli cells were post-mitotic. Hpg testes had significantly (P < 0.05) reduced Sertoli cells per testis (0.56 million) compared with 10-day wild-type (1.15 million) and adult wild-type testes (2.06 million). Immunofluorescence labelling of normal adult Sertoli cells showed supranuclear MT columns and basally located espin, but these features were absent in 10-day-old and hpg Sertoli cells. Hpg Sertoli cells showed pleomorphic nuclear ultrastructure with mature-type nucleoli, similar to normal adult-type Sertoli cells, but hpg Sertoli cells exhibited incomplete tight junctions that lacked ectoplasmic specializations. We conclude that in hpg mice, chronic gonadotrophin insufficiency restrains Sertoli cell proliferation and maturation, forming pseudo-adult-type Sertoli cells that are incapable of supporting germ cell proliferation and maturation.

Animals↗

Mitogen-activated protein kinases, adherens junction dynamics, and spermatogenesis: a review of recent data.

Mitogen-activated protein kinases (MAPKs) are important regulators of many cellular processes. In mammalian testes, these kinases are involved in controlling cell division, differentiation, survival and death, and are therefore critical to spermatogenesis. Recent studies have also illustrated their involvement in junction restructuring in the seminiferous epithelium, especially at the ectoplasmic specialization (ES), a testis-specific adherens junction (AJ) type. ES contributes to the adhesion between Sertoli cells at the blood-testis barrier, as well as between Sertoli and developing spermatids (step 9 and beyond) at the adluminal compartment. MAPKs regulate AJ dynamics in the testis via their effects on the turnover of junction-associated protein complexes, the production of proteases and protease inhibitors, and the cytoskeleton structure. In this review, roles of the three major MAPK members, namely extracellular signal-regulated kinase (ERK), c-Jun N-terminal kinase (JNK), and p38 MAPK, in ES dynamics are critically discussed. An integrated model of how these three MAPKs regulate adhesion function in the seminiferous epithelium is also presented. This model will serve as the framework for future investigation in the field.

Adherens Junctions↗

Co-existence of gametic and agametic seminiferous tubules in a chimeric mouse. A light- and electron-microscopic study.

Six chimeras, including 4 phenotypic males and 2 females, were produced by aggregation of F1 (C57BL x BALB/c) and Swiss white embryos. All were fertile, except 1 male, whose deviation in testicular structure prompted this light- and electron-microscopic study. This chimera had a well-developed sperm-conducting system, sperm in the epididymis and active accessory sex glands. The testes displayed typical parenchymal and stromal components with the important exception of co-existence of gametic and agametic seminiferous tubules. These tubules were organized in territories of quasi-lobular configurations which appeared to open separately into rete testis. The former corresponded to normally developed and active seminiferous tubules, while the latter were solid testicular cords devoid of any germ cells and embedded in solid masses of interstitial (Leydig) cells. Special mitochondrial transformations were identified in sustentacular (Sertoli) cells of both types of tubules, in maturing spermatids and sperm. These and other submicroscopic sperm defects might be the cause of infertility.

Animals↗

Extracellular matrix abnormalities in testis and epididymis of XXSxr ("sex-reversed") mice.

Sex-reversed (Sxr) is a duplication of the sex-determining region of the Y chromosome, which gets transposed to a paternal X chromosome. Chromosomally female (XX) zygotes that receive this XSxr chromosome develop as apparent males. Previous work on XXSxr mice (called pseudomales) showed extracellular matrix (ECM) ultrastructural abnormalities in the epididymis and testis. This study examined the biochemical nature of these abnormalities. More hydroxyproline (an indicator of collagen) was noted in the pseudomale testis and epididymis compared to normal male tissues. Western blot analysis showed increased collagen IV in the pseudomale testis and epididymis. In both the hydroxyproline and collagen IV studies, the epididymis was found to contain higher levels of these substances than the testis for both genotypes. There also appeared to be increased messenger RNA for tissue inhibitor of metalloproteinases (Timp), a regulator of collagen, in the pseudomale testis. Data from these studies seem to indicate that the XXSxr genotype influences ECM deposition and/or turnover and exerts a direct genetic influence on the development of the testis and epididymis. According to the existing paradigm of mammalian sexual development, the epididymis is expected to be normal in the presence of adequate androgenization and independent of chromosomal and genetic sex. The results presented here differ from what would be predicted by this paradigm.

Animals↗

The Drosophila ovarian and testis stem cell niches: similar somatic stem cells and signals.

The stem cell niches at the apex of Drosophila ovaries and testes have been viewed as distinct in two major respects. While both contain germline stem cells, the testis niche also contains "cyst progenitor" stem cells, which divide to produce somatic cells that encase developing germ cells. Moreover, while both niches utilize BMP signaling, the testis niche requires a key JAK/STAT signal. We now show, by lineage marking, that the ovarian niche also contains a second type of stem cell. These "escort stem cells" morphologically resemble testis cyst progenitor cells and their daughters encase developing cysts before undergoing apoptosis at the time of follicle formation. In addition, we show that JAK/STAT signaling also plays a critical role in ovarian niche function, and acts within escort cells. These observations reveal striking similarities in the stem cell niches of male and female gonads, and suggest that they are largely governed by common mechanisms.

Animals↗

Pure seminoma arising in androgen insensitivity syndrome (testicular feminization syndrome): a case report and review of the literature.

This is a case of a young woman who had testicular feminization syndrome and developed a seminoma in an undescended intrapelvic testis. Androgen insensitivity (testicular feminization) syndrome is a rare inherited form of male pseudohermaphroditism that occurs in phenotypically normal women with adequate breast development, normal external genitalia, a vagina of variable depth, absent uterus, and sparse or absent pubic and axillary hair. The gonad (undescended testes) may be intraabdominal, inguinal, or labial. These patients characteristically have male karyotype (XY) and negative sex chromatin and are at increased risk of undergoing malignant transformation of the undescended gonad. We review the literature emphasizing the biochemical and endocrinologic abnormalities leading to the syndrome, as well as the morphologic abnormalities (light microscopic) of the undescended testes, diagnosis, and therapeutic management.

Adult↗