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At least 19 recordsLinked to original sources

Chronic intoxication by heroin; histopathological effects on seminiferous tubules.

Seminiferous tubules from heroin abusers and from rats chronically intoxicated by heroin samples presented a striking reduction in the thickness of the germinal epithelium. Light and electron microscopical studies showed a considerable increase of lipids and phagosomes in Sertoli cells, disorganization of their junction complexes, detachment of immature germ cells which appeared free in the tubular lumen, and formation of giant multinucleate spermatids. These alterations point out that Sertoli cells could be the target element for the toxic effect of heroin samples on the seminiferous epithelium.

Adult↗

Temporal relationship between androgen-dependent changes in the volume of seminiferous tubule fluid, lumen size and seminiferous tubule protein secretion in rats.

This study assessed whether changes in production of seminiferous tubule fluid underlie the previously described androgen-dependent changes in protein secretion by seminiferous tubules at stages VI-VIII of the spermatogenic cycle. Testosterone withdrawal was induced in adult rats by administration of ethane dimethane sulfonate (EDS) and temporal changes in lumen area, the volume of seminiferous tubule fluid and testicular interstitial fluid were assessed and compared with the changes in secretion of [35S]methionine-labelled proteins in vitro by isolated seminiferous tubules at stages VI-VIII. Testicular interstitial fluid was reduced by about 50% by day 4 and later after EDS treatment when compared with controls. In contrast, the volume of seminiferous tubule fluid was unaffected at days 3 and 4 but was reduced by about 50% at days 6 and 8 after EDS treatment. In perfusion-fixed control testes, the lumen area of seminiferous tubules at stages VII-VIII was significantly greater than at stages I-VI and IX-XIV. This difference was also evident at 4 days after EDS treatment, but was abolished at 6 and 8 days after treatment. The volume of testicular interstitial fluid was reduced significantly at 3 and 4 days after EDS treatment, but was further reduced (about 50%) at 6 and 8 days. Administration of 25 mg testosterone esters every 3 days to EDS-treated rats prevented all of the changes described above.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Immunosuppressive activity in the rat seminiferous tubules.

Rat seminiferous tubule segments in defined stages of the epithelial cycle were isolated by transillumination-assisted microdissection. The segments were cultured together with ConA-stimulated peripheral blood lymphocytes (PBL) and incorporation of 3H-labelled thymidine was measured. Tubule segments in stages II-VIII of the seminiferous epithelial cycle inhibited PBL proliferation significantly more than stages IX-I. Inhibition was lowest in stages IX-XII and increased progressively to reach a maximum in stages II-VIII. In a more detailed analysis, tubules in stages V and VI inhibited PBL proliferation significantly less than stage II tubules. No significant difference was observed between stages II and VII. The immunosuppressive activity had molecular weights of approximately 25 kDa and approximately 65 kDa in stage II-VIII seminiferous tubules. In stage II-VI seminiferous tubules activity was present also at approximately 10 kDa. The results suggest that the seminiferous tubules produce high-molecular weight immunosuppressive activity in a stage-dependent way. In addition to its contribution to the immunologically privileged milieu of the testis this activity may also be involved in the physiological regulation of DNA synthesis in the seminiferous epithelium.

Animals↗

[Testosterone metabolism in isolated cells of rat and ram seminiferous tubules].

Aspermatogenic seminiferous tubules were obtained from adult Wistar rats treated with Busulfan at the 20th day of foetel life. The isolated tubules converted 14C testosterone (T) into androstenedione (delta4), 3,5%) 5 alpha-dihydrotestosterone (DHT), (1%) ANd 5 alpha-androstane-3 beta, 17 beta-diol at unit gravity and incubated with 14C-T. Only delta was produced (2%). Using a similar technique the same result was obtained when pure preparation of round spermatids and primary spermatocytes from ram testis were incubated with 14C-T. From these experiments, we conclude that 5 alpha-reductase activity is present only in Sertoli cells.

Animals↗

The connection between the seminiferous tubules and the rete testis in the domestic fowl (Gallus domesticus). Morphological study.

The tubules connecting the seminiferous tubules proper to the rete testis in the fowl were studied with the aid of light and electron microscopy. The material examined ultrastructurally was fixed by vascular perfusion through the thoracic aorta. The seminiferous tubules were joined to the rete testis in three different ways; they were either linked by a terminal segment and a tubulus rectus, by a terminal segment only, or opened directly into the rete cavities. The terminal segment of the seminiferous tubules was lined with columnar cells (modified Sertoli cells). These cells were characterized by having an indented nucleus with a prominent nucleolus, many mitochondria, a sizable Golgi apparatus, electron dense bodies and many cytoplasmic protrusions into the lumen. Intraepithelial lymphocytes as well as macrophages in the lumina of the terminal segment, the tubuli recti and the rete testis were also observed. Myoid cells were found in the boundary tissue of the terminal segment.

Animals↗

Pharmacological and histological evidence for adrenergic innervation of the myoid cells in the rat seminiferous tubule.

Although the existence of seminiferous tubule contractions attributed to peritubular myoid cells is established, the control of the contractions is poorly understood. In this communication, it is shown that the rat seminiferous tubule responds to autonomic drugs and to stimulation of the perivascular nerve running along the spermatic vessels, by means of recording the intratubular pressure with a servo-null micropressure measuring device. Furthermore, the presence of nerve fibers close to the myoid cells is shown using a silver impregnation technique. Furthermore, the nature of the neurotransmitter contained in synaptic vesicles using 5-hydroxydopamine and L-DOPA as markers of adrenergic nerve elements with electron microscopy is shown in this report. It is concluded that there are adrenergic alpha- and beta-receptors and muscarinic receptors in myoid cells of the rat seminiferous tubule and that the contractions of seminiferous tubules are regulated by adrenergic nerve fibers.

Acetylcholine↗

Dehydrodolichyl diphosphate synthetase from rat seminiferous tubules.

Homogenates of seminiferous tubules from rat testes catalyzed the incorporation of label from [14C]isopentenyl diphosphate into a variety of polyprenyl products. Long chain polyprenyl mono- and diphosphates were formed as major products when undesirable side reactions were minimized. The long chain polyprenyl diphosphate synthetase was measured as a sum of the mono- and diphosphate derivatives formed and was dependent on the addition of t,t-farnesyl diphosphate, isopentenyl diphosphate, and divalent cation. The highest activity was associated with the membranous fractions, whereas activity was negligible in the cytosolic fraction. The products of this prenyl transferase were labile to acid and yielded petroleum ether soluble products which indicated that the alpha-isoprene unit was unsaturated. Hydrolysis of either the polyprenyl mono-or diphosphates with a testicular phosphatase in the absence of NaF yielded C75, C80, C85, and C90 polyprenols. The chain lengths of the products of the synthetase suggest that this enzyme is responsible for the de novo biosynthesis of dehydrodolichyl diphosphates which are precursors of the dolichyl derivatives found in testes.

Alkyl and Aryl Transferases↗

Testosterone micromilieu in staged rat seminiferous tubules.

Endogenous testosterone concentrations in rat seminiferous tubules were measured in relation to different stages of the cycle of the seminiferous epithelium. For this purpose, the seminiferous tubules were mechanically separated from the interstitial tissue on a cooled (1 degree C) petri dish under a stereomicroscope without added medium. After recognition of the stages of the cycle by transillumination, the specimens were rapidly transferred by dry forceps into test tubes for testosterone radioimmunoassay. The results of the dry dissection method were compared with measurements on tubules that were kept after separation in phosphate buffered saline (PBS, pH 7.4), in order to reveal the possible leakage of testosterone from the tubules. The maximal concentration of testosterone per unit length of seminiferous tubule was found in stages VII and VIII of the cycle (288 +/- 60 fmol/cm, mean +/- SEM, n = 12), and the minimal in stages IX-XII (219 +/- 57 fmol/cm, P less than 0.01). If the levels were correlated with unit volumes of the seminiferous tubules, identical concentrations of testosterone (521-542 fmol/mm3, approx. 500 nmol/l) were found in the different stages of the cycle. Despite the similarity of testosterone concentrations in the different parts of the seminiferous tubules the local concentrations of biologically active (i.e. free) testosterone may be modulated by extracellular and intracellular androgen binding components.

Animals↗

Intratesticular factors and testosterone secretion: the effect of treatment with ethane dimethanesulphonate (EDS) and the induction of seminiferous tubule damage.

The role of seminiferous tubule dysfunction in regulating the levels of a factor (or factors) in testicular interstitial fluid (IF) which stimulates Leydig cell testosterone secretion in vitro, was assessed by injecting rats with the Leydig cell toxin, EDS. Within 72 h of treatment EDS destroyed the Leydig cells and concomitantly reduced IF testosterone to undetectable levels. This was associated with nearly a 2-fold increase (P less than 0.001) in levels of the IF-factor(s) as judged by the enhancement of hCG-stimulated testosterone production (= IF bioactivity). By 3 weeks, and thereafter up to 10 weeks post-EDS, Leydig cells regenerated within the testis, and testosterone levels returned to control values, but IF-bioactivity remained significantly increased. The latter was associated with seminiferous tubule dysfunction as indicated initially by testicular morphology, raised serum levels of FSH and reduced testicular weight. For animals with normal testosterone levels, there was a significant negative correlation (r = -0.57, N = 46; P less than 0.001) between testicular weight and IF bioactivity. A similar increase in IF bioactivity in the presence of normal testosterone levels was observed in rats in which patchy severe seminiferous tubule damage had been induced by short-term cryptorchidism. It is concluded that, in addition to testosterone, seminiferous tubule function may dictate the intratesticular levels of the testosterone-stimulating factor(s) in IF.

Animals↗

Characterization of nuclear pore distribution in freeze-fracture replicas of seminiferous tubules isolated by transillumination.

Transilluminated seminiferous tubules were staged and utilized to determine the distribution of nuclear pore complexes in seminiferous tubules of the rat. Segments of seminiferous tubules of adult albino rats were separated and identified (in stages VII-VIII, IX-XI, XII-XIV, and V-VI), and then processed by freeze-fracture. Type A spermatogonia, the only spermatogonia located in seminiferous segments possessing stages IX-XI and XII-XIV, are oval cells in contact with the basal lamina. They either exhibit a random distribution of nuclear pores or a slight degree of clumping. Type B spermatogonia, found in segments possessing stages V-VI, exhibit, instead, a noticeable pore clustering. The identification of intermediate spermatogonia was not undertaken in this study. Preleptotene spermatocytes are easily identified in freeze-fracture by their location in segments with stages VII-VIII, by their arrangement in numerous groups between the basal lamina and the pachytene spermatocytes, and by their comparatively small size. They exhibit noticeable pore clustering. Leptotene (segments containing stages IX-XI) and zygotene (XII-XIV) spermatocytes show a more homogeneous distribution of nuclear pores. Pachytene spermatocytes are identified by their large size, by consistent detachment from the basal lamina and by being rather numerous and found in all the stages explored. Diplotene spermatocytes have the largest nuclei of all germ cells. They are always detached from the basal lamina and found only in seminiferous segments containing stage XIII. Pachytenes display a regular geometric array of pore aggregation with striking clustering, whereas diplotene nuclear pores takes on a random distribution. Secondary spermatocytes, only present in stage XIV intermingled with metaphase-anaphase profiles, are characterized in replicas by a paucity of evenly distributed nuclear pores.

Animals↗

Separation of interstitial and tubular cells of human testis by means of an anti-substance P-antiserum. Androstane-3 beta, 17 beta-diol is exclusively formed by seminiferous tubules.

Leydig cells and seminiferous tubules of human testicular tissue were successfully separated by means of an anti-substance P-antiserum. On incubation with (14C)-testosterone or (14C)-dihydrotestosterone (DHT) it could be shown that besides DHT and 5 alpha-androstane-3 alpha, 17 beta-diol (3 alpha-diol) also 5 alpha-androstane-3 beta, 17 beta-diol (3 beta-diol) originated in the tubular compartment. The ratio 3 alpha/3 beta-diol was found to be higher (0.7) here compared to incubation with whole testicular tissue (0.2), indicating that the testicular interstitium influences the metabolism of DHT by the seminiferous tubules.

Aged↗

On the ultrastructure of modified Sertoli cells in the terminal segment of seminiferous tubules in the boar.

The seminiferous tubules are linked to the tubuli recti by a short terminal segment which is lined by a single layer of modified Sertoli cells whose long cytoplasmic processes occlude the lumen and form a plug-like structure in the 'receptacle. The main features of the modified Sertoli cells are: enormous numbers of microtubules and microfilaments, many crystalloids, abundance of rough endoplasmic reticulum, and paucity of smooth endoplasmic reticulum. The intercellular spaces are considerably dilated, and the cells posses intracellular spaces having well developed microvilli. Degenerated spermatozoa were seen engulfed by the modified Sertoli cells. Desmosome-like devices and tight junctions were observed joining adjacent cells. The configuration of the epithelium and the fine structure of the cells of the terminal segment are discussed in relationship to their possible roles as modifiers of the seminiferous tubule fluid and as regulators of fluid reflux from the rete testis into the seminiferous tubules.

Animals↗

Evidence for innervation of the myoid cell in the human seminiferous tubule.

Although the existence of the seminiferous tubule contractions attributed to myoid cells is established, the control of the contractions is poorly understood. Recently, we have suggested the possible neural control mechanism for contractility of the human seminiferous tubule. In an effort to identify the nerve supply to the myoid cells in the human seminiferous tubules, we studied the paraffin sections of biopsied testicular specimens using a protein silver impregnation technique (Bodian's method). Here we demonstrate evidence for the presence of nerve fibers close to the myoid cells. It is highly suggested that contraction of the human seminiferous tubule may play an important role in the transport of spermatozoa, and neurohumoral regulatory mechanism may partly exist in this connection.

Adult↗

The lamina propria of the bovine seminiferous tubule.

The boundary tissue of bovine testicular seminiferous tubules exhibits remarkable regional differences at the level of the seminiferous tubule proper, as compared with its terminal segment. The basal lamina of the seminiferous tubule proper is multilayered and possesses knob-like protrusions. At the level of the terminal segment the basal lamina is highly specialized; in the region of the terminal plug candelabrum-like projections of the tubular basal lamina invade the bases of the modified supporting cells up to a depth of 3.5 microns. The adjoining surface of these supporting cells is densely studded with hemidesmosomes. The elongated peritubular cells are arranged in 3--5 concentric layers around the tubulus seminiferus proper but form a loose association at the level of the terminal segment. Where the terminal segment joins the testicular straight tubule, peritubular cells may assemble to constitute a contractile spiral. Elastic tissue is situated mainly subjacent to the tubular basal lamina and to a lesser degree between the peritubular cell layers. A peritubular space lined by endothelium-like cells may surround the seminiferous tubule proper and also the transitional zone of the terminal segment.

Animals↗

Ultrastructure and function of the lamina propria of mammalian seminiferous tubules.

The lamina propria of the seminiferous tubules comprises the basement membrane, plus one or more layers of cells, depending on the species, and intercellular material. The myoid (contractile) cells are nearest to the seminiferous tubules. In larger mammals, several layers of contractile cells, surrounding the seminiferous tubules are normally present. They are charaterized by the presence of boundles of 80 A filaments, which are responsible for the contractility. It is supposed, that the myoid cells are renewed from adjacent peripheral fibroblast-like cells.

Animals↗

Effect of gossypol on the potential difference of rat seminiferous tubules.

The p.d. of the rat seminiferous tubules was 4.75 +/- 1.39 mV (lumen negative) at 35 degrees C and varied linearly with temperatures from 26 to 40 degrees C. A depolarization of the seminiferous tubules was found in the rats administered with gossypol at the dosage of 30 mg/kg body weight for 3 weeks, the p.d. lowered to 3.63 +/- 0.79 mV at 35 degrees C and was independent of the changes of seminiferous tubules temperature. In the 5-week-gossypol-treatment group, the tracer penetrated not only the myoid cell layer, but also went beyond the tight junction complexes between Sertoli cells. The lanthanum appeared in the cleft surrounding spermatogonia. In the 8-week-gossypol-treatment group, the lanthanum was found in the adluminal compartment. It indicates that gossypol can cause a dysfunction of the Sertoli cells and blood-testis barrier and disturb a good physiological environment for the developing spermatocytes.

Action Potentials↗

Development of the seminiferous tubules after neonatal hemicastration in the boar.

Development of the prepubertal seminiferous tubules of the right testis was characterized morphometrically every 14 days from 10 to 122 days of age in intact boars (I) and boars hemicastrated (HC) on Day 10 of life from two herds (Trial 1 and Trial 2). Comparisons were made between the remaining testis of Group HC boars and one testis in Group I boars. By 38 days of age seminiferous tubule length in Group HC boars was double (P less than 0.0001) that in Group I boars. Seminiferous tubule length did not differ between trials within treatments. The diameter of the seminiferous tubule was similar in Group HC and I boars but was greater (P less than 0.05) in Trial-1 than Trial-2 boars from Day 80 to 122 of life. Relative mass (mass of tissue/body mass) of Sertoli cells became 2-fold greater (P less than 0.0001), in Group HC than in one testis of Group I boars by 38 days of age and this difference was maintained throughout the experimental period. The relative mass of Sertoli cells was greater (P less than 0.05) in Trial-1 than Trial-2 boars within each treatment between 80 and 122 days of age. The relative mass of gonocytes was similar for all groups and treatments of boars. By 122 days of age the relative mass of spermatogenic cells was greater (P less than 0.05) in Group HC than in one testis of Group I boars and greater (P less than 0.01) in Trial-1 than Trial-2 boars within each treatment. Onset of spermatogenesis was first observed at 80 and 94 days of age in boars in Groups HC and I, respectively. Development of seminiferous tubule lumen was first observed at 94 and 108 days of age in boars in Groups HC and I respectively. Seminiferous tubule lumen, taken as a measure of fluid secretion of the Sertoli cells, occupied a greater (P less than 0.01) portion of seminiferous tubule in Trial-1 than Trial-2 boars within each treatment at the end of the experimental period. It is concluded that neonatal hemicastration of boars rapidly caused a compensatory seminiferous tubule elongation apparently due to Sertoli cell proliferation and an earlier onset of spermatogenesis. However, the gonocytes do not proliferate until they transform into spermatogonia.

Animals↗