Search PubMed⌕ Search

Biomedical subjects

M Parvinen

Publications and source records attributed to M Parvinen.

At least 127 records · Page 7Linked to original sources

Nuclear androgen receptors in different stages of the seminiferous epithelial cycle and the interstitial tissue of rat testis.

Testicular androgen receptors were measured with a recently developed exchange assay using [3H]methyltrienolone from samples of interstitial tissue, whole seminiferous tubules, and segments of tubules in different stages of the cycle of the seminiferous epithelium. The hexylene glycol method was used to isolate nuclei and pyridoxal 5'-phosphate for extraction of the androgen receptors. This method proved superior to other techniques employed by our own and other laboratories. As a consequence, higher levels of androgen receptors were detected in seminiferous tubules than previously reported. Androgen receptors in seminiferous tubules and interstitial tissue had high affinity for methyltrienolone (Kd = approximately 3 nM) and steroid binding specificity similar to that of these receptors in other tissues. The concentration of nuclear androgen receptors in whole seminiferous tubules was 670 +/- 100 fmol/mg DNA (mean +/- SE), while that of the interstitial tissue was 1070 +/- 295 fmol/mg DNA. Tubules in stages IX-XII and XIII-I of the epithelial cycle contained significantly more nuclear androgen receptors (900 +/- 170 and 805 +/- 125 fmol/mg DNA, respectively) than those in stages II-VI and VII-VIII (485 +/- 95 and 485 +/- 65 fmol/mg DNA, respectively). These results suggest that there are local differences in androgen receptor concentration along the length of the seminiferous tubule. A high concentration of nuclear androgen receptors was also present in interstitial tissue. Androgen receptors were measurable in cytosol prepared from interstitial tissue, but such measurements were obscured in cytosol from tubules, because of a high capacity binding protein for the 3H-labeled ligand. We conclude that nuclear androgen receptors can be measured in various testicular compartments, including different stages of the seminiferous tubules, using an exchange assay that maximizes recovery. The concentration of nuclear androgen receptors in the tubules varies with the cycle of the seminiferous epithelium.

Animals↗

Toxic and mutagenic influences on spermatogenesis.

Cells at various stages of spermatogenesis show remarkable differences in their sensitivities to toxic and mutagenic agents. For accurate analyses of toxicity and mutagenicity, the most sensitive cell types should be obtained for studies soon after treatment before development of disturbing secondary alterations. The transillumination phase contrast microscopic technique has proved to be useful for this purpose. It allows recognition of rat and mouse seminiferous tubules in living unstained conditions for accurate selection of the desired stages of the cycle of the seminiferous epithelium for morphological and biochemical studies. Specific cell damage can be frequently recognized by transillumination only, whereas in most cases phase contrast microscopy is useful in screening the early stage-specific toxic alterations. A summary is presented of the results obtained by treatment with heat and with anticancer drugs. A meiotic micronucleus method has been developed for direct estimation of the severity of mutagenic insult on rat spermatogenesis. The segment that contains the second meiotic division and the early postmeiotic cells (stages XIV and I) is selected for study. Chromosome damage induced by mutagens may result in the formation of acentric fragments that after meiotic divisions are seen in early spermatids as separate micronuclei. They can be quantitated in squash preparations; the sensitivity of this method is comparable with that of the meiotic metaphase scoring. Recently, an in vitro technique has been developed for stage and cell specific measurements of replicative and repair syntheses of DNA during rat spermatogenesis after mutagen treatments.

Animals↗

Influence of rat seminiferous tubules on Leydig cell testosterone production in vitro.

The interaction of seminiferous tubules and Leydig cells was investigated in the rat in vitro. Crude collagenase-dispersed, or Percoll-purified, Leydig cells were incubated together with seminiferous tubules at different stages of the cycle, isolated by transillumination-assisted microdissection. The testosterone production was measured. Seminiferous tubules inhibited testosterone production of crude Leydig cell preparations, but induced a clear stimulation (30-100%) in Percoll-purified cells. The stimulation was maximal at stages VII and VIII of the cycle, significantly higher than at stages II-VI (P less than 0.05). The stimulation by seminiferous tubules was observed both in basal and hCG-stimulated testosterone production. The effect was independent of FSH or GnRH action. These results demonstrate the presence of paracrine regulatory interaction between seminiferous tubules and Leydig cells, and are in agreement with the concept of a preferential androgen requirement of stages VII and VIII of the cycle.

Animals↗

Cellular regulation of plasminogen activator secretion during spermatogenesis.

The secretion of plasminogen activator (PA) has been found to be highly stage-specific during rat spermatogenesis. It is maximal in Stages VII and VIII of the cycle. At these stages, seminiferous tubules contain primitive type A1 spermatogonia, preleptotene and midpachytene primary spermatocytes, round and maturation-phase spermatids and Sertoli cells. The last cell types are the most likely sources of PA. To investigate which cell type might be involved in the regulation of PA secretion, we have sequentially isolated 1-mm segments of rat seminiferous tubules from Stages VI-IX with transillumination-assisted microdissection and measured PA secretion using 125I-labeled fibrinogen as substrate. In another experiment, spermatogenia were killed by 300 rads of x-rays and PA secretion was analyzed during the absence of desired germ cell classes. The results support the idea that upon their detachment from the basal lamina, preleptotene-stage primary spermatocytes have the major stimulatory action on the PA secretion of the seminiferous tubules. Other phenomena such as spermiation, phagocytosis of residual bodies or opening up of the Sertoli cell junctions seem to influence PA secretion to a lesser extent.

Animals↗

Identification of stage-specific proteins synthesized by rat seminiferous tubules.

Experiments were conducted to determine how the cycle of the seminiferous epithelium influenced synthesis and secretion of proteins by seminiferous tubules. Tubular segments were treated with collagenase and then cultured with [35S]methionine. These myoid cell-depleted tubules isolated from different stages of the epithelial cycle exhibited, at Stages VI and XII, two distinct peaks of secretion of total radiolabeled proteins. Two-dimensional gel electrophoresis indicated that the patterns of secreted proteins from these two stages were remarkably different, while those from other stages were intermediate between those at the peaks. At least 15 proteins were secreted cyclically, many of them previously unrecognized products of the seminiferous epithelium. One product, designated Cyclic Protein-2 (CP-2), exhibited a pronounced cycle of secretion, its peak at Stage VI being 30-fold greater than at its nadir at Stages XII-XIV. Further investigation indicated that CP-2 did not appear to originate from myoid cells or dispersed germ cells but could be recovered from Sertoli cell-enriched cultures prepared from Stage VI tubules. Protein secretion by tubular segments was also characterized by immunoprecipitation with two polyspecific antisera directed against Sertoli cell products. Five secretory proteins were identified which had cycles different from one another and from CP-2. In contrast to secreted products, the synthesis of most cellular proteins by tubular segments remained relatively constant throughout the cycle. It is concluded: 1) segments of the seminiferous epithelium secrete proteins into the culture medium which are distinct from cellular proteins; 2) the synthesis of many of these proteins varies with the epithelial cycle; and 3) several of the secreted proteins are of Sertoli cell origin, including a newly identified protein, CP-2. This indicates that the morphology and the protein synthetic capacity of the seminiferous epithelium are coordinated over space and time.

Animals↗

Spermatogenesis in vitro: completion of meiosis and early spermiogenesis.

In vitro formation of haploid spermatids has not been convincingly demonstrated in mammals. To investigate this problem we selected defined segments of rat seminiferous tubules containing late pachytene and diakinetic primary spermatocytes (Stages XII and XIII of the cycle) for culture in a chemically defined medium. After 2 days, most spermatocytes completed both meiotic divisions, and by 6 days the tubular epithelium developed morphologic characteristics of Stage V in which the newly formed spermatids had acrosomic systems characteristic of step 5 spermiogenesis. The seminiferous tubules also differentiated biochemically as evidenced by increased production of proteins characteristically secreted by Stage V. Since this in vitro differentiation of the germinal epithelium occurred in the absence of testosterone and FSH, we conclude that late pachytene spermatocytes and their associated Sertoli cells have all the information required for both meiotic divisions and early spermiogenesis.

Animals↗

The hormonal and cellular control of Sertoli cell secretion.

Sertoli cells synthesize and secrete a number of cell-specific products including androgen binding protein (ABP), as well as "serum proteins" such as transferrin. The secretion of these proteins is regulated by extra-testicular hormones such as FSH and insulin; Leydig cell-produced steroids and proopiomelano-cortin-derived peptides; and the presence of peritubular myoid cells and/or factors secreted by these cells. Many of the Sertoli cell proteins are secreted in a cyclic fashion during the different stages of the spermatogenic cycle suggesting communication between Sertoli cells and developing germ cells. The availability of quantitative measurements for Sertoli cell-specific proteins such as ABP make it feasible to follow Sertoli cell function in vivo by measuring these products in serum. A bidirectional secretion of proteins by Sertoli cells is proposed to explain the presence of specific peptides in the male reproductive tract and blood.

Androgen-Binding Protein↗

Stage-related variations in DNA fluorescence distribution during rat spermatogenic cycle measured by flow cytometry.

Living segments of rat seminferous tubules representing the fourteen stages of the spermatogenic cycle have been isolated for DNA flow cytometry using the transillumination-assisted microdissection procedure. The resulting DNA profiles showed stage-related variations in the proportions of cells within the haploid (1C), diploid (2C) and tetraploid (4C) classes. Three distinct populations of haploid cells could be distinguished according to differences in fluorescence intensity of their nuclear DNA. The major haploid peak (1C) was found to reflect the steps 1-11 spermatids, the first hypofluorescent peak (fluorescence intensity from 0.45-0.75C) the steps 12-15 spermatids and the second hypofluorescent peak (fluorescence intensity of ca 0.25C) the maturing steps 16-19 spermatids. The changes in fluorescence intensity could thus be correlated with nuclear protein transitions that are known to occur during spermiogenesis in rats. The results indicated that tht processes responsible for the changes in nuclear fluorescence intensities are rapidly occurring, although not synchronously in all spermatids at the same developmental stages.

Animals↗

A colcemid-sensitive mechanism involved in regulation of chromosome movements during meiotic pairing.

Active movements of the chromosomes may be needed in the process, where homologous chromosomes find each other during the meiotic pairing. Because the components of the cytoskeleton are generally believed to be responsible for all movements in living nonmuscle cells, we have analyzed the regulation of the movements of zygotene chromosomes in the male rat by using specific inhibitors of the assembly of the various components of the cytoskeleton. --Colcemid, an inhibitor of microtubule formation, completely inhibited the chromosome movements in vitro at a concentration of 1 microgram/ml. This was associated with a damage of the nuclear envelope revealed by the electron microscopic analysis. Another inhibitor of microtubule formation, vinblastine, was ineffective below the level of general toxicity (100 microgram/ml). A specific microfilament inhibitor, cytochalasin B was similarly ineffective. --The findings suggest the presence of a specific colcemid-sensitive mechanism in the nuclear envelope of the zygotene spermatocytes, which regulates the movements of the chromosomes during meiotic pairing.

Animals↗

Stage-dependent secretion of ABP by rat seminiferous tubules.

The secretion rate of the Sertoli-cell-specific androgen-binding protein (ABP), has been studied in isolated rate seminiferous tubules, where the stages of the spermatogenic cycle have been identified by a transillumination method. The secretion of ABP was highest in stages VII-XII, as determined by steady-state polyacrylamide-gel electrophoresis as well as by radioimmunoassay. More specifically, when the sensitive RIA technique permitted the assay of ABP secretion from a total amount of 10-30 mm of isolated tubules, it was found that maximal ABP secretion occurred at stages VIII-XI and minimal at stages IV-V. The present results show that the secretory activity of the Sertoli cells (ABP) is influenced by the type of germ cell at each cell association. It is postulated that the variation is Sertoli-cell secretory activity is of importance for the normal maintenance of spermatogenesis.

Androgen-Binding Protein↗

Stage dependent variation in Mn2+-sensitive adenylyl cyclase (AC) activity in spermatids and FSH-sensitive AC in sertoli cells.

The variation of the specific Mn2+-dependent adenylyl cyclase (AC activity in spermatids and follicle stimulating hormone (FSH)-responsive AC activities in Sertoli cells in different stages (I-XIV) of the seminiferous epithelial cycle has been investigated. Maximal Mn2+-dependent AC activity was observed in stages II-III while minimal activity was encountered in stages VII-VIII (spermiation). FSH-responsive AC activity exhibited a pattern that coincided with that of the Mn2+-dependent AC. The stage-dependent variation in spermatid AC activity cannot be explained by altered numbers of haploid cells. This raises the question whether the Sertoli cells may regulate the spermatid AC activity. Sertoli cells in various stages are all exposed to the same concentration of circulatory hormones. Hence the stage-dependent difference in FSH-responsiveness indicates that local influences (from germ cells?) may regulate the response of the AC in Sertoli cells to FSH.

Adenylyl Cyclases↗

Identification of living spermatogenic cells of the mouse by transillumination-phase contrast microscopic technique for 'in situ' analyses of DNA polymerase activities.

The stages of spermatogenesis can be identified in freshly isolated, unstained adult mouse seminiferous tubules using a transillumination method. Late acrosome- and maturation phase spermatids, arranged in bundles at stages XII-VI give rise to a spotty transillumination pattern. Before spermiation, these cells form a continuous layer on the top of the seminiferous epithelium, recognized by a strong homogeneous central light absorption in the freshly isolated seminiferous tubules at stages VII and VIII. Other stages have a pale light absorption pattern. The accurate determination of the developmental stages of the germ cells was based on the morphology of the developing acrosomic system and of the nuclei of the spermatids, as revealed by phase contrast microscopy. Using this procedure, the activity levels of DNA polymerases alpha and beta have been studied by autoradiography of squash preparations. Using endogenous templates, assay conditions that differentiate between the solubilized DNA polymerases alpha and beta in vitro, were used to distinguish between these activities in situ in different stages of mouse spermatogenesis. Except in very late spermatids shortly before spermiation, DNA polymerases alpha and beta were detectable in all cell types examined. Coinciding with the nuclear protein transitions, elongating spermatids at steps 10-12 and maturation phase spermatids at steps 13-14 showed high DNA polymerase activities. As no replication occurs in these cells, the observations support the view that both DNA polymerases alpha and beta could be involved in repair DNA synthesis.

Animals↗

Meiotic micronuclei induced by X-rays in early spermatids of the rat.

In mutagenicity studies a rapid detection of chromosomal damage in mammalian germ cells would be very valuable. Encouraged by the usefulness of the bone-marrow micronucleus test, we applied analogous method to the assay of micronuclei induced during meiotic reduction divisions in the adult male rat by X-irradiation. The micronuclei were observed in early post-meiotic cells which were enriched using a transillumination phas-contrast microscopic method. The frequency of micronuclei was scored at various dose levels and at various time intervals. The results indicate a linear increase in the frequency of micronuclei 24 h after X-irradiation with doses of 0, 10, 50, 150, 300 and 600 rad. The highest frequency of micronuclei was observed after 900 rad whereas lower frequencies were found after 1200 rad. The lowest dose giving a statistically significant increase above the control level was 50 rad. The stages of meiosis showed different sensitivities to the chromosome-breaking action of X-rays. The maximal incidence of micronuclei was found 18 h after irradiation which was considered to reflect the great radiosensitivity of diakinesis-metaphase I. The anesthetized group of control animals showed a slightly higher frequency of micronuclei than the non-anesthetized controls. Potentials of the new method for mutagen testing are discussed.

Animals↗