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Effects of different light wavelengths at equal irradiance on testis weight, protein content, and K-paranitrophenylphosphatase activity in the Syrian hamster.

The effects of different light wavelengths at equal irradiance on testis weight, testis protein content, and testis K-paranitrophenylphosphatase (K-pNPPase) activity were studied in the Syrian hamster. One group (long photoperiod) was maintained on a light:dark cycle of 14:10, and another group (short photoperiod) on a cycle of 10:14. Five other groups were maintained on a cycle of 10:14 but with a one hour pulse of equally intense illumination in the middle of the dark period with UV, blue, green, yellow or red light. Animals exposed to a long photoperiod or UV, blue or green light pulses had significantly greater testis weights--up to eightfold greater than those in the yellow or red or short photoperiod groups. Organ protein content closely paralleled organ weight, but the protein/wet weight ratio was consistently higher in the large organ groups. K-pNPPase and Mg-pNPPase activities were significantly higher in the large organ groups, even when expressed per mg protein. Therefore, at a balanced irradiance of 0.2uW/cm2, light wavelength exerts a profound effect on testicular weight, protein content, and K-pNPPase and Mg-pNPPase activities. Testicular involution is a process that is selective with regard to protein biosynthesis.

4-Nitrophenylphosphatase↗

Similar high molecular weight forms of growth hormone-releasing hormone are found in rat brain and testis.

We have utilized a new radioimmunoassay for rat growth hormone-releasing hormone (GHRH) to investigate the presence of GHRH in different organ systems of adult rat, and specifically the rat central nervous system (CNS). The highest concentration of GHRH was found, as expected, in the hypothalamus, but significant amounts were also located in the brain cortex, predominantly the frontal cortex, as well as in the testis. Smaller amounts were identified in the cerebellum and brain stem. Sephadex and reversed phase high performance liquid chromatography demonstrated that while hypothalamic GHRH exclusively eluted at the position of rat GHRH (1-43), in testis and brain the major form was predominantly (testis) or wholly (brain) of a higher molecular weight. While this molecular species has yet to be further characterized, the data suggest the similar GHRH-like species exist in the CNS as well as the testis.

Animals↗

Chemical dosimetry of ethyl nitrosourea in the mouse testis.

[3H-Et]Nitrosourea was administered to male (101 X C3H) mice by i.p. injection at exposure levels of 10 mg/kg or 100 mg/kg. At intervals from 1 h to 6 days following treatment, the ratio of O6-ethylguanine to N7-ethylguanine in testis DNA averaged 1.13 following the 100 mg/kg exposure and 0.72 following the 10 mg/kg exposure. The amount of O6-ethylguanine recovered after the 100 mg/kg exposure was 40% greater than predicted from a linear extrapolation of the amount of O6-ethylguanine recovered after the 10 mg/kg exposure. We suggest that the high (100 mg/kg) exposure to ethyl nitrosourea results in depletion of the O6-alkylguanine acceptor protein within the testis and permits O6-ethylguanine to persist at higher levels than would be predicted from lower exposure data. W.L. Russell et al. (1982), W.L. Russell (1984) have found that specific-locus mutation frequencies induced in mouse spermatogonial stem cells are 5.8-fold greater after a single 100 mg/kg exposure to ethyl nitrosourea than after 10 weekly exposures to 10 mg/kg. The finding that the corresponding ratio for O6-ethylguanine formed in the testis is only 1.4 may be interpreted in a number of possible ways. If O6-ethylguanine is an important lesion for producing specific-locus mutations, then its formation in the stem cells must be at least 4-fold greater than that for the whole testis as the ENU exposure goes from 10 to 100 mg/kg: alternatively, the rate of repair of this lesion by the stem cells must decrease at least 4-fold relative to the average testicular cell. Other explanations for the difference in mutation response of the stem cells to acute vs. chronic ethyl nitrosourea-exposures include the possibility that other DNA lesions may be responsible for many of the mutations or that two hits on the DNA may be required to produce an effect.

Alkylating Agents↗

3 beta-Hydroxysteroid dehydrogenase/delta 5-4 isomerase activity in the rhesus monkey placenta and fetal adrenal, testis and ovary during late gestation.

3 beta-Hydroxysteroid dehydrogenase/delta 5-4 isomerase (3 beta-HSDH) was measured in the rhesus monkey (Macaca mulatta) placenta, fetal adrenal (whole organ minus medulla), testis and ovary during late gestation (Days 145-162). Activities were evaluated from the conversion of [3H]-pregnenolone to [3H]progesterone. The maximum enzyme velocity (Vm) in adrenal microsomes (100,000 g pellet) was significantly higher (146 nmoles progesterone/h X mg-1 protein) than in microsomes from the other tissues. Testicular Vm was greater than either ovarian or placental Vm which were not different from one another (11.5 versus 1.9, 1.2 nmoles progesterone/h X mg-1 protein, respectively). Apparent Michaelis-Menten constants in the adrenal, placenta, testis and ovary averaged 1.8, 2.5, 0.27 and 0.16 microM, respectively. In some cases, substrate inhibition was noted. Estimated dissociation constants for pregnenolone were 2.3 microM (adrenal), 2.1 microM (placenta), 0.74 microM (testis) and 0.13 microM (ovary). 3 beta-HSDH was less active in a crude mitochondrial preparation from the fetal adrenal (10,000 g pellet) than in microsomes, whereas activity in the placenta and testis appeared to be equally distributed between mitochondria and microsomes. Rate measurements were consistent with the apparent potentials of these organs to synthesize their characteristic hormones. Thus, 3 beta-HSDH activity may be an important rate determining step in hormone synthesis. The importance of substrate inhibition in progesterone formation remains to be assessed.

3-Hydroxysteroid Dehydrogenases↗

Trifluoroethanol and its oxidative metabolites: comparison of in vivo and in vitro effects in rat testis.

Trifluoroethanol (TFE) and trifluoroacetaldehyde (TFALD) produced a reduction in testis weight 3 days after a single oral dose of 10 mg/kg. In contrast, administration of trifluoroacetic acid (TFAA) caused no observable testicular effects. Reduction in testis weight was accompanied by morphological changes, involving specific damage to pachytene and dividing spermatocytes, and round spermatids. In an in vitro Sertoli/germ cell co-culture system, only TFALD was found to produce dose-related effects at concentrations of 10(-3) and 10(-4) M. There was increased germ cell loss from the cultures, particularly loss of pachytene and dividing spermatocytes, accompanied by leakage of the pachytene spermatocyte marker enzyme, lactate dehydrogenase-X. TFE and TFAA did not produce these effects in the culture system at concentrations equimolar with TFALD. These results suggest that TFALD may play a critical role in the development of the testis lesion seen with TFE in vivo. The effects seen both in vivo and in vitro were remarkably similar to those previously reported for another substituted alcohol and its metabolites, ethylene glycol monomethyl ether. It is postulated that the two series of compounds may have a similar mode of action on rat testis.

Acetaldehyde↗

2,3,7,8-Tetrachlorodibenzo-p-dioxin inhibits steroidogenesis in the rat testis by inhibiting the mobilization of cholesterol to cytochrome P450scc.

Testosterone synthesis in 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD)-treated rats is decreased because pregnenolone production by the testis is inhibited. This inhibition can only be caused by a reduction in the activity of the mitochondrial enzyme which converts cholesterol into pregnenolone (cytochrome P450scc), and/or by an impairment in the multistep process by which luteinizing hormone (LH) stimulates the mobilization of cholesterol to this enzyme. Seven days after rats were treated with 100 micrograms TCDD/kg, testicular cytochrome P450scc activity (assayed with 20 alpha-hydroxycholesterol as substrate) was decreased to 45% of control. If this decrease were responsible for the inhibition of testicular steroidogenesis in vivo, substrate pools for cytochrome P450scc in the testis would be increased. Yet TCDD decreased the amount of cholesterol that was readily available to cytochrome P450scc in isolated testis mitochondria (the reactive cholesterol pool), even when steroidogenesis was maximally stimulated in vivo with the LH analogue human chorionic gonadotropin (hCG). These decreases in substrate pools were not due to a reduction in mitochondrial capacity for reactive cholesterol. We conclude that the 55% decrease in cytochrome P450scc activity is not severe enough to inhibit testicular steroidogenesis in vivo. Instead, TCDD must act by inhibiting the LH-stimulated mobilization of cholesterol to cytochrome P450scc. This conclusion is supported by two observations. First, when pregnenolone formation was blocked by treating rats with the cytochrome P450scc inhibitor aminoglutethimide, TCDD greatly reduced the rate at which hCG caused reactive cholesterol to accumulate in testis mitochondria in vivo. Second, TCDD inhibited both testosterone synthesis and the mobilization of cholesterol to cytochrome P450scc within 1 day. The steroidogenic inhibition does not appear to be due to an LH receptor defect, because TCDD inhibited dibutyryl cAMP- and hCG-stimulated steroid secretion by isolated perfused testes to comparable extents. We conclude that TCDD inhibits testicular steroidogenesis predominantly if not exclusively by inhibiting the mobilization of cholesterol to cytochrome P450scc, and that this inhibition occurs subsequent to cAMP formation.

Animals↗

PACAP acts through VIP type 2 receptors in the rat testis.

Pituitary adenylate cyclase-activating peptide (PACAP) is present and synthesized in the testis in large amounts. Messenger RNA encoding the peptide is expressed in a stage specific manner in the developing germ cells. PACAP regulates a variety of physiological actions, among them, paracrine modulation of spermatogenesis. The PACAP peptides are potential ligands of at least three receptor types, the type I PACAP receptor, VIP1 and VIP2 receptors. Although PACAP27 binding sites have found in the testis, the receptor at which it acts has not been identified. We used in situ hybridization with riboprobes to identify the PACAP binding receptor present in the testis. Neither type I PACAP receptor, nor VIP1 receptor mRNA was present within the germ cells. Using the VIP2 receptor probe there was strong labelling within some cross sections of the seminiferous tubuli, while others were not labelled. The in situ results were also confirmed using reverse-transcription PCR (RT-PCR). Our data suggest that PACAP mediates its possible paracrine effect in the testis through the VIP2 receptor.

Animals↗

Ontogeny of immunosuppressive activity, MHC antigens and leukocytes in the rat testis.

The levels of immunosuppressive activity and the presence of MHC antigens and leukocytes were studied in the immature and the sexually mature rat testis. The immunosuppressive activities were measured from high-molecular weight (greater than 5 kDa) fractions of testis extracts using the protectin bioassay. The presence of MHC antigens and leucocytes was studied using the indirect immunoperoxidase method. In the immature rats, clusters of class I MHC antigen positive cells and a few cells expressing class II MHC antigen were present in the testicular interstitium. In the sexually mature rats, all the cells were MHC I+, and MHC II+ cells were numerous in the testicular interstitium. The seminiferous epithelium was MHC-negative in both the immature and the sexually mature testis. W3/25+ leukocytes were present in the interstitium and the tubular wall in both the immature and the sexually mature rat testis, but not in the seminiferous epithelium at any age. At 20-30 days of age, the testicular extracts were neutral or slightly stimulated 3H-TdR incorporation into peripheral blood lymphocytes, but at 44-60 days of age they inhibited lymphocyte proliferation significantly. In gel filtration, a peak of immunosuppressive activity was observed at approximately 400 kDa (protectin A) in both 20- and 60-days-old rat testes. A smaller peak was present at approximately 200 kDa in both age groups. This study shows that the testicular immunoregulatory microenvironment is different in the immature and the sexually mature rats. This may be important in such age-dependent human diseases as mumps orchitis and the testicular relapses of acute lymphoblastic leukemia.

Age Factors↗

Diisopropylfluorophosphate-interacting proteinases of nuclei of rat testis cells.

Nuclei and chromatin of seminiferous epithelial cells of rat testis contain acid-extractable and non-extractable proteins which interact readily with [3H]DFP (diisopropylfluorophosphate). Proteinase activity is closely associated with these DFP-interacting proteins, and the proteinase activities are inhibited by DFP and PMSF. DFP-interacting proteins of testis chromatin increase greatly in amount at 26-32 days after birth when spermatids are appearing in increasing numbers. In nuclei separated by zonal centrifugation on sucrose gradients, the DFP-labeled proteins are highest in activity in the elongated spermatids at the stage in spermiogenesis at which histones are being replaced by testis-specific proteins and protamines. Electrophoresis in SDS-polyacrylamide gels reveals the presence of three species of DFP-interacting proteins in nuclei of seminiferous epithelial cells of the testis. The chromatin of epididymal spermatozoa of the rat contains three or four species of DFP-interacting proteins by SDS-polyacrylamide electrophoresis and some of these labeled proteins co-migrate with two of the three basic proteins which are observed during electrophoresis on polyacrylamide gels in Triton-urea.

Age Factors↗

Identification and characterization of the developmentally regulated pattern of expression in the testis of a mouse gene exhibiting similarity to the family of phosphodiesterases.

A cDNA for a rat brain phosphodiesterase (PDE) was used to screen a mouse testis library to identify the murine PDEs which are expressed in this tissue. A clone of 981 bp, p4-6, was isolated and shown to exhibit limited identity at the amino acid level to the rat brain PDE (20%). The putative protein encoded by clone p4-6 also contains multiple potential modification sites, for phosphorylation, myristylation, and glycosylation, many of which are located at positions similar to those found for rat brain PDE. The gene identified by p4-6 yields 3 transcripts, an abundant 1.9 kb transcript, and less abundant transcripts of 3.8 and 6.7 kb. Of the nine tissues examined in this study, the expression of the corresponding gene was limited to the adult mouse testis. Furthermore, the expression in the testis was most abundant in the germ cell lineage, although low levels were detected in somatic cells of the testis as well. Analysis of RNA from testes at different stages of development suggested that the p4-6 gene is most abundantly expressed in germ cells that have completed the meiotic divisions.

Amino Acid Sequence↗

A 252 bp upstream region of the rat spermatocyte-specific hst70 gene is sufficient to promote expression of the hst70-CAT hybrid gene in testis and brain of transgenic mice.

The rat hst70 gene belongs to a heat shock hsp70 multigene family and its expression has been detected so far solely in spermatocytes. To investigate the cis-elements responsible for testis-specific expression of the hst70 gene we produced several lines of transgenic mice carrying fragments of the 5'-flanking regions of the hst70 gene fused to the chloramphenicol acetyltransferase (CAT) reporter gene. Hybrid genes of series B were constructed such that, besides the 780 bp, 343 bp and 163 bp 5'-flanking region these plasmids contained no other sequences of the hst70 gene. In hybrid genes of series D the CAT gene was ligated to 343 bp and 252 bp 5'-flanking regions together with the 57 bp of the 5'-end nontranslated (leader) sequences of the hst70 gene. We found that in 780/B, 343/B, 343/D and 252/D adult mice the transgene was specifically and highly expressed in testes. In developing testes the high CAT activity appeared in transgenic mice aged 3 weeks and older. None of the three 163/B transgenic lines exhibited CAT activity in any tissue analyzed. In all CAT expressing lines a weak but significant CAT activity (up to 5% of that in testis) was detected also in the brain. RNase protection assay confirmed that the endogenous hst70 gene transcripts are present in testis as well as in brain of nontransgenic rats and mice. Our data show that the cis-regulatory sequences responsible for testis-specific and developmentally regulated expression of the hst70 gene are localized within the 252 bp region 5' to the gene and neither the 5'-end nor 3'-end nontranslated sequences of the gene are important for this specificity.

Animals↗

ADP-ribosylation of a specific protein from isolated intact bull testis nuclei.

ADP-ribosylation of a specific basic protein has been investigated in isolated intact bull testis nuclei incubated with NAD+. The electrophoretic mobility, molecular weight and amino-acid composition of the purified bull testis specific protein are similar to those of rat testis protein. About 1-5% of the total radioactivity incorporated in the 20% acid-insoluble fraction was associated with testis protein and was identified as ADP-ribose.

Adenosine Diphosphate Ribose↗

cAMP-dependent protein kinases in the rat testis: regulatory and catalytic subunit associations.

Based upon recent reports that the rat testis exhibits mRNAs for cAMP-dependent protein kinase (A-kinase) regulatory (R) subunits RI alpha, RI beta, RII alpha, and RII beta, this study was designed to identify R proteins present in extracts of germ cell-rich testis from adult and Sertoli cell-enriched, germ cell-poor testis from 14-15-day-old rats. Following separation by DEAE-cellulose, R subunits were identified by Mr: (a) upon labeling with 8-N3[32P]cAMP and 32P in an RII phosphorylation reaction and; (b) by Western blot analysis using R-specific antibodies on one- and two-dimensional gel electrophoresis. Elution of R subunits as catalytic (C) subunit-free dimers or in association with C subunits to form holoenzyme was determined by their sedimentation characteristics on sucrose gradient centrifugation in conjunction with their cAMP-stimulated activation characteristics on Eadie-Scatchard analysis. Soluble extracts of testes, from both adult and 14-15 day-old rats, showed the presence of a prominent type I holoenzyme containing RI alpha subunits (47 kDa, peak 1), a minor type II holoenzyme, containing RII beta subunits (52 kDa, peak 2), and a second, more abundant, type II holoenzyme peak containing predominantly RII alpha and, to a lesser extent RII beta subunits (peak 3). The 53 kDa RI beta protein predicted by mRNA studies was only tentatively identified by Western blot analysis. Testes extracts of 14-15-day-old, but not adult, rats exhibited high levels of C subunit-free RI alpha, a result not predicted by mRNA studies. This latter result may be attributable to direct RI alpha regulation or to indirect RII beta regulation at a time during testis development prior to germ cell maturation.

Animals↗

3 beta-hydroxysteroid dehydrogenase/delta 5----4-isomerase expression in rat and characterization of the testis isoform.

The isolation, cloning and expression of a DNA insert complementary to mRNA encoding rat testis 3 beta-hydroxysteroid dehydrogenase/delta 5----4-isomerase (3 beta-HSD) is reported. The insert contains an open reading frame encoding a protein of 373 amino acids, which exhibits 73% and 78% identity to the cDNA encoding the human placental form at the amino acid and nucleotide levels respectively. Northern blot analysis of total RNA of rat tissues using as probe a specific radiolabeled cDNA insert encoding rat testis 3 beta-HSD demonstrated high levels of 1.6 kb mRNA species in ovary, adrenal and Leydig tumor, with lower but detectable message in testis and adult male liver, while the probe also hybridized to a 2.1 kb mRNA species in liver. The cDNA was inserted into a modified pCMV vector and expressed in COS-1 monkey kidney tumor cells. The expressed protein was similar in size to 3 beta-HSD present in H540 Leydig tumor cell homogenate and human placental microsomal 3 beta-HSD, as detected by immunoblot analysis, and catalyzed the conversion of pregnenolone to progesterone, 17 alpha-hydroxypregnenolone to 17 alpha-hydroxyprogesterone, and dehydroepiandrosterone to androstenedione. Transfected COS cell homogenates, supplemented with NAD+, but not NADP+, converted pregnenolone to progesterone and dehydroepiandrosterone to androstenedione with apparent Km values of 0.13 and 0.09 microM, respectively. Immunoblot analysis of various rat tissues using a polyclonal antibody directed against human placental 3 beta-HSD, in addition to immunoreactivity in the adrenal and testis, demonstrated immunoreactive 3 beta-HSD protein in adult male liver, but not in adult female or fetal liver. We conclude that while one gene product is highly expressed in testicular Leydig cells, and probably adrenal and ovary, accounting for their 3 beta-HSD content, a 3 beta-HSD is also expressed in liver in a sex-specific manner.

Amino Acid Sequence↗

Circadian rhythm of lactate dehydrogenase in rat testis.

Activity of total lactate dehydrogenase (LDH) and of the isozyme X (LDH X or C4) have been determined at 2 hr intervals during 24 hr cycles in testis of adult rats maintained since birth in a photoperiod of 14 hr light: 10 hr dark. LDH X activity of epididymal sections (caput, corpus and cauda) from the same animals was also determined. Total LDH and LDH X activities in testis exhibited circadian rhythms with different timing. LDH X in the three portions of epididymis showed diurnal variations similar to those in testis. Rats subjected to constant light or constant dark presented marked modifications of LDH X profiles, indicating that the photoperiod plays a synchronizer role. While total soluble proteins did not show variations in testis of rats exposed to the photoperiod, a circadian rhythm was demonstrated in animals maintained in constant light or dark.

Animals↗

Characterization of a novel murine testis-specific serine/threonine kinase.

Using degenerate oligos corresponding to two highly conserved motifs within the protein kinase catalytic domain and a PCR-based cloning strategy, we have isolated a cDNA fragment encoding a new member of the Ser/Thr (serine/threonine) family of protein kinases. Expression analysis revealed that the fragment recognized two transcripts (1.6 and 1.4 kb) exclusively in testis. Using this fragment as a probe, we have cloned a full-length cDNA from a mouse testis cDNA library. The sequence has a 1092-bp open reading frame encoding a protein of 364 amino acids. The N-terminally localized kinase catalytic domain has all the conserved motifs found in other Ser/Thr kinases. Northern blot analysis using the full-length sequence as a probe revealed that the cloned gene corresponds to the 1.6-kb transcript, suggesting the existence of at least two testis-specific novel Ser/Thr kinases. We propose the name testis-specific kinase-1 (TSK-1) for the gene described here. A GenEMBL databank search revealed highest homology to the human gene encoding rac protein kinase-beta and the group of yeast Ser/Thr kinases encoded by SNF-1, nim-1, KIN-1 and KIN-2.

3T3 Cells↗

A testis-specific form of the human pyruvate dehydrogenase E1 alpha subunit is coded for by an intronless gene on chromosome 4.

The pyruvate dehydrogenase (PDH) complex converts pyruvate to acetyl CoA, an essential step in aerobic glucose metabolism. We have previously shown that the gene for the E1 alpha subunit of this complex, expressed in somatic tissues, is located on band p22.1 of the human X chromosome. This gene, PDHA1, contains 10 introns and spans approximately 17 kb. An autosomal locus, PDHA2, showing significant cross-hybridization with a PDH E1 alpha cDNA probe, was detected on chromosome 4, in the region q22-q23. We here report the isolation of human testis-specific PDH E1 alpha cDNA clones. The similarity with the X chromosome-linked cDNA coding sequence at the nucleotide level is 84%. Specific amplification using the polymerase chain reaction confirmed the presence of a testis-specific mRNA and indicated that postmeiotic spermatogenic cells express this subunit. In situ hybridization with a unique probe from the 3' untranslated region of the testis-specific cDNA showed that the gene for this form of PDH E1 alpha is localized on chromosome 4 in the region q22-q23. The autosomal human gene was isolated from a chromosome 4-specific genomic library. The transcribed region of this gene is identical to the testis-specific cDNA sequence. It completely lacks introns and possesses characteristics of a functional processed gene.

Amino Acid Sequence↗

Characterization of a large population of mRNAs from human testis.

We present the results of single-pass sequencing of 779 expressed sequence tags from normal human testis cDNA clones. Of the sequences generated, 319 (41%) appeared to be completely unknown and are likely to represent new genes, and 289 (37%) were identified based on exact or nonexact matches to sequences in public databases. In analyses of hybridization of four tissues, testis, brain, liver, and kidney, 6 of 12 cDNAs clones revealed testis-specific expression. This argues for the value of the combination of random sequencing and analysis of cellular expression for large-scale characterization of gene expression in the testis.

Adult↗