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S Blottner

Publications and source records attributed to S Blottner.

At least 19 recordsLinked to original sources

Seasonal variation in expression and localization of testicular transforming growth factors TGF-{beta}1 and TGF-{beta}3 corresponds with spermatogenic activity in roe deer.

Adult roe deer males show hormonally controlled seasonal cycles of testicular growth and involution. Mediation of endocrine signals likely requires variable production of testicular growth factors for regulation of testis function. Here we studied the expression pattern of transforming growth factors (TGFs) beta1 and beta3. Total RNA from testis parenchyma was extracted monthly and analysed using quantitative reverse transcriptase PCR. The localization of mRNAs was determined by in situ hybridization, and corresponding proteins were visualized immunohistochemically. Both factors showed different expression levels and different seasonal expression patterns. The TGF-beta1 mRNA content was up to 45 times higher than that of TGF-beta3. Compared with its lowest level in May, TGF-beta1 expression was slightly enhanced during pre-rut (June/July). TGF-beta3 expression increased 5-fold from April to June/July and decreased thereafter to its low in December. This corresponded with changing numbers of spermatocytes and round spermatids, in which both TGF-beta3 mRNA and the protein were mainly localized. The TGF-beta1 mRNA was found in interstitial cells, mainly during the non-breeding season, but also in spermatocytes and spermatids during activated spermatogenesis. The translation product was localized in few spermatogenic cells only. The results suggest that TGF-beta1 and -beta3 are important in regulating seasonal spermatogenesis of roe deer with diverse functions affecting interstitial and spermatogenic cells.

Animals↗

Histological organization of roe deer testis throughout the seasonal cycle: variable and constant components of tubular and interstitial compartment.

Seasonally regulated breeding in roe deer, Capreolus capreolus, is associated with significant changes in testis mass, structure and function. This study has quantified seasonal changes of morphometric parameters and cellular composition in roe deer testis parenchyma. Tissue samples were collected bimonthly during a complete annual cycle. Morphometric parameters of seminiferous tubules were measured and the number of different cell types was counted using a computer-aided image-analyzing system. A scheme of eight tubular epithelium stages for active spermatogenesis was devised according to the spermatid development. Stage I is characterized by the occurrence of new round spermatids, stage IV by spermiation and stage VIII by the meiotic division of spermatocytes. The average diameter of seminiferous tubules varied between 88.4+/-3.6 micro m (February) and 216.8+/-9.2 micro m (June). Also numbers of spermatogonia, spermatocytes and spermatids per tubule cross-section showed considerable seasonal changes. In December and February the germinative epithelium mainly consists of Sertoli cells and spermatogonia. In February, the first differentiated spermatogonia enter meiosis, and in April even spermatids occasionally occur, which reach their highest numbers during the rut in August. Both the expansion and the proportion of tubular and interstitial compartment change seasonally and result in differing cell densities. Assuming numerically constant populations of Sertoli cells and interstitial cells during the entire year, the hypothetical cell numbers per mm(2) of the tubular and interstitial areas were calculated for the seasonally variable total areas of tissue cross-sections. The concordance of these theoretical values with measured cell densities provided evidence that the total numbers of Sertoli cells, as well as interstitial cells, remain really constant throughout the seasonal cycle. The exact quantification of variable and constant components provides basic data for characterization of cell type and stage-specific processes of spermatogenesis.

Animals↗

Testicular FGF-1 protein is involved in Sertoli cell-spermatid interaction in roe deer.

Roe deer (Capreolus capreolus) is a seasonal breeder showing extreme changes in spermatogenic activity. It is an excellent model to study the regulation of testicular activation and regression by endocrine signals and paracrine effectors such as growth factors. Previous studies on FGF-1 mRNA showed a special seasonal expression pattern in roe deer testis. This was difficult to explain by their exclusive localization in interstitial and Sertoli cells and without detection of the translation product. Therefore, the cellular localization of the FGF-1 protein was studied during a complete annual cycle. Parenchyma samples were collected bimonthly and prepared for histological and immunohistochemical investigations. A polyclonal rabbit anti-bovine FGF-1 antibody was used for indirect immunohistochemistry. Seasonal changes in the cellular composition of roe deer testis parenchyma were quantified by morphometry and means of computer aided image analysis. In the tubular compartment FGF-1 protein was exclusively (and stage-specific) present in elongating spermatids. This cell type occurs shortly before (June) and during the rutting season (August) only. In interstitial cells FGF-1 is detectable throughout the whole year. Results suggest FGF-1 being involved in Sertoli cell-spermatid communication and could also serve as a survival factor for somatic cell populations within the testis. The occurrence of the protein indicates an increased expression of this factor during activated spermatogenesis.

Animals↗

[Prevalence of anti-Yersinia antibodies in European brown hares in North-Rhine Westphalia, Germany].

Yersinia (Y.) pseudotuberculosis infections may lead to significant lethality in European brown hare (Lepus europaeus, Pallas) populations especially during the cold and wet seasons. In recent decades, also Y. enterocolitica was isolated from hares found dead. Consequently, a Western-blot technique proved to be valuable for the detection of antibodies against all pathogenic Yersinia isolates was applied to monitor the prevalence of antibodies in hare populations in North-Rhine Westphalia, Germany. A total of 89.6% of the 230 animals tested was seropositive. Further investigations should be performed to elucidate the role of subclinical yersiniosis in the decline of European brown hare populations in Germany.

Animals↗

Seasonal timing of sperm production in roe deer: interrelationship among changes in ejaculate parameters, morphology and function of testis and accessory glands.

Roe deer are seasonal breeders with a short rutting season from mid-July to mid-August. The seasonality of reproductive activity in males is associated with cyclic changes between growth and involution of both testes and the accessory sex glands. This study characterizes morphological and functional parameters of these organs prior to, during and after breeding season in live adult roe deer bucks. Size and morphology of the reproductive tract was monitored monthly by transcutaneous (testes, epididymis) and transrectal (accessory glands) ultrasonography. Semen was collected by electroejaculation. Concentration, motility and morphological integrity of spermatozoa as well as the content of proteins and testosterone in semen plasma were evaluated. Proportions of haploid, diploid and tetraploid cells were estimated by flow cytometry in testicular tissue biopsies. Serum testosterone was measured by enzyme immunoassay. Most parts of the male reproductive tract showed distinct circannual changes in size and texture. These changes were most pronounced in the testes, seminal vesicles, and prostate. All reproductive organs were highly developed during the rut only. The volume of ejaculates, total sperm number and percentages of motile and intact spermatozoa also showed a maximum during this period and corresponded with high proportions of haploid cells in the testis. The highest percentages of tetraploid cells were found in the prerutting period. The production of motile and intact spermatozoa correlated with both the protein content of semen plasma and the concentration of testosterone in semen plasma and blood serum. These results suggest the importance of combined actions of the testes and accessory sex glands and the crucial role of testosterone in facilitating the optimal timing of intensified semen production to ensure sufficient numbers of normal spermatozoa in seasonal breeders.

Animals↗

Characterisation of movement pattern and velocities of stallion spermatozoa depending on donor, season and cryopreservation.

The aim of the study was to compare different types of movement pattern and velocities of stallion spermatozoa depending on cryopreservation during breeding and non-breeding season. Ejaculates were collected from four stallions during May (n = 24) and December (n = 24). Parameters of sperm movement were evaluated by computer-aided sperm analysis (CASA) system, and included percentages of motile spermatozoa, different patterns of motility, the velocity, linearity (LIN), amplitude of lateral head displacement (ALH) and beat-cross frequency (BCF). In winter the average percentages of motility were slightly higher compared to the breeding season in May (70.8 +/- 12.7% vs. 66.8 +/- 12.2%, respectively). Cryopreservation and thawing led to a significant decrease in the number of motile sperm to 11.3 +/- 5.8% in May and 15.6 +/- 7.0% in December. The pattern of motility was also changed. Detailed analysis by CASA demonstrated that cryopreservation resulted in a shift from the proportions of linear to more non-linear motile spermatozoa and to a significant increase of local motile and hyperactivated spermatozoa. Mean velocity of fresh motile spermatozoa differed between May and December (119.1 +/- 43.9 vs. 164.4 +/- 66.4 microm/sec, respectively; P < 0.05). Cryopreservation and thawing led to a slight increase of curvilinear velocity (VCL) and straight line velocity (VSL). The motility analysis has shown that the parameters BCF and ALH were highly correlated in stallion spermatozoa (r = -0.67; P < 0.001). The BCF of stallion spermatozoa was slightly reduced in the non-breeding season. Altogether, the influence of factors on the motility of stallion spermatozoa has the following rank order: cryopreservation (P < 0.0001) > stallion (P < 0.001) > season (P < 0.05).

Animals↗

Effect of sperm cryopreservation and treatment with calcium ionophore or heparin on in vitro fertilization of horse oocytes.

Little information is available on methods of sperm capacitation for IVF in the horse. In this study, we summarized results of several independent trials that compared acrosome reaction, hyperactivation and chromatin integrity of fresh or cryopreserved stallion spermatozoa after treatment with heparin or with calcium ionophore. We also examined the influence of spermatozoa storage (fresh vs. cryopreserved), capacitation treatment, oocyte maturation time and cumulus morphology on the penetration rate and fertilization rate. We recovered cumulus-oocyte-complexes (COCs) from ovaries by ultrasound guided follicle aspiration or by scraping of follicles from ovaries obtained at a slaughterhouse. Upon recovery, we evaluated the cumulus morphology, and the COCs were matured in vitro for 18 to 24 or 26 to 40 h. Fresh semen and cryopreserved semen were treated either with heparin (200 microg/mL) or calcium ionophore (7.14 microM). Overall, 28.4% (99/349) of the oocytes were penetrated, and 12.9% (45/349) were fertilized. Fresh spermatozoa treated with calcium ionophore showed a higher penetration rate than cryopreserved spermatozoa (36.0 vs. 0%). Fresh and heparin-treated spermatozoa showed a penetration rate of 29.1%, and the same treatment for cryopreserved spermatozoa showed a penetration rate of 33.7%; none of these differences was significant (P>0.05). Fertilization rates after the calcium and heparin treatment followed the same trend and also showed no significant differences. Prolonged maturation period resulted in higher penetration (P<0.05) and fertilization rates in compact (26 to 40 h: 37.7 and 13.1% vs. 18 to 24 h: 13.1 and 2.8%) and in tendency in expanded COCs (26 to 40 h: 40.0 and 30.3% vs. 18 to 24 h: 29.4 and 13.5%). In oocytes with only a few cumulus cells, the rates tended to be higher after the shorter incubation (18 to 24 h: 33.5 and 18.8% vs. 26 to 40 h: 17.2 and 6.5%). We observed hyperactivation more frequently in fresh than in cryopreserved semen after different treatments (43.2, 39.1 and 35.4% for heparin, calcium ionophore and control vs. 15.7, 10.8 and 5.7%, respectively). We observed significant changes in the acrosome reaction of fresh spermatozoa after heparin treatment (62.6 vs. 48.2%, P<0.05), as well as in cryopreserved spermatozoa after calcium ionophore treatment (31.7 vs. 17.6%, P<0.05). The chromatin integrity was significantly reduced after heparin treatment of fresh spermatozoa, in comparison to control and calcium ionophore (81.0 vs. 87.3 and 86.6, P<0.02). We also observed a similar reduction of chromatin quality after heparin treatment in cryopreserved spermatozoa, but the difference was significant only between heparin and calcium ionophore treatment [77.4 vs. 86.4 (P<0.02) and 84.9]. The results in the this retrospective study show that capacitating fresh spermatozoa with calcium ionophore, or using heparin in cryopreserved spermatozoa, results in higher penetration and fertilization rates of in vitro matured horse oocytes. A prolonged maturation time of 26 to 40 h is necessary for compact cumulus oocyte complexes to achieve the fertilization capacity. Further investigation is needed to show the developmental capacity of these fertilized oocytes.

Acrosome Reaction↗

Morphological and functional changes of stallion spermatozoa after cryopreservation during breeding and non-breeding season.

The study compared quality and freezability of stallion semen during breeding and non-breeding seasons. Ejaculates were collected twice per week from four stallions during May (n = 24) and December (n = 24). The semen was mixed with skim milk extender, centrifuged and resuspended in fresh extender. Aliquots of this sperm suspension were separated from extender and diluted in TALP medium for sperm evaluation or with cryoextender (type "Gent" or a combination of Triladyl and skim milk). Samples of 0.5ml were cryopreserved in straws using a programmed freezer. Parameters of sperm quality were evaluated before and after freezing/thawing. These included percentages of motile spermatozoa and of morphological intact sperm. Typical injuries were demonstrated by scanning electron microscopy (S.E.M.). The acrosomal status was visualised using FITC-conjugated peanut agglutinin, and the acrosome reaction was induced by calcium ionophore A 23187. The chromatin stability was estimated by acridine orange test. In winter, the average percentages of motile and morphologically normal sperm (67 and 74.3%, respectively) were higher than during the breeding season in May (59 and 65.9%; P < 0.05). After freezing/thawing the proportions of vital and intact sperm decreased significantly. The number of motile sperm declined to 15 and 18% in May and December (range 5-40%), and of morphologically intact sperm to 51% in both seasons. Results of S.E.M. showed typical membrane ruptures in the acrosomal region and some sperm with abnormal necks. The proportion of frozen sperm with spontaneous acrosome reaction was higher during winter (86.5 versus 77.0%), suggesting a higher degree of membrane reactivity. Percentages of spermatozoa with denaturated chromatin were minimal and showed minimal differences between fresh and frozen state, stallions or seasons. An additional decondensation treatment with papain and DTE revealed a slightly enhanced number of spermatozoa with denaturable DNA after cryopreservation, especially in December (5.4 +/- 1.3%). The influence of cryoextenders was not significant for most sperm parameters, but there was a high variability between the stallions. Altogether, the influence of factors on the quality of spermatozoa has the following rank order: cryopreservation > stallion > season. Different cellular structures seem to have different susceptibilities to physicochemical stress. The cryopreservation of sperm during December results in survival rates similar to those measured during the breeding season, even more important for successful preservation is the selection of suitable semen donors.

Acrosome↗

Establishment of assisted reproduction technologies in female and male African wild dogs (Lycaon pictus).

Transrectal ultrasonography, electroejaculation and cryopreservation of spermatozoa were applied to the African wild dog (Lycaon pictus) to establish non-invasive protocols for assessing the reproductive health of one of the most endangered African canids. Transrectal ultrasonography was performed on immobilized male (n = 2) and female (n = 5) captive wild dogs. The testes and epididymides of the male dogs were imaged transcutaneously, followed by electrostimulation and cryopreservation of spermatozoa. The sonomorphology of the female and male urogenital tracts was characterized. In females, the vagina, cervix, non-pregnant uterus and ovary were imaged and the reproductive health of each female was evaluated. The sonographic assessment helped to identify one pyometra and extensive abdominal fat deposits in two other individuals in which pyometra had been suspected. Images of the adrenal glands showed differences in size among individuals of the same breeding group. Whether these differences were related to the dominance hierarchy remains to be determined. In males, visualization of the prostate gland, testis and epididymis indicated sexual maturity. Three ejaculatory fractions (1.0, 1.5 and 0.5 ml, with 50, 95 and 95% motility, respectively; 1.125 x 10(8) spermatozoa per ejaculate) were collected from one male. The motility of each of these fractions after thawing was 0, 30 and 40%, respectively. Electrostimulation of the second male, in which a cystic structure in a testis had been identified by sonography, resulted in an aspermic ejaculate (0.5 and 1.0 ml). These technologies provided basic data on reproduction in female and male African wild dogs and were an efficient way to evaluate reproductive health.

Adrenal Glands↗

Detection of growth factors in the testis of roe deer (Capreolus capreolus).

Roe deer is a seasonal breeder characterised by a short rutting season in summer. Mature males show synchronised cycles of testicular involution and recrudescence. Therefore, this species is a valuable model to study seasonal regulation of spermatogenesis in ruminants. It is hypothesised that a time-dependent production of testicular growth factors is required to regulate seasonal changes in testis growth and spermatogenesis. To identify potential candidates, total RNA from roe deer testis tissue was extracted at three different seasonal periods (April, August, December), and using RT-PCR the presence of several growth factors (aFGF, bFGF, IGF-I, IGF-II, TGF-alpha, TGF-beta1, TGF-beta3 and two isoforms of VEGF) was detected. Sequencing of the growth factor PCR fragments revealed a high sequence homology between cattle and roe deer. To further explore the expression patterns of the identified growth factors in roe deer their expression levels were standardised using glyceraldehyde-3-phosphate dehydrogenase (GAPDH) gene expression. The study demonstrates the expression of several growth factors in roe deer testis and supports the assumption of their seasonally diverse regulation. These results provide the basis to investigate the role of growth factors in the regulation of circannual changes of testicular activity.

Animals↗

Testicular mitosis, meiosis and apoptosis in mink (Mustela vison) during breeding and non-breeding seasons.

Testes of mink were compared between the breeding (March) and non-breeding seasons with the start (November) and cessation (May) of spermatogenic activity. Testicular mass and spermatozoa per gram testis were assessed. Percentages of haploid (1C), diploid (2C) and tetraploid (4C) cells were monitored using DNA flow cytometry and the proportions of somatic and spermatogenetic cells were determined after selective labelling of somatic cells with a vimentin antibody. Apoptosis was examined by cell death detection ELISA, and testosterone concentrations were measured with an enzyme-immunoassay. The significantly higher testis mass during the breeding period coincided with higher numbers of testicular spermatozoa per gram testis and peak of testicular testosterone concentration in comparison with non-breeding periods. The proportions of 1C, 2C and 4C cells showed corresponding strong differences between these periods with the maximum of 1C cells during breeding. The proportions of testicular cells in G2-M phase of mitosis were very low during the period of peak spermatogenesis; they were markedly increased in the time of autumnal resumption in November but were even higher during testis involution in May. However. the meiotic transformation (1C:4C ratio) is maximal in March. The total as well as the relative proportions of spermatogenic and somatic cells differed significantly not only between breeding and non-breeding periods but also between the periods at the start and at the end of active spermatogenesis. The intensity of apoptosis was also seasonally dependent. The highest level in March indicates a stimulated apoptosis even during the breeding period. In conclusion, the production of spermatozoa in mink is intensified by enlargement of gonads as well as enhanced efficiency of spermatogenesis during breeding. In this time, the testosterone concentration and the meiotic transformation show high levels, but the mitotic activity of spermatogenic cells is already significantly diminished and an intensified apoptosis seems to precede the forthcoming testis involution after breeding. The results suggest that the regulation of seasonal testicular activity is characterised by co-ordinated shifts in the relationships between mitosis, meiosis, apoptosis and testosterone production.

Animals↗

Quantification of somatic and spermatogenic cell proliferation in the testes of ruminants, using a proliferation marker and flow cytometry analysis.

We compared 2 methods for the quantification of proliferation in somatic and spermatogenic compartments of post mortem-collected testes in cattle and roe deer. Proliferation was evaluated by estimation of the tissue polypeptid specific antigen (TPS) using an ELISA. This proliferation-specific marker was detected in homogenized cells after selective enrichment of different cell types by density gradient centrifugation. The haploid, diploid and tetraploid cells were monitored by one-parameter flow cytometry and analyzed for mitotic cell cycle. Somatic and spermatogenic cells were discriminated by dual-parameter flow cytometry after DNA staining with propidium iodide and selective labelling of stromatic cells with a vimentin antibody. The TPS was related to the ploidy of cells and their somatic or spermatogenic type. High concentrations of TPS were found in both species. The TPS values varied with different contents of spermatogenic and somatic cells in the fractions of the density gradient. The TPS was positively correlated with spermatogenic cells in the G2/M phase of mitotic cycle (r = 0.474; P < 0.01) and negatively correlated with somatic cells (r = -0.676; P < 0.0001) in roe deer (n = 40). Discrimination of germinative and stromatic cells in the G2-M phase showed their varying proliferation during the annual cycle in roe deer. The quantification of tetraploid spermatogenic cells allowed the calculation of an exact meiotic transformation (ratio haploid:tetraploid cells). In conclusion, TPS indicates proliferation in the germinative compartment of the testes. However, this marker provides only relative values, without information on the number and type of proliferating cells. Dual-parameter flow cytometry using specific staining for vimentin proves to be a better method for studying changing mitotic and meiotic steps during the involution and recrudescence of testes in seasonally breeding ruminants, as it relates proliferative processes directly to both spermatogenic and somatic cells.

Animals↗

Calculation of spermatogenic transformations based on dual-flow cytometric analysis of testicular tissue in seasonal breeders.

The percentages of somatic and spermatogenic cells were quantified at different time intervals in testes of three seasonal breeders: roe deer, brown hare and mink. The haploid, diploid and tetraploid cells were monitored by one-parameter flow cytometry. Somatic and spermatogenic cells were distinguished by dual-parameter flow cytometry after DNA staining and selective labelling of the somatic cells with an antivimentin antibody. The portions of spermatogenic diploid and tetraploid cells were used to calculate total germ cell transformation (haploid:diploid cell ratio) as well as meiotic transformation (haploid:tetraploid cell ratio). During the breeding season the means of both ratios were 10.27 and 38.42 in roe deer, 7.55 and 15.81 in brown hare, and 11.25 and 53.47 in mink. The equivalent quotients calculated on the base of total diploid and tetraploid cells were considerably lower: 4.41 and 7.79, 5.13 and 7.86, 5.68 and 13.75, respectively. Portions as well as proportions of germinative and somatic cells changed during the annual cycle. The results demonstrate that the distinction of somatic and germinative cells in flow cytometric studies of spermatogenesis is a prerequisite for exact calculations of mitotic and meiotic processes and their alterations under different conditions.

Animals↗

New methods for gamete rescue from gonads of nondomestic felids.

Methods for rescuing oocytes and spermatozoa post mortem are described, which were adapted from domestic cat as a model. Ovaries were mechanically processed for large-scale recovery of oocytes. Numbers of intact cumulus-oocyte complexes (COCs) per animal and of preantral follicles per ovary were 18 +/- 2 and 2892 +/- 665 in domestic cats, respectively. Similar results were obtained from 13 individuals of 6 nondomestic felids: 16 +/- 2 COCs and 1867 +/- 1144 follicles. Preantral follicles were cultured for at least 7 days. Intact COCs were maturated for 24 h and fertilized in vitro with homologous or heterologous (from domestic cat) spermatozoa. Spermatozoa were collected from caudae epididymides (n = 11; five nondomestic species) and cryopreserved (n = 8) using a programmed freezer. The reproductive competence of oocytes collected post mortem was demonstrated by development to embryos (> or = 8 cells) in vitro. Spermatogenic efficiency of males was assessed by flow cytometric analysis of mitotic and meiotic testicular cells as well as by estimation of testosterone concentration in testes. The results demonstrate the possibility of retrospective assessment of male and female reproductive capacity. In conclusion, the described methods could be a useful part of gamete rescue programmes for endangered felids.

Animals↗

Seasonal spermatogenesis and testosterone production in roe deer (Capreolus capreolus).

Quantitative changes in testes of roe deer were studied during the annual cycle. Testicular spermatozoa were counted and proportions of different cell types were estimated using DNA flow cytometry. A proliferation-specific antigen of somatic cells was evaluated by an immunoradiometric assay. Apoptosis was examined by cell death detection ELISA, and testosterone concentrations were measured with an enzymeimmunoassay. The testis mass of adults reached a maximum during the rut from mid-July to mid-August. Gonadal size corresponded to numbers of testicular spermatozoa g-1 testis. In the rutting period, epididymal spermatozoa were of the highest morphological and functional competence. The proportions of haploid (1c), diploid (2c) and tetraploid (4c) cells changed over time with the maximum of 1c cells during the breeding period. Meiotic division (1c:4c ratio) increased sharply immediately before rut, while mitosis (% cells in G2-M phase) was already high during spring. Proliferation and apoptosis revealed an opposite pattern during the annual cycle; the most intensive apoptosis occurred during the time of testis involution. Testosterone production showed a biphasic pattern. It dropped rapidly from the highest value in August to very low concentrations thereafter. Yearlings were characterized by smaller peaks of testicular growth and sperm production. Fawns started testicular growth and meiosis in winter. In conclusion, the production of spermatozoa in roe deer is intensified by enlargement of gonads as well as enhanced efficiency of spermatogenesis during the rut. Interrupted proliferation and stimulated apoptosis promote testis involution after the rut, and testosterone seems to play a role in the regulation of both processes.

Animals↗

Quantification of apoptosis (programmed cell death) in mammalian testis by DNA-fragmentation ELISA.

Apoptosis (programmed cell death) could contribute to fluctuations in sperm production and involution of testis in dependence on seasonal, genetic, environmental or individual factors. Investigations of such factors require a reliable quantitative examination of apoptotic processes. Therefore, a standardized procedure was developed for quantification of apoptosis in samples of testicular parenchyma in bull. This test is based on a highly sensitive DNA-fragmentation ELISA which was used originally for somatic cells in culture. Aliquots of testicular parenchyma were minced and homogenized by freezing/thawing and subsequent sonification at 4 degrees C. In comparison, aliquots were lysed in original buffer from the cell death detection ELISA-kit. Nucleosomes from the cell cytoplasm were obtained in supernatant of homogenate or lysate after centrifugation. The absorbance was linear over the range of sample concentrations from 5 to 20 microg testis equivalent/100 microl solution. Therefore, samples were standardized to a final concentration of 10 microg testis equivalent/100 microl. The recorded values were expressed in units per mg tissue (U/mg). The method was used to study testicular apoptotic processes in the guinea pig and roe deer. The results showed that apoptosis can be detected in testicular homogenate prepared from 0.01 mg testis parenchyma within 24 h after recovery of testes without significant variations. Detectable apoptosis levels showed differences among sexually active guinea pig (7.08 +/- 1.95 U/mg), roe deer (16.32 +/- 3.45 U/mg), and cattle (29.0 +/- 7.1 U/mg). This species-specificity suggests different cross reactivity of the monoclonal antibody used in the ELISA. A significantly higher amount of testicular apoptosis was detected in a population of guinea pigs with increased inbreeding coefficients (f = 0.785 - 0.998) than in outbred animals (11.41 +/- 3.50 U/mg and 7.08 +/- 1.95 U/mg, respectively). The inverse relationship of testicular apoptosis and proliferation in these two populations was significant (r = -0.531; P < 0.05). In conclusion, the relative simplicity and high sensitivity of this nonradioactive method provides a useful approach to investigate spermatogenesis under different conditions. Results in the guinea pig showed that apoptosis plays an important role in the regulation of gonadal efficiency.

Journal Article↗

Inverse relationship between testicular proliferation and apoptosis in mammalian seasonal breeders.

Seasonal cycles of testicular activity occur in many mammals and can include transitions between total arrest and recrudescence of spermatogenesis. We hypothesize that involution and reactivation of testis result from two antagonistic processes, proliferation and programmed cell death (apoptosis), which are activated at different times. To test this hypothesis, quantitative measurements of both proliferation-specific marker and apoptotic produced nucleosomes have been compared with sperm and testosterone production in testes from adult roe deer during breeding and non-breeding seasons (May to September). Testes of brown hare were included from periods of testes regression (June to August) and recrudescence (November to December). The highest testicular weights in roe deer were found in the rutting period from late July to early August (27.25 +/- 8.56 g), corresponding with the highest number of testicular sperm/g parenchyma. The peak of sperm production coincided with a peak in testosterone concentration (1.19 +/- 0.53 microg/g testis). The maximum level of proliferation-specific marker was also found during the breeding season (98.6 +/- 58.2 U/g testis in comparison to 20.1 +/- 22.0 U/g in the prerutting period). In contrast, the most significant apoptosis was observed in the nonbreeding season than the breeding period (71.11 +/- 5.79 U/mg testis and 18.88 +/- 6.79 U/mg, respectively). Testicular proliferation was low in the brown hare (0.061 +/- 0.062 U/g) during involution of the testes. It was newly activated in November and December (0.85 +/- 0.33 U/g), preceding the increase in testicular volume. Testosterone production increased in conjunction with testicular proliferation. At this time, testicular apoptosis was significantly lower (14.16 +/- 2.12 U/mg testis) than during the period of pronounced testicular regression (30.16 +/- 19.95 U/g). These results suggest that regulation of seasonal testicular activity is characterized by an inverse relationship of proliferation and apoptosis.

Journal Article↗