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S D Michael

Publications and source records attributed to S D Michael.

At least 19 recordsLinked to original sources

Changes in mitochondrial and microsomal 3 beta-hydroxysteroid dehydrogenase activity in mouse ovary over the course of the estrous cycle.

3 beta-Hydroxysteroid dehydrogenase (HSD) is located in the endoplasmic reticulum and mitochondria. To determine whether the separate enzymes play different roles in steroidogenesis, the specific activity (SA) of both were measured at four different stages of the mouse estrous cycle. Microsomal HSD activity changed little throughout, averaging 8.7 +/- 0.7 nmol progesterone/min/mg protein. In contrast, mitochondrial HSD activity changed dramatically at diestrus, increasing to 14.4 nmol progesterone/min/mg protein. When measured at proestrus, estrus, and metestrus, mitochondrial HSD activity was 5.5, 7.4, and 4.5 nmol progesterone/min/mg protein, respectively. To ascertain whether the increase in mitochondrial HSD activity at diestrus could be due to a preferential induction of enzyme, its SA and the SA of a mitochondrial inner membrane enzyme, cytochrome C oxidase, were compared to the SA of a mitochondrial outer membrane enzyme, rotenone-insensitive NADH cytochrome C reductase. The SA of all three enzymes changed proportionally at diestrus, suggesting that the increase in mitochondrial HSD activity was not due to its preferential induction. Rather, we believe that the HSD activity in the mitochondrial fraction, as measured at the four stages of the estrous cycle, is a reflection of the combined contributions from an ever changing population of ovarian cells. Mitochondria from luteal cells have the highest HSD activity, and are very likely responsible for the major synthesis of progesterone during the luteal phase.

3-Hydroxysteroid Dehydrogenases

Cell-mediated and neural control of morphostasis.

Morphostasis refers to the maintenance of the differentiated state of tissues in an adult individual and it represents a basal event of homeostasis and the organism's existence. Most of the cells in the body are arrested in their differentiation at a certain point related to their optimal function. Evidence is rapidly accumulating on the general role of immunoglobulin-gene superfamily (IGSF) domains in the non-immune control of behavior of cells in various tissues. A novel 'tissue control system' (TCS) has been suggested, supporting the differentiation of tissue cells in an adult organism and functioning via the IGSF domains and cell-mediated control of morphostasis. We assume here that the morphostasis is established epigenetically during the early adaptive period. With its termination, coinciding with the attainment of an organism's immunocompetence, the combination of cell surface markers of the most mature cells in tissues are encoded in the TCS as the stop-signal (SS). This stage of tissue differentiation is maintained during further life: upon recognition of SS the committed TCS element does not stimulate further differentiation of the cell, i.e. it exhibits a stop-effect (SE). Each tissue-specific cell line has only one or no SE established depending on its presence or absence during development, respectively. The only way to escape an established SE and continue in differentiation is to change at least a portion of the SS. Hormones might act here directly, by conformation of their cell surface receptors recognized as a portion of SS, or indirectly, by influencing proteosynthesis of cell surface markers.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Nocturnal illumination does not necessarily stimulate the photoperiodic response, despite mimicking the effects of constant light on the circadian system in the male Syrian hamster.

In an effort to determine the inductive component(s) of photic input in long day seasonal breeders, adult male Syrian hamsters (Mesocricetus auratus) were exposed to one of nine lighting conditions for a duration of 10 weeks: a light-dark cycle of 14 hours of light followed by 10 hours of dark (LD 14:10, a long photoperiod); LD 10:14 (a short photoperiod); a high frequency light-dark cycle of 1 hour of light and 1 hour of dark (LD 1:1); a higher frequency light-dark cycle of 1 minute of light and 1 minute of dark (LD 1m:1m); constant light (LL); constant dark (DD); feedback lighting (LDFB; a condition that illuminates the cage in response to locomotor activity); a feedback lighting neighbor control (LDFB NC; the animal receives the same light pattern as a paired animal in LDFB, but has no control over it); or reverse feedback lighting (rLDFB; a condition that darkens an illuminated cage in response to locomotor activity). Exposure to LL, LD 1:1, LD 1m:1m, LDFB and rLDFB significantly and similarly lengthened the free-running period of the locomotor rhythm when compared to the period of animals in DD. The paired tests and accessory reproductive glands weights, spermiogenesis, seminiferous tubule diameter and serum concentrations of testosterone, prolactin, LH and FSH, suggest that LD 14:10, LL, LD 1:1, rLDFB and LDFB NC maintain reproductive function in the Syrian hamster, while LD 10:14, DD, LD 1m:1m and LDFB do not. It is known that as little as two 1-second pulses of light are stimulatory if coincident with the subjective night (17.22). Thus, it is not surprising that LD 1:1 is stimulatory. LD 1m:1m is not stimulatory, however, despite an identical quanta of light per 24 hours and similar phase relationship. It appears that mere light exposure during the subjective night is not necessarily reproductively inductive. It would also appear that behaviorally generated light-dark cycles can be (i.e., LDFB), but are not necessarily (i.e., rLDFB) inhibitory to the maintenance of the reproductive system in long day breeders. Furthermore, the lighting pattern derived from LDFB is stimulatory if given exogenously (i.e., LDFB NC). Although it is not understood why light exposure that is coincident with the subjective night (i.e., LD 1m:1m and LDFB) is not stimulatory in long day breeders, a possible hypothesis is that an internal coincidence model is involved in the photoperiodic response and that multiple transitions during the subjective night may cause a dissociation of internal oscillations which must be in phase for light to be stimulatory.

Animals

Neonatal thymectomy affects follicle populations before the onset of autoimmune oophoritis in B6A mice.

Using a variation on a standard follicle classification technique, 5 classes of follicles were quantified in serial sections of ovaries from intact mice and mice thymectomized on Day 3 at 5-day intervals from 5 to 40 days of age. Sera from these animals and from animals 60 days of age were analysed for the presence of anti-oocyte antibodies. Ovaries from intact animals 10 to 40 days of age were examined for the presence of antigen(s) using anti-oocyte antibody-positive sera from all ages of mice. There was a dramatic decrease in the primordial follicle population at 10 days of age in thymectomized mice and that population remained significantly lower until 40 days of age. The growing follicle population was also significantly lower at 20 days of age in thymectomized mice and remained lower through 40 days of age. Anti-oocyte antibodies were not detectable until 30 days of age and at that age reacted with oocytes from all follicle types including primordial. Ovarian antigens were present in similar patterns in ovaries from mice at all ages tested. We conclude that thymectomy has an earlier influence on the ovary than previously thought and this influence does not appear to involve the immune activity associated with autoimmune ovarian dysgenesis. This suggests that the effect of thymectomy on the ovary may be biphasic: (1) an early effect, possibly involving a disruption in the hypothalamic-pituitary-ovarian-thymic axis, that influences the primordial and growing follicle populations before 20 days of age; and (2) a later effect involving an immune imbalance first evident by 25-30 days of age that ultimately results in the destruction of the ovary.

Animals

Plasma protein and hormone profiles associated with autoimmune oophoritis and ovarian tumorigenesis in neonatally thymectomized mice.

Interactions between the immune and endocrine systems may have an important role in ovarian tumorigenesis. Neonatal thymectomy at 3 days of age (Tx-3) in (C3H/HeMs x 129/J)F1 (C31) female mice results in an autoimmune ovarian dysgenesis then subsequent tumor formation. At 3 months of age the histology of the ovaries showed that approximately 60% of the Tx-3 mice (Tx-3 DO) had completely lost their oocytes and follicles so that a preponderance of interstitial-like cells remained. The remainder of the Tx-3 mice had atypical ovaries (Tx-3 AO). The vaginal cytology showed that both groups of Tx-3 mice became acyclic at an early age compared to the intact mice. Around 12 months of age, a high percentage of the dysgenic ovaries developed trabecular tumors. Plasma protein-related indicators of systemic inflammatory responses showed little change during the course of the autoimmune oophoritis or ovarian tumorigenesis. Levels of estradiol 17 beta (E2) and testosterone (T) did not vary in the Tx-3 mice compared to those of the intact mice through 21 months of age but progesterone levels were lower during the exacerbation of the autoimmune oophoritis and tumor development. By 24 months of age levels of P increased while E2 decreased. Apparently, the premature reproductive failure in these mice at a young-adult stage results from the early loss of the oocytes by the localized autoimmune insult to the ovaries. The autoimmune oophoritis may then be the primary trigger for the subsequent ovarian tumor formation and the tumors succeed in association with the altered hormonal milieu.

Aging

Aromatase activity in cultured ovaries from neonatally thymectomized mice with ovarian dysgenesis.

The autoimmune oophoritis resulting from thymectomy at 3 days of age (Tx-3) in B6A female mice is characterized by dysgenic ovaries and circulating auto-antibodies against the oocyte (AOA). Dysgenesis of the ovaries starts around 24 days of age with a decline in numbers of the oocytes and follicles and is accompanied by lymphocytic infiltration. By 60 days of age the ovarian dysgenesis (OD) is complete with a preponderance of interstitial cells associated with elevated levels of testosterone (T). From 60-120 days of age the ovaries become progressively smaller in size and T levels rise. Since ovarian interstitial cells can produce T, assessment of aromatase activity was determined using cultured ovaries from 20-, 30-, 60-, 90- and 120-day-old mice. Similar or enhanced ability in aromatizing T to estradiol-17 beta (E2) was demonstrated by the ovaries from all Tx-3 mice compared with those from intact mice. At 30 and 60 days of age Tx-3 mice had increased circulating levels of E2 then the levels of E2 returned to those of intact mice at 90 and 120 days of age. The results indicate that the ovaries in Tx-3 mice may have an ability to aromatize T to E2 in culture, but apparently are not doing so at 90 and 120 days of age in situ. Further, ovaries of Tx-3 animals are able to aromatize T to E2 in the absence of organized follicular cells. These abnormal responses of ovarian hormones clearly demonstrate that the presence of AOA have a damaging effect on the endocrine activity as well as the morphology of the ovary.

Animals

Rapid induction of ovarian granulosa cell tumors by 7,12-dimethylbenz(a)anthracene in neonatally estrogenized mice.

Groups of female C3H/HeMs x 129/J F1 mice were given injections of either 20 micrograms of 17 beta-estradiol or sesame oil (vehicle) for the first 5 days after birth. Half of each group was then given gastric intubations of 20 mg/kg of 7,12-dimethylbenz(a)anthracene (DMBA) at 70, 77, and 84 days of age. The other half of each group was given sesame oil. Thus, this design yielded four experimental groups: oil + oil; 17 beta-estradiol + oil; oil + DMBA; and 17 beta-estradiol + DMBA. They were sacrificed at approximately 144 days of age (Experiment 1) or the day of palpable ovarian tumor detection or 360 days of age (Experiment 2). In Experiment 1, the total number of oocytes (follicles) per ovary in mice of the 17 beta-estradiol + oil group was maintained at the same level as mice of the oil + oil group. A significant reduction of oocytes, however, was observed in mice of the 17 beta-estradiol + DMBA group in comparison with mice of the oil + DMBA group (P less than 0.01), and neoplastic nodules of the granulosa cell type developed in the unilateral ovary in 10 of 17 mice of the 17 beta-estradiol + DMBA group. No tumors were detected in the mice of the other groups. The plasma levels of both follicle-stimulating and luteinizing hormones as determined by radioimmunoassay were significantly higher (P less than 0.01) in mice of the 17 beta-estradiol + oil group than in mice of the oil + oil group. In Experiment 2, more ovarian tumors of the granulosa cell type were detected before 360 days of age in mice of the 17 beta-estradiol + DMBA group (14 of 18) than in mice of the oil + DMBA group (5 of 15) (P less than 0.05). No tumors developed in mice of the other two groups. These results strongly indicate that an abnormal endocrine milieu caused by neonatal treatment with estrogen may induce a high frequency of transformation of some ovarian tissues and rapid growth of the ovarian tumors after DMBA treatment.

9,10-Dimethyl-1,2-benzanthracene

Hormonal characterization of female SL/Ni mice: a small thymus gland strain exhibiting ovarian dysgenesis.

Female SL/Ni mice have a small thymus gland and show accelerated aging of the reproductive system characterized by an early loss of the follicular apparatus and early onset of ovarian tumors. At 9 months of age, circulating levels of luteinizing hormone (LH) and follicle-stimulating hormone (FSH) were higher in the SL/Ni animals than in controls while prolactin (PRL) was lower in the SL/Ni mice. The trends of these hormones are consistent with the loss of the follicular apparatus which is responsible for estradiol production. The high levels of gonadotropins which precede the onset of the tumors confirm the hypothesis that prolonged stimulation by gonadotropins can be a cause of ovarian tumorigenesis. Further, these data suggest that aging of the reproductive system may be a thymus-dependent phenomenon.

Aging

Source of high testosterone levels associated with autoimmune ovarian dysgenesis in neonatally thymectomized B6A mice.

Thymectomy at three days of age (Tx-3) in mice results in early ovarian dysgenesis and eventual sterility. In (C57BL/6JCr x A/JCr)F1 (B6A) mice, the ovaries are reduced in weight, composed mostly of interstitial-like cells, and are usually devoid of oocytes, follicles, and corpora lutea by 60 days of age. This thymectomy-induced acceleration of follicular atresia is autoimmune in nature and is accompanied by circulating auto-oocyte antibodies (AOA). The dysgenesis is also characterized by elevated levels of testosterone (T). To determine the source of these high T levels, various combinations of Tx-3, and adrenalectomy (Adx) and ovariectomy (Ovx) at 15 days of age were performed. Levels of T, estradiol-17 beta (E2), and corticosterone (B) were analyzed and compared with ovarian morphology. Except for plasma B levels, animals that underwent both Tx-3 and Adx were not significantly different from mice that received Tx-3 alone. As anticipated, B and E2 levels were substantially decreased in Adx and Ovx mice, respectively. T levels in the Tx-3 and Tx-3/Adx groups were first elevated at 60 days of age (0.17 and 0.14 ng/ml, respectively) then rose sequentially through 150 days of age (0.91 and 0.89 ng/ml, respectively) as compared to the significantly lower T levels in intact and Tx-3/Ovx mice (less than 0.20 ng/ml through 150 days of age). These results suggest that the increased T is being secreted by ovarian rather than adrenal tissue. Furthermore, this model may be of value to investigators interested in the study of interstitial or non-follicular steroidogenesis in the ovary.

Adrenal Glands

The effect of antisera to thymosin alpha 1 on the course of autoimmune ovarian dysgenesis in neonatally thymectomized mice.

Thymectomy at 3 days of age (Tx-3) in B6A female mice results in an autoimmune oophoritis that has only been successfully overcome by the transplant of an intact thymus or an injection of T cells. In Tx-3 mice levels of thymosin alpha 1 (TSN alpha 1), a potent thymic hormone involved in the development of helper T cells, was previously shown to be high after 7 days. By 60 days levels of TSN alpha 1 returned to levels found in intact mice. By this age ovarian dysgenesis was also complete and accompanied by high circulating levels of auto-oocyte antibody (AOA), estradiol-17 beta (E2) and testosterone (T). In the present study injections of antisera to TSN alpha 1 were given to Tx-3 mice in an attempt to decrease circulating TSN alpha 1 levels. We reasoned that this treatment should inhibit lymphocyte differentiation, and possibly in turn aid in overcoming the ovarian dysgenesis. After treatment of the Tx-3 mice, dysgenic ovaries persisted and high levels of AOA remained similar to the untreated Tx-3 mice. Levels of E2 and T, however, were returned to those found in intact mice. These results suggest that there is a sensitive balance between the thymus and the ovary that may not be related to changes in only a single thymic hormone.

Animals

Cellular events associated with autoimmune oophoritis and ovarian tumorigenesis in neonatally thymectomized mice.

Thymectomy at 3 days of age (Tx-3) in (C3H/HeMs x 129/J)F1 (C31) female mice results in post-pubertal ovarian dysgenesis associated with high levels of circulating auto-oocyte antibodies (AOA) prior to ovarian tumor formation. Evidence suggests that the etiology for the ovarian dysgenesis resulting from Tx-3 is autoimmune and involves helper T cell abnormalities. The present study characterized circulating leukocytes and mitogenic activity using concanavalin A (ConA) with serologically selected spleen T cells. We observed no sustained abnormalities in either number of circulating leukocytes or percentages of granulocytes or lymphocytes. Circulating mononuclear cells with positive immunofluorescence for Thy 1.2 and Lyt 1.1+Lyt 1.2 cell markers were similar in all mice. However, the spleen cells from Tx-3 mice with ovarian dysgenesis remaining after adsorption with antisera to the Lyt 2.1+Lyt 2.2 antigens (helper T cells remaining) showed increased incorporation of [3H]thymidine compared to the intact mice. This stimulated activity occurred during the periods of early ovarian dysgenesis and active tumor growth. Apparently, the autoimmune oophoritis results from an imbalance within the Lyt 1 cells which may represent a primary insult to the ovary that results in later ovarian tumor development.

Animals

Perinatal cannabinoid exposure: effects on hepatic cytochrome P-450 and plasma protein levels in male mice.

Maternal exposure to the major psychoactive delta 9-tetrahydrocannabinol (THC), or to the nonpsychoactive cannabinol (CBN) or cannabidiol (CBD) on day 12 of gestation, or on day 1 postpartum, affected the concentrations of hepatic cytochromes P-450 in adult male offspring. Levels of P-450 were significantly increased in adult males prenatally exposed to cannabinoids, but were reduced after postnatal exposure. The response to exogenous testosterone was also differentially affected by perinatal cannabinoid exposure, with reduced plasma androgen in males prenatally exposed to THC, but increased levels of hormone in mice exposed postnatally to THC or CBN. There was a concomitant decrease in plasma albumin and increased gamma-globulin in adult males postnatally exposed to CBN. Beta-globulin levels were also significantly increased in adult males exposed to cannabichromene (CBC) on day 1 postpartum. Cannabinoid exposure during perinatal periods of development exert effects on hepatic function, plasma androgen levels, and on the immune system. These effects may reflect the ability of perinatal cannabinoid exposure to interfere with androgen-mediated processes of differentiation.

Androgens

Organophosphorus insecticide induced decrease in plasma luteinizing hormone concentration in white-footed mice.

Oral intubation of 50 and 100 mg/kg acephate inhibited brain acetylcholinesterase (AChE) activity by 45% and 56%, and reduced basal luteinizing hormone (LH) concentration by 29% and 25% after 4 h in white-footed mice (Peromyscus leucopus noveboracensis). Dietary exposure to 25, 100, and 400 ppm acephate for 5 days substantially inhibited brain AChE activity, but did not affect plasma LH concentration. These preliminary findings suggest that acute exposure to organophosphorus insecticides may affect LH secretion and possibly reproductive function.

Acetylcholinesterase

The role of the endocrine thymus in female reproduction.

Neonatal thymectomy in mice induces ovarian disturbances, indicating some relationship between the thymus and the ovaries. The mechanism of the relationship, however, is not fully understood. One approach to elucidating the complex relationship has been to measure circulating hormone levels in thymectomized animals and those with small thymus glands, and compare these levels with those found in control animals. The data indicate that a thymus-pituitary-ovarian axis exists and that thymus disturbances may hasten the aging processes of the ovaries.

Animals

Plasma gonadotrophins and progesterone concentrations during various degrees of underfeeding in pregnant mice.

Daily reduction of the normal (ad libitum) food consumption by as little as 35% significantly reduced (P less than 0.05) the percentage of mice with implantation sites at Days 7 and 9 of gestation. Underfeeding decreased body weight and reduced the weight of the ovaries and uterus. Plasma progesterone was decreased (P less than 0.05) as dietary intake was restricted and was associated with regression of the corpora lutea. No significant alterations in the plasma values of LH and FSH were observed in mice underfed between Days 1 and 9 of pregnancy. The decrease in plasma progesterone in the absence of reduced LH values may indicate that progesterone secretion between Days 5 and 9 of gestation is not controlled solely by LH.

Animals