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O Heikinheimo

Publications and source records attributed to O Heikinheimo.

At least 19 recordsLinked to original sources

Microinjection of antisense c-mos oligonucleotides prevents the progression of meiosis in human and hamster oocytes.

OBJECTIVE: To investigate the role of c-mos proto-oncogene in the progression of meiosis in human and hamster oocytes. DESIGN: Controlled basic research study. SETTING: Assisted reproduction units at medical institutions. PATIENT(S): Consenting in vitro fertilization patients. INTERVENTION(S): None. MAIN OUTCOME MEASURE(S): Maturation to metaphase II (MII) 24 hours following microinjection of prophase I (PI) hamster oocytes with antisense (AS) and sense (S) c-mos oligonucleotides. Control oocytes (C) injected with medium or left uninjected (UI). In human oocytes, maturation to metaphase II was also measured except culture was extended to 48 hours and the sense group was omitted. RESULT(S): The percentage of hamster oocytes reaching metaphase II after 24 hours was as follows: 1.5% (1 of 65) for the antisense group; 63.1% (41 of 65) in the sense group; 66.1% (41 of 62) in the control group; and 69.3% (52 of 75) in the uninjected group. The percentage of human oocytes at metaphase II was 33.3% (4 of 12) in the antisense group, 83.3% (10 of 12) in the control group, and 82.8% (24 of 29) in the uninjected group. CONCLUSION(S): These results demonstrate that injection of c-mos antisense oligonucleotide significantly inhibits the progression of meiosis in hamster (P=.0001) and human (P=.05) oocytes. Thus, c-mos proto-oncogene may be one of the critical regulators of meiosis in these two species.

Animals↗

Parenteral administration of progestin Nestorone to lactating cynomolgus monkeys: an ideal hormonal contraceptive at lactation?

Nestorone (NES) progestin is highly effective for contraception following parenteral administration, but ineffective after oral ingestion due to rapid first-pass metabolism. Thus, NES might be ideal for lactational contraception; possible NES in milk should be metabolized by the nursing infant. We evaluated the distribution of NES, its endocrine effects and infant weight gain in five cynomolgus monkeys and their nursing infants. Nestorone implants, releasing approximately 40 microg NES/day in vitro, were placed s.c. in the mothers 3-4 months following delivery, where they remained in situ for 4 weeks. Sampling (blood daily from the mother; milk and blood from the infant at 3 day intervals) was initiated at 2 weeks prior to insertion, and continued for 2 weeks following removal of the implant. NES, oestradiol, progesterone and prolactin were measured by radioimmunoassays and the infants were weighed weekly. The (mean +/- SD) maternal serum and milk concentrations of NES were 337 +/- 90 and 586 +/- 301 pmol/l during the use of the implants. The ratio of milk/serum NES was 1.68 +/- 0.12 (mean +/- SE), and the serum and milk concentrations were significantly correlated (r = 0. 75, P < 0.001). NES was not detectable (<13 pmol/l) in any infant serum samples. Concentrations of prolactin (mean +/- SD) were 41.1 +/- 32, 26.7 +/- 7.6 and 26.3 +/- 9.5 ng/ml before, during and after the use of the implants respectively. The (mean +/- SE) infant weight increased from 643 +/- 54 g 1 week prior to insertion to 713 +/- 54 g 1 week following removal. These data confirm that NES in milk is rapidly metabolized by the suckling infant. Therefore, NES appears to be an ideal hormonal contraceptive for use during lactation.

Animals↗

The molecular mechanisms of oocyte maturation and early embryonic development are unveiling new insights into reproductive medicine.

The purpose of the present review is to outline the current understanding on the molecular mechanisms governing various stages of oocyte maturation, transition from maternal to embryonic control and the initial steps of pre-embryo development. The cytoplasmic and nuclear maturation of the oocyte during pre-ovulatory development can be viewed as separate entities. Cytoplasmic maturation and the acquisition of stores of RNA and protein dominates oocyte development between the premordial and pre-ovulatory stages of development. Initiation of nuclear maturation is marked by the breakdown of the nuclear envelope, or germinal vesicle and is triggered by the midcycle luteinizing hormone peak. In vitro, this is associated with a decrease in the intracellular concentrations of cAMP. This and several subsequent steps of meiosis are controlled by the M-phase promoting factor (MPF). While the constituents of MPF, p34cdc2 kinase and B-type cyclin, are also present in mitotically dividing cells, in meiotically dividing oocytes the regulation of MPF activity differs. An oocyte-specific protein kinase, c-mos, plays an important role in up-regulating the activity of MPF at various stages of final oocyte maturation. Several lines of evidence suggest that the proper function of the c-mos-MPF system is associated with important features of the last stages of oocyte maturation such as the resumption of meiotic maturation, inhibition of DNA replication between meiosis I and II, and the maintenance of the oocyte at metaphase II arrest until it is fertilized. Eventually the destruction of c-mos and active MPF following fertilization allows the initiation of mitotic cell division in the pre-embryo. The very first cell divisions of the human pre-embryo are still under the control of maternally inherited mRNA and protein. Several lines of evidence suggest that in humans, zygotic gene expression is initiated between the 4- and 8-cell stages, after which the pre-embryo begins to utilize its own genes. Some of the first genes to be expressed in the human pre-embryo encode proteins that are associated with cell division, extracellular growth modulatory signals as well as factors associated with implantation. We acknowledge that most of the data presented comes from species other than human, therefore at present the full biological role of the proposed regulatory pathways and control mechanisms for human biology remains speculative.

Animals↗

Alterations in the pituitary-thyroid and pituitary-adrenal axes--consequences of long-term mifepristone treatment.

The effects of short-term administration of the antiprogestin and antiglucocorticoid, mifepristone, have been well characterized. However, little is known about the effects of prolonged administration of mifepristone. We analyzed hormonal parameters in four female and three male patients with unresectable meningioma who were treated with mifepristone (200 mg/d) for 20 to 40 months. Serum samples were collected at monthly intervals approximately 24 hours following mifepristone ingestion. Serum thyrotropin (TSH), thyroxine (T4), free T4 (fT4), 3,5,3-triiodothyronine (T3), prolactin, and cortisol were analyzed by fluoroimmunoassay, and androstenedione by radioimmunoassay (RIA). Levels of mifepristone and its three most proximal metabolites were measured by high-performance liquid chromatography. TSH values increased significantly (P < .005, one-way ANOVA), with the most pronounced increase evident during the first 3 months of mifepristone treatment. Despite these changes, concentrations of TSH remained within the normal range throughout the treatment period. There were no significant changes in serum T4, fT4, T3 or prolactin; however, a transient decrease in serum T4 was noted at 2 to 3 months. Cortisol and androstenedione values increased significantly and in parallel (P < .05), suggesting an adrenal origin also for androstenedione. As during short-term administration, levels of mifepristone and its metabolites remained stable in the micromolar range. Individual levels of mifepristone were significantly correlated with those of TSH and cortisol. This suggests that the alterations in the pituitary-thyroid and -adrenal axes occurred in a concentration-dependent manner. It is concluded that long-term mifepristone treatment results in resetting of the pituitary-thyroid balance. As in the case with cortisol and androstenedione, it is likely that the alterations in serum TSH are due to the antiglucocorticoid properties of mifepristone. The clinical significance of these biochemical alterations in thyroid homeostasis remains to be determined. However, monitoring thyroid function during long-term mifepristone treatment appears to be warranted.

Administration, Oral↗

Vascular endothelial growth factor in primate endometrium is regulated by oestrogen-receptor and progesterone-receptor ligands in vivo.

We investigated hormonal regulation of endometrial angiogenesis in menstruating primates. This study was designed to demonstrate: (i) that cell-specific vascular endothelial growth factor (VEGF) production and expression in monkey endometrium are regulated by steroid receptor ligands; and (ii) mifepristone (RU 486) alters VEGF production even in the absence of a progestin agonist. Endometrial VEGF production was compared by computer-assisted immunohistochemical analysis during induced hypoestrogenism and after oestradiol, progestin, or antiprogestin (mifepristone) treatment. VEGF gene expression was estimated by quantitative reverse-transcriptase polymerase chain reaction (RT-PCR) in endometrial samples from castrate cynomolgus monkeys, from intact monkeys in the luteal phase, and from monkeys treated for 20 days with levonorgestrel (LNG) or mifepristone. VEGF staining intensities in glandular epithelium and VEGF mRNA expression were highest in hypoestrogenic monkeys. Progestin treatment induced intense VEGF staining in the stroma. Gene expression of VEGF-189, but not other isoforms, was higher in progesterone- and progestin (LNG)-exposed endometria compared to mifepristone-exposed endometria or endometria from anovulatory cycles (P < 0.04). Mifepristone abolished VEGF staining in glandular epithelium almost completely. We conclude that VEGF protein and VEGF mRNA expression levels in primate endometrium depend on the steroidal milieu. Anti-angiogenic effects of mifepristone via suppression of VEGF production might represent a mechanism for its quelling effects on endometrium.

Animals↗

Clinical pharmacokinetics of mifepristone.

Mifepristone is a steroidal antiprogestin and antiglucocorticoid acting at the receptor level. The aromatic dimethylaminophenyl side chain in position 11 of the steroid structure is essential for the antagonistic properties of mifepristone. The pharmacokinetics of mifepristone are characterised by rapid absorption, a long half-life of 25 to 30 hours and micromolar serum concentrations following ingestion of doses currently in clinical use. The serum transport protein alpha 1-acid glycoprotein (AAG) regulates the serum kinetics of mifepristone. Binding to AAG limits the tissue availability of mifepristone, explaining the low metabolic clearance rate of 0.55 L/kg/day and the low volume of distribution of mifepristone. Also, similar serum concentrations of mifepristone following ingestion of single doses exceeding 100mg can be explained by saturation of the binding capacity of serum AAG. Following oral intake, mifepristone is extensively metabolised by demethylation and hydroxylation, the initial metabolic steps are catalysed by the cytochrome P450 (CYP) enzyme CYP3A4. The 3 most proximal metabolites, namely the monodemethylated, didemethylated and hydroxylated metabolites of mifepristone, all retain considerable affinity toward the human progesterone and glucocorticoid receptors; in addition, the serum concentrations of these 3 metabolites are in a similar range as those of the parent drug. Thus, the combined pool of mifepristone, as well as that of the metabolites, seems responsible for the biological actions of mifepristone. Combination therapy with mifepristone and low dose prostaglandin is currently in clinical use for termination of early pregnancy in China, France, Sweden and the UK. The combined regimen is well tolerated and highly efficacious with a 95% rate of complete pregnancy terminations. Recent clinical studies on pregnancy termination have focused on dose optimisation of mifepristone and evaluation of the orally active prostaglandin derivative misoprostol. In addition, several other indications for the clinical use of mifepristone, such as induction of labour, contraception, as well as treatment of various hormone dependent disorders, are emerging. The major obstacles currently inhibiting further evaluation and distribution of mifepristone are political rather than clinical. However, it is hoped that the eventual introduction of new antiprogesterone molecules by several manufacturers will enhance the availability of this important class of new drugs.

Abortifacient Agents, Steroidal↗

Inhibition of ovulation by progestin analogs (agonists vs antagonists): preliminary evidence for different sites and mechanisms of actions.

Continuous administration of the antiprogesterone RU486 inhibits ovulation in women and in monkeys; in this regard RU486 may act as a progestin agonist rather than as an antagonist. We compared the site(s) and mechanism(s) of RU486-induced ovulation inhibition with those of levonorgestrel (LNG). Six regularly menstruating cynomolgus monkeys each received placebo, RU486 (1 mg/kg/d) or LNG (2 g/kg/d) i.m. between days (cd) 2-22 of three separate menstrual cycles. Serum levels of estradiol (E2), progesterone (P4), androstenedione, LH and FSH were analyzed by RIAs in daily blood samples. Basal and GnRH-stimulated (1 and 50 g of GnRH i.v. 2 h apart) secretion of LH and FSH was assessed using serial blood samples collected for 12 h on cd 10. Mean cycle length was prolonged by RU486 and LNG treatments from 32 d to 70 d and 52 d, respectively (p < 0.02). Ovulation was inhibited in five of the six primates during RU486, and in all six during LNG treatment. During RU486 treatment, serum E2 levels were similar to those of the control cycle; despite peaks of E2 secretion, no LH peaks were seen. In contrast, E2 concentrations were profoundly suppressed during LNG treatment (p < 0.005). The reduction in serum E2 was accompanied by lower levels of androstenedione, and suppressed ratio of E2/androstenedione (p < 0.02) suggesting both reduced synthesis and aromatization of androgen precursors during administration of LNG. Consequently, LNG treatment was associated with higher levels of serum FSH and LH (p < 0.001; 1-way ANOVA). Similarly, as during the luteal phase of the menstrual cycle, the amplitude of basal LH-pulses was increased during LNG treatment (p < 0.05), whereas RU486 treatment did not affect basal LH secretion. The GnRH-stimulated release of LH was similar during the placebo, RU486 and LNG cycles; enhanced release of FSH was seen during administration of LNG. Thus, in the present model system, RU486 seems to inhibit ovulation mainly at the level of hypothalamus, possibly by interfering with the steroidal positive feedback signals from the ovary. However, LNG inhibits ovulation differently, most likely via direct progesterone-like effects on folliculogenesis and the hypothalamus. The pituitary does not appear to be the major site of action(s) of RU486 or LNG. Thus, the differential mechanisms of ovulation inhibition by RU486 and LNG seem to result from lesser intraovarian impact of RU486 as well as dissimilar influences on tonic gonadotropin secretory levels. We conclude that when inhibiting ovulation, RU486 does not act as a progestin agonist, but rather, functions through a hypothalamic mechanism(s), which might be unique to RU486 as a progesterone antagonist.

Analysis of Variance↗

Pharmacokinetics of mifepristone after low oral doses.

Relatively low doses of the antiprogestin mifepristone (RU 486) have recently proven to be efficient for a variety of possible clinical uses of the drug. However, the pharmacokinetics after low single oral doses have not been characterized. We evaluated the pharmacokinetics of mifepristone following single ingestion of 2 and 25 mg in five women as well as repeated ingestion of 8 mg in two women. Maximal serum concentrations were reached rapidly (within 0.5-2 h) with all doses used. Serum mifepristone concentrations were proportional to the oral doses taken. The mean (+/- SD) areas under the concentration curves (AUCs) (0-24 h) were 1134 (+/- 144), 4846 (+/- 64), and 17,015 (+/- 4,421) h x ng/mL following 2, 8, and 25 mg doses, respectively. No cumulative increases in serum concentrations were detected with prolonged daily administration of 8 mg of mifepristone. The study subjects appeared to vary in their ability to metabolize mifepristone, as two different half-lives (t1/2) emerged after both 2 and 25 mg single doses (24.2 +/- 0.6 [SD] h for three subjects; and 44.4 +/- 1.8 [SD] h for two subjects). We conclude that within the dose range of 2-25 mg/day, the pharmacokinetics of mifepristone are linear, unlike those seen following ingestion of higher daily doses. Keeping in mind previously published data on the biological effects of low dose mifepristone administration, these data infer that certain effects of the drug, such as inhibition of ovulation, might be achieved at serum concentrations of approximately 100 ng/mL.

Abortifacient Agents, Steroidal↗

Endometrial effects of RU486 in primates--antiproliferative action despite signs of estrogen action and increased cyclin-B expression.

Continuous antiprogestin administration to hormone replaced, castrate monkeys inhibits estrogen-induced endometrial proliferation through mechanisms which remains unclear. To elucidate the molecular mechanisms of RU486-induced endometrial suppression, we treated six intact female cynomolgus monkeys on cycle days 2-22 sequentially with placebo, RU486 (1 mg/kg/day) and levonorgestrel (LNG) (2 microg/kg/day) intramuscularly (i.m.), with uterine wedge sections and endometrial biopsies collected on day 22 of each cycle. The uterine sections were evaluated for morphology, mitosis and proliferating cell nuclear antigen (PCNA) immunohistochemistry. Changes in the mRNA levels of ER, PR, cyclin-B and tumour suppressor gene p21 were assessed using co-amplification with beta-actin by reverse transcriptase-polymerase chain reaction (RT-PCR). Administration of RU486 uniformly resulted in characteristic suppression of endometrium with few mitosis, dense stroma and simple glands, whereas the effects of LNG were less uniform. Following RU486 administration, the levels of endometrial ER and PR mRNA were comparable to proliferative phase endometrium, and significantly higher than those seen in the secretory endometrium, indicating that some of the biological actions of E2 were not inhibited during RU486 treatment. Despite scarce mitosis, PCNA was readily detectable in all samples. Curiously, in comparison to secretory phase controls, the levels of cyclin-B, but not p21, mRNA were markedly increased following RU486. The effects of LNG on the levels of these mRNA species varied, with mean levels falling between those of the secretory phase controls, and RU486-treated specimens. The increase in cyclin-B mRNA and lack of mitosis suggests that anti-proliferative actions of RU486 in the primate endometrium might be associated with a cell-cycle block at the G2-M interphase. Whether mechanisms similar to these are associated with the beneficial clinical effects of RU486 seen in the treatment of various hormone dependent maladies remains to be determined.

Animals↗

Mifepristone: a potential contraceptive.

Use of standard estrogen-progestin contraception remains problematic in several subgroups of patients (e.g., those in whom exogenous estrogens are contraindicated, such as survivors of hormone-dependent cancer, or patients with endometriosis or uterine fibroids). In addition, the postcoital contraception, even if already available, remains at least underused. Additionally, continuous intake of contraceptive steroids is under increasing scrutiny. Would antiprogestins, and specifically the applications of mifepristone such as the ones reviewed in this article offer significant improvements at such problematic occasions? The most attractive novel contraceptive application of mifepristone is that of emergency postcoital contraception after unprotected intercourse. In addition, various options in the endometrial category, specifically those requiring drug administration only during a limited time, might be used in the future. Mifepristone might offer contraceptive and therapeutic relief to patients suffering from endometriosis or uterine fibroids, both conditions that have been shown to benefit from mifepristone therapy. However, the use of mifepristone in contraceptive preparations that are widely available would pose an additional problem of possible misuse of the compound, the reason for currently limiting access to mifepristone. However, such risk should be easily avoidable in the case of postcoital contraception in which only one dose of mifepristone is needed. Regarding the future of mifepristone, and more broadly that of antiprogestins in contraception, the authors believe that they will have a place in the future contraceptive armament. As already emphasized, the strongest clinical areas are those of immediate postcoital and endometrial contraception. Additional studies evaluating parenteral modes of administration, the long-term endometrial effects, and safety and metabolic effects of prolonged antiprogestin administration are needed before mifepristone can be considered a part of the contraceptive arena.

Contraceptive Agents↗

Messenger ribonucleic acid kinetics in human oocytes--effects of in vitro culture and nuclear maturational status.

OBJECTIVE: To study the effects of different nuclear maturational status (prophase I [PI] versus metaphase II [MII]) and in vitro culture on the kinetics of maternal messenger ribonucleic acid (mRNA) in human oocytes. DESIGN: Molecular biology on excess oocytes obtained from our clinical IVF program. INTERVENTIONS: The oocytes, classified as either PI or MII at collection, were used as such or cultured in vitro for an additional 24 hours. The relative levels of c-mos and cyclin-B1 were measured using semiquantitative reverse transcriptase polymerase chain reaction (RT-PCR). RESULTS: The mean levels of c-mos and cyclin-B1 transcripts were indistinguishable between the PI, MII, PI oocytes matured in vitro, PI oocytes failing to mature, and MII oocytes cultured for additional 24 hours. The variability in the levels of these transcripts increased during the vitro culture. CONCLUSIONS: The level of c-mos and cyclin-B1 transcripts were not different in PI versus MII oocytes, therefore, differences seen in the clinical outcome of PI and MII oocytes may be unrelated to levels of these gene products. C-mos and cyclin B1 mRNA were maintained in vitro, thus degradation of maternal RNA is not activated in excess during the 24-hour culture.

Base Sequence↗

Primate reproductive organs reveal a novel pattern of proto-oncogene c-mos and transcription factor Oct-3 mRNA expression.

In mice, expression of the transcription factor Oct-3 and the proto-oncogene c-mos is limited to germ cells, suggesting a specific role for these factors in gamete physiology and early embryonic development. We have studied the expression pattern of Oct-3 and c-mos in various reproductive as well as control tissues in the cynomolgus monkey, using reverse transcriptase polymerase chain reaction (RT-PCR) and Northern analysis. Analogously with the data from the mouse model, strong expression of Oct-3 and c-mos could be detected in monkey ovary and oocytes. Unexpectedly, strong expression of c-mos was demonstrable in the pituitary gland and the amount of mRNA expression in the pituitary was roughly equal to that found in the ovary. Of the tissues examined, the testicular expression of c-mos was the most intense. Weak signal for c-mos mRNA was also seen in hypothalamus and brain; however, all other tissue types examined were negative for c-mos expression. In addition to the oocytes, expression of Oct-3 mRNA was detected in the ovarian granulosa cells, fallopian tube, myometrium, cervix, breast, liver, adrenal gland, pituitary, hypothalamus, brain cortex, prostate, and in testis. Thus, in the cynomolgus monkey, Oct-3 is predominantly, but not specifically, expressed in reproductive tissues. In the female monkey reproductive organs, the expression of c-mos seems to be germ cell specific. Therefore, further characterization of c-mos and Oct-3 functions in primate reproductive physiology, especially in gametogenesis and early embryonic development, is highly warranted.

Animals↗

Estrogen and progesterone receptor mRNA are expressed in distinct pattern in male primate reproductive organs.

PURPOSE: The role(s) of estrogens (E) and progesterone (P) in male reproductive physiology remain unclear. Estrogens are used in the treatment of prostatic cancer. Progestins have been used to control excessive sexual behavior in men, and proposed as a male contraceptive. Previous immunohistochemical studies have shown that E receptors (ER) are present in the reproductive tract of male nonhuman primates. METHOD: We examined the expression pattern of ER and progesterone receptor (PR) mRNA in adult primate male reproductive tract. mRNA was extracted from male pituitary, testis, prostate and different regions of the epididymis of three intact adult cynomolgous monkeys. Ovarian, myometrial and spleen mRNA were used as controls. Reverse transcriptase polymerase chain reaction (RT-PCR) was used to amplify ER and PR mRNA; beta-actin mRNA was used as a reference. Primers for ER, PR and beta-actin were designed using the most conserved areas in the corresponding human cDNA sequences, and the identity of the PCR products was verified using Southern hybridization. Semiquantitative analysis of ER and PR mRNA content in different parts of the male reproductive tract was carried out by spiking the PCR reaction with 33P-dCTP, and amplifying the samples for 20 cycles with the beta-actin primers, whereas 30 cycles were used for ER and PR. RESULTS: The results are expressed as cpm ratios of ER or PR/beta-actin. All the male reproductive organs studied revealed a strong signal for ER and PR mRNA. The results of the semiquantitative analysis indicate that the expression of both ER and PR was highest in testis (mean +/- SE 6.4 +/- 1.3 and 0.5 +/- 0.1, respectively). The mean figures for prostate were 0.5 and 0.4, respectively. The mean content of ER and PR in the different areas of epididymis was 0.5 and 0.1, respectively. The epididymal ER mRNA was highest in the corpus region (ER/beta-actin 0.7), the ratio being 0.4 for the caput and cauda regions. The expression pattern of PR mRNA was different, and the caput of epididymis being the most intense (0.2). Surprisingly, the pituitary content of ER and PR mRNA was close to that seen in the ovary, the mean +/- SE values being 7.6 +/- 0.5 and 1.3 +/- 0.1, respectively. CONCLUSIONS: We, therefore, conclude that male monkey reproductive tract contains mRNA for ER and PR, and there appears to be regional variation in their expression. Thus the role(s) of Es and P in male reproductive physiology, specifically in sperm maturation, warrants further investigations.

Actins↗

Cell cycle genes c-mos and cyclin-B1 are expressed in a specific pattern in human oocytes and preimplantation embryos.

Little is known about the molecular mechanisms governing the development of human oocyte and pre-embryo. We characterized the expression pattern of c-mos, cyclin B1 and beta-actin mRNA in oocytes and granulosa cells from human and monkey, and in human early embryos, using both qualitative and semi-quantitative reverse transcriptase polymerase chain reaction. The proto-oncogene c-mos was expressed in an oocyte-specific manner and no mRNA for c-mos could be detected in the granulosa cells. Similarly, strong expression of cyclin-B1 was seen in the oocytes. In human pre-embryos, the expression of cyclin-B1 and beta-actin increased from the 6-cell stage onwards, indicating active transcription and thus activation of embryonic genome either at or before the 6-cell stage. The expression of c-mos was transient and very little c-mos mRNA could be detected in the human embryos beyond the 6-cell stage. Thus, both its time-specific and site-specific expression suggest meiosis-specific functions for the proto-oncogene c-mos in human oocytes. As judged by the disappearance of c-mos, the maternal pool of mRNA seems to be degraded towards the 6- to 8-cell stage. The transient expression of c-mos and high levels of cyclin-B1 mRNA suggest that mechanisms similar to those found in lower organisms govern the growth and development of the human oocyte and preimplantation embryo.

Actins↗