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[A modified method of nuclear transfer for investigating early development of mouse embryos reconstructed with cumulus cell nuclei].

OBJECTIVE: To establish a fast, simple, efficient and minimally invasive method for nuclear transfer (NT) to study the early development of mouse embryos reconstructed with cumulus cell nuclei in vitro. METHODS: With a sharp-tipped enucleation needle, an incision approximately 25 mm in length was made in the zona pellucida of a rat oocyte, through which the first polar body was removed and the metaphase II chromosome-spindle complex was gently aspirated along with a minimal volume of the cytoplasm by slightly pressing and vacuum aspiration of the oocyte. A cumulus cell nuclei from C57BL/6j mouse, 10-12 mm in diameter, was inserted into the perivitelline space of the enucleated oocyte. The fusion of the donor-recipient pair was induced by electrofusion and nuclear formation was observed. The development of 2-cell, 4- to 8-cell and morula-stage embryos was observed after a 72-hour culture of the reconstructed oocytes in vitro. RESULTS: The modified NT method enabled one-step removal of the whole nucleus from the oocyte with confirmed reliability of complete nuclear removal by Hoechst 33342 staining of the removed nuclei examined under UV light. The process of enucleation took an average time of 15 s, and the survival rate of the enucleated oocytes reached 95%. The success rate of 76.7% was achieved for cumulus cell nucleus insertion into the zona pellucida of the enucleated oocytes and pronucleus formation occurred in 62.2% of the reconstructed oocytes with nuclear transfer. After 72 h of culture in vitro of the reconstructed oocytes in CZB medium, the percentage of embryos that developed into 2-cell, 4- to 8-cell and morula (more than 16 cells) stages were 57.5%, 39.1% and 27.6%, respectively. Microsatellite sequences (D7Mit22 and D4Mit204) were amplified from the DNA of the reconstructed embryos for identifying their origin, which was proved to be C57BL/6j mouse. CONCLUSION: The modified NT method is simple, minimally invasive, efficient and practicable to reconstruct mouse embryos with somatic cell nuclei.

Animals↗

Effect of cigarette smoking on DNA damage of human cumulus cells analyzed by comet assay.

Cigarette smoking has been reported to induce intrafollicular oxidative stress that may lead to DNA damage. The purpose of this study was to determine damage in DNA in human cumulus cells caused by tobacco smoke in females who had received in vitro fertilization. The level of DNA damage in freshly isolated cumulus cells was determined by comet assay. Statistically significant increase (p<0.05) was observed in damaged nuclear DNA in smokers, both at basal level and after oxidative stress induced by hydrogen-peroxide. Since cumulus cells have an important role in oocyte maturation, ovulation and fertilization, this method could be used both as a test for the evaluation of the biological potential of the female reproductive system and as a direct means to measure certain toxic effects.

Comet Assay↗

Environment of the preimplantation human embryo in vivo: metabolite analysis of oviduct and uterine fluids and metabolism of cumulus cells.

OBJECTIVE: To determine the levels of metabolites surrounding the human oocyte and embryo in vivo. DESIGN: Oviduct and uterine fluids were collected throughout the menstrual cycle. Cumulus cells were collected at oocyte retrieval and their production of metabolites was assessed. Samples were analyzed for pyruvate, lactate, and glucose by microfluorimetry. PATIENTS: Luminal fluids were collected from naturally cycling patients at the time of routine clinical investigation. Patient consent and hospital ethics approval were obtained for this study. RESULTS: Pyruvate in the oviduct did not vary with the day of cycle, the mean value was 0.24 mM. Lactate and glucose concentrations varied with the day of cycle; lactate increasing from 4.87 mM in the follicular phase to 10.50 mM at the time of ovulation, whereas glucose decreased from 3.11 mM in the follicular phase to 0.50 mM midcycle and subsequently increased to 2.32 mM in the luteal phase. The concentrations of pyruvate, lactate, and glucose in uterine fluid remained constant throughout the cycle (0.10, 5.87, and 3.15 mM, respectively). All metabolite concentrations in uterine fluid were significantly different from those in the oviduct midcycle. Cumulus cells readily consumed glucose in vitro, with lactate being the major metabolite produced. CONCLUSION: These data indicate that lactate and glucose concentrations in the oviduct change with day of cycle and that the human embryo is exposed to different metabolite concentrations as it passes along the tract. Furthermore, cumulus cells readily consume glucose, producing lactate. Therefore, the early human embryo is exposed to low glucose and high lactate levels in vivo.

Body Fluids↗

In vitro development of reconstructed bovine embryos and fate of donor mitochondria following nuclear injection of cumulus cells.

In this study we examined the developmental potential of reconstructed embryos and the fate of donor mitochondria during preimplantation development after nuclear transfer in cattle. Isolated cumulus cells were used as donor cells in nuclear transfer. Cumulus cells labelled with MitoTracker Green FM fluorochrome were injected into enucleated bovine MII oocytes and cultured in vitro. MitoTracker labelling on donor cells did not have a detrimental effect on blastocyst formation following nuclear transfer. Cleavage rate was about 69% (56/81) and blastocyst formation rate was 6.2% (5/81) at 7 days after nuclear transfer. The labelled mitochondria dispersed to the cytoplasm and became distributed between blastomeres and could be identified up to the 8- to 15-cell stage. Small patches of mitochondria were detected in some 8- to 15-cell stage embryos (5/20). However, donor mitochondria were not detected in embryos at the 16-cell stage and subsequent developmental stages. In the control group, mitochondria could be identified in arrested 1-cell embryos up to 7 days after nuclear transfer. These results suggest that disappearance of the labelled donor mitochondria in nuclear transfer bovine embryos is not due to fading of the fluorochrome marker, but is rather an as yet undefined cytoplasmic event.

Animals↗

Synchronization of porcine oocyte meiosis using cycloheximide and its application to the study of regulation by cumulus cells.

This paper describes the use of the protein synthesis inhibitor cycloheximide (CHX) to synchronize nuclear progression during meiotic maturation in porcine oocytes, and also the time-dependence of nuclear maturation on exposure of the oocyte to cumulus cells. Prior to culture, the majority of oocytes were at the germinal vesicle (GV) stage (95-100%), but distributed from GVI to GVIV (GVI 56.1 +/- 9.1%, GVII 15.3 +/- 1.4%, GVIII 21.5 +/- 7.1%, GVIV 7.1 +/- 3.5%). During culture of cumulus-enclosed oocytes (COCs) from 12 h to 48 h in a conventional culture system, all meiotic stages were represented at any time point examined, with 63.6 +/- 4.2% of oocytes maturing to metaphase II (MII). Cycloheximide blocked the progression of nuclear development in a dose-dependent manner. Treatment for 12 h with CHX at 1-25 microg mL(-1) resulted in 95-100% oocytes being arrested and synchronized at GVII. With >5 microg mL(-1) CHX, all oocytes were arrested before germinal vesicle breakdown (GVBD) (mostly at GVIII) by 24 h. A 12 h preincubation with 5 microg mL(-1) CHX followed by 24 h of further culture without CHX resulted in >80% of oocytes maturing to MII. The profile of nuclear progression during maturation revealed discrete peaks of occurrence of different meiotic stages, with GVBD at 6-12 h, metaphase I (MI) at 10-18 h and anaphase I/telophase I at 16-20 h. After 12 h preincubation with 5 microg mL(-1) CHX, denuded oocytes (DOs) matured to MI as COCs. However, DOs matured to MII as normal when denuded at MI. In conclusion, CHX not only efficiently blocks and synchronizes the meiotic progression of porcine oocytes at a specific GV stage, but it also effectively synchronizes subsequent meiotic progression to MII, resulting in discrete peaks of occurrence of different meiotic stages. Using this technique, the study showed that cumulus cells are essential for oocytes to mature from MI to MII but exposure to cumulus cells must occur before MI.

Animals↗

Oocyte maturation is regulated by modulation of the action of FSH in cumulus cells.

A biochemical and cellular model is described for the regulation of oocyte maturation by modulation of FSH-dependent accumulation of cyclic AMP (cAMP) in the rat oocyte-cumulus complex (OCC). We propose that accumulation of cAMP in cumulus cells is specifically stimulated by FSH and modulation of this response to FSH is a primary site for the control of oocyte maturation. On the one hand, adenosine amplifies inhibition of oocyte maturation by up-modulation of FSH-sensitive accumulation of cAMP. In contrast, calcium ionophores induce oocyte maturation by down-modulation of FSH-dependent accumulation of cAMP. We suggest that adenosine and calcium interact at a similar site because adenosine reverses the calcium-dependent inhibition of the action of FSH. This model appears to have physiological relevance since induction of oocyte maturation by gonadotropin in the intact follicle occurs in parallel with inhibition of the FSH-sensitive accumulation of cAMP in the OCC. Moreover, gonadotropin-induced desensitization of the OCC to the action of FSH appears to precede the loss of intercellular junctional processes, as measured indirectly by uptake of radiolabelled uridine into the oocyte. Thus, a decrease in the FSH-sensitive accumulation of cAMP in cumulus cells, produced either by direct elevation of the intracellular concentration of calcium or by treatment of the intact follicle with gonadotropin, results in oocyte maturation. On the other hand, an increase in the cAMP response to FSH, produced by agents such as adenosine, results in inhibition of oocyte maturation. Thus, responsiveness of the cumulus cells to FSH appears to be acutely modulated and this site may be a major determinant for the regulation of oocyte maturation.

Adenosine↗

Bovine cumulus cell expansion does not depend on the presence of an oocyte secreted factor.

Communication between the oocyte and its somatic cells has been shown to be important in oocyte development. Here we examined how the oocyte may be involved in bovine cumulus cell expansion. Intact bovine cumulus oocyte complexes (COC) were obtained by puncturing antral follicles. From the intact COC, oocytectomised complexes (OOX) were produced by micro surgical removal of the oocyte. Clumps of cumulus cells (CC) were obtained by micro-dissection. Intact or OOX complexes or CC were matured in the presence of fetal calf serum and hFSH (6 mlU/ml) for 24 hr and the degree of expansion measured. The presence of the oocyte is not essential to allow bovine cumulus expansion to occur as expansion occurred in all groups. Murine OOX complexes from eCG primed 35-40-day-old C57BL6/CBA F1 hybrids (known to require the presence of an oocyte secreted factor for cumulus expansion) were cultured with or without denuded bovine oocytes (1 oocyte/microliter). Murine OOX complexes expanded only in the presence of denuded bovine oocytes. Thus some factor produced by bovine oocytes enabled expansion of murine OOX complexes. To determine whether the factor is secreted by bovine oocytes, murine OOX were cultured with or without media conditioned by bovine oocytes (1 oocyte/microliter for 4 hr). Significant expansion of murine OOX occurred in media conditioned by bovine oocytes. This shows that the cumulus expansion enabling effect of bovine oocytes is released into the surrounding media. Media conditioned by bovine oocytes and then frozen for up to 1 month showed that the activity by the factor can withstand freezing.

Animals↗

Desensitization to follicle-stimulating hormone in cumulus cells is coincident with hormone induction of oocyte maturation in the rat follicle.

The objective of the present studies was to assess whether hormone induction of oocyte maturation in isolated intact follicles may be linked to desensitization of follicle-stimulating hormone (FSH) in the oocyte-cumulus complex (OCC). Incubation of follicles with chorionic gonadotropin (hCG), FSH or epidermal growth factor (EGF) produced a marked inhibition of FSH-dependent cyclic AMP accumulation in OCC with a time-course coincident with the onset of germinal vesicle breakdown (GVBD). These effects were evident within 3 h for both hCG and FSH, but with EGF a reduced response to FSH was seen within 1 h of treatment followed by an increase in GVBD. In contrast, no inhibition of cyclic AMP accumulation was seen in response to cholera toxin, forskolin or LH in OCC derived from follicles incubated with hCG for 3 h. The time-course for induction of oocyte maturation by incubation of the intact follicle with hCG was also coincident with production of prostaglandin (PG) F2 alpha, an indirect marker of cyclooxygenase induction. No effect on metabolic coupling between the oocyte and cumulus cells was seen until 9 h after hCG treatment. Retinoic acid caused a marked decrease in metabolic coupling between the oocyte and cumulus cells but inhibited oocyte maturation both in denuded oocytes and OCC. Since FSH desensitization in OCC, the resumption of meiosis, and production of arachidonic acid-derived products were coincident, it is suggested that abrogation of FSH action in cumulus cells by the ovulatory surge of gonadotropins may initiate oocyte maturation.

Animals↗

Mitochondrial aggregation patterns and activity in porcine oocytes and apoptosis in surrounding cumulus cells depends on the stage of pre-ovulatory maturation.

In this study, we evaluated the distribution and oxidative activity of mitochondria in ex vivo pre-ovulatory porcine oocytes using the fluorescence probe MitoTracker CMTM Ros Orange. Cumulus-oocyte complexes (COCs) were classified according to cumulus morphology and time from hCG administration. The meiotic configuration of the oocytes and the degree of apoptosis in the surrounding cumulus cells were also evaluated. Estrus was synchronized in 45 crossbred Landrace gilts by feeding altrenogest for 15 days and administering 1000 IU PMSG on Day 16. The LH peak was simulated by treatment with 500 IU hCG, given 80 h after PMSG. Endoscopic oocyte recovery was carried out 2 h before or 10, 22, or 34 h after hCG administration. Altogether 454 COCs were aspirated from follicles with a diameter of more than 5 mm. Cumulus morphology in the majority of COCs recovered 2 h before and 10 h after hCG was compact (60.4 and 52.7%, respectively; P<0.05). At 22 h after hCG, COC morphology changed significantly from 10 h dramatically: 74% of COCs had an expanded cumulus (P<0.01). At 34 h after hCG, 100% of recovered COCs had an expanded cumulus. The percentage of oocytes with a mature meiotic configuration differed among COC morphologies and increased as the interval after hCG administration increased (P<0.05). The type of mitochondrial distribution in the oocytes (n=336) changed from homogeneous to heterogeneous as the interval after hCG administration increased (P<0.01) and was associated with the cumulus morphology. Representative mitochondrial distributions were found as follows: -2 h: fine homogeneous in compact and dispersed COCs; 10 h: granulated homogeneous in compact and dispersed COCs; 22 h: granulated homogeneous in expanded COCs; and 34 h: granulated heterogeneous and clustered heterogeneous in expanded COCs (P<0.01). The oxidative activity of mitochondria measured by fluorescence intensity (Em: 570 nm) per oocyte after Mitotracker CMTM Ros Orange labeling increased in the oocyte as the post-hCG interval increased (P<0.01) and depended on the type of mitochondrial distribution. Lowest oxidative activity of mitochondria was found in oocytes with fine homogeneous distribution (253.1+/-9.4 microA). The oxidative activity increased (334.4+/-10.3 microA) in oocytes with granulated homogeneous distribution of mitochondria, and reached highest level in oocytes with granulated heterogeneous (400.9+/-13.0 microA) and clustered heterogeneous distributions (492.8+/-13.9 microA) (P<0.01). Mitochondrial activity in oocytes coincided with apoptosis in surrounding cumulus cells which increased in a time-dependent manner during pre-ovulatory maturation in vivo (P<0.01). These results indicate that there is a relationship between meiotic progression, cumulus expansion and mitochondrial redistribution and their oxidative activity during final pre-ovulatory maturation in pig oocytes. It appears that increased levels of mitochondrial activities in oocytes are correlated to increased levels of apoptosis in surrounding cumulus cells, in which mitochondria may play a role.

Animals↗

Role of cumulus cells and serum on the in vitro maturation, fertilization, and subsequent development of rat oocytes.

Immature oocytes were collected from immature female rats (60-65 g) 40 h after injection with 6 IU pregnant mare's serum gonadotropin (PMSG). Oocytes were matured cumulus-intact (CI) or cumulus-free (CF) in medium supplemented with 0.5% bovine serum albumin (BSA) or 5-20% serum for periods of up to 24 h. After assessment for nuclear maturation, the oocytes were exposed to epididymal sperm for fertilization in vitro. In vitro-matured and ovulated oocytes undergoing fertilization were transferred to unilaterally pregnant recipients for embryonic and fetal development. The presence of cumulus cells and serum shortened (by 2 h) the time required for polar body emission by in vitro-matured oocytes and also helped to increase significantly the penetrability of the oocytes by spermatozoa. A high proportion (45.6%) of fertilized oocytes showed evidence of abnormal fertilization following maturation in the absence of cumulus cells. Oocytes matured CI before fertilization were able to develop to viable fetuses (57.8%) in proportions similar to ovulated oocytes (55.0%) after in vitro fertilization. These findings indicate an essential role for cumulus cells in promoting normal cytoplasmic maturation of oocytes necessary for pronuclear formation and subsequent developmental capability.

Animals↗

Contribution of cumulus cells and serum to the maturation of oocyte cytoplasm as revealed by intracytoplasmic sperm injection (ICSI).

The fertilisability and developmental capacity of mouse oocytes matured in vitro were examined by in vitro fertilisation (IVF) and intracytoplasmic sperm injection (ICSI). While more than 50% of cumulus-enclosed oocytes were fertilised by IVF after maturation in serum-supplemented medium, none were fertilised when the oocytes matured without serum. By ICSI, the majority (78-94%) of the oocytes were fertilised regardless of the presence or absence of serum in oocyte maturation media. Although the majority (88-92%) of cumulus-free germinal vesicle oocytes underwent nuclear maturation in both serum-free and serum-containing media, those matured in the presence of serum were more readily fertilised by ICSI (43%) than those matured without it (3-5%). The cumulus-free oocytes co-cultured with cumulus cells but without serum were fertilised at 36%, suggesting some secreted factor promotes the oocyte's cytoplasmic maturation. The oocytes fertilised by ICSI developed into normal-term fetuses regardless of the presence or absence of serum or cumulus cells in oocyte maturation medium. These results lead us to conclude that (a) the cytoplasm of the oocytes can mature in serum-free medium and (b) the presence of both the serum and the cumulus cells in the medium surrounding maturing oocytes is beneficial for the development of the fertilisation- and development-competence of oocyte cytoplasm.

Animals↗

Action of porcine follicular fluid oocyte maturation inhibitor in vitro: possible role of the cumulus cells.

To study the mode of action of porcine follicular fluid oocyte maturation inhibitor isolated cumulus-enclosed or mechanically denuded pig oocytes were used. Two types of culture media were employed, a complex containing 15% pig serum (TC199A) and a defined, minimal medium (BMOC). The maturation of cumulus-enclosed oocytes was comparable in the two types of culture media, but only in the complex medium did the cumulus cells remain functional in terms of morphology and progesterone secretion. The low molecular weight portion of follicular fluid partially inhibited oocyte meiosis and cumulus progesterone secretion in 199A. No inhibition of oocyte maturation was seen when follicular fluid was added to BMOC. Since denuded oocytes did not respond to follicular fluid in either culture medium, it is suggested that the cumulus cells may mediate the action of the follicular fluid oocyte maturation inhibitor.

Animals↗

Effect of IGF-I on pig oocyte maturation, fertilization, and early embryonic development in vitro, and on granulosa and cumulus cell biosynthetic activity.

Porcine granulosa cells have been shown previously to both secrete and respond to insulin-like growth factor-I (IGF-I), suggesting an autocrine function of this peptide in the follicle. The present work was undertaken to determine possible effects of IGF-I on in vitro maturation, in vitro fertilization, and early embryonic development in culture. Granulosa and cumulus cell proliferation and differentiation based on 3H-thymidine uptake and progesterone production, respectively, were also assessed. The results showed that the cleavage rate of oocytes was markedly stimulated in a dose-dependent manner by the addition of IGF-I to the oocyte maturation medium (P < 0.05). Embryo development beyond the 8-cell stage was improved by IGF-I, reaching a maximum of 22% at 200 ng/ml IGF-I. Treatment with IGF-I after fertilization increased the percentage of total oocyte cleavage (P < 0.05) to approximately 52%, 43%, and 57% at, respectively, 25, 50, and 100 ng/ml IGF-I. 3H-thymidine incorporation by granulosa cells was significantly increased in cultures treated with FSH (3-fold) or IGF-I (6-fold) compared to the control. For the cumulus cells, FSH caused a similar increase (3-fold) in 3H-thymidine incorporation while IGF-I stimulated a 15-fold increase. Progesterone production by the granulosa cells was increased to the same extent by treatment with FSH or IGF-I (4.7 and 5.1-fold, respectively). However, for the cumulus cells, while FSH caused a marked 16-fold increase in progesterone production, IGF-I caused only a marginal increase of 2.5-fold.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Use of coculture with cumulus cells in insemination medium in human in vitro fertilization (IVF).

PURPOSE: In an initial trial, 16 of 33 (48%) bipronuclear human zygotes left in culture in the insemination drop from which they had originated developed to fully expanded blastocysts. RESULTS: This method was subsequently used for all supernumerary embryos judged unsuitable for replacement or cryopreservation on Day 1, 2, or 3 of development. Over a 4-year period, embryos reaching the fully expanded blastocyst stage were cryopreserved. Of 113 such blastocysts thawed, 81 survived (72%), and upon transfer to 52 patients, 8 clinical pregnancies were established (15%), of which 6 were live births. Subsequently, following modification of some culture parameters, 60 patients had 296 supernumerary embryos cultured for 6 days; 43 of these patients (72%) had 148 embryos (50%) that cavitated and 134 (45%) of these cavitating embryos were judged to be fully expanded blastocycts; 125 (42%) of these embryos were cryopreserved. CONCLUSION: The blastocyst formation rate is similar to that reported by others using conventional culture procedures or coculture on Vero or other cell types. I conclude that cumulus cells are a ready source of feeder cells for the coculture of human embryos.

Blastocyst↗

Cytoplasmic changes in relation to nuclear maturation and early embryo developmental potential of porcine oocytes: effects of gonadotropins, cumulus cells, follicular size, and protein synthesis inhibition.

Morphological and biochemical changes indicative of cytoplasmic maturation in relation to nuclear maturation progression and early embryo developmental potential was studied. Fluorescently labeled microfilaments and cortical granules were visualized by using laser scanning confocal microscopy. The mitogen-activated protein (MAP) kinase phosphorylation and cyclin B1 levels were revealed by Western blot. With the maturation of oocytes, cortical granules and microfilaments were localized at the cell cortex. A cortical granule-free domain (CGFD) and an actin-thickening area were observed over both the MII spindle of a mature oocyte and chromosomes of a nocodazole-treated oocyte, suggesting that chromosomes, but not the spindle, determined the localization of CGFD and actin-thickening area. In oocytes that are incompetent to resume meiosis, as indicated by the failure of germinal vesicle breakdown (GVBD), peripheral localization of cortical granules and microfilaments, phosphorylation of MAP kinase and synthesis of cyclin B1 did not occur after 44 hr in vitro. These cytoplasmic changes were also blocked when GVBD of meiotically competent oocytes was inhibited by cycloheximide. Culture of oocytes in a chemically defined medium showed that biological factors such as gonadotropins, cumulus cells and follicle size affected both nuclear and cytoplasmic maturation as well as embryo developmental potential. Absence of gonadotropins or removal of cumulus cells alone did not significantly influence GVBD or cyclin B1 levels, but decreased the final maturation and developmental ability of oocytes. A combination of gonadotropin absence and cumulus removal decreased GVBD, MAP kinase phosphorylation and embryo development. A high proportion of oocytes derived from small follicles were able to resume meiosis, synthesize cyclin B(1), phosphorylate MAP kinase and translocate CGs, but their maturation and embryo developmental ability were limited. Removal of cumulus cells from small follicle-derived oocytes severely affected their ability to undergo cytoplasmic and nuclear maturation.

Actin Cytoskeleton↗

Cumulus cell dispersion induced by estradiol in mouse oviduct in vitro.

Dispersion of cumulus cells in nonmated mice is completed in the oviduct 15-20 h after ovulation. Oviducts, isolated 1 h after ovulation (13 h post-human chorionic gonaditropin), were cultured in vitro for 40 h. In these oviducts, denuded oocytes were first seen at 30 h of culture, indicating that cumulus dispersion proceeded at a slower rate in vitro. Oocyte denudation was accelerated in a dose-dependent manner by the addition of estradiol to the culture medium in which oviducts were incubated. The addition of progesterone or cycloheximide to the culture medium strongly inhibited oocyte denudation even in the presence of estradiol. When isolated cumuli were incubated in the absence of oviductal tissue, the rate of cell dispersion was slower than that of cumuli incubated inside the oviduct and the addition of estradiol to the culture failed to accelerate this process. On the basis of these data, we propose that cumulus cell dispersion is accelerated by an estrogen-dependent protein produced by the oviduct and that this effect of estrogen is antagonized by progesterone.

Animals↗

Vitrification and rapid-freezing of cumulus cells from rabbits and pigs.

To use adult somatic cloning technology in animal breeding, this technology should be complemented with nuclear donor cell cryopreservation. Two different conventional nonequilibrium methods (vitrification, V: 3.58M EG and 2.82M DMSO in PBS plus 20% FCS and rapid-freezing, RF: 0.25M sucrose, 2.25M EG and 2.25M DMSO in PBS plus 20% FCS) were assayed here on different cumuli types from rabbits and pigs. In rabbits, the cell proliferation capability of fully disaggregated cumuli was not affected by cryopreservation procedures (V: 100% and RF: 82%). Vitrified samples from partially or non-disaggregated cumuli showed the lowest proliferation frequencies (4% and 0%, respectively). In pigs, differences in cell proliferation capability were only observed between vitrified non-disagreggated cumuli and vitrified or rapid-frozen, fully disaggregated cumuli (72% vs 100% or 100%, respectively; P < 0.05). In both species, in vitro cultured sub-confluent samples were able to survive to a second cryopreservation treatment, maintaining the cell proliferation capability in nearly 50% of thawed samples. In conclusion, before cryopreservation, disaggregation of cumulus cells from both species into small clusters of cells improved their viability after thawing. These results allow us to efficiently, easily and rapidly store rabbit and pig cumulus cells, from selected high-merit females.

Animals↗

[Effects of different electrofusion parameters on activation and early development of mouse embryos reconstructed by cumulus cell nuclear transfer].

OBJECTIVE: To study the effects of different parameters for electrofusion on the activation and early development of mouse embryos reconstructed by cumulus cell nuclear transfer, and explore optimal parameters for electrofusion. METHODS: A C57BL/6j mouse cumulus cell nucleus 10-12 mm in diameter was inserted into the perivitelline space of an enucleated oocyte. The fusion of donor-recipient pairs was induced with different parameters for electrofusion (with variation in electric field intensity, pulse duration and pulse times). Successful formation of the reconstructed embryos from donor-recipient pairs and the reconstructed embryos developing into the early embryonic stages (2-cell, 4-8-cell and morula stages) were observed and counted. RESULTS: The electric field intensity and pulse duration allowed variation during electrofusion within the range of 1 000-2 000 kV/cm and 40-160 ms, respectively. The donor-recipient pairs fused at very low rate when the parameters were below the allowed ranges, and disintegration or even death might occur when the parameters were above the ranges. Within these allowed ranges, variation of the electrofusion parameters did not produce significant impact on the ratio of the reconstructed embryos in 2-cell, 4-8-cell or morula stages (P<0.05). In addition, we suggested that pulse times be limited to 1-2. CONCLUSION: Optimal parameters for electrofusion are crucial for the fusion of donor-recipient pairs and the activation of the reconstructed embryo.

Animals↗