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H Callesen

Publications and source records attributed to H Callesen.

At least 55 records · Page 3Linked to original sources

Morphological changes of in-vitro-produced bovine blastocysts after vitrification, in-straw direct rehydration, and culture.

Morphological signs of injury and regeneration following vitrification and warming of bovine embryos were studied by light and electron microscopy. In-vitro-produced Day 7 expanded blastocysts (Day 0 = day of insemination) were vitrified by a two-step equilibration method using ethylene glycol and dimethyl sulphoxide as cryoprotectants. Thawing was performed by in-straw direct rehydration, followed by in vitro culture on a granulosa cell monolayer. Embryos were processed for transmission electron microscopy immediately after warming (0 hr) as well as after 4 hr or 24 hr of culture following warming. A control group of unfrozen embryos was also processed. At 0 hr after warming, except for a rapid collapse of the blastocoele, only minor changes were detectable by stereomicroscope. However, at the ultrastructural level, signs of extensive injury were seen, including a general distension or shrinkage of mitochondria, disintegration of cell adhesions between adjacent trophoblastic cells, and complete rupture of some cells. At 4 hr, stereomicroscopic investigation revealed collapsed blastocoele and a darkened granular appearance of the cell mass. At the ultrastructural level, signs of regeneration were also observable: cells with minor injuries were re-assembled in a central area forming a small blastocoele, cell adhesion structures were re-established, and damage of mitochondria was less severe. The majority of irreversibly damaged cells or cell debris was accumulated in the perivitelline space. At 24 hr, stereomicroscopic investigation of surviving blastocysts showed no signs of the previous injury. At the ultrastructural level, cellular debris in the perivitelline space and some degenerated cells in the blastocoele were the only signs of previous injuries. In conclusion, ultrastructural investigation revealed unexpectedly extensive damage followed by a rapid regeneration and reorganization of the embryonic structure.

Animals↗

Superovulatory response of dairy cattle (Bos taurus ) in a tropical environment.

Dairy (Bos taurus) heifers and cows (n = 40) in a tropical environment were treated during mid-luteal phase using either SUPER-OV(R) or OVAGEN to induce superovulatory response after synchronization of the superovulatory estrus with a synthetic progestagen and cloprostenol (PG). Estrous cattle were inseminated twice using frozen-thawed semen, and embryos were recovered nonsurgically, on-farm, 7 d later. Between initiation of gonadotrophin treatment and recovery of embryos, 4 blood samples per animal were collected from 26 animals for determination of plasma progesterone (P4) concentration. Two (5%), 28 (70%) and 10 (22%) of the animals were observed in estrus 1.5, 2 and 2.5 to 3 d after PG, respectively. There was no difference (P = 0.7) in the number of palpable CL between animals treated with SUPER-OV (7.6 +/- 1.0; n = 18) and those treated with OVAGEN (7.9 +/- 1.1; n = 22). There was also no significant difference (P > 0.05) between Jersey vs Ayrshire breeds or heifers vs cows in the ovarian response as estimated by the number of palpable CL. However, a higher proportion of Ayrshire cattle and donors treated with OVAGEN yielded a higher total number and viable/transferable embryos than Jersey and SUPER-OV-treated cattle. There was a significant (P < 0.05) correlation between the number of CL and total number of embryos (r = 0.65); the number of transferable embryos was also significantly related to the total number of embryos per recovery (r = 0.85; P < 0.05). For 15 animals with normal P4 profiles, the mean (+/-SEM) plasma P4 concentration was 14.4 +/- 0.8, 0.5 +/- 0.2, 5.4 +/- 1.1 and 39.4 +/- 3.0 nmol L at initiation of gonadotrophin treatment, superovulatory estrus and Days 3 and 7, respectively. The mean (+/-SEM) interval between a PG injection given after embryo recovery and the induced estrus was 7.1 +/- 0.7 d (range 3 to 14 d) and the length of the superovulatory cycle was 24.1 +/- 3.2 d (range 12 to 35 d).

Journal Article↗

Time course of pronuclear deoxyribonucleic acid synthesis in parthenogenetically activated bovine oocytes.

The progress of pronuclear DNA synthesis was monitored by the radioactive precursor 3H-thymidine during the first cell cycle of parthenogenetically activated bovine oocytes. Bovine oocytes were exposed to Ca2+ ionophore A23187 at 24, 30, or 36 h after the onset of in vitro maturation. Young 24-h oocytes were subsequently cultured for 6 h in the protein synthesis inhibitor, cycloheximide (CHX), to ensure similar rates of activation (96-100%) and pronuclear formation (93-97%) among all groups of oocytes. Subsequent autoradiographic experiments revealed a slightly, but not significantly, accelerated start of DNA synthesis in aged (36 h) oocytes. Maximum levels of DNA labeling were reached within 4 h regardless of oocyte maturation age and persisted for 4 h in 30-h oocytes compared to 2 h in 36-h and 24-h oocytes. The period of DNA synthesis lasted for a total of 12-14 h in all groups of oocytes, and the duration of S-phase was less than 6 h. Since rates of pronuclear formation (58%) and labeling (58%) corresponded to each other, it is argued that only a fully developed pronucleus can synthesize DNA. Oocyte labeling performed in the presence of CHX revealed the capability of CHX to inhibit DNA synthesis up to 8 h postactivation. Removal of CHX by washing when the majority (94%) of oocytes had formed a fully developed pronucleus (at 8 h postactivation) led to the synchronous start of DNA synthesis within 1.5-2 h post-CHX culture. This concomitantly defined the time required for synthesis of vital proteins needed for the entry into S-phase and/or DNA replication. The prolonged exposure of activated oocytes to CHX (10-12 h) negatively affected the pattern of DNA synthesis. The start of DNA synthesis was postponed and reduced pronuclear labeling was observed. In addition, CHX-treated oocytes often exhibited a characteristic punctate pattern of pronuclear labeling in which silver grains were accumulated into clusters. In conclusion, the present results provide knowledge about timing and a possible synchronization of DNA synthesis in parthenogenetically activated bovine oocytes.

Animals↗

Survival and development of bovine blastocysts produced in vitro after assisted hatching, vitrification and in-straw direct rehydration.

The purpose of this study was to establish an efficient combination of assisted hatching and cryopreservation procedures for producing bovine embryos in vitro. A total of 1312 day 7 blastocysts were subjected randomly to 14 different combinations of three factors: osmotic stress, assisted hatching and vitrification. Re-expansion, initiation and completion of the hatching process, as well as attachment to the culture dish, were analysed by SAS Genmod procedure. Incubation with sucrose was found to decrease survival rates; among the assisted hatching procedures used, zona fenestration resulted in higher survival rates compared with partial zona dissection and controls; and vitrification decreased survival and further development. The combined effect of sucrose incubation and vitrification decreased further development markedly, as did partial zona dissection followed by vitrification. Partial zona dissection performed in medium containing sucrose severely lowered embryo survival. Zona fenestration without sucrose incubation followed by vitrification did not compromise further embryo development: 86%, 84% and 79% of the blastocysts initiated, completed hatching and attached to the bottom, respectively. These data were not different from the controls (80%, 76% and 63%, respectively; P > 0.05). Cell count analysis revealed a decrease in the total number of cells as a result of the assisted hatching and vitrification compared with controls (135 versus 202, respectively; P < 0.0001). Although embryo transfer results (36% pregnancy rate and 30% calving rate) require further improvement, this combination of methods may prove useful in the commercial production of bovine embryos in vitro.

Animals↗

Factors affecting survival rates of in vitro produced bovine embryos after vitrification and direct in-straw rehydration.

The aim of this work was to investigate the possibilities of simplification, and to outline the limits of application, of a vitrification method for cow embryos. Morulae and blastocysts were produced by in vitro fertilization of slaughterhouse-derived, in vitro matured oocytes with frozen-thawed bull semen, and subsequent culture on a granulosa cell monolayer. Vitrification was performed by equilibration of embryos with 12.5% ethylene glycol and 12.5% dimethylsulphoxide at 20-22 degrees C for 60 s, then with 25% ethylene glycol and 25% dimethylsulphoxide at 4 degrees C for another 60 s. Embryos were then loaded in straws, placed in liquid nitrogen vapour for 2 min, and then plunged. Straws were thawed in a 22 degrees C water-bath, the embryos were directly rehydrated and further incubated in straw, and were then expelled and cultured in vitro for 72 h. In the first experiment, embryos of different age and developmental stage (Day 5 compacted morulae, Day 6 early blastocysts, Days 6 and 7 blastocysts, Day 7 expanded blastocysts and Day 8 hatched blastocysts) as well as Days 7 and 5 blastocysts previously subjected to partial zone dissection were vitrified. After thawing, the re-expansion rates of blastocysts and zona-dissected embryos did not differ (67 and 87%, respectively), and hatching was more frequent for blastocysts frozen in advanced developmental stages (34, 47 and 63% for early blastocysts, blastocysts and expanded blastocysts, respectively). The re-expansion rate of morulae was lower (10%) and no hatching of these embryos was observed. In the second experiment, Day 7 expanded blastocysts were vitrified using PBS, PBS+albumin, TCM199 and TCM199+calf serum as holding media. No differences in re-expansion and hatching rates were seen. However, when incubation with the concentrated cryoprotectant solution was performed at 20-22 degrees C, the embryo survival rate decreased (PBS+albumin) or no embryo survived (TCM199+calf serum) the vitrification procedure. In the third experiment, Day 7 expanded blastocysts were vitrified, thawed, cultured for 1 day, and then re-expanded embryos were again vitrified and thawed. Out of the 87% that survived the first cycle, 73% re-expanded and 47% hatched following the second vitrification and thawing. These observations prove that the vitrification procedure described is relatively harmless, that it can be used for blastocysts of different developmental stages and that an intact zona is not required to obtain high survival rates.

Animals↗

Influence of recipient cytoplasm cell stage on transcription in bovine nucleus transfer embryos.

Nucleus transfer for the production of multiple embryos derived from a donor embryo relies upon the reprogramming of the donor nucleus so that it behaves similar to a zygotic nucleus. One indication of nucleus reprogramming is the RNA synthetic activity. In normal bovine embryogenesis, the embryo relies upon maternally derived RNA transcripts up to the 8-cell stage, at which time it begins to transcribe its own RNA. In this experiment, RNA synthesis was detected in nucleus transfer embryos (NTE) and control embryos by pulsing with 3H-uridine, fixation, and autoradiography on semithin sections. NTE were produced using either a MII phase (nonactivated) cytoplasts at 32 hr of maturation or S-phase (activated) cytoplasts activated with calcium ionophore A23187 and cycloheximide treatment approximately 8 hr prior to fusion with a blastomere from an in-vitro-produced morula stage embryo at 32 hr of maturation. Control in-vitro-produced embryos were 3H-uridine-labelled and fixed at the 2-, 4-, early 8-, and late 8-cell stages. NTE were similarly prepared at 1, 3, and 20 hr postfusion and at the 2-, 4-, and 8-cell stages. In the control embryos, RNA synthesis was absent in the 2-, 4-, and early 8-cell stages, whereas in all late 8-cell stages, it was present. In NTE from nonactivated (MII phase) cytoplasts, there was a sharp decline in RNA synthesis at 1 hr and 3 hr after fusion and a total absence by 20 hr after fusion. In contrast, NTE from activated (S phase) cytoplasts exhibited continued high levels of RNA synthesis at 1 hr and moderate levels at 3 hr after fusion, although it had ceased by 20 hr after fusion. In all NTE (activated and nonactivated cytoplasts), there was no RNA synthesis seen at the 2-cell stage. However, at the 4-cell stage, weak RNA synthesis was seen in all NTE from activated cytoplasts, whereas none was observed in those from MII nonactivated cytoplasts. At the 8-cell stage, nearly all NTE from S-phase cytoplasts showed weak to moderate levels of RNA synthesis. We conclude that the nucleus reprogramming differs between NTE reconstructed from activated and nonactivated cytoplast with the former undergoing a slower cessation of RNA synthesis after fusion and earlier resumption of RNA synthesis, occurring as early as the 4-cell stage.

Animals↗

Overall efficiency of in vitro embryo production and vitrification in cattle.

In 5 replicates a total of 719 immature oocytes recovered from 94 slaughterhouse-derived bovine ovaries were matured and fertilized in vitro, then cultured for 7 to 9 d on a granulosa cell monolayer in TCM 199 supplemented with calf serum. Of 338 blastocysts (47% of oocytes cultured), 301 were vitrified in Hepes/bicarbonate buffered TCM-199 medium, 20% calf serum and dimethylsulfoxide and ethylene glycol as the cryoprotectants. After thawing in 1 M sucrose and subsequent culture in vitro, 237 (79%) of the blastocysts re-expanded and 177 (59%) hatched. Re-expansion and hatching rates differed between the blastocysts vitrified on Day 7 and Day 8 (84 and 69% vs 70 and 41%, respectively). We conclude that the applied methods are relatively simple and inexpensive to use, with an overall efficiency of the in vitro production/vitrification procedure being 1.9 hatched blastocyst/ovary. Therefore, this system seems suitable for large-scale production of cryopreserved bovine embryos for various purposes.

Journal Article↗

Factors affecting the developmental stage of embryos recovered on day 7 from superovulated dairy cattle.

The objective of this retrospective study was to evaluate the factors influencing developmental stage of bovine embryos recovered from superovulated dairy cattle 7 d after estrus. From 217 superovulated dairy cows and heifers, 2,211 eggs were recovered, of which 1,495 were classified as transferable embryos based on morphological evaluation of developmental stage and quality. From the evaluated embryos, 1,429 were non-surgically transferred to recipients to produce 623 calves. The transferable embryos were classified into five developmental stages and four quality grades. The least-developed transferable embryos tended to be classified into poorer quality grades. A multifactorial statistical model was used to analyze whether the following factors were associated with the developmental stage and quality grade of the embryos: donor breed, parity, gonadotropin preparation, embryo sex, insemination bull, embryologist (the person evaluating the embryo), year, and season of recovery. Among these factors, only the embryologist and the donor animal accounted for significant variation in embryo development. It was concluded that the developmental stage of embryos recovered at d 7 from superovulated cattle, when evaluated by simple morphological criteria, was correlated with the embryo's quality and was affected by the donor animal but in this study not by the embryo sex, donor breed and parity, gonadotropin preparation, and insemination bull used. The embryo's quality grading was influenced by the embryologist. Consequently, sexing of an embryo recovered from superovulated cattle is not possible by simple morphological evaluation of the embryo's developmental stage.

Animals↗

Follicular development and embryo recovery following 3 versus 8 FSH injections in heifers.

Ovarian follicular dynamics and embryo yield were studied during 2 different FSH regimens for superovulation of cattle. Twenty heifers were given intramuscular injections of FSH (total of 35 mg NIH) either once daily for 3 days (Group 3x1) or twice daily for 4 days (Group 4x2). At 72 h after the first FSH injection, each animal was injected with 0.75 mg cloprostenol. Inseminations were performed at 12 h and 24 h after the onset of heat. Transrectal ultrasonography was performed on the day of the first FSH injection, the day of cloprostenol injection, the day of insemination and finally on the day of embryo recovery (day 6 or 7 after heat). The numbers of small (2-4 mm), medium (5-9 mm) and large (> 10 mm) size follicles were recorded. The total number of corpora lutea, eggs and transferable embryos were recorded on the day of embryo recovery. No differences were found between the 2 groups in either of the parameters studied (p > 0.05). It can be concluded that treatment with this FSH preparation once daily for 3 days gives a folliculogenic and superovulatory response similar to a treatment regimen where it is given twice daily for 4 days.

Animals↗

Follicular dynamics prior to and during superovulation in heifers.

The present ultrasonographic study examined the relationship between certain follicular parameters and the superovulatory response in gonadotropin-stimulated heifers. Thirty heifers received a total of 35 mg FSH twice daily for 4 d and 0.75 mg cloprostenol were given to induce luteolysis and estrus at 72 h after the initial FSH injection. Transrectal ultrasonography was performed once daily from 1 or 2 d before the initial FSH injection and until the day of estrus. The number of small (2 to 4 mm), medium (5 to 9 mm), and large (>/=10 mm) size follicles as well as the diameter of the large follicles were recorded. Embryos were recovered non-surgically 6 or 7 d after estrus, and the number of corpora lutea was determined by palpation per rectum. Heifers with >2 or </=2 corpora lutea were classified as responders or nonresponders, respectively. All follicular categories were affected by treatment with FSH in the responders (P<0.0001), while in the nonresponders only small follicles and the total number of follicles showed a change after treatment (P<0.05). All follicular categories were different between the 2 groups (P<0.005). There was no effect of corpus luteum location (ipsilateral vs contralateral) on any of the follicular categories (P>0.05). The number of large follicles and the sum of medium and large follicles were positively correlated (r=0.43 and r=0.54, respectively; P<0.05) with the number of corpora lutea palpated on the day of embryo recovery (6 to 7 d after estrus). In conclusion, there was an effect of the day relative to initiation of FSH treatment on all follicular categories in heifers responding positively to superovulation, and there was no effect of side (left or right ovary) or of corpus luteum diameter (ipsilateral or contralateral).

Journal Article↗

Use of PMSG antiserum in superovulated cattle?

Two Pregnant Mare Serum Gonadotrophin (PMSG) antisera were tested in 174 dairy cows that were superovulated with PMSG and were then given prostaglandin at 60 hours after PMSG. At 48 hours after injection of prostaglandin, the cows were given either PMSG antiserum (monoclonal (n=56) or polyclonal (n=57)), or saline as control (n=61). Ova (n=1,206) were recovered either nonsurgically or after slaughter. Of these, 757 were evaluated morphologically to be transferable embryos. A proportion of these embryos (n=295 from 52 flushed donors) were transferred to synchronized recipients and the pregnancy results were recorded. The reproductive function of 37 flushed donors was followed for 6 months after superovulation. No significant effect of the PMSG antisera could be demonstrated in any of the parameters studied (i.e., ovulation rate, number of follicles at collection, total yield of ova, fertilization rate, number of transferable embryos, pregnancy results after transfer of embryos, or period required by the donor cows for restitution of reproductive function after superovulation and recovery). It is concluded that use of PMSG antiserum did not improve the embryo yield in terms of the number and quality of transferable embryos or enhance normalization of reproductive function of the donor in the 6-month period after superovulation. Therefore, in an embryo transfer operation, the routine use of PMSG antiserum in a PMSG superovulation regimen in cattle is not recommended.

Journal Article↗

Preovulatory plasma estradiol-17beta concentrations and ovulation rates in PMSG/anti-PMSG treated heifers.

Possibilities for early characterization of the superovulatory response were studied in 41 PMSG/PG-treated dairy heifers, of which 21 received an additional treatment of PMSG-antiserum. Plasma was obtained at 33, 36, 41, 47 and 51 h after PG for hormone analyses. After slaughter at 6 or 7 d after insemination, the number of follicles and corpora lutea (CL) were recorded, and ova were recovered for morphological evaluation. Significant correlations were demonstrated between plasma concentrations of estradiol-17beta (E2) at 33, 36 and 41 h after PG and the ovulation rate (number of CL). Each of these correlations was equal to the one found by using the peak concentration of E2 achieved during the preovulatory E2 surge. In heifers with preovulatory E2 surges, as determined with the blood sampling scheme used, both the ovarian response (number of CL and follicles) and the quality of ova recovered (number of transferable embryos) was clearly better compared to heifers without this surge. None of the parameters studied was affected significantly by treatment with PMSG-antiserum. It is concluded that plasma E2 determinations at fixed times in relation to prostaglandin treatment can be used to characterize the superovulatory response in donor cattle in terms of the ovulation rate and the quality of ova recovered. No evidence was found in favor of using PMSG-antiserum for improving either the superovulatory response or such characterization.

Journal Article↗

A comparative ultrastructural study of in vivo versus in vitro fertilization of bovine oocytes.

Heifers were superovulated by PMSG or FSH, and oestrus was induced by prostaglandin. One group of animals was ovariectomized 19-26 h after the LH peak, the content of preovulatory follicles aspirated, and the oocytes processed for in vitro fertilization. Another group was inseminated and ova were collected from the oviducts for study of in vivo fertilization. All ova were examined ultrastructurally. The developmental rate following in vitro fertilization was delayed compared to fertilization in vivo. A high proportion of the in vitro fertilized ova showed polyspermic penetration of the zona pellucida, and supernumerary spermatozoa were found in the ooplasm of some ova. In vivo fertilization was associated with release and subsequent dispersal of the cortical granule content in the perivitelline space. In contrast to this the released granule content of the in vitro fertilized ova remained undispersed close to the oolemma. This feature may account for the high incidence of polyspermic penetration of the zona pellucida. In addition, the study provided an ultrastructural visualization of the initial contact between the equatorial segment of the spermatozoon and the microvilli of the oocyte, and the subsequent internalization of the sperm head.

Acrosome↗

Follicular correlates with in-vitro fertilization in cattle.

The follicular microenvironment may affect the quality and the fertilizability of an oocyte in vivo as well as in vitro. Determination of the concentrations of certain follicular fluid compounds upon aspiration could therefore be used as important clinical measures to predict the developmental ability of an oocyte submitted to in-vitro fertilization. In cattle gonadotrophin stimulation (superovulation) frequently leads to perturbed follicular steroidogenesis and oocyte maturation, and fertilization rates in vivo as well as in vitro may be reduced. These abnormal changes are monitored in the peripheral profiles of LH, progesterone and oestradiol-17 beta during the periovulatory period, and measurements of these hormones may be used to discriminate between good and poor oocyte donors. Concurrent measurements of progesterone and oestradiol-17 beta in the aspirated follicular fluids and determination of the cytogenetic features of the oocytes will reflect these deviations but, because the variation between follicles within an animal is so large, it is not possible to rely on single hormone determinations; if attempted they should be interpreted with caution. Presently, no non-invasive method such as steroid measurement and flow cytometry accurately reflects oocyte quality and function in cattle and it is seriously questioned whether such clinically applicable methods are valid. It is suggested that evaluation of oocyte quality is done on three levels: (1) the animal (peripheral hormones), (2) the ovary (stimulation, premature ovulation, follicular appearance); and (3) the follicle (cumulus oophorus complex, steroids).

Animals↗

Ultrastructural aspects of oocyte maturation and fertilization in cattle.

The preovulatory surge of LH triggers follicular and oocyte maturation in cattle. Oocyte maturation includes disruption of the gap junctions between cumulus-cell projections and oocyte and the breakdown of the envelope of the oocyte nucleus within 12 h after the LH peak; at approximately 15 h metaphase of the first meiotic division occurs and spatial rearrangements of mitochondria and vesicles are seen in the ooplasm; at approximately 19 h the first polar body is abstricted and the second metaphase appears; and at 21-22 h the cortical granules migrate to solitary positions along the oolemma, the Golgi compartment decreases, and the smooth endoplasmic reticulum (SER) transforms. Ovulations occur in unstimulated and superovulated cattle at approximately 24 h and 24-33 h, respectively. The acrosome reaction, which is preceded by swelling of and appearance of small vesicles in the acrosome, is completed on the surface of the zona pellucida. During the subsequent gamete fusion the microvilli of the ovum contact the equatorial segment of the sperm head, and the acrosomal region is subsequently internalized into the ooplasm surrounded by a vesicle. Within the following 2-3 h the formation of the maternal and paternal pronucleus is initiated, the cortical granules are released, conspicuous Golgi complexes develop, and the SER is transformed; at 5-7 h the pronuclei enlarge, and arrays of annulate lamellae develop. Subsequently, the pronuclei migrate close together; at approximately 20 h the envelopes of the pronuclei are broken down and synkaryosis is seen; and at approximately 24 h the 2-cell stage emerges. Artificial control of oocyte maturation and fertilization in cattle may lead to deviation in these processes. Superovulation may affect oocyte maturation adversely, and in-vitro fertilization may lead to increased frequencies of polyspermy due to deviations in cortical granule release and dispersal. Knowledge about these basal processes of oocyte maturation and fertilization are fundamental in the context of egg manipulation (oocyte enucleation at cloning, gene injection into pronuclei at specific stages etc.) in cattle.

Animals↗