The negative effects of seasonality on ram fertility during the spring months (non-breeding season) can be addressed by administration of melatonin. Slow-release implants containing 18 mg of melatonin are available to improve reproductive responses in ewes but as far as we are aware nobody has examined the effects of dose on increasing testicular size and plasma testosterone levels. Mature Border Leicester rams were randomly allocated to four doses (0, 18, 36 and 54 mg) with treatment beginning in mid-September (spring). Measurements (scrotal size, testosterone and melatonin concentrations, live weight and body condition score) began before hormone administration and continued at monthly intervals until January (mid-summer). Scrotal circumference increased with increasing dose with 36 and 54 mg treatments producing larger responses than 0 and 18 mg treatments (p < 0.05). Plasma testosterone concentration was positively related (p <= 0.05) with plasma melatonin levels on days 60 and 90 after melatonin administration. There was a negative relationship (p < 0.01) between plasma melatonin concentration and liveweight on day 30. It is concluded that a higher dose of melatonin is required to maintain plasma melatonin levels in larger animals, and that at least 36 mg is required to elicit a threshold response in testicular size.
Abstract Climate change threatens global livestock production1,2. We modelled the impact of recent temperatures and a 1°C and 3°C temperature increase over the historical baseline on risks of heat stress at key periods of the reproductive cycle and consequences for reproduction across the entire Australian sheep flock. We estimate that 2.1 million potential lambs are currently lost annually due to heat stress, increasing to 2.5 and 3.3 million as temperatures rise.
This study was conducted to test the hypothesis that between year variability in reproductive response to melatonin treatment of young Border Leicester (BL) rams in spring was related to sexual maturity at the time of treatment. Two variables of sexual maturity (mating behaviour and semen quality) were examined. In Experiment 1, mating activity of melatonin-treated and untreated rams was examined at two sites before a flock mating at one site. In Experiment 2, testosterone concentrations, semen quality and variables of in vitro fertilising capacity were examined. In Experiment 1, melatonin treatment did not alter sexual behaviour (latency to nose, total nosings, courtings including Flehmen expression, attempted mounts, mounts, ejaculations) with the exception of a lesser (P < 0.05) Flehmen expression at Site 1 whereas values for most variables were greater (P < 0.05) at Site 2. Treatment resulted in a greater pregnancy rate (89 % and 82 %, respectively; P < 0.05) and advanced distribution of pregnancies (P < 0.001) at Site 1. Testicular size and testosterone concentrations were also greater (P < 0.05) as a result of melatonin treatment in spring whilst the reverse occurred in autumn. In Experiment 2, sperm motility and in vitro fertilising capacity were greater (P < 0.05) and acrosome damage less (P < 0.05) as a result of melatonin treatment. In conclusion, variability in age at sexual maturity of young BL rams at spring mating can be reduced with melatonin treatment and is associated with differences in sexual behaviour, testicular growth, testosterone concentrations, and sperm quality.
To advance the use of embryo vitrification technology in veterinary practice, we developed a system in which embryo vitrification, warming, and dilution can be performed within a straw. An in-straw embryo cryopreservation method reduces the need for equipment and technical skills and can facilitate direct embryo transfer to the uterus. This study proposes the use of a new device named “Sarah” that is designed to permit all in-straw embryo cryopreservation procedures. Ovine in vitro-produced (IVP) embryos were vitrified at either early blastocyst stage (EB, n = 65, 6 days post-IVF) or fully expanded blastocyst stage (FB, n = 168, 7 days post-IVF). The vitrification procedure using Sarah constituted a 0.25-mL straw with a capsule having 50-µm pores inserted at one end. Embryos at each stage (EB and FB) were divided into 2 subgroups and vitrified by 1 of 2 methods: (1) multi-step (MS) group-a straw containing 2 embryos was sequentially loaded vertically into 1.5-mL tubes containing 6 different vitrification solutions: 10, 20, 40, 60, 80, or 100% ES (with 100% ES being 7.5% DMSO +7.5% EG + 20% FCS in TCM-199; 90 s each step) followed by 30 s each in 75 and 100% VS (100% VS being 18% DMSO +18% EG + 0.5 M trehalose + BSA in TCM-199); and (2) two-step (TS) group-the straw (2 embryos/straw) was loaded with 100% of ES (5 min), followed by 100% VS solution for 30 s. For both methods, at the end of the preparation steps, the straws were plunged directly into liquid N2. Non-vitrified embryos were maintained in in vitro culture as a control group (n = 102). The warming procedure consisted of placing the straws directly into 5-mL tubes containing 100, 50, 25% WS (WS = 1 M sucrose in TCM-199+ 20% FCS) at 38.6°C (for first solution) and at room temperature for all the rest (5 min each), before being placed into the holding medium. Embryos were recovered from the straws, incubated at 38.6 C in 5% CO2 in air in TCM 199 + 5% FCS, and evaluated for blastocoel re-expansion, embryo survival, and hatching rate at 2, 14, 48 h post-warming. Blastocyst re-expansion (2 h) after warming increased as the developmental stage progressed and was not affected by the vitrification method. In fact, it was significantly (P < 0.05) higher for FB vitrified in the MS and TS methods (77.90% and 71.25%, respectively) compared with the EB method (62.5% and 48.50%, respectively). At 24 h, survival rate of vitrified FB was significantly higher (P < 0.05) in the MS system (95.35%) compared with those in TS (86.25%). Survival rates of FB embryos for both methods (MS and TS) were significantly higher (P < 0.001) than EB embryos vitrified in MS (56.25%) and TS (56.55) methods. After 48 h of culture, the hatching rate for FB vitrified in the MS system (87.21%) was comparable with TS (77.5%) and control (85.3%) groups but significantly higher (P < 0.001) than vitrified EB in MS (43.75%) and TS (36.36%). In conclusion, we showed that a high survival rate of IVP embryos can be achieved by this new in-straw vitrification and warming device (“Sarah”), with hatching rates in vitro comparable with that of control fresh embryos. This method has the potential for use in direct embryo transfer in field conditions.
Periconceptional nutrition (PCN) can influence foetal hypothalamo-pituitary adrenal (HPA) axis function and alter cortisol secretion with possible consequences for maturation and growth of major organs, gestation length and behaviour. We examined effects of PCN on phenotype and survival of the neonatal lamb in 466 Merino ewes allocated to treatments providing 70%, 100% and 150% respectively, of maintenance requirements for 17 days prior and 6 days after insemination. Gestation length and birth weight for lambs in PCN treatment groups was similar (P>0.05) but low PCN decreased the size of the neonate (crown-rump-length and metacarpal length P<0.05). A subset of lambs euthanased at 5 days of age further showed that low PCN decreased the amount of peri-renal fat (P<0.05) and increased liver mass (P<0.05) while high PCN increased neck thymus and ovary mass (P<0.05). Neonatal lambs from low PCN ewes returned faster to their mothers after release (P<0.05) and contacted the udder in the shortest time (P<0.05). Significant interactions between PCN treatment and sex (P<0.05) and between PCN treatment and ewe age (P<0.05) were also observed for time lambs took to follow the ewe. Survival of lambs was similar but potential differences may have been masked by favourable weather conditions. In conclusion, this study provides evidence of significant changes in lamb growth and development dependent on PCN and, for the first time, links these changes with significant changes in behaviour of the neonate. The impact of these effects on lamb survival and potential reproductive capacity of female offspring remains to be determined.
Background: Embryo transfer (ET) and in vitro embryo culture (IVC) result in an increased relative weight of the heart in singleton, but not in twin fetal sheep. IGF2 gene expression is increased, however, in the fetal heart after in vitro embryo culture and transfer in both singletons and twins. Hypothesis: We hypothesized that there will be a differential effect of ET and/or IVC on key molecules in the IGF/P13K signalling pathway in the heart of singletons and twins. Methods: Embryos were collected 24 h after artificial insemination of superovulated donor ewes, and were either transferred to an intermediate ewe (ET) or cultured in vitro in the absence (IVC) or the presence of human serum (IVCHS) for 6 days before transfer to recipient ewes. Naturally mated (NM) ewes were used as controls. At 144/145d gestation, hearts were collected and abundance of signalling proteins was measured. Results: There was no difference in the protein abundance of AKT, mTOR or their respective phosphorylated forms. Interestingly, there was a decrease in ribosomal protein S6 (P<0.01) and phosphorylated ribosomal protein S6 (P<0.01) in fetal hearts in ET, IVC and IVCHS in singletons and twins when compared to NM. Conclusions: This study suggests that embryo transfer or in vitro embryo culture do not result in an activation of the IGF/PI3K signalling pathway in the heart of either singleton or twin fetuses. We speculate that the increase in fetal heart growth after embryo culture and transfer is may be a result of crosstalk with other signalling pathways.
Poor reproductive performance of Merino ewe flocks when mated to Border Leicester rams during spring may be due to seasonality of the Border Leicester breed. Two approaches were taken to test this assumption. Six young (12 months old) or six mixed-age (12, 24 and ≥36 months old) Border Leicester rams were either treated or not treated with melatonin implants (2 × 2 design) 6 weeks before the four groups of rams were each put with approximately 300 Merino ewes for an 8-week mating period. Implants were inserted in early September (experiment 1). The second approach was to yard or not yard ewes and mixed-age rams on several occasions during the first 3 weeks of the mating period (experiment 2). Pregnancy rate and twinning percentage were assessed by ultrasonography. In experiment 1, melatonin treatment in young rams increased (p < 0.001) pregnancy rate from 5.0% to 92.6%, but mixed-age rams did not respond (90.7% vs 89.5% for melatonin and non-melatonin treatments, respectively). Twinning rate was similar (p > 0.05) for ewes mated to either melatonin or non-melatonin-treated young rams (36.8% vs 40.0%, respectively), whereas melatonin significantly improved (p < 0.05) twinning rate in those ewes mated to mixed-age rams (49.1% vs 36.1%). After 6 weeks of melatonin treatment, scrotal circumference was greater (p < 0.05) in both young and mixed-aged rams than in untreated counterparts. In experiment 2, yarding of ewes and rams overnight on several occasions early in the mating period reduced (p < 0.001) pregnancy rate compared with non-yarded counterparts (89.5% vs 65.5%). Twinning rate was not affected (37.7% vs 36.1%, respectively). In summary, melatonin treatment of Border Leicester rams significantly improved flock reproductive performance in spring due to improved pregnancy rates with young rams and improved litter size with mixed-age rams.
Poor maternal nutrition before and during pregnancy is associated with an increased risk of cardiovascular disease in later life. To determine the impact of maternal undernutrition during the periconceptional (PCUN: −45 days to 6 days) and preimplantation (PIUN: 0–6 days) periods on cardiac growth and metabolism, we have quantified the mRNA and protein abundance of key regulators of cardiac growth and metabolism in the left ventricle of the sheep fetus in late gestation. The cardiac protein abundance of AMP-activated protein kinase (AMPK), phospho-acetyl CoA carboxykinase (ACC) and pyruvate dehydrogenase kinase-4 (PDK-4) were decreased, whereas ACC was increased in singletons in the PCUN and PIUN groups. In twins, however, cardiac ACC was decreased in the PCUN and PIUN groups, and carnitine palmitoyltransferase-1 (CPT-1) was increased in the PIUN group. In singletons, the cardiac abundance of insulin receptor β (IRβ) was decreased in the PCUN group, and phosphoinositide-dependent protein kinase-1 (PDPK-1) was decreased in the PCUN and PIUN groups. In twins, however, the cardiac abundance of IRβ and phospho-Akt substrate 160kDa (pAS160) were increased in the PIUN group. The cardiac abundance of insulin-like growth factor-2 receptor (IGF-2R), protein kinase C alpha (PKCα) and mammalian target of rapamycin (mTOR) were decreased in PCUN and PIUN singletons and extracellular-signal-regulated kinase (ERK) was also decreased in the PIUN singletons. In contrast, in twins, cardiac abundance of IGF-2R and PKCα were increased in the PCUN and PIUN groups, phospho-ribosomal protein S6 (pRPS6) was increased in the PCUN group, and ERK and eukaryotic initiation factor 4E (eIF4E) were also increased in the PIUN fetuses. In conclusion, maternal undernutrition limited to around the time of conception is sufficient to alter the abundance of key factors regulating cardiac growth and metabolism and this may increase the propensity for cardiovascular diseases in later life.
Studies have shown that supplementation with hyaluronic acid (HA), a glycosaminoglycan found in mammalian follicular, oviduct, and uterine fluids, improves in vitro development and post-thaw survival of bovine embryos. In this study, we examined the effect of HA supplementation on ovine embryo development and on survival after vitrification using the minimum volume cooling (MVC) cryotop method. Abattoir sourced ovine oocytes were in vitro matured and fertilized as per routine procedures (Walker et al. 1996 Biol. Reprod. 55, 703–708). In Experiment 1 (5 replicates), presumptive zygotes were randomly allocated to IVC medium supplemented with 0.8 mg mL–1 BSA, amino acids, and 0, 0.5, 1.0, 1.5 or 2.0 mg mL–1 HA. Cleavage rates were recorded and blastocyst development evaluated on Day 7 (Day 0 = day of IVF). In Experiment 2 (3 replicates), presumptive zygotes were placed in in vitro culture (IVC) medium with or without 1.0 mg mL–1 HA. Embryos were vitrified using the MVC cryotop method (Kelly et al. 2004 Reprod. Fert. Dev. 16, 172) on either Day 5 (morula–blastocyst stages), Day 6 (compact morula–hatching blastocyst stages), or Day 7 (blastocyst–hatching blastocyst stages). Vitrified embryos were thawed 7 days later and placed into IVC medium. Embryo survival (assessed by blastocoele re-expansion) and hatching rates were recorded on Day 8. Variables were assessed using procedure CATMOD in SAS (SAS Institute Inc., Cary, NC, USA). In Experiment 1, the addition of HA did not affect cleavage or blastocyst formation rates but hatching rates were significantly (P < 0.05) improved at concentrations of 0.5 to 1.5 mg mL–1 (Table 1). In Experiment 2, HA supplementation (1.0 mg mL–1) compared with control medium did not affect cleavage (96.8 and 97.1%, respectively) or blastocyst formation rates (68.6 and 70.2%, respectively). HA significantly (P < 0.05) improved survival after thawing of embryos vitrified on Day 5 (100 v. 85.6%, n = 85 and 90). However no effect was observed when embryos were vitrified on either Day 6 (97.8 v. 97.8%, n = 91 and 92) or Day 7 (96.7 v. 97.9%, n = 92 and 94). Within day, HA supplementation did not affect hatching rate compared with control medium (Day 5, 54.1 v. 53.2%; Day 6, 62.9 v. 65.6%; Day 7, 71.9 v. 62.0%, respectively). These results demonstrate that HA supplementation of IVC medium significantly improves hatching rate of ovine embryos and we speculate that this improvement may correlate with comparable improvements in pregnancy rates after transfer. Hyaluronic acid binds to CD44, a glycoprotein expressed on the surface of preimplantation ovine embryos and shown to play a role on embryo development (Luz et al. 2012 Genet. Mol. Res. 11, 799–809). Hyaluronic acid plays a role in cell migration and we suggest that, in the early blastocyst, it affords an advantage to the trophectoderm cells. Table 1.Effect of hyaluronic acid (HA) supplementation in IVC medium on cleavage, blastocyst, and hatching rates
Exposure to maternal undernutrition during the periconceptional period results in an earlier prepartum activation of the fetal hypothalamo–pituitary–adrenal (HPA) axis and altered stress responsiveness in the offspring. It is not known whether such changes are a consequence of exposure of the oocyte and/or the early embryo to maternal undernutrition in the periconceptional period. We have compared the effects of ‘periconceptional’ undernutrition (PCUN: maternal undernutrition imposed from at least 45 days before until 6 days after conception), and ‘early preimplantation’ undernutrition (PIUN: maternal undernutrition imposed for only 6 days after conception) on the expression of genes in the fetal anterior pituitary that regulate adrenal growth and steroidogenesis, proopiomelanorcortin (POMC), prohormone convertase 1 (PC1), 11β-hydroxysteroid dehydrogenase type 1 and 2 (11βHSD1 and 2) and the glucocorticoid receptor (GR) in fetal sheep at 136–138 days of gestation. Pituitary GR mRNA expression was significantly lower in the PCUN and PIUN groups in both singletons and twins compared with controls, although this suppression of GR expression was not associated with hypermethylation of the exon 17 region of the GR gene. In twin fetuses, the pituitary 11βHSD1 mRNA expression was significantly higher in the PIUN group compared with the PCUN but not the control group. Thus, exposure of the single or twin embryo to maternal undernutrition for only 1 week after conception is sufficient to cause a suppression of the pituitary GR expression in late gestation. These changes may contribute to the increased stress responsiveness of the HPA axis in the offspring after exposure to poor nutrition during the periconceptional period.
A reliable in vitro system for the production of porcine embryos (IVP) is important for use in basic research and in the reproductive technologies. Despite recent developments, blastocyst rates remain low compared with those obtained for most domestic species. Here, we report a porcine IVP system, based largely on our ovine and bovine systems (Walker et al. 1996 Biol. Reprod. 55, 703–708; Kelly et al. 2007 Reprod. Dom. Anim. 42, 577–582), that gives blastocyst development rates higher than previously reported. Abattoir-sourced ovaries were collected into PBS, and cumulus–oocyte complexes (COC) were aspirated (from 3- to 6-mm follicles) into HEPES–TCM-199 supplemented with 0.4% BSA. The COC (up to 30/well) were matured in 600 μL of maturation medium (TCM-199, 20% (vol/vol) porcine follicular fluid, FSH, LH, epidermal growth factor, cysteamine, and estradiol) for 42 h at 38.6°C in humidified 5% CO2. After 42 h, excess cumulus cells were removed and the COC were placed into modified Tris medium supplemented with BSA and caffeine (500 μL well–1). Sperm from pooled semen were washed in HEPES SOF supplemented with BSA, caffeine, and heparin and incubated for 45 min. Sperm were then centrifuged and the pellet was resuspended; a concentration of 5 × 105 sperm mL–1 was used. Oocytes and sperm were co-cultured for 6 h, cumulus cells were removed, and presumptive zygotes were placed into 600 μL of culture medium (SOF, BSA, and amino acids). Zygotes were cultured in 5% CO2:5% O2:90% N2, and cleavage and embryo development to Day 6 were assessed. Separate studies were conducted with COC from mature sows and from prepubertal gilts. In the latter, COC were exposed to ±dbcAMP for the first 22 h of the maturation period. Blastocyst rates in the sow were similar to those routinely produced in sheep and cows in our laboratory. Cleavage rates, mean blastocyst cell numbers, and incidence of polyspermy (assessed to be 10 to 12% in prepubertal gilts) were improvements on those generally reported (see Nagai et al. 2006 Front. Biosci. 11, 2565–2573 and Gil et al. 2010 Reprod. Dom. Anim. 45, 40–48 for general reviews). Observations indicate that the use of dbcAMP to regulate oocyte maturation had a negative effect on most parameters. Although blastocyst cell numbers are indicative of blastocyst quality, the significance of these findings can be validated only by transfer studies to determine embryo viability. Table 1.Development rates for in vitro-fertilised oocytes derived from sow and prepubertal gilts1 This work was partly supported by the Australian Cooperative Research Centre for an Internationally Competitive Pork Industry.
Women entering pregnancy with a high body weight and fat mass have babies who are at increased risk of becoming overweight or obese in later life. We investigated whether maternal overnutrition in the periconceptional period results in an increased fat mass and expression of adipogenic and lipogenic genes in offspring and whether dietary restriction can reverse these changes. Nonpregnant donor ewes (n = 23) were assigned to one of four groups: control-control fed at 100% maintenance energy requirements (MER) for at least 5 months, control-restricted fed 100% MER for 4 months and 70% MER for 1 month, high-high (HH) fed ad libitum (170-190% MER) for 5 months, or high-restricted (HR) fed ad libitum for 4 months and 70% MER for 1 month. Single embryos were transferred to nonobese recipient ewes, and lamb fat depots were weighed at 4 months. Peroxisome proliferator-activated receptor-γ, glyceraldehyde-3-phosphate dehydrogenase, lipoprotein lipase, leptin, and adiponectin mRNA expression was measured in the lamb fat depots. Total fat mass was higher in female lambs in the HH but not HR group than controls. There was a relationship between donor ewe weight and total fat mass and G3PDH mRNA expression in perirenal fat in female lambs. There was no effect of periconceptional nutritional treatment on peroxisome proliferator-activated receptor-γ, glyceraldehyde-3-phosphate dehydrogenase, lipoprotein lipase, leptin, and adiponectin mRNA expression in any fat depot. Thus, exposure to maternal overnutrition in the periconceptional period alone results in an increased body fat mass in the offspring and that a short period of dietary restriction can reverse this effect.
The present study aimed to characterize development of in vivo and somatic cell nuclear transfer (SCNT) Merino ovine embryos on Days 17 and 19 using the mesoderm marker vimentin, the neuroectoderm marker β-tubulin III, and the pluripotency marker OCT4 for primordial germ cells. In vivo embryos were obtained by transferring 10 to 20 zygotes to each of 20 intermediate recipient ewes. On Day 6, 4 final recipients were used to obtain embryos for recovery at Day 17 (n = 2) and at Day 19 (n = 2). SCNT embryos were constructed from in vitro-matured oocytes and adult granulosa cells. On Day 6, 9 embryos (with intact inner cell masses) were transferred to each recipient for collection at Day 17 (n = 2) and Day 19 (n = 2). Ewes were euthanazed with phenobarbitone and excised reproductive tracts flushed with saline. A total of 24 embryos at Day 17 (14 in vivo and 10 SCNT) and 23 embryos at Day 19 (11 in vivo and 12 SCNT) were collected and processed for immunohistochemistry. On Day 17, length of embryo proper for in vivo and SCNT embryos was 6.2 and 5.6 mm, width of allantois was 9.3 and 3.8 mm, and number of somites was 19 and 13, respectively. On Day 19, length of embryo proper for in vivo and SCNT embryos was 11.5 and 7.3 mm, width of allantois was 70.6 and 13.7 mm, and number of somites was 28 and 22, respectively. On both Day 17 and Day 19, in vivo embryos had a much larger allantois, more somites, and were longer in length. Vimentin staining was observed in all in vivo embryos at Day 17 and Day 19; however, in 75% of Day 17 SCNT embryos, differentiation of the somites into dermatome with underlying sclerotome was either delayed or absent. Similarly, at both Day 17 and Day 19, a larger proportion of embryos did not stain for β-tubulin III, and of those that did, only a small amount was found in the neural tube. The intensity of both stains was much weaker in the SCNT embryos compared to in vivo embryos. Oct-4 was initially found in the splanchnic mesoderm lining the endoderm in the wall of the yolk sac and later in the dorsal mesentery and medial aspect of the mesonephros with in vivo embryos having double the number of positively stained cells than SCNT embryos. The delay in mesoderm compartments of SCNT embryos could imply future problems in the musculoskeletal system. However, lack of any neuroectoderm staining in more than half SCNT embryos could point to neurological problems being more of an issue in terms of survival and well-being. Equally, the smaller allantois could induce later placental abnormalities. The current project was funded by the Co-operative Research Centre for Innovative Dairy Products (CRC-IDP), Australia.
Maternal feed allowance during pregnancy can affect the development of the ovine placenta and fetus. The impact of variations in feed allowance prior to as well as throughout pregnancy has received less attention. Ewes were offered 0.6 (R), 1.2 (C) or 1.8 (AL) maintenance requirements from 89 days before conception until day 133 of pregnancy. Ewes were euthanased on days 50, 92 and 133 of pregnancy. Ewe live weight and body condition score, maternal and fetal metabolic and hormonal profiles, fetal body dimensions and organ weights, and the number, weight and morphology of placentomes were measured. Maternal live weight and condition score were lower in R compared to AL ewes at all stages of pregnancy (P < 0.05). Plasma glucose and albumin concentrations of R ewes were significantly reduced (P < 0.05) at mid and late gestation, respectively. Placental components were generally unresponsive to long term variations in maternal feed allowance. However, placental weight was significantly (P < 0.05) correlated with fetal weight at days 50 (r = 0.59) and 133 (r = 0.69) of gestation. By late gestation growth-retarded singleton fetuses from R ewes were 19% lighter (P < 0.05), with reduced abdominal (9%) and thoracic (10%) girths (P<0.05) but of similar crown-rump length compared with fetuses from AL ewes. These differences were associated with significantly reduced IGF-I concentrations in fetal plasma (P < 0.05). In conclusion, maternal, placental and fetal adaptations to long established planes of variable maternal feed allowance were able to maintain fetal growth during early and mid-pregnancy while fetal growth restriction, associated with reduced fetal IGF-I levels, became apparent in late pregnancy.
The efficiency of cloning by somatic cell nuclear transfer (SCNT) is poor in livestock with approximately 5% of transferred cloned embryos developing to term. SCNT is associated with gross placental structural abnormalities. We aimed to identify defects in placental histology and gene expression in failing ovine cloned pregnancies to better understand why so many clones generated by SCNT die in utero. Placentomes from SCNT pregnancies (n = 9) and age matched, naturally mated controls (n = 20) were collected at two gestational age ranges (105-134 days and 135-154 days; term = 147 days). There was no effect of cloning on total placental weight. However, cloning reduced the number of placentomes at both gestational ages (105-134 days: control 55.0 +/- 4.2, clone 44.7 +/- 8.0 and 135-154 days: control 72.2 +/- 5.1, clone 36.6 +/- 5.1; P < 0.001) and increased the mean individual placentome weight (105-134 days: control 10.6 +/- 1.3 g, clone 18.6 +/- 2.8 g and 135-154 days: control 6.6 +/- 0.6 g, clone 7.0 +/- 2.0 g; P < 0.02). Placentomes from cloned pregnancies had a significant volume of shed trophoblast and fetal villous hemorrhage, absent in controls, at both gestational age ranges (P < 0.001) that was shown to be apoptotic by activated caspase-3 immunoreactivity. Consequently, the volume of intact trophoblast was reduced and the arithmetic mean barrier thickness of trophoblast through which exchange occurs was altered (P < 0.001) at both gestational age ranges in clones. In addition, cloning reduced placental expression of key genes in placental differentiation and function. Thus, cloning by SCNT results in both gross and microscopic placental abnormalities. We speculate that trophoblast apoptosis, shedding, and hemorrhage may be causal in fetal death in ovine clones.