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Effect of initial insemination and insemination interval on fertility in turkey hens.

Large White turkey hens were used to observe fertility through a 20-week laying cycle (31 to 51 weeks of age), following early initial inseminations (EI) and late initial inseminations (LI). Early initial inseminations were made on Days 13 and 15 following photostimulation with subsequent artificial insemination (AI) every 7 (EI + 7) or 14 (EI + 14) days. Late initial inseminations were made on Days 20 and 22 postlighting with subsequent AI every 7 (LI + 7) or 14 (LI + 14) days. Percent of egg production, fertility, and hatch of fertile eggs were measured following the initial AI in each treatment. No significant differences in egg production were seen between treatments. Percent of fertility was greatest in Weeks 6 to 20 with 7-day AI intervals as compared to 14-day intervals. Early inseminations resulted in higher fertility than LI with 14-day AI intervals, but no difference was observed with 7-day intervals. Greater fertility in EI + 14 hens through 20 weeks of egg production, as compared to LI + 14 hens, seems to lend further support to the concept of enhanced oviduct receptiveness to spermatozoa before egg production commences.

Animals↗

Effect of sperm numbers per insemination following early or late initial inseminations in turkeys.

Large White turkey hens were used in this study to investigate sperm storage in the hen throughout a 20-week breeding cycle. Hens were initially inseminated early or late and subsequently at 7-day intervals with either 20, 50, or 100 million sperm each time. Early inseminations (EI) were performed on Days 14 and 17 postlighting, and the late inseminations (LI) were performed on Days 21 and 24 postlighting. Fertility (percent) was calculated weekly for 20 weeks following the second initial insemination in each group. Fertility was greatest in EI hens for the 20-week period; the largest difference occurred between EI and LI treatments of the 50 million sperm/insemination group. A significant interaction was observed between time of initial insemination and sperm numbers per insemination. Overall fertility was improved with each increase in sperm numbers/insemination.

Animals↗

[Control of fertility outcome in artificially inseminated gilts and old sows. 2: Addition of oxytocin to boar semen. Its effect on length of insemination, pregnancy rate and litter size].

Toleration-oriented insemination was applied to 1,373 oestrous sows that had undergone bio-engineering treatment, with two insemination portions having been used for each oestrous. Five International Units of oxytocin were added immediately before insemination proper to the semen applied to 315 gilts and 377 old sows. The control group included 296 gilts and 385 old sows inseminated in parallel. Semen intake, on average, was complete between four and eight minutes with the majority of gilts and between four and seven minutes with most of the old sows, but no evidence was obtained as to any action of the oxytoxin upon intake intensity. The treated gilts were superior to the controls by 6.3 per cent in pregnancy rate and by 56 born piglets to each 100 first inseminations. Superiority, consequently, was significant. In both gilts and old sows added oxytocin prolonged insemination by more than five minutes and gave clearly better fertility results.

Age Factors↗

Use of a single intrauterine insemination of defrosted cryopreserved sperm for therapeutic donor insemination.

OBJECTIVE: To evaluate the efficacy of a protocol employing defrosted cryopreserved sperm as a single well-timed intrauterine insemination. DESIGN: A retrospective observational study. SETTING: A university fertility service and a private fertility practice located in small metropolitan areas. PARTICIPANTS: All 138 donor sperm recipients (348 cycles) treated on this protocol by the author during a 27 month period were evaluated. All 86 patients (200 cycles) treated using intracervical inseminations bracketing the time of ovulation during the same time period were also evaluated. RESULTS: A single well-timed intrauterine insemination had an associated pregnancy rate of 13.8% per cycle. In contrast, intracervical inseminations bracketing the time of ovulation had an associated pregnancy rate of 5% per cycle (P < .005). CONCLUSIONS: A single well-timed intrauterine insemination of defrosted cryopreserved sperm is more efficacious and less expensive than intracervical inseminations bracketing the time of ovulation.

Cryopreservation↗

Effect of inseminated volume on intrauterine insemination.

PURPOSE: Intrauterine insemination (IUI) is a method for the treatment of marital infertility involving the intrauterine or fallopian deposition of washed spermatozoa, depending on the amount of inseminated semen. In view of the divergent opinions about the inseminated volume, the objective of this study was to compare the two techniques (3.0 mL or 0.5 mL) in two groups of patients. METHODS: We performed 164 cycles of ovulation induction followed by IUI. The patients were divided into two groups according to the technique used. Group low volume--50 cycles and 0.5 mL of inseminated semen; Group high volume--114 cycles and 3.0 mL of inseminated semen. The cycle was monitored on the basis of endometrial thickness and follicular development measured by transvaginal ultrasound. Human chorionic gonadotrophin (hCG) was administered in the presence of a follicle measuring 18 mm in mean diameter. The procedure was performed after sperm washing using a discontinuous PureSperm gradient, 40 h later. RESULTS: We obtained a similar clinical pregnancy rate for the two groups (14.0% for Group low volume and 15.7% for Group high volume). There was one abortion in each group. We detected no interference by any etiology of infertility or by the total motile recovered sperm with pregnancy rate. CONCLUSIONS: The results did not demonstrate superiority of one method over the other, with both therapeutic alternatives being satisfactory for the treatment of infertile couples.

Adult↗

The value of single versus repeated insemination in intra-uterine donor insemination cycles.

Pregnancy rates per cycle of intra-uterine donor insemination following ovulation induction were compared retrospectively for those patients having a single, and those having repeated insemination using frozen donor semen. Single insemination was performed in 69 cycles in which 15 women became pregnant (pregnancy rate = 22%). Of 65 cycles in which repeated insemination was performed, 16 women became pregnant (pregnancy rate = 25%). This difference in pregnancy rates was not statistically significant (chi 2 = 3.6, P = 0.84). We conclude that cycle fecundity may not be increased by repeating insemination.

Adult↗

Artificial insemination in Houbara bustards (Chlamydotis undulata): influence of the number of spermatozoa and insemination frequency on fertility and ability to hatch.

Between 1989 and 1992, artificial insemination was used in the reproduction of two subspecies of Houbara bustard (Chlamydotis undulata macqueenii and Chlamydotis undulata undulata) at the National Wildlife Research Center, Taif. The laying period was between January and July and the mean annual egg production in C. undulata macqueenii was 10.2 and in C. undulata undulata was 7.6. No differences were found in sperm production between the two subspecies: the mean volume of ejaculate was 0.08 ml; the mean sperm concentration was 350 x 10(6) spermatozoa ml-1; and the mean number of spermatozoa per ejaculate was about 20 x 10(6). Large intra- and inter-individual variation was found in sperm parameters. Intra-individual variation in number of spermatozoa per ejaculate was due mainly to seasonal variation. The mean quantity of spermatozoa produced per week by fully sexually mature Houbara bustards was 165 x 10(6). There was no significant difference in fertility or in ability to hatch between the two subspecies. Overall, in 1992, mean fertility was 69.3% and 49.2% of eggs hatched. Females showed a median sperm storage duration of 10 days and a maximum sperm storage duration of 22 days. A positive correlation was found between fertility and quantity of spermatozoa inseminated (R = 0.99, P < 0.001). Sperm storage duration was related to the number of spermatozoa inseminated. The best results (85% fertile eggs) were obtained when more than 10(6) spermatozoa were inseminated between 3 and 6 days before laying. Analysis of hatching showed that embryo mortality increased when inseminations were performed more than 10 days before laying.

Animals↗

Timed artificial insemination with estradiol cypionate or insemination at estrus in high-producing dairy cows.

A total of 799 Holstein cows from 3 herds were randomly assigned at 37 +/- 3 d in milk (DIM) to timed artificial insemination (AI) or insemination at detected estrus. Cows were presynchronized with injections of PGF(2alpha) at 37 and 51 DIM. At 65 DIM, cows received an injection of GnRH, followed 7 d later by PGF(2alpha). Cows in the estrus-detected group were inseminated after being observed in estrus during the 7 d after the last PGF(2alpha). Cows in the timed AI group received an injection of 1 mg of estradiol cypionate (ECP) 24 h after the last PGF(2alpha). If detected in estrus or=1 ng/mL; L = <1 ng/mL), resulting in 8 combinations (LLL, LHL, LLH, LHH, HHH, HHL, HLH, and HLL). Conception rates and pregnancy rates were higher for cows in the timed AI group than in the estrus-detected group at 30, 44, and 58 d (e.g., at 58 d, pregnancy rates were 42.2% for multiparous cows or 34.4% for primiparous cows in the group receiving ECP and timed AI compared with only 20.8 or 18.8% for respective parity subgroups for the treatment group inseminated only at detected estrus). Pregnancy losses were 11.5% from 30 to 58 d and did not differ between treatments. Cyclic cows within both treatments had higher estrous responses, conception rates, and pregnancy rates. Cows that responded to presynchronization and to luteolysis (HHL) had the highest conception and pregnancy rates, followed by cows classified as LHL. Use of 1 mg of ECP to induce ovulation as part of a synchrony regimen improved reproduction at first postpartum insemination in dairy cows.

Animals↗

Artificial insemination: a comparison of pregnancy rates with intrauterine versus cervical insemination and washed sperm versus serum swim-up sperm preparations.

A four-cycle artificial insemination protocol was undertaken, with luteinizing hormone (LH) timing, to compare washed sperm and serum swim-up sperm preparations and cervical and intrauterine insemination. Of the 75 patients entered into the protocol series, 63 finished all 4 cycles. During the treatment period, 24 patients became pregnant, 20 of whom were donor (AID) pregnancies (out of 52 patients) and 4 were husband (AIH) pregnancies (out of 11 patients). Seventy-five percent of the pregnancies were intrauterine, whereas only 25% were from cervical inseminations. Sixty-two percent of the pregnancies were due to serum swim-up sperm preparations, and 38% were due to washed sperm preparations. The data indicate substantially higher pregnancy rates can be obtained with intrauterine insemination and suggest that additional studies are necessary to determine if the method of sperm preparation significantly influences pregnancy rates.

Cervix Uteri↗

Effect on pregnancy rate of nonestrus insemination in previously inseminated dairy cows.

Lactating dairy cows (n = 157) designated for slaughter under the 1986 U.S. Dairy Termination Program were utilized in two trials to determine the effects of a second insemination on fertility. Cows that had been previously inseminated at estrus were inseminated again at 12-24 d later, when not in estrus. Cows that were reinseminated into the uterine body had significantly lower pregnancy rates (4% vs 40.6% for controls). Differences in pregnancy rates when the reinsemination was performed in the mid-cervical region were not significant (34.8% vs 50% for controls). Based upon these studies, intrauterine insemination of cows displaying questionable signs of estrus should be avoided in previously inseminated cows.

Journal Article↗

Effect of the inseminate and the site of insemination on the uterus and pregnancy rates of mares.

In this review, effects of the composition of the inseminate on uterine response and pregnancy rates in mares are discussed. The inseminate can differ for volume, sperm concentration, total sperm numbers, presence, absence, or proportion of seminal plasma, and extender composition. Semen can be used as fresh, cooled, or frozen. The site of semen deposition also plays a role; semen is deposited either into the uterine body (standard artificial insemination (AI)) or into the tip of the uterine horn ipsilateral to the preovulatory follicle (deep AI) using the hysterocopical or transrectally guided techniques. In addition to pregnancy rates, some uterine responses to the inseminate are considered including myometrial contractions, transport and elimination of sperm, and uterine inflammation, which is reflected as numbers of polymorphonuclear leukocytes, enzyme levels, and presence of intrauterine fluid. Reproductively normal and abnormal mares are compared.

Animals↗

The influence of sperm morphology and the number of motile sperm inseminated on the outcome of intrauterine insemination combined with mild ovarian stimulation.

OBJECTIVE: To determine the influence of sperm morphology and the number of motile sperm inseminated on the outcome of IUI in hMG-stimulated cycles and to establish lower limits for these variables below which the expectation of pregnancy is limited. DESIGN: Retrospective study of data from 1990 to 1992. SETTING: Tertiary referral Reproductive Medicine Unit. PATIENTS: Couples with bilaterally patent fallopian tubes, and > or = 200,000 motile sperm recovered in a trial preparation before treatment. No other semen criteria were used to exclude couples. Women were stimulated with hMG irrespective of whether they were ovulatory or anovulatory. The study comprised 163 couples who underwent 330 cycles. MAIN OUTCOME MEASURES: Pregnancy rate (PR) per cycle was related to the percentage normal sperm morphology in the fresh semen sample and the number of motile sperm inseminated after sperm preparation by swim-up or Percoll gradients. RESULTS: The overall PR was 16.1% per cycle. The PR was highest in the first cycle of treatment (21.4%) and declined in the second and third cycles. The miscarriage rate was 10.4% and the incidence of multiple pregnancies was 13.9%. Two groups of patients were defined on the basis of sperm morphology: a "poor outcome" group ( < or = 10% normal) and a "good outcome" group ( > 10% normal). The PRs in these two groups were 4.3% and 18.2%, respectively, and the cumulative PRs after three cycles were 8.3% and 40.1%, respectively. The number of motile sperm inseminated did not significantly affect the PR. CONCLUSIONS: The degree of teratozoospermia affected the PR in hMG-stimulated IUI cycles and a normal morphology value of 10% in the fresh semen distinguished couples with good and poor outcomes. In contrast, the number of motile sperm inseminated did not significantly influence IUI outcome.

Female↗

Comparison of an oestrus synchronisation protocol with oestradiol benzoate and PGF2alpha and insemination at detected oestrus to a timed insemination protocol (Ovsynch) on reproductive performance of lactating dairy cows.

A total of 226 out of 245 postpartum lactating dairy cows in a commercial dairy farm were allocated to two groups of oestrous synchronisation protocols in order to evaluate reproductive performance. One group was treated with oestradiol benzoate (ODB) and PGF2alpha on day 10 of the oestrous cycle with insemination at the detected oestrus, the second group underwent the Ovsynch (OVS) protocol (GnRH + PGF2alpha + GnRH) with timed AI. Pregnancy was diagnosed by ultrasonography on day 28 after AI and confirmed by rectal palpation on day 45. A higher (P < 0.001) proportion of cows in OVS (100%) were inseminated within (19.2 +/- 3.8 h) following the second GnRH injection than those of cows in EPE (ODB + PGF2alpha + ODB) (70.6%) inseminated at the detected oestrus within (35.6 +/- 5.2 h) following the second ODB injection. Pregnancy rates for the first AI at day 28 (64.0 +/- 4.6, 62.4 +/- 5.5%) and at day 45 post-insemination (40.4 +/- 4.7, 40.0 +/- 5.6%) for OVS and EPE cows respectively, did not differ between the two treatments, whereas, the overall pregnancy rates tended to be higher (P < 0.08) for the OVS (85.1 +/- 3.8%) cows than the EPE cows (74.1 +/- 4.5%). No differences were observed in pregnancy rates for first AI and overall up to fourth AI between primiparous (34.7 +/- 5.8 and 85.3 +/- 4.7%) and multiparous cows (43.5 +/- 4.5 and 77.4 +/- 3.6%). Days open for pregnant cows tended to be lower (P < 0.08) for OVS (76.2 +/- 3) than for EPE cows (84.7 +/- 4), while days open were higher (P < 0.05) in primiparous cows (85.3 +/- 4) than in multiparous cows (75.6 +/- 3). The results indicate that pregnancy rates for first AI were similar, but overall pregnancy rates up to the fourth AI tended to be higher for OVS than EPE cows, while days open was tended to be lower for OVS than EPE cows.

Animals↗

Genetic evaluation of calving to first insemination using natural and artificial insemination mating data.

Mating and calving records for 51,084 first-parity heifers in Australian Angus herds were used to examine the relationship between probability of calving to first insemination (CFI) in artificial insemination and natural service (NS) mating data. Calving to first insemination was defined as a binary trait for both sources of data. Two Bayesian models were employed: 1) a bivariate threshold model with CFI in AI data regarded as a trait separate from CFI in NS data and 2) a univariate threshold model with CFI regarded as the same trait for both sources of data. Posterior means (SD) of additive variance in the bivariate analysis were similar: 0.049 (0.013) and 0.075 (0.021) for CFI in AI and NS data, respectively, indicating lack of heterogeneity for this parameter. A similar trend was observed for heritability in the bivariate analysis, with posterior means (SD) of 0.025 (0.007) and 0.048 (0.012) for AI and NS data, respectively. The posterior means (SD) of the additive covariance and corresponding genetic correlation between the traits were 0.048 (0.006) and 0.821 (0.138), respectively. Differences were observed between posterior means for herd-year variance: 0.843 vs. 0.280 for AI and NS data, respectively, which may reflect the higher incidence of 100% conception rates within a herd-year class (extreme category problem) in AI data. Parameter estimates under the univariate model were close to the weighted average of the corresponding parameters under the bivariate model. Posterior means (SD) for additive, herd-year, and service sire variance and heritability under the univariate model were 0.063 (0.007), 0.56 (0.029), 0.131 (0.013), and 0.036 (0.007), respectively. These results indicate that, genetically, cows with a higher probability of CFI when mated using AI also have a high probability of CFI when mated via NS. The high correlation between the two traits, along with the lack of heterogeneity for the additive variance, implies that a common additive variance could be used for AI and NS data. A single-trait analysis of CFI with heterogeneous variances for herd-year and service sire could be implemented. The low estimates of heritability indicate that response to selection for probability of calving to first insemination would be expected to be low.

Animals↗

Effect of timing of insemination, numbers of spermatozoa and extender components on the pregnancy rate in mares inseminated with frozen stallion semen.

Fertilization rate was highest in mares inseminated with frozen semen within 12 hr of ovulation. Foaling rate was improved (P less than 0-05) by increasing the number of motile spermatozoa inseminated from 40 X 10(6) to 80 X 10(6) but was not further improved by increasing the number to 160 X 10(6) or by increasing the frequency of insemination from once to twice daily. The fertilizing capacity of spermatozoa frozen in one of the hydrogen ion extenders studied was dependent upon relative osmotic pressure and method of freezing (ampoules or pellets). Adjusting glycerol concentration from 7% to 2%, addition of glycerol 15 min before freezing and freezing 2 hr after extension all enhanced the fertilizing capacity of spermatozoa. Pregnancy rate per mare service period was higher (P less than 0-01) for mares inseminated with unextended semen (75%) than for extended semen containing no glycerol (50%) or extended semen containing 7% glycerol (35%). Although wide variability in the fertilizing capacity of spermatozoa from individual stallions was observed when semen was extended or extended and frozen, pregnancy rate was depressed in all stallions. It was concluded, therefore, that hydrogen ion extenders depress fertilizing capacity of stallion spermatozoa immediately after extension and show little promise as semen extenders for short- or long-term storage of stallion semen.

Animals↗

Comparison of intrauterine insemination, intracervical insemination, and timed intercourse in women treated with human menopausal gonadotropin.

The effects of intrauterine insemination (IUI), intracervical insemination (ICI), and timed intercourse (TI) in women who were treated with human menopausal gonadotropin (hMG) for anovulation were evaluated. The pregnancy rates per cycle following IUI (70 cycles), ICI (62 cycles) and TI (158 cycles) were 20%, 9.6%, and 17.7%, respectively; these differences are not statistically significant. The abortion rate and the multiple pregnancy rate were also not significantly different. This report suggests that in women who are undergoing treatment with hMG, there is no added benefit from artificial insemination (either intrauterine or intracervical insemination) over timed intercourse.

Adult↗

Daily insemination with cryopreserved donor semen is more effective than alternate-day insemination.

A group of 177 consecutive treatment series using daily insemination has been compared with 211 consecutive treatment series using alternate-day insemination. The incidence of female infertility factors, the dropout rate per cycle, and the pregnancy rate per cycle were compared. No significant differences in distribution of female infertility factors or dropout rate were found. In contrast, the pregnancy rate by life-table analysis was significantly different between the two groups, the average monthly fecundability being 1.6 times as high in the daily insemination group. It is argued that after insemination, cryopreserved semen retains its fertilizing capacity no longer than 24 hours.

Adult↗

[Studies on the success of insemination after various insemination dates in biotechnical puberty induction of young sows].

Different frequencies and periods of insemination were checked with the view to optimising puberty induction to young sows, for which purpose 500 IU PMS/250 IU HCG were injected to 571 animals in seven experiments. Insemination was carried out by deadline, since follicle stimulation was exhibited by almost all animals following the above treatment, while only some of them displayed tolerance. Advantage was taken of the induced oestrus, since its ovulation rates were higher than those associated with subsequent heat cycles, and because a synchronised second oestrus was recordable only from some of those animals which exhibited follicle stimulation in response to puberty induction. The most favourable results in terms of pregnancy and number of embryoes, against the background of the great variability in ovulation onset, were obtained, if insemination was applied 72, 96, and 120 hours after gonadotrophin treatment. From among the variants with two inseminations, good results were obtained from those 96 and 120 hours after PMS/HCG treatment.

Animals↗