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The relationship between rabbit semen characteristics and reproductive performance after artificial insemination.

The relationships between several rabbit buck semen traits, concerning either the ejaculate or the dose inseminated (volume, mass motility, pH, percentage of motile sperm (PMS), concentration, number of total and motile sperm per ejaculate and per insemination dose) and the reproductive performance of does was investigated in 839 inseminations involving 54 bucks and 111 does. Four genetic types were involved: INRA1601 strain (A), INRA2066 strain (B) and the two reciprocal crossbreds (AB and BA). The mating design was A x A, B x B, (AB or BA) x (AB or BA). Semen was diluted (1:9) and a constant volume of 0.5 ml was inseminated 2-4h after collection. Therefore, the total number of spermatozoa per dose was variable and proportional to the initial concentration. Mass motility significantly influenced the kindling rate. Taken separately, volume, PMS and concentration did not influence the kindling rate but their product, the number of motile sperm per ejaculate, did. Litter size (total born) was significantly influenced by concentration and all variables depending on it, particularly the number of total and motile sperm per dose. However, reproductive performances were predominantly influenced by the physiological status of the does at insemination (lactation stage and receptivity).

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Influence of GnRH analogue (fertirelin acetate) doses on synchronization of ovulation and fixed-time artificial insemination in lactating dairy cows.

The effect of using a dose of 50 micro g rather than 100 micro g fertirelin in an ovulation/fixed-time insemination protocol for Holstein-Friesian dairy cows was investigated in three experiments. In each experiment, fertirelin was administered at the beginning of the protocol followed 7 days later by 500 micro g cloprosterol. Two days later, a second dose of fertirelin was given and AI performed 16-19 h later regardless of the incidence of behavioral oestrus. The effect on conception rate was studied in experiment 1 using 114 postpartum anoestrus cows. There was no significant difference in the age, parity or number of days after parturition in each treatment groups. The conception rate did not differ between the 50 micro g fertirelin group (61.1%; n=72) and the 100 micro g group (59.5%; n=42; NS). In experiment 2, a further 12 cows at 40-60 days postpartum were treated with 100 or 50 micro g fertirelin (n=6 per dose) with treatment commencing in the follicular or luteal phase of the oestrous cycle. The plasma concentration of luteinizing hormone (LH) reached similar peaks of over 5 ng/ml 120 min after the intramuscular administration of fertirelin in both groups. There were no significant differences in LH levels between treatments or phase of the oestrous cycle when treatment commenced. Doses of 50 and 100 micro g fertirelin were compared in experiment 3 using 17 cows to study follicular wave development and synchronization by transrectal ultrasonography, conception rate and corpus luteum function. There were no significant differences between treatments for these factors. It was concluded that using a dose of 50 micro g fertirelin enabled the drug costs to be reduced without affecting the efficiency of a synchronization of ovulation/fixed-time AI protocol for dairy cows.

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Fertility of sows following artificial insemination at a gonadotrophin-induced estrus coincident with weaning.

Two experiments were performed to examine sow fertility following the pre-weaning injection of gonadotrophin. In experiment 1, sows received PG600 2-days pre-weaning (PW2), on the day of weaning (W) or received no injection and served as controls (CT1). Compared to controls, the injection of PG600 resulted in shorter (P<0.02) wean-estrus intervals and more (P<0.05) sows exhibiting estrus by 7 days after weaning (4.5+/-0.2, 5.1+/-0.3, 6.1+/-0.3 days, and 81.3, 82.9, 68.8%, for PW2, W, and CT1, respectively). No effect of treatment was apparent for farrowing rate or subsequent litter size. In experiment 2, PG600 was injected at 4 days pre-weaning (PW4) and then either GnRH or hCG was injected at the time of weaning. Control (CT2) sows received no injections. Injection of PG600 was associated with shorter (P<0.0001) wean-estrus intervals and a higher (P<0.003) farrowing rate (1.1+/-0.2, 5.1+/-0.2 days, and 94.8, 78.5% for PW4 and CT2, respectively). There was no effect of treatment on subsequent litter size and results were the same for GnRH and hCG treated sows. We conclude that injection of gonadotrophins prior to weaning will result in very short wean-estrus intervals and that, when combined with a hormonally controlled ovulation, sow fertility may be enhanced.

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Prostaglandin F2alpha supplemented semen improves reproductive performance in artificially inseminated sows.

The objective of this study was to assess the effects of the addition of prostaglandin F2alpha (PGF2alpha) to semen, to increase reproductive performance in sows. Sows in 11 large production units, were inseminated (AI) either with PGF2alpha enriched fresh semen (group 1, n=1258) or with untreated fresh semen (group 2, n=1101). Conception rate, regular return to estrus, farrowing rate, subsequent total and live-born litter size, subsequent weaning to estrus intervals, pigs born and pigs weaned per sow per year were evaluated. Conception and farrowing rates, as well as regular returns to estrus were altered beneficially (P<0.001) with PGF2alpha supplemented semen. Subsequent total-born (P<0.06) and subsequent live-born (P<0.15) litter size, as well as subsequent weaning to estrus intervals (P<0.22), were not affected to the same extent. Total pigs born (P<0.05) and pigs weaned (P<0.04) per sow per year were increased by using PGF2alpha supplemented semen.

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Factors affecting fertility with artificial insemination.

Man's intervention in the natural processes of reproduction with the use of AI has allowed rapid genetic improvement in beef and dairy herds and has resulted in a marked increase in livestock productivity. In today's tough economic climate, high reproductive efficiency is of utmost importance for livestock enterprises to remain viable. Many factors affect the success of AI programs; of particular importance are the health and nutritional management of the herd and accurate, efficient heat detection. Good management combined with knowledge, technical expertise and careful attention to detail in the timing of insemination in relation to the period of estrus, semen handling, and correct semen placement in the uterus ensure the successful use of AI.

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Laparoscopic artificial insemination in sheep.

The goal of any AI program is to create improved offspring, and the achievement of this objective will depend on the breeding value of the ram and ewe selected. Laparoscopic AI is being utilized in the sheep industry to extend the use of superior rams, and it offers the producer the opportunity to maximize the reproductive potential of superior sheep. Rapid genetic trait infusion of known superior stud rams into the flock is the primary economic benefit of laparoscopic AI. The success of laparoscopic AI depends on events and factors that interrelate in a complex way. Once the selection and preparation of the ewe have been accomplished, one of the more important steps in the program is the successful synchronization of the ewe to deliver the necessary ova to the site of fertilization at a specific time. One of the best methods of synchronization for laparoscopic AI is the use of a progesterone product for a controlled time period and the administration of PMSG upon its removal. Detecting the onset of estrus is critical, and the addition of sterile (e.g., vasectomized) males is helpful, even essential, to accurately determine when each ewe begins her estrus. The ram effect has been shown to stimulate ovulation and estrus. Ewes must be inseminated within a narrow window of time after the synchronization product is removed. Ewes should be inseminated in the order in which they begin to exhibit signs of behavioral estrus, but age, stage of lactation, duration of behavioral estrus, and breed must be taken into account when this order is established. Fresh-extended semen works well throughout this preferred time frame established for laparoscopic AI, but frozen semen gives best results when used near the end. Advancement in manufacturing technology today removes equipment as a variable factor. It is important, therefore, that the inseminator develop a level of expertise in laparoscopy to ensure maximum fertilization rates. If available, fresh-extended semen is preferred over frozen semen, using at least the minimal number of spermatozoa necessary for fertilization. Evaluation of the post-thaw frozen or fresh semen is necessary to determine motility, morphology, and concentration, all of which help determine the volume of the insemination dose. The minimum necessary for laparoscopic AI in fine-wooled breeds is 20 X 10(6) normal motile spermatozoa; however, the more seasonal and less fertile American sheep need approximately 40 to 50 X 10(6) normal motile sperm to achieve acceptable fertility rates.(ABSTRACT TRUNCATED AT 400 WORDS)

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Relationship between the proportion of capacitated spermatozoa present in frozen-thawed bull semen and fertility with artificial insemination.

The objective of the present study was to confirm the presence of prematurely capacitated spermatozoa in frozen-thawed bull semen and to investigate the relationship of premature capacitation to the fertility of the respective semen. Twenty batches of frozen semen from young AI bulls of the Swedish Red and White breed with known fertility (expressed as 56-day non-return rates; 56 d-NRR) were tested using a Chlortetracycline (CTC) assay to assess capacitation status in frozen-thawed spermatozoa. The status of capacitation, as evidenced in this experiment, was further tested based on the hypothesis that capacitated spermatozoa present in frozen-thawed semen should undergo the acrosome reaction (AR) on co-incubation with homologous zona pellucida (ZP) glycoproteins. The percentage (mean +/- SEM) of uncapacitated, capacitated and acrosome-reacted spermatozoa in the frozen-thawed semen (n = 20) were 49.3 +/- 11.9, 36.3 +/- 8.3 and 14.2 +/- 11.9, respectively. On co-incubation with ZP, there was a significant increase (p = 0.001) in the proportion of spermatozoa undergoing the AR compared to the control with a concurrent decrease in the proportion of capacitated spermatozoa, suggesting that a proportion of capacitated spermatozoa were undergoing the AR. The proportion of viable, uncapacitated spermatozoa present in the frozen-thawed semen was correlated to the 56 d-NRR (n = 20, r = 0.5, p = 0.03). In conclusion, a proportion of spermatozoa in frozen-thawed semen was capacitated and the proportion of viable, uncapacitated spermatozoa present in semen was positively correlated to fertility.

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The effect of post-ovulatory artificial insemination on sow reproductive performance.

In order to increase reproductive performance, sows are usually inseminated several times during oestrus. In practice, this results in a significant number of sows receiving one or more post-ovulatory inseminations. This study was carried out to determine the percentage of sows that receive one or more post-ovulatory inseminations and the effect of such treatment on reproductive performance. The results were analysed from a total of 1298 sows on two farms. It was observed that more than 70% of the sows received at least one post-ovulatory insemination and approximately 20% received two or more. There was no observed effect on the rate of return to oestrus, farrowing rate or litter size (p > 0.05).

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Relationship between peri-oestrus progesterone levels and time of ovulation by echography in pigs and influence of the interval between ovulation and artificial insemination (AI) on litter size.

Two methods for the determination of ovulation were compared to one ultrasonography performed 5 times a day. Time of ovulation by echography was 40 +/- 5.8 h (mean +/- SD) after the onset of oestrus. Preovulatory LH rise (two blood samples per day) began near the onset of oestrus but, in our conditions, this parameter could not be used to predict ovulation. The basal level of progesterone (two blood samples per day) was determined with a non-linear model, the timing when progesterone rose more than one SD (0.3 ng x mL(-1)) coincided with the timing of ovulation determined by echography (R2 = 0.98). This method was efficient and was used in a field trial to measure the consequences of the variability of the interval between Al and ovulation on litter size. The interval between Al and ovulation had an effect on litter size; litter size decreased by one piglet when this interval increased by 10h.

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