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过去 50 年来国内反刍动物的繁殖:从发现到应用。

Reproduction in domestic ruminants during the past 50 yr: discovery to application.

机构信息

Division of Animal Science, University of Missouri, Columbia, MO.

Department of Animal Science, University of Wisconsin, Madison, WI.

出版信息

J Anim Sci. 2018 Jun 29;96(7):2952-2970. doi: 10.1093/jas/sky139.

Abstract

The study of reproductive physiology in domestic ruminants has progressed from the whole animal to the molecular level in an amazingly short period of time. The volume of information on this subject is enormous; therefore, we have focused on domestic ruminants, with an emphasis on cattle. To date, artificial insemination (AI) is perhaps the most powerful technique that reproductive physiologists and geneticists have provided the livestock industry for genetic improvement. Early efforts to establish AI as a tool were initiated in Russia around 1899 and since that time major advances in methods of semen collection, evaluation of male fertility, cryopreservation of sperm, sex-sorted semen, and estrous cycle control have occurred. The preceding advances not only led to the widespread use of AI, but also contributed to our fundamental understanding of ovulation control, timing of insemination, gamete biology, and cryopreservation. In regards to anestrus, our understanding of the concept of neuroendocrine control of the pituitary gland and the role of steroid feedback led to the Gonadostat Theory, which proposes that onset of puberty is due to a decrease in the negative feedback of gonadal steroids over time. Subsequent studies in prepuberal and postpartum sheep and cattle established that a short luteal phase frequently precedes the first normal length cycle that is accompanied by estrous expression. This observation led to the common practice of treating prepuberal heifers and anestrous postpartum cows with a short-term progestin treatment (e.g., Controlled Internal Drug Release) to induce normal estrous cycles. In domestic ruminants, fertilization rate is high (85% to 95%); however, significant embryonic mortality before or around the time of maternal recognition of pregnancy (MRP) reduces the pregnancy rate to a single breeding. Significant effort has been directed at determining the time of MRP, the signal for MRP, as well as elucidating the physiological, cellular, and molecular dialogue between the conceptus and uterine environment. Advancements have now led us to the ability to edit the genome to alleviate disease and possibly improve production traits. In summary, major advancements in our understanding of reproductive biology have stemmed from efforts to establish the AI and embryo transfer technique and reduce the negative impact of anestrus and embryonic mortality in domestic ruminants.

摘要

在短时间内,家畜反刍动物的生殖生理学研究已经从整体动物水平发展到了分子水平。关于这个主题的信息量巨大;因此,我们专注于家畜反刍动物,重点是牛。迄今为止,人工授精(AI)可能是生殖生理学家和遗传学家为畜牧业遗传改良提供的最强大的技术。大约在 1899 年,人们开始努力将 AI 作为一种工具来建立,从那时起,精液采集、雄性生育力评估、精子冷冻保存、性别分选精液和发情周期控制等方面都取得了重大进展。这些先前的进展不仅导致了 AI 的广泛应用,而且促进了我们对排卵控制、授精时间、配子生物学和冷冻保存的基本理解。关于乏情,我们对垂体神经内分泌控制概念和类固醇反馈作用的理解导致了性腺静止理论的提出,该理论认为,青春期的开始是由于随着时间的推移,性腺类固醇的负反馈减少。随后在未成熟和产后绵羊和牛中的研究建立了一个短黄体期经常出现在第一个正常长度周期之前,并且伴随着发情表现。这一观察结果导致了对未成熟小母牛和乏情产后奶牛进行短期孕激素治疗(例如,控释内部药物释放)的常见做法,以诱导正常发情周期。在家畜反刍动物中,受精率很高(85%至 95%);然而,在母体识别妊娠(MRP)前后的胚胎死亡率很高,导致妊娠率降低到单次配种。人们已经做出了巨大的努力来确定 MRP 的时间、MRP 的信号,以及阐明胚胎和子宫环境之间的生理、细胞和分子对话。现在的进展使我们能够编辑基因组以减轻疾病并可能改善生产性状。总之,对生殖生物学的理解的主要进展源于建立 AI 和胚胎移植技术的努力,以及减少家畜反刍动物乏情和胚胎死亡率的负面影响。

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