中国畜禽种业 ›› 2026, Vol. 22 ›› Issue (10): 15-27.doi: 10.19543/j.cnki.1673-4556.20260727.003cstr: 32418.14.j.cnki.1673-4556.20260727.003

• 遗传改良 • 上一篇    下一篇

OPU-IVP技术在宁夏肉牛良种快速扩繁中的应用进展与展望

张海森1,2(), 徐皓东1,2, 张粉丽1, 苟琦4, 张嘉豪1,2, 王子昂1,2, 邓君君1,2, 靳亚平1,2, 李靖宁3(), 陈华涛1,2()   

  1. 1. 西北农林科技大学动物医学院,陕西 杨凌 712100
    2. 农业农村部动物生物技术重点实验室,陕西 杨凌 712100
    3. 宁夏回族自治区畜牧工作站,宁夏 银川 750002
    4. 合阳县动物疫病预防控制中心,陕西 渭南 715300
  • 收稿日期:2026-03-19 出版日期:2026-10-26 发布日期:2026-09-29
  • 通讯作者: 李靖宁, 陈华涛
  • 作者简介:
    张海森(1995—),男,陕西商洛人,博士研究生,研究方向:反刍动物高效繁育技术研发,E-mail:。
  • 基金资助:
    国家重点研发计划项目(2023YFD130060306)

Progress and prospects of OPU-IVP technology in the rapid propagation of high-quality beef cattle breeds in Ningxia

Haisen Zhang1,2(), Haodong Xu1,2, Fenli Zhang1, Qi Gou4, Jiahao Zhang1,2, Ziang Wang1,2, Junjun Deng1,2, Yaping Jin1,2, Jingning Li3(), Huatao Chen1,2()   

  1. 1. College of Veterinary Medicine, Northwest A&F University, Yangling, 712100, China
    2. Key Laboratory of Animal Biotechnology of the Ministry of Agriculture and Rural Affairs, Yangling, 712100, China
    3. Ningxia Hui Autonomous;Region Animal Husbandry Workstation, Yinchuan, 750002, China
    4. Heyang County;Animal Disease Prevention and Control Center, Weinan, 715300, China
  • Received:2026-03-19 Online:2026-10-26 Published:2026-09-29
  • Contact: Jingning Li, Huatao Chen

摘要:

随着我国肉牛遗传改良工作从系统性的体系构建逐步向质量提升与效率突破转变,新一轮的《全国肉牛遗传改良计划(2021—2035年)》对核心育种群规模、优质种源供给能力和育种效率等方面提出了更高要求。但是,由于母牛繁殖生物学特性的制约,传统的人工授精、体内胚胎生产甚至本交等扩繁模式,难以在短期内实现优质种质资源的快速积累与高效扩散,现阶段良种快速扩繁技术的研发与推广显得尤为重要。活体采卵-体外胚胎生产(Ovum pick-up and in vitro embryo production,OPU-IVP)技术可显著提升优质母牛的卵子利用率,是突破肉牛遗传改良“母本扩繁瓶颈”的关键技术支撑。近年来,我国的一些地方政府、高校科研机构及创新型企业在多地开展该技术的应用实践,但针对区域模式、应用成效与实施瓶颈的系统性总结仍较有限。本文在全面剖析新形势下我国肉牛遗传改良进程的基础上,系统梳理了宁夏地区OPU-IVP技术在牛良种扩繁中的应用进展,通过比较国内企业主导型、校企合作型及产学研平台型等典型实践案例,进一步归纳出具有区域适应性的“宁夏模式”。与国内企业主导型、校企合作型和产学研平台型模式相比,宁夏模式在技术落地效率、资源整合和区域适应性方面具有相对优势。当前,牛OPU-IVP技术的推广仍面临标准化不足、成本控制压力及产业体系融合不畅等瓶颈。未来应通过优化培养体系、推动国产耗材替代、构建区域化服务平台及完善利益风险分担机制,推动OPU-IVP技术由“点状突破”走向“全面推广”。

关键词: 宁夏肉牛, 良种扩繁, OPU-IVP技术, 种源自主可控, 遗传改良

Abstract:

As China's beef cattle genetic improvement work shifts from systematic infrastructure development to quality enhancement and efficiency breakthrough, the new National Beef Cattle Genetic Improvement Plan (2021–2035) has set higher requirements for core breeding population size, supply capacity of high-quality germplasm, and breeding efficiency. However, due to the constraints of the reproductive biological characteristics of cows, traditional methods such as artificial insemination, in vivo embryo production, and even natural mating are difficult to achieve rapid accumulation and efficient dissemination of high-quality genetic resources in a short period. At the present stage, the development and promotion of rapid breeding technologies for high-quality breeds is particularly important. Ovum pick-up and in vitro embryo production (OPU‑IVP) technology can significantly improve the oocyte utilization efficiency of elite cows, serving as a key technical support to break the "maternal propagation bottleneck" in beef cattle genetic improvement. In recent years, some local governments, university research institutions, and innovative enterprises in China have carried out practical applications of this technology in multiple regions, yet systematic summaries concerning regional models, application outcomes, and implementation bottlenecks remain limited. Based on a comprehensive analysis of the process of genetic improvement of beef cattle in China under the new circumstances, this paper systematically reviews the application progress of OPU‑IVP technology in the rapid propagation of elite beef cattle in Ningxia. By comparing typical domestic practice cases, including enterprise‑led, university‑enterprise collaborative, and industry‑university‑research platform models, we further summarize a regionally adaptable "Ningxia Model". Compared with the domestic enterprise-led, university‑enterprise collaborative, and industry-university-research platform models, the Ningxia model has relative advantages in technology implementation efficiency, resource integration, and regional adaptability. Current challenges in technology extension include insufficient technical standardization, cost control pressures, and poor integration with the industrial system. In the future, efforts should focus on optimizing culture systems, promoting domestic substitution of consumables, building regional service platforms, and improving benefit‑sharing and risk‑sharing mechanisms, so as to advance OPU‑IVP technology from "sporadic breakthroughs" to "full-scale rollout".

Key words: Ningxia beef cattle, Improved breed multiplication, OPU-IVP technology, Self-sufficiency in breeding stocks, Genetic improvement

中图分类号: 

  • S823

图1

牛OPU-IVP技术流程示意图 注:图片使用Power Point 2023绘制。下图同。"

表1

不同良种扩繁技术效率与成本比较"

技术手段

Technical means

单头母牛年后代数offspring per year/头

扩繁速度

Propagation speed

技术成本

Cost

应用阶段

The current application phase

自然交配Natural mating ≈1 慢 低 普遍
人工授精Artificial insemination ≈1 慢 低 普遍
超数排卵胚胎移植Superovulation and embryo transfer 5~10 中 中 部分应用
活体采卵胚胎移植OPU-IVP-ET 20~50 快 中高 快速发展

图2

肉奶融合的生产模式"

表2

我国公开报道的OPU-IVP技术应用典型案例对照表"

案例类型

Case type

代表主体

Representative body

应用对象

Applicable objects

组织模式

Organizational model

技术目标

Technical objectives

启示

Revelation

企业主导型Enterprise-led 青岛隆铭牛业 高端肉牛 企业+科研合作 商业化种源扩繁 技术成熟度高,但投入要求高
校企合作型School-enterprise cooperative model 西北农林科技大学×兴源达农牧有限公司 奶牛+肉牛 高校+企业+地方 区域良种快速扩繁 与宁夏实践高度契合

平台联合型

Platform-integrated type

山东农科院×种业企业 奶牛 产学研联合 体系化、规模化运行 强调标准化与长期机制
[1]
全国肉牛遗传改良计划(2021—2035年)[J]. 畜牧产业, 2021(7): 16-19.
National beef cattle genetic improvement plan (2021-2035) [J]. Animal Husbandry Industry, 2021(7): 16-19.
[2]
周菊. 肉牛遗传改良关键技术的应用与效益分析[J]. 畜牧业环境, 2025(7): 5-6.
ZHOU J. Application and benefit analysis of key technologies for beef cattle genetic improvement[J]. Animal Industry and Environment, 2025(7): 5-6.
[3]
刘玲茹. 肉牛遗传改良关键技术的推广与应用[J]. 畜牧业环境, 2024(22): 10-11.
LIU L R. Promotion and application of key technologies for beef cattle genetic improvement[J]. Animal Industry and Environment, 2024(22): 10-11.
[4]
罗与同. 安格斯牛育种现状及优化策略研究[J]. 特种经济动植物, 2024, 27(10): 89-91.
LUO Y T. Research on breeding status and optimization strategy of Angus cattle[J]. Special Economic Animal and Plant, 2024, 27(10): 89-91.
[5]
王延斌. 奶牛肉牛育种创新要由“点”到“面”[N]. 科技日报, 2021-08-11(006).
WANG Y B. Dairy and beef cattle breeding innovation should move from "point" to "surface"[N]. Science and Technology Daily, 2021-08-11(006).
[6]
何小平. 肉牛遗传改良技术与繁殖效率的提升策略[J]. 畜牧业环境, 2025(14): 7-8.
HE X P. Beef cattle genetic improvement technology and reproductive efficiency promotion strategy[J]. Animal Industry and Environment, 2025(14): 7-8.
[7]
邱金龙, 史延, 李爽, 等. 牛活体采卵和体外胚胎生产技术的应用现状和展望[J]. 浙江大学学报(农业与生命科学版), 2022, 48(5): 557-565, 604.
QIU J L, SHI Y, LI S, et al. Application status and prospect of bovine ovum pick-up and in vitro embryo production technologies[J]. Journal of Zhejiang University (Agriculture & Life Sciences), 2022, 48(5): 557-565, 604.
[8]
杨成文, 张元来, 张杰. 肉牛体外胚胎移植中OPU-IVF技术的实践与效果分析[J]. 甘肃畜牧兽医, 2024, 54(6): 10-13.
YANG C W, ZHANG Y L, ZHANG J. Practice and effect analysis of OPU-IVF technology in in vitro embryo transfer of beef cattle[J]. Gansu Animal Husbandry and Veterinary Medicine, 2024, 54(6): 10-13.
[9]
姚顺, 赵明礼, 张明, 等. 牛活体采卵技术研究进展[J]. 中国奶牛, 2020(1): 19-23.
YAO S, ZHAO M L, ZHANG M, et al. Research progress of ovum pick-up on cattle[J]. China Dairy Cattle, 2020(1): 19-23.
[10]
鄂志强, 金敬栋, 高青山. OPU技术应用对牛产业的推动作用[J]. 农业技术与装备, 2020(8): 149-150.
E Z Q, JIN J D, GAO Q S. The role of OPU technology application in promoting cattle industry[J]. Agricultural Technology & Equipment, 2020(8): 149-150.
[11]
刘燕飞. 高效繁育技术在牛羊品种改良中的应用[J]. 畜牧业环境, 2024(23): 5-6.
LIU Y F. Application of efficient breeding technology in cattle and sheep variety improvement[J]. Animal Industry and Environment, 2024(23): 5-6.
[12]
任菊秋, 牛聪, 郭志福, 等. 牛羊优良品种繁育的遗传选择方法比较研究[J]. 畜牧业环境, 2024(6): 11-13.
REN J Q, NIU C, GUO Z F, et al. A comparative study on genetic selection methods for breeding excellent breeds of cattle and sheep[J]. Animal Industry and Environment, 2024(6): 11-13.
[13]
王秀琴, 岳彩娟, 马小明, 等. 宁夏肉牛产业发展现状及高质量发展的思考[J]. 当代畜牧, 2021(10): 81-84.
WANG X Q, YUE C J, MA X M, et al. Thoughts on the present situation and high-quality development of beef cattle industry in Ningxia[J]. Contemporary Animal Husbandry, 2021(10): 81-84.
[14]
刘春. 2025年全区畜牧业生产形势稳中向好[EB/OL]. 宁夏回族自治区农业农村厅, 2026-01-30 [2026‑05‑05].
LIU C. Stable and improving production situation of animal husbandry in the region in 2025[EB/OL]. Department of Agriculture and Rural Affairs of Ningxia Hui Autonomous Region, 2026-01-30 [2026‑05‑05].
[15]
艾琦, 张坤, 蒋秋斐, 等. 宁夏肉牛产业高质量发展对策研究[J]. 畜牧业环境, 2024(10): 147-149.
AI Q, ZHANG K, JIANG Q F, et al. Research on countermeasures for high quality development of beef cattle industry in Ningxia[J]. Animal Industry and Environment, 2024(10): 147-149.
[16]
张坤. 我区种公牛培育工作再上新台阶[EB/OL]. 宁夏回族自治区农业农村厅, 2025-11-12 [2026-05-05].
ZHANG K. Our district's breeding bull cultivation work reaches a new level[EB/OL]. Department of Agriculture and Rural Affairs of Ningxia Hui Autonomous Region, 2025-11-12 [2026-05-05].
[17]
顾亚荣. “宁夏肉牛种群高效利用及优异性状选育关键技术研究”项目顺利通过验收[EB/OL]. 宁夏回族自治区农业农村厅, 2025-11-28 [2026-05-05].
GU Y R. The project "Research on key technologies for efficient utilization and excellent trait breeding of Ningxia beef cattle population" successfully passed the acceptance[N/OL]. Department of Agriculture and Rural Affairs of Ningxia Hui Autonomous Region, 2025-11-28 [2026-05-05].
[18]
马云, 谷帅锋, 潘翠丽, 等. 宁夏回族自治区肉牛种业现状、问题及对策建议[J]. 中国畜禽种业, 2023, 19(2): 9-13.
MA Y, GU S F, PAN C L, et al. Present situation, problems and countermeasures of beef cattle seed industry in Ningxia Hui Autonomous Region[J]. The Chinese Livestock and Poultry Breeding, 2023, 19(2): 9-13.
[19]
SALEK F, GUEST A, JOHNSON C, et al. Factors affecting the success of ovum pick-up, in vitro production and cryopreservation of embryos in cattle[J]. Animals, 2025, 15(3): 344.
[20]
SAKAGUCHI K. Optimization of ovum pick-up-in vitro fertilization and in vitro growth of immature oocytes in ruminants[J]. The Journal of Reproduction and Development, 2025, 71(1): 1-9.
[21]
MULYATI S, MUSTOFA I, SRIANTO P, et al. Insulin-like growth factor 1 and estrogen from cumulus cell culture increases the success of in vitro fertilization in cattle[J]. Open Veterinary Journal, 2025, 15(7): 3024-3034.
[22]
AMARAL H B S, SILVEIRA M M, NICOLÁS A C C V, et al. Melatonin improves bovine embryo production and quality via antioxidant, metabolic, and epigenetic pathways[J]. Antioxidants, 2025, 14(11): 1322.
[23]
YILDIZ M, CETIN Y. The effect of L-carnitine supplementation in culture medium on the development and cryopreservation of in vitro produced bovine embryos[J]. Veterinary Medicine and Science, 2025, 11(3): e70376.
[24]
LI Y F, WEI Y C, YANG M M, et al. Metabolomics of follicular fluid reveals the impact of heat stress on oocyte pick-up and in vitro embryo production efficiency in dairy cows[J]. Journal of Animal Science, 2025, 103: skaf216.
[25]
PYTEL A T, ŻYŻYŃSKA-GALEŃSKA K, GAJEWSKI Z, et al. Factors defining developmental competence of bovine oocytes collected for in vitro embryo production[J]. Biology of Reproduction, 2024, 111(1): 1-10.
[26]
ANCHORDOQUY J P, BALBI M, FARNETANO N A, et al. Effect of follicular wave synchronization using a progesterone-releasing intravaginal device-based protocol on in vitro embryo production in Bos taurus cows subjected to 14-day intervals ovum pick-up[J]. Animal Reproduction Science, 2024, 261: 107397.
[27]
MOTTA J C L, HAYDEN C B, SALA R V, et al. Advances in synchronization and superstimulation for OPU/IVEP: optimizing oocyte quantity and quality[J]. Reproduction, Fertility and Development, 2024, 37: RD24143.
[28]
李赫强. 牛体外生产关键技术的研究[D]. 杨凌: 西北农林科技大学, 2021.
LI H Q. Research on key technologies of bovine in vitro production[D]. Yangling: Northwest A&F University, 2021.
[29]
黄聪. 奶牛OPU卵巢刺激程序的优化与应用[D]. 杨凌: 西北农林科技大学, 2024.
HUANG C. Optimization and application of ovarian stimulation protocols for bovine OPU[D]. Yangling: Northwest A&F University, 2024.
[30]
李紫元. 富血小板血浆对奶牛超数排卵的作用和机制研究[D]. 杨凌: 西北农林科技大学, 2024.
LI Z Y. Effects and mechanisms of platelet-rich plasma on superovulation in dairy cows[D]. Yangling: Northwest A&F University, 2024.
[31]
金梦冬. 奶牛OPU-IVP生产效率影响因素分析及卵巢刺激对卵泡微环境与早期胚胎发育的影响[D]. 杨凌: 西北农林科技大学, 2025.
JIN M D. Analysis of factors affecting production efficiency of OPU-IVP in dairy cows and effects of ovarian stimulation on follicular microenvironment and early embryonic development[D]. Yangling: Northwest A&F University, 2025.
[32]
段春, 王强, 李萌. 中卫市海原县强化良种繁育 做优肉牛产业“芯片”[EB/OL]. 科创中国, 2025-04-24 [2026-05-05].
DUAN C, WANG Q, LI M. Haiyuan County of Zhongwei City strengthens improved breed multiplication and optimizes the "chip" of beef cattle industry[EB/OL]. Kechuang China, 2025-04-24 [2026-05-05].
[33]
赵建新, 苏政, 陆宗伟, 等. 胚胎移植引种在规模化肉牛养殖场的研究和示范[J]. 中国畜禽种业, 2023, 19(1): 76-79.
ZHAO J X, SU Z, LU Z W, et al. Research and demonstration of embryo transfer introduction in large-scale beef cattle farms[J]. The Chinese Livestock and Poultry Breeding, 2023, 19(1): 76-79.
[34]
谢成运. 重组牛生长分化因子9蛋白对牛活体采卵控制性卵巢刺激的效果及其机制探究[D]. 杨凌: 西北农林科技大学, 2025.
XIE C Y. Effects of recombinant bovine growth differentiation factor 9 protein on controlled ovarian stimulation for ovum pick-up in cattle and its mechanism investigation[D]. Yangling: Northwest A&F University, 2025.
[35]
欧四海, 杨阳, 王洪涛, 等. 乳肉牛融合发展创新模式与实践[J]. 中国奶牛, 2024(7): 72-77.
OU S H, YANG Y, WANG H T, et al. Innovative model and practice of integrated development of dairy and beef cattle[J]. China Dairy Cattle, 2024(7): 72-77.
[36]
杨松, 李慧, 孙芳, 等. 荷斯坦牛及其与安格斯牛杂交后代屠宰性能和肉品质的比较[J]. 中国畜牧兽医, 2025, 52(3): 1211-1221.
YANG S, LI H, SUN F, et al. Comparison of slaughter performance and meat quality between Holstein cattle and their crossbred offspring with Angus cattle[J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(3): 1211-1221.
[37]
张爽, 梁怡, 段忠意, 等. 德系西门塔尔牛F1代的生产性能初步调查[J]. 北京农学院学报, 2021, 36(3): 41-49.
ZHANG S, LIANG Y, DUAN Z Y, et al. Preliminary investigation on production performance of F1 generation of German Simmental cattle[J]. Journal of Beijing University of Agriculture, 2021, 36(3): 41-49.
[38]
GOTOH T, TAKAHASHI H, NISHIMURA T, et al. Meat produced by Japanese Black cattle and Wagyu[J]. Animal Frontiers, 2014, 4(4): 46-54.
[39]
张焓. 奶牛性控胚胎体外生产技术的优化[D]. 杨凌: 西北农林科技大学, 2024.
ZHANG H. Optimization of in vitro production technology for sexed embryos in dairy cows[D]. Yangling: Northwest A&F University, 2024.
[40]
郝凌峰. 从胚胎到餐桌,看青岛肉牛产业探寻“出圈”路[N]. 农民日报, 2025-03-18.
HAO L F. From embryo to table: exploring the "breakthrough" path of Qingdao beef cattle industry[N]. Farmers' Daily, 2025-03-18.
[41]
耿婷婷. 攻关胚胎技术,青岛企业实现黑毛和牛“借腹生子”[N]. 青岛日报, 2024-03-29.
GENG T T. Overcoming embryo technology challenges: Qingdao enterprise achieves surrogate pregnancy for Japanese Black cattle[N]. Qingdao Daily, 2024-03-29.
[42]
孙桂东. 青岛和牛火出圈!一头能卖 20万,最多可年产3万头[N]. 半岛都市报, 2025-04-08.
SUN G D. Qingdao Wagyu goes viral! Each sells for 200,000 yuan, annual output up to 30,000 heads[N]. Peninsula Metropolis Daily, 2025-04-08.
[43]
徐光勇, 刘振田, 陈祥飞, 等. 和牛OPU卵母细胞体外受精后胚胎发育潜能研究[J]. 中国畜牧兽医, 2025, 52(2): 730-739.
XU G Y, LIU Z T, CHEN X F, et al. Study on embryonic developmental potential of embryos derived from ovum pickup oocytes and fertilization in vitro in wagyu[J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(2): 730-739.
[44]
徐鑫, 冯丽. 西北农林科大与地方、企业联合开展奶牛育种技术攻关:把课堂设在牛舍 把人才留在行业[N]. 中国教育报, 2024-05-15.
XU X, FENG L. Northwest A&F University collaborates with local government and enterprises on dairy cattle breeding technology research: setting classrooms in barns, retaining talents in the industry[N]. China Education Daily, 2024-05-15.
[45]
银川市科学技术协会. 科协助力·科创筑梦|把实验室搬进牛舍——灵武奶牛科技小院破解精准育种难题[EB/OL]. 银川科普网, 2026-02-11 [2026-05-05].
YINCHUAN ASSOCIATION FOR SCIENCE AND TECHNOLOGY. Science association empowers, technology creates dreams: moving laboratories into barns - Lingwu dairy cattle science and technology backyard solves precision breeding challenges [EB/OL]. Yinchuan Science Popularization Network, 2026-02-11 [2026-05-05].
[46]
中国科协. 连获两个奖项!科技小院成技术转化“关键枢纽”[EB/OL]. 科普中国, 2025-10-31 [2026-05-05].
CHINA ASSOCIATION FOR SCIENCE AND TECHNOLOGY. Winning two awards! Science and technology backyard becomes "key hub" for technology transformation [EB/OL]. Science Popularization China, 2025-10-31 [2026-05-05].
[47]
山东省国资委. 奥克斯“试管奶牛”产业化取得重大突破[EB/OL]. 山东省人民政府国有资产监督管理委员会, 2019-04-24 [2026-05-05].
SHANDONG STATE-OWNED ASSETS SUPERVISION AND ADMINISTRATION COMMISSION. Aoxing achieves major breakthrough in industrialization of "test-tube dairy cattle"[EB/OL]. Shandong SASAC, 2019-04-24 [2026-05-05].
[48]
新牧网. 山东省产学研联合攻关推动“试管奶牛”核心技术产业化[EB/OL]. 新牧网, 2019-04-27 [2026-05-05].
XINMU NETWORK. Shandong's industry-university-research joint攻关 promotes industrialization of core "test-tube dairy cattle" technologies[EB/OL]. Xinmu Network, 2019-04-27 [2026-05-05].
[49]
我国奶牛繁育技术取得重大突破[J]. 乳业科学与技术, 2019, 42(2): 封三.
Major breakthrough in dairy cattle breeding technology in China[J]. Journal of Dairy Science and Technology, 2019, 42(2): Inside Back Cover.
[50]
王方. “试管奶牛”破品种改良“缺芯之痛”[N]. 中国科学报, 2019-05-15.
WANG F. "Test-tube dairy cattle" breaks the "core shortage pain" of breed improvement[N]. China Science Daily, 2019-05-15.
[51]
闪电新闻. 奶牛体外胚胎产业化技术成果发布会暨核心种质自主创新研讨会在济南召开[EB/OL]. 闪电新闻, 2019-04-22 [2026-05-05].
SHANDIAN NEWS. Dairy cattle in vitro embryo industrialization technology achievement release conference and core germplasm independent innovation seminar held in Jinan[EB/OL]. Shandian News, 2019-04-22 [2026-05-05].
[52]
昝林森, 田成山, 王洪宝. 中国肉牛种业现状、存在问题及发展建议[J]. 家畜生态学报, 2012, 33(2): 4-7.
ZAN L S, TIAN C S, WANG H B. Status quo and development of beef cattle breeding industry in China[J]. Journal of Domestic Animal Ecology, 2012, 33(2): 4-7.
[53]
栾曼茹, 张志浩, 闵佳, 等. 牛活体采卵及体外胚胎生产技术研究进展[J]. 中国牛业科学, 2025, 51(5): 63-68.
LUAN M R, ZHANG Z H, MIN J, et al. Research progress on technology of ovum pick up and in vitro embryo production in cattle[J]. China Cattle Science, 2025, 51(5): 63-68.
[54]
DU Y, XIA Y, XU J, et al. Effects of donor age and reproductive history on developmental potential of ovum pickup oocytes in Japanese Black cattle (Wagyu)[J]. Theriogenology, 2024, 221: 25-30.
[55]
HANSEN P J. Review: some challenges and unrealized opportunities toward widespread use of the in vitro-produced embryo in cattle production[J]. animal, 2023, 17: 100745.
[1] 杨武才, 杨本顺, 刘文杰, 周正海, 谭建兵, 孔贤亚, 昝林森. 中国黄牛保种、选育及产业化利用现状与发展建议[J]. 中国畜禽种业, 2026, 22(8): 79-89.
[2] 彭朋, 刘廷玉, 赵慧峰, 赵博伟, 李素霞, 徐华, 李树静, 王昆. 河北省肉牛遗传改良现状、存在的问题及发展建议[J]. 中国畜禽种业, 2026, 22(8): 54-60.
[3] 王宏浩, 刘彦杰, 张元庆. 山西肉牛育种:聚焦“太行云牛”的遗传改良实践[J]. 中国畜禽种业, 2026, 22(8): 48-53.
[4] 鲍迪, 孙铭, 秦立红. 吉林省肉牛遗传改良研究进展[J]. 中国畜禽种业, 2026, 22(8): 42-47.
[5] 曹晓瑶, 李姣, 王亭, 熊兰玲, 蔡向庭, 冯思远, 王泽昭, 郑彩宏, 陈燕, 张路培, 高雪, 高会江, 朱波, 李俊雅. 中国肉牛遗传改良研究进展与未来展望:从“追赶”到“创新”的种业振兴之路[J]. 中国畜禽种业, 2026, 22(8): 19-31.
[6] 昝林森. 国际肉牛育种进展对我国地方黄牛遗传改良的启示[J]. 中国畜禽种业, 2026, 22(8): 10-18.
[7] 何云梅, 田壮, 赵鸿雁, 乌兰其其格, 王晓燕, 乌日古玛拉, 吉日嘎郎图, 苗雄, 刘斌. 阿尔巴斯型绒山羊育种进展与产业发展[J]. 中国畜禽种业, 2026, 22(7): 83-91.
[8] 张聪聪, 刘洪亮, 王珺, 任清丹, 罗晓彤, 李轩宇, 李春宇, 刘基伟, 朱永超, 吴健. 吉林省肉牛遗传改良举措及共性问题的思考与建议[J]. 中国畜禽种业, 2026, 22(6): 31-37.
[9] 缪立生, 汪聪勇, 曹阳, 赵玉民. 肉牛种业发展及遗传改良路径[J]. 中国畜禽种业, 2026, 22(6): 25-30.
[10] 刘利, 孙芳, 韩冬, 王春微, 卜也. 黑龙江省肉牛遗传改良发展历程、现状及对策[J]. 中国畜禽种业, 2026, 22(10): 64-71.
[11] 姜子昕, 陶家树, 胡智胜, 宋恩亮, 刘育含, 胡莉萍. 山东省肉牛遗传改良现状及展望[J]. 中国畜禽种业, 2026, 22(10): 55-63.
[12] 白雪, 李芬, 马云. 我国肉牛遗传改良“十四五”回顾与“十五五”展望:成效、瓶颈与攻坚路径[J]. 中国畜禽种业, 2026, 22(10): 28-37.
[13] 阎萍, 郑青波, 李宁, 司衣提·克热木, 付丽. 牦牛遗传改良进程与产业化路径探讨[J]. 中国畜禽种业, 2026, 22(10): 10-14.
[14] 阿仑, 张金文, 赵媛, 刘雯霞, 马惠忠, 武霞霞. 呼和浩特市奶牛遗传改良工作进展[J]. 中国畜禽种业, 2021, 17(7): 18-19.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!