Scientia Agricultura Sinica ›› 2012, Vol. 45 ›› Issue (13): 2737-2742.doi: 10.3864/j.issn.0578-1752.2012.13.018
• ANIMAL SCIENCE·RESOURCE INSECT • Previous Articles Next Articles
QIAO Na, XU Xu-Jun, LIU Si-Guo, WANG Xue-Bin, YU Hui-Qing, TONG Yong-Xing, CHEN Jian-Quan, CHENG Guo-Xiang
| [1]陈莎莎, 丁月云, 金 融, 王 恬. 乳铁蛋白的抑菌作用及其机制. 中国乳品工业, 2007, 35(5): 53-58.Chen S S, Ding Y Y, Jin R, Wang T. Antibacterial function of lactoferrin (LF) and its mechanism. China Dairy Industry, 2007, 35(5): 53-58. (in Chinese)[2]Gordon K, Lee E, Vitale J A, Smith A E, Westphal H, Hennighausen L. Production of human tissue plasminogen activator in transgenic mouse milk. Nature Biotechnology, 1987, 5: 1183-1187.[3]Patrick H C, van B, Mick M W, Marlieke G, Harry A V, Bep R, Mourad S, Ernest K J, Frank P, Jan H N, Peter H, Nibbering. Large scale production of recombinant human lactoferrin in the milk of transgenic cows. Nature Biotechnology, 2002, 20: 484-487.[4]Weinberg E D. Human lactoferrin: a novel therapeutic with broad spectrum potential. Journal of Pharmacy and Pharmacology, 2001, 53(10): 1303-1310.[5]Brundige D R, Maga E A, Klasing K C, Murray J D. Lysozyme transgenic goats’ milk influences gastrointestinal morphology in young pigs. Nutrition, 2008, 138(5): 921-926.[6]Scharfen E C, Mills D A, Maga E A. Use of human lysozyme transgenic goat milk in cheese making: effects on lactic acid bacteria performance. American Dairy Science Association, 2007, 90(9): 4084-4091. [7]Maga E A, Cullor J S, Smith W, Anderson G B, Murray J D. Human lysozyme expressed in the mammary gland of transgenic dairy goats can inhibit the growth of bacteria that cause mastitis and the cold-spoilage of milk. Foodborne Pathogens and Disease, 2006, 3(4): 384-392.[8]支旭勃, 李青旺, 冯 波, 肖 波, 韩增胜, 范玉生, 张 婷. 转基因羊乳中重组人乳铁蛋白的分离工艺研究. 黑龙江畜牧兽医, 2008(5): 83-84.Zhi X B, Li Q W, Feng B, Xiao B, Han Z S, Fan Y S, Zhang T. Study on the separation process for recombinant human lactoferrin transgenic goat milk. Heilongjiang Animal Science and Veterinary Medicine, 2008(5): 83-84. (in Chinese)[9]Maga E A, Walker R L, Anderson G B, Murray J D. Consumption of milk from transgenic goats expressing human lysozyme in the mammary gland results in the modulation of intestinal microflora. Trasgenic Research, 2006, 15(4): 515-519.[10]Maga E A, Shoemaker C F, Rowe J D, Bondurant R H, Anderson G B, Murry J D. Production and processing of milk from transgenic goats expressing human lysozyme in the mammary gland. American Dairy Science Association, 2006, 89(2): 518-524.[11]Krimpenfort P. The production of human lactoferrin in the milk of transgenic animals. Cancer Detection and Prevention, 1993, 17(2): 301-305.[12]James W L, David W T. Producing proteins in transgenic plants and animals. Current Opinion in Biotechnology, 2001, 12(4): 411-418. [13]Yang P H, Wang J W, Gong G C, Sun X Z, Zhang R, Du Z, Liu Y, Li R, Ding F R, Tang B, Dai Y P, Li N. Cattle mammary bioreactor generated by a novel procedure of transgenic cloning for large-scale production of functional human lactoferrin. PLoS One, 2008, 3(10): e3453.[14]李佐刚, 汤 瑶, 孙 旭, 闻 镍, 于 敏, 史兴昌, 李 响, 王秀文, 王军志, 李 波. 转基因山羊羊乳中重组人乳铁蛋白性质的检定与研究. 药物分析杂志, 2008, 28(2): 223-226.Li Z G, Tang Y, Sun X, Wen N, Yu M, Shi X C, Li X, Wang X W, Wang J Z, Li B. Identification and characterization of recombinant human lactoferrin in the milk of transgenic goats. Chinese Journal of Pharmaceutical Analysis, 2008, 28(2): 223-226. (in Chinese)[15]张 然, 王媛媛, 鲍永华, 赵 杰, 李 宁. 转基因动物应用的研究现状与生物安全评价. 生物产业技术, 2010, 3: 48-59.Zhang R, Wang Y Y, Bao Y H, Zhao J, Li N. Applications of transgenic animal research status and evaluation of biosafety. Biotechnology and Business, 2010, 3: 48-59. (in Chinese)[16]Kathryn A J, Jolene M B, James D M, Elizabeth A M. Evaluating the fitness of human lysozyme transgenic dairy goats: growth and reproductive traits. Trasgenic Research, 2010, 19: 977-986.[17]王二先, 徐旭俊, 苗晋锋, 陈建泉, 成国祥, 杨 倩. 转人乳铁蛋白基因山羊乳对大鼠生长及代谢机能的影响. 南京农业大学学报, 2011, 34(2): 119-123.Wang E X, Xu X J, Miao J F, Chen J Q, Cheng G X, Yang Q. Effect of transgenic human lactoferrin goats’ milk on growth and metabolic performance in rats. Journal of Nanjing Agricultural University, 2011, 34(2): 119-123. (in Chinese)[18]Muir W M, Howard R D. Assessment of possible ecological risks and hazards of transgenic fish with implications for other sexually reproducing organisms. Trasgenic Research, 2002, 11: 101-114.[19]赵有璋. 羊生产学. 北京:中国农业出版社, 2002.Zhao Y Z. Sheep and Goat Production. Beijing: China Agricultural Press, 2002. (in Chinese)[20]Kim S J, Yu D Y, Pak K W, Jeong S, Kim S W, Lee K K. Structure of the human lactoferrin gene and its chromosomal localization. Molecular and Cellular Proteomics, 1998, 8: 663-668[21]Robert M B, Theresa K. Lactoferrin content of peripheral blood cells. British Journal of Haematology, 1978, 39(4): 509-521. [22]柏亚军. 人乳铁蛋白转基因小鼠遗传特性及rhLF抑菌活性分析[D]. 扬州: 扬州大学, 2008.Bai Y J. Study on genetic characterization of transgenic mice and antibacterial activity of rhLF in the milk[D]. Yangzhou: Yangzhou University, 2008. (in Chinese)[23]肖艳萍, 奚 鹰, 黄文英, 黄 英. 应用荧光原位杂交检测人凝血因子Ⅸ在转基因小鼠染色体上的整合. 遗传, 2002, 24(3): 232-236. Xiao Y P, Xi Y, Huang W Y, Huang Y. Detection of the integration of human FⅨ on chromosomes of transgenic mice by fluorescence in situ hybridization. Hereditas, 2002, 24(3): 232-236. (in Chinese)[24]刘祖洞. 遗传学. 北京: 高等教育出版社, 2006. Liu Z D. Genetics. Beijing: Higher Education Press, 2006. (in Chinese)[25]Falconer D S, Mackay T F. 储明星译. 数量遗传学导论. 第四版. 北京: 中国农业科技出版社, 2000. Falconer D S, Mackay T F. Translated by Chu M X. Introduction to Quantitative Genetics. 4 ed. Beijing: China Agricultural Science and Technology Press, 2000. (in Chinese)[26]华志华, 黄大年. 转基因植物中外源基因的遗传学行为. 植物学 报, 1999, 41(1): 1-5.Hua Z H, Huang D N. Genetic mode of exogenes in transgenic plants. Acta Botanica Sinica, 1999, 41(1): 1-5. (in Chinese)[27]Houdebine L M. The methods to generate transgenic animals and to control transgene expression. Biotechnology, 2002, 98: 145-160.[28]Yamauchi Y, Doe B, Ajduk A, Ward M A. Genomic DNA damage in mouse transgenesis. Biology of Reproduction, 2007, 77: 803-812.[29]朱士恩. 21世纪哺乳动物胚胎生物工程发展趋向. 中国农业科学, 2008, 41(8): 2425-2430.Zhu S E. Trends in mammalian embryo bioengineering in the 21st century. Scientia Agricultura Sinica, 2008, 41(8): 2425-2430. (in Chinese)[30]王 令, 张存芳, 张智英. 锌指核酸酶在基因组靶向修饰中的应 用. 中国生物化学与分子生物学报, 2009, 25(7): 585-589.Wang L, Zhang C F, Zhang Z Y. Application of zinc finger nucleases in genome targeting modification. Chinese Journal of Biochemistry and Molecular Biology, 2009, 25(7): 585-589. (in Chinese) |
| [1] | MA ZhaoHui, QUAN ChengZhe, CHENG HaiTao, YANG KanJie, LI XinRui, LÜ WenYan. The Breeding Goals and Strategies of Northeast Japonica Rice Under the Background of Zhongke Fa No.5 [J]. Scientia Agricultura Sinica, 2026, 59(5): 927-936. |
| [2] | ZHANG WenXuan, XIE ShuoQi, WU Xin, WANG YueQiang, LI YangGuang, ZHANG Zhen, REN XiaoLi, GAO TengYun, LIANG Dong, HUANG HeTian. Estimation of Genetic Parameters and Breeding Values for Birth Weight and Weaning Weight in Chinese Holstein Cattle [J]. Scientia Agricultura Sinica, 2026, 59(4): 900-911. |
| [3] | LÜ WenYan, CHENG HaiTao, MA ZhaoHui, TIAN ShuHua. Discussion on Hybridization Breeding Technology and Strategy of Rice in the New Era of Breeding [J]. Scientia Agricultura Sinica, 2026, 59(2): 233-238. |
| [4] | SUN YanYan, NI AiXin, YANG HanHan, YUAN JingWei, CHEN JiLan. Research Progress on Mechanisms Interpretation and Prediction Methods for Heterosis of Livestock [J]. Scientia Agricultura Sinica, 2025, 58(5): 1017-1031. |
| [5] | LIU JinDong, WANG YaMei, WANG YiCun, YU HaiXia, TIAN JiChun. The Concept, Content and Research Progress of Functional Agriculture [J]. Scientia Agricultura Sinica, 2025, 58(23): 4813-4824. |
| [6] | ZHANG Fan, YANG QingChuan. The Breeding History, Current Status and Prospects of Alfalfa [J]. Scientia Agricultura Sinica, 2025, 58(21): 4471-4481. |
| [7] | ZHANG TingTing, ZHANG GuoQiang, LI ShaoKun, WANG KeRu, XIE RuiZhi, XUE Jun, FANG Liang, LI XiaoHong, FU JiaLe, LI JiaKai, LIANG Chen, GE JunZhu, MING Bo. High-Yield Technology Model of New Insect-Resistant Maize Varieties for Biological Breeding in the Xiliaohe Plain [J]. Scientia Agricultura Sinica, 2025, 58(17): 3418-3433. |
| [8] | ZHUANG RunJie, LIU HuiMing, WANG ShiYu, LÜ WanPing, WEN YongXian. Genomic Selection Method Based on G2PSE Stacking Ensemble [J]. Scientia Agricultura Sinica, 2025, 58(15): 2960-2979. |
| [9] | XIE HuiHui, YANG QiuHua, LI WenLi, ZHU JinCheng, LI HuiXia, ZHANG Feng. Identification of Wild Potato Introgression Lines Resistant to Southern Root-Knot Nematode [J]. Scientia Agricultura Sinica, 2025, 58(14): 2924-2932. |
| [10] | WANG Hui, DING BaoPeng, LI YuXian, REN QuanRu, ZHOU Hai, ZHAO JunLiang, HU HaiFei. Research Progress and Prospects on Crop Pan-Genomics [J]. Scientia Agricultura Sinica, 2025, 58(11): 2045-2061. |
| [11] | CAO XiongJun, WANG Bo, HAN JiaYu, LIAO YongFeng, XIE ShuYu, BAI Yang, HUANG XiaoYun, LU Li, HUANG QiuMi, JIANG ChunFen, PAN FengPing, BAI XianJin. Research and Practice on High Photosynthetic Efficiency Breeding of Grapes in Hot Climate Regions [J]. Scientia Agricultura Sinica, 2025, 58(10): 1994-2007. |
| [12] | DONG HuiXue, CHEN Qian, GUO XiaoJiang, WANG JiRui. Research on the Mechanisms of Pre-Harvest Sprouting and Resistant Breeding in Wheat [J]. Scientia Agricultura Sinica, 2024, 57(7): 1237-1254. |
| [13] | LI RongDe, HE Ping, LUO LiXia, SHI MengYa, HOU Qian, MA ZhenGuo, GUO RuiXing, CHENG HongTao. Current Situation of Breeding and Popularization of Short-Growth- Period Winter Rapeseed Varieties for Rice-Rice-Rapeseed Mode [J]. Scientia Agricultura Sinica, 2024, 57(5): 846-854. |
| [14] | WANG Shuai, ZHANG RuYang, WANG RongHuan, SONG Wei, ZHAO JiuRan. Research Progress of Southern Corn Rust and Resistance Breeding [J]. Scientia Agricultura Sinica, 2024, 57(14): 2732-2743. |
| [15] | WEI XiaoDong, SONG XueMei, WANG Ning, ZHAO QingYong, ZHU Zhen, CHEN Tao, ZHAO Ling, WANG CaiLin, ZHANG YaDong. Distribution Characteristics of Photosynthetic Products of Nanjing Series of Super Rice During Filling Stage [J]. Scientia Agricultura Sinica, 2024, 57(12): 2309-2321. |
|
||