Scientia Agricultura Sinica ›› 2011, Vol. 44 ›› Issue (17): 3676-3682.doi: 10.3864/j.issn.0578-1752.2011.17.021
• RESEARCH NOTES • Previous Articles Next Articles
CHEN Jing, DONG Hao, MA Hai-Zhen, SUN Quan-Xi, LIU Jiang, QI Bao-Xiu, LI Xin-Zheng, DONG Shu-Ting
| [1]Green C E, Phillips R L. Plant regeneration from tissue cultures of maize. Crop Science, 1975, 15: 417-421.[2]Ting Y C, Yu M, Zheng W Z. Improved anther culture of maize. Plant Science Letters, 1981, 23: 139-145.[3]Pareddy D R, Petolino J F. Somatic embryogenesis and plant regeneration from immature inflorescences of several elite inbreds of maize. Plant Science, 1990, 67: 211-219.[4]李国圣, 张卿伟, 张举仁, 毕玉平, 单 雷. 玉米丛生芽体系的建立及抗除草剂转基因植株再生. 中国科学: C辑, 2001, 31(5): 385-391.Li G S, Zhang Q W, Zhang J R, Bi Y P, Shan L. Establishment of tuft buds system and regeneration of transgenic maize plants with resistance to herbicide. Science in China: Series C, 2001, 31(5): 385-391. (in Chinese) [5]Zhong H, Srinivasan C, Sticklen M B. In vitro morphogenesis of corn (Zea mays L.): II. Differentiation of ear and tassel clusters from cultured shoot apices and immature inflorescences. Planta, 1992, 187: 490-497.[6]Rhodes C A, Green C E, Phillips R L. Factors affecting tissue culture initiation from maize tassels. Plant Science, 1986, 46: 225-232.[7]Songstad D D, Peterson W L, Armstrong C L. Establishment of friable embryogenic (typeⅡ) callus from immature tassels of Zea mays (Poaceae). American Journal of Botany, 1992, 79: 761-764.[8]Zhang S, Williams C R, Jackson D, Lemaux P G. Expression of CDC2ZM and KONTTED1 during in-vitro axillary shoot meristem proliferation and adventitious shoot meristem formation in maize (Zea mays L.) and barely (Hordeum vulgare L.). Planta, 1998, 204: 542-549.[9]Sidorov V, Gilbertson L, Addae P, Duncan D. Agrobacterium- mediated transformation of seedling-derived maize callus. Plant Cell Reports, 2006, 25: 320-328.[10]Armstrong C L. The ?rst decade of maize transformation: a review and future perspectives. Maydica, 1999, 44: 101-109.[11]Hansen G, Wright M S. Recent advances in the transformation of plants. Trends in Plant Science, 1999, 4: 226-231.[12]Bilang R, Fütterer J, Sautter C. Transformation of cereals. Genetic Engeering, 1999, 21: 113-157.[13]Conger B V, Novak F J, Afza R, Erdelsky K. Somatic embryogenesis from cultured leaf segments of Zea mays. Plant Cell Reports, 1987, 6: 345-347.[14]Ray D S, Ghosh P D. Somatic embryogenesis and plant regeneration from cultured leaf explants of Zea mays. Annals of Botany, 1990, 66: 497-500.[15]Ahmadabadi M, Ruf S, Bock R. A leaf based regeneration and transformation system for maize (Zea mays L.). Transgenic Research, 2007, 16: 437-448.[16]Murashige T, Skoog F. A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiologia Plant, 1962, 15: 473-497.[17]Chu C C, Wang C C, Sun C S, Hsu C, Yin K C, Chu Y C, Bi F Y. Establishment of an efficient medium for anther culture of rice through comparative experiments on the nitrogen sources. Scientia Sinica, 1975, 5: 659-668.[18]张丕方, 倪德祥, 包慈华. 植物组织培养与繁殖上的应用. 上海: 上海教育出版社, 1985: 106-110. Zhang P F, Ni D X, Bao C H. Plant Tissue Culture and in Breeding Applications. Shanghai: Shanghai Education Press, 1985: 106-110. (in Chinese)[19]黄 璐, 卫志明. 不同基因型玉米的再生能力和胚性与非胚性愈伤组织DNA的差异. 植物生理学报, 1999, 25(4): 332-338.Huang L, Wei Z M. Regenerate capacity of different maize genotypes and DNA discrepancy between embryogenic and non-embryogenic callus. Acta Phytophysiologica Sinica, 1999, 25(4): 332-338. (in Chinese)[20]石太渊, 杨立国, 杜艳艳. 玉米体细胞培养中不同基因型和外植体的反应. 国外农学-杂粮作物, 1999, 19(5): 11-14.Shi T Y, Yang L G, Du Y Y. Different genotypes and explants in response to maize somatic cell culture. Foreign Agriculture-Rain Fed Crops, 1999, 19(5): 11-14. (in Chinese)[21]孙红炜, 尚佑芬, 杨崇良, 赵玖华, 路兴波, 王升吉. 影响玉米愈伤组织诱导和植株再生的有关因素研究. 山东农业科学, 2002(6): 30-31.Sun H W, Shang Y F, Yang C L, Zhao J H, Lu X B, Wang S J. Relevant factors research about influence embryogenic callus induction and plantlet regeneration of maize. Shandong Agriculture Sciences, 2002(6): 30-31. (in Chinese) |
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