Scientia Agricultura Sinica ›› 2012, Vol. 45 ›› Issue (8): 1455-1464.doi: 10.3864/j.issn.0578-1752.2012.08.001

• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS •     Next Articles

Study on the Renewed Tendency and Key Backbone-Parents of Inbred Rice Varieties (O. sativa L.) in China

 TANG  Sheng-Xiang, WANG  Xiu-Dong, LIU  Xu   

  1. 1.中国水稻研究所,杭州 310006
    2.中国农业科学院农业经济与发展研究所,北京 100081
    3.中国农业科学院,北京 100081
  • Received:2011-10-24 Online:2012-04-15 Published:2012-01-17

Abstract: 【Objective】The objective of the study is to explicit and understand the renewed tendency and key backbone-parents of inbred rice varieties (O.sativa L.) since 1949. 【Method】 The present study tracked and analyzed the blood relationship of 3 656 inbred rice varieties bred and extended in China. 【Result】The study indicated that during the latest period of 60 years, by dwarf breeding, inbred rice varieties have been renewed in mass scale for 8 times, among which 3 times appeared in the years of 1953-1977 and another 5 times in 1978-2010. The blood relationship analysis of variety genealogy indicated that there are 35 most important key backbone-parents (19 indica and 16 japonica ones) have been widely and long utilized in rice breeding for structuring new varieties with high yielding potential and ideal traits. On the other hand, the study also showed that though there was a rapid increase in terms of per unit yield and total rice production, but the rate of rice germplasm innovation and utilization slowed down, and the extension area and occupied proportion of modern inbred rice varieties with high yield potential reduced in the past 30 years. 【Conclusion】The release and mass extension of more than 4 000 modern inbred rice varieties as well as varieties renewed for 8 times in mass scale during 1949-2010 are the major factors in increase of inbred rice production in China. However, challenges will be faced in rice breeding programs: how to strengthen exploration, introduction and utilization of excellent rice germplasm, and how to overcome germplasm bottleneck for continuously releasing new rice varieties.  

Key words: rice, inbred variety, key backbone-parent, genealogy analysis, genetic improvement

[1]Maclean J L, Dawe D C, Hardy B, Hettel G P. Rice Almanac. IRRI: Manila, 2002: 1-9.

[2]林世成, 闵绍楷. 中国水稻品种及其系谱. 上海: 上海科学技术出版社, 1991: 414.

Lin S C, Min S K. Rice Varieties and Their Genealogy in China. Shanghai: Shanghai Science and Technology Press, 1991: 414. (in Chinese)

[3]万建民. 中国水稻遗传育种与品种系谱. 北京: 中国农业出版社, 2010: 741.

Wan J M. Rice Genetic Breeding and Variety Genealogy in China. Beijing: China Agriculture Press, 2010: 741. (in Chinese) 

[4]全国技术推广服务中心. 全国农作物主要品种推广情况统计表. 北京: 农业部, 1981-2008.

China Technique and Extension Service Centre. Extension Statue of Major Varieties of Crops in China. Beijing: Ministry of Agriculture, 1981-2008. (in Chinese)

[5]Tang S X, Ding L, Bonjean A P A. Rice production and genetic improvement in China//Zhong H, Bonjean A P B. Cereals in China. Mexico: CIMMYT, 2010: 15-34.

[6]马良勇, 李西明. 常规水稻育种//程式华, 李  建. 现代中国水稻. 北京: 金盾出版社, 2007: 179-237.

Ma L Y, Li X M. Inbred rice breeding//Cheng S H, Li J. Modern Rice in China. Beijing: Jindun Press, 2007: 179-237. (in Chinese)

[7]刘  旭, 王秀东, 陈  孝. 我国粮食安全框架下种质资源价值评估探析. 农业经济问题, 2008, 12: 14-19.

Liu S, Wang X D, Chen X. Worth estimate of genetic resources under food security framework in China. Issues in Agriculture Economy, 2008, 12: 14-19. (in Chinese)

[8]魏兴华, 汤圣祥, 余汉勇, 王一平, 袁筱萍, 徐  群. 中国水稻国外引种概况及效益分析. 中国水稻科学, 2010, 24(1): 5-11.

Wei X H, Tang S X, Yu H Y, Wang Y P, Yuan X P, Xu Q. Beneficial analysis on introduced rice germplasm from abrosd in China. Chinese Journal of Rice Science, 2010, 24(1): 5-11. (in Chinese)   

[9]Tang S X, Wei X H, Javier E L. Introduction and utilization of INGER rice germplasm in China. Agriculture Science in China, 2004, 3(8): 561-567.

[10]袁隆平. 杂交水稻超高产育种. 杂交水稻, 1997, 12(6): 1-3.

Yuan L P. Hybrid rice breeding for super high yield. Hybrid Rice, 1997, 12(6): 1-3. (in Chinese)  

[11]程式华. 中国超级稻育种展望//程式华. 中国超级稻育种. 北京: 科学出版社, 2010: 400-411.

Cheng S H. Prospect on China super rice breeding//Cheng S H. Super Rice Breeding. Beijing: Science Press, 2010: 400-411. (in Chinese)

[12]Khush G S, Brar D S. Rice genetics from Mendel to functional genomics //Khush G S, Brar D S, Hardy B. Rice Genetics IV. International Rice Research Institute, Manila, 2000: 3-28.

[13]章  琦. 水稻白叶枯病抗性基因鉴定进展及其利用. 中国水稻科学, 2005, 19(5): 453-459.

Zhang Q. Highlights in identification and application of resistance genes to bacterial blight. Chinese Journal of Rice Science, 2005, 19(5): 453-459. (in Chinese)

[14]Tang S X, Wei X H, Jiang Y Z, Brar D S, Khush G S. Genetic diversity based on allozyme alleles of Chinese cultivated rice. Agriculture Science in China, 2007, 6(6): 641-646.

[15]方福平. 中国水稻生产发展问题研究. 北京: 中国农业出版社, 2009: 19-41.

Fang F P. Study on Development of Rice Production in China. Beijing: China Agriculture Press, 2009: 19-41. (in Chinese)

[16]中国水稻研究所. 2010年中国水稻产业发展报告. 北京: 中国农业出版社, 2010: 3-44.

China National Rice Research Institute. Report on Industrial Development of Rice 2010 in China. Beijing: China Agriculture Press, 2010: 3-44. (in Chinese)

[17]陈温福, 徐正进, 张龙步, 张文忠, 杨守仁. 水稻超高产育种研究进展与前景. 中国工程科学, 2002, 4(1): 31-35.

Chen W F, Xu Z J, Zhang L B, Zhang W Z, Yang S R. Advances and prospects of rice breeding for super high yield. Engineering Science, 2002, 4(1): 31-35. (in Chinese)

[18]程式华, 曹立勇, 庄杰云, 吴伟明. 关于超级稻品种培育的资源和基因利用问题. 中国水稻科学, 2009, 23(3): 223-228.

Cheng S H, Cao L Y, Zhuang J Y, Wu W M. Discussion on germplasm and gene utilization in breeding of super rice. Chinese Journal of Rice Science, 2009, 23(3): 223-228. (in Chinese)

[19]Li X Y, Qian Q, Fu Z M, Wang Y H, Xiong G S, Zeng D L, Wang X Q, Liu X F, Teng S, Hiroshi F, Yuan M, Da L K, Han B, Li J Y. Control of tillering in rice. Nature, 2003, 422: 618-621.

[20]Fan C C, Xing Y Z, Mao H L, Lu T T, Han B, Xu C G, Li X H, Zhang Q F. GS3, a major QTL for grain length and weight and minor   QTL for grain width and thickness in rice, encodes a putative transmembrane protein. Theory Appllicaton Genetics, 2006, 112: 1164-1171.

[21]Song X J, Huang W, Shi M, Zhu M Z, Lin H X. A QTL for rice grain width and weight encodes a previously unknown RING-type E3 ubiquitin ligase. Nature Genetics, 2007, 39(5): 623-630.

[22]杨仁崔. 水稻eui种质的遗传评价和育种利用. 中国工程科学, 2005, 7(8): 27-30.

Yang R C. Genetic evaluation and breeding utilization of rice eui-germplasm. Engineering Science, 2005, 7(8): 27-30. (in Chinese)
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