欢迎访问作物学报,今天是

作物学报 ›› 2009, Vol. 35 ›› Issue (12): 2187-2196.doi: 10.3724/SP.J.1006.2009.02187

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

不同供体及不同回交次数对玉米自交系R08的改良效应

乔善宝,王玉花,杨克诚*,荣廷昭,潘光堂,高世斌*   

  1. 四川农业大学玉米研究所/教育部作物基因资源与遗传改良重点实验室,四川雅安 625014
  • 收稿日期:2009-04-27 修回日期:2009-08-22 出版日期:2009-12-10 网络出版日期:2009-10-13
  • 通讯作者: 杨克诚,Tel:0835-2882465;高世斌,E-mail:shibingao@gmail.com
  • 基金资助:

    本研究由国家“十一五”科技攻关计划子课题(2006BAD13B03),教育部长江学者和创新团队发展计划(IRT0453),四川省玉米育种攻关项目资助。

Effects Contributed by Different Donor Parents and Backcross Times on R08 Improvement

WANG Yu-Hua,QIAO Shan-Bao,YANG Ke-Cheng*,RONG Ting-Zhao,PAN Guang-Tang,GAO Shi-Bin*   

  1. Maize Research Institute,Sichuan Agricultural University/Key Laboratory of Crop Genetic Resources and Improvement,Ministry of Education,Ya'an 625014,China
  • Received:2009-04-27 Revised:2009-08-22 Published:2009-12-10 Published online:2009-10-13
  • Contact: YANG Ke-Chen,Tel:0835-2882465;GAO Shi-Bin,E-mail:shibingao@gmail.com

摘要:

R08为轮回亲本,18个优良自交系为供体亲本,不同回交和自交次数,选育出遗传背景与R08相近、但相互之间又存在一定差异的BC1F3BC2F218R08改良系。通过抗病性鉴定、配合力及SSR分子标记分析,探讨不同供体及不同回交次数对R08的改良效果。结果表明,36个改良系中,29个抗或高抗大斑病,大部分改良系的多数产量性状一般配合力(GCA)R08相比并无下降或有所提高;相同供体不同回交次数选系的比较显示,对大斑病抗性的改良,回交1次自交2(BC1F3)优于回交2次自交1(BC2F2),且改良后代选系多数产量性状GCA大体相当;相同回交次数不同供体选系的比较表明,供体对回交后代的影响较大,供体不同回交后代选系大斑病抗性及多数产量性状GCA存在较大的差异;SSR分子标记研究结果在一定程度上揭示相同供体不同回交次数所创造的遗传变异无明显差异,相同回交次数不同供体选系在分子水平上存在较大差异;供体昌7-2和川321对改良R08的大斑病抗性和产量性状GCA作用较大,属优良供体亲本;w4-1w10-1属回交改良优良选系。因此,利用回交法改良玉米自交系,在选准供体亲本的基础上,回交1次后,在自交过程中加强目标性状的鉴定选择及配合力测定,可提高回交改良的育种效率。

关键词: 玉米, 供体, 回交法, 出苗率, 抗病性, 配合力, SSR标记

Abstract:

In this study, we usedR08 as the recurrent parent and 18 excellentinbreeding lines as the donor parents to improve R08 line through backcross and self-cross. A total of 18 BC1F3-derived lines and 18 BC2F2-derived lines with relatively diverse genetic background were obtained. Improving effects contributed by different donor parents and backcross times on R08 were analyzed by evaluation field trials, combining ability and SSR molecular markers of R08 improved lines. The results showed that 29 lines out of 36 BC-derived lines were resistant or high-resistant to northern leaf blight. General combining ability (GCA)of most yield traits in the majority of improved lines showed no decrease or a little increase compared with that of R08. BC1F3 (backcross once, self-cross twice) wasbetter than BC2F2 (backcross twice, self-cross once) in the improvement of disease resistance to northern leaf blightcompared with the lines which had same donor parents and different times of backcross, while the GCA of most yield traits in majority of the lines selected from the improved offspring was roughly the same. The results of SSR markers analysis showed that the genetic variation in the lines had no significant difference. On the contrary, there was a larger difference in disease resistance to northern leaf blight, GCA of the majority of yield traits and the results of SSR markersanalysis in the lines selected from different donor and same times of backcross. Donor parents Chang 7-2 and Chuan 321 played a larger role in improving R08’s disease resistance to northern leaf blight and most of yield traits’ GCA. Therefore, they are excellent donor parents. As a result, w4-1 and w10-1 are selected as elite lines of backcross-improving. Consequently, during the utilization of backcross in improving maize inbred lines, we could backcross once on the basis of selecting the right donor parents, and strengthen the identification and selection of target traits and the determination of GCA in self-cross process to improve the breeding efficiency of backcross improvement.

Key words: Corn, Donor parent, Backcross breeding, Combining ability, SSR


[1] Rong T-Z(荣廷昭), Li W-C(李晚忱), Pan G-T(潘光堂). Suggestion on development of science and technology in maize genetics and breeding at the beginning of 21st century. J Maize Sci (玉米科学), 2003, 11: 42-53 (in Chinese with English abstract)

[2] Wu J-F (吴景锋). A review on the germplasm basis of major maize hybrids in China. In: Li J-X(李竞雄) ed. Advance of Maize Breeding (玉米育种研究进展). Beijing: Science Press, 1992. pp 61-69 (in Chinese)

[3] Darrah L L, Zuber M S. The United States farm corn germplasm base and commercial breeding strategies. Crop Sci, 1986, 26: 1109-1113

[4] Pan J-J(潘家驹). Crop Breeding (作物育种学总论). Beijing: China Agriculture Press, 1994. pp 68-74, 91, 161 (in Chinese )

[5] Hu Y-J(胡延吉). Plant Breeding (植物育种学). Beijing: Higher Education Press, 2003, pp 21-23 (in Chinese)

[6] People’s Republic of China Agriculture Industry Standard (中华人民共和国农业行业标准). NY/T 1248.1-2006 (in Chinese)

[7] Saghai-Maroof M A, Soliman K M, Jorgensen R A, Allard R W. Ribosomal DNA spacer-length polymorphisms in barley: Mendelian inheritance, chromosomal location and population dynamics. Proc Natl Acad Sci USA, 1984, 81: 8014-8018

[8] Chen F-B(陈发波), Yang K-C(杨克诚), Rong T-Z(荣廷昭), Pan G-T(潘光堂). Analysis of genetic diversity of maize hybrids in the regional tests of Sichuan and Southwest China. Acta Agron Sin (作物学报), 2007, 33(6): 991-998 (in Chinese with English abstract)

[9] Rong T-Z(荣廷昭), Li W-C(李晚忱). Field Experimentation and Statistical Methods (田间试验与统计方法). Chengdu: Sichuan University Press, 2001:105 (in Chinese)

[10] Yang Z-X(杨竹轩), Li X-J(李小军). Several problems on data-processing of pesticide experiment in field. Pesticide Sci Admin (农药科学与管理), 2003, 24(9): 26-28 (in Chinese with English abstract)

[11] Rong T-Z(荣廷昭), Pan G-T(潘光堂), Huang Y-B(黄玉碧). Quantitative Genetics (数量遗传学). Beijing: China Science and Technology Press, 2003. pp 211-243 (in Chinese)

[12] Nei M, Li W H. Mathemacal model for studying genetic variation in terms of restriction endonucleases. Proc Natl Acad Sci USA, 1979, 76: 5256-5273

[13] Liu J-L(刘纪麟). Maize Breeding (玉米育种学), 2nd edn. Beijing: China Agriculture Press, 2002. pp 177-178 (in Chinese)

[14] Paterson A H. Molecular Dissection of Complex Traits. Boca Raton: CRC Press, 1997

[15] Hughes G R, Hooker A L. Gene action conditioning resistance to northern leaf blight in maize. Crop Sci, 1997, 11: 180-184

[16] Hooker A L. A new type of resistance in corn Helminthosporium turccicum. Plant Dis Reptr, 1961, 45: 780-781

[17] Hooker A L. A second major gene locus in corn for chlorotic lesion resistance to Helminthosporium turcicum. Crop Sci, 1977, 17: 132-135

[18] Li J-S (李建生), Liu J-L (刘纪麟). Study on the interaction of monogenic and polygenic resistance to Helminthosprium turcicum in maize. In: Li J-X (李竞雄). Advance of Maize Breeding (玉米育种研究进展). Beijing: Science Press, 1992. pp 94-100 (in Chinese)

[19] Yang J-L(杨继良), Wang B(王斌). The research advancement on genetics of resistance to Exserohilum turcicum in maize. Hereditas (遗传), 2002, 24(4): 501-506 (in Chinese with English abstract)

[20] Guo H-A(郭海鳌). Review on Selection Process of Serieshybrid withSizaohao. J Maize Sci (玉米科学), 2002, 10(4): 8-9 (in Chinese)

[21] Li Y-L(李玉玲), Wang Y-Z(王延召). Effect of backcrossing on the popping characteristics of normal corn × popcorn crosses. J Henan Agric Univ (河南农业大学学报), 2007, 6(3): 247-250 (in Chinese with English abstract)

[22] Rong T-Z(荣廷昭), Li W-C(李晚忱), Yang K-C(杨克诚). Maize Breeding in Southwest Ecological Zones (西南生态区玉米育种). Beijing: China Agriculture Press, 2003. pp 114-115 (in Chinese)
[1] 毛嘉琦, 黄朋雨, 赵佳佳, 郑兴卫, 武棒棒, 郝宇琼, 屈非, 刘成, 马朋涛, 郑军. 山西小麦品种白粉病抗性评价及抗病基因分子检测[J]. 作物学报, 2026, 52(6): 1669-1681.
[2] 刘恩波, 陈静, 李红星, 于宁宁, 任佰朝, 赵斌, 刘鹏, 张吉旺. 遮阴改变源-库平衡和调节碳水化合物代谢进而抑制夏玉米幼穗发育[J]. 作物学报, 2026, 52(6): 1891-1901.
[3] 梁进宇, 尹嘉德, 王红丽, 张国平, 侯慧芝, 董博, 马明生. 基于无人机高光谱和机器学习的旱地饲用玉米叶片氮含量估测[J]. 作物学报, 2026, 52(6): 1788-1801.
[4] 孙淑凤, 许振南, 黄嘉鑫, 翁建峰, 李新海. 玉米MAPK家族全基因组鉴定及其对拟轮枝镰孢菌感染的响应[J]. 作物学报, 2026, 52(5): 1291-1308.
[5] 张宁宁, 滕雨菲, 任娜娜, 魏兴卓, 闫书豪, 樊可心, 王永宏, 陈文康, 张兴华, 朱万超, 徐淑兔, 薛吉全. 201份玉米自交系抗旱表型评价及可塑性分析[J]. 作物学报, 2026, 52(5): 1309-1325.
[6] 张鸿蓉, 王菲儿, 李盼, 仇海龙, 朱静, 赵连豪, 南运有, 何蔚, 樊志龙, 胡发龙, 柴强, 殷文. 减量20%灌水与25%有机肥替代化肥提高青贮玉米产量的光合特性[J]. 作物学报, 2026, 52(5): 1487-1500.
[7] 杨欣雨, 崔文涛, 迪力尼格尔·阿力木, 汪凯翔, 吴鹏昊, 任姣姣. 玉米穗上叶片数全基因组关联分析和全基因组选择[J]. 作物学报, 2026, 52(5): 1573-1590.
[8] 韩亚鑫, 何冠华, 张小琼, 张登峰, 李永祥, 刘旭洋, 王天宇, 黎裕, 邹华文, 李春辉. 基于RNA-Seq和BSA-Seq联合分析挖掘玉米侧根密度基因资源[J]. 作物学报, 2026, 52(5): 1341-1352.
[9] 杨扬, 常诗惠, 田红丽, 易红梅, 王璐, 任洁, 范亚明, 刘亚维, 王凤格, 赵久然. 不同生态区国审玉米品种的遗传多样性分析[J]. 作物学报, 2026, 52(5): 1352-1364.
[10] 蔡宏玮, 于爱忠, 姜科强, 王鹏飞, 王玉珑, 霍建喆, 庞小能, 尹波, 尚永盼. 干旱灌区有机肥替代部分化肥促进甜玉米产量提升的关键机制[J]. 作物学报, 2026, 52(4): 1166-1180.
[11] 田红丽, 杨扬, 范亚明, 易红梅, 郭丹丹, 王凤格, 赵久然. 适于玉米品种鉴定的一套三等位变异SNP新型标记组合[J]. 作物学报, 2026, 52(4): 993-1005.
[12] 杨亚莉, 徐明睿, 马越飞, 海艺蕊, 刘凯栋, 刘万茂, 孙颖. 玉米根尖及整根响应缺铁的转录组比较研究[J]. 作物学报, 2026, 52(4): 1006-1021.
[13] 马亮, 马璐, 张舒钰, 章慧敏, 王仁明, 宋旭东, 张振良, 冒宇翔, 陆虎华, 陈国清, 郝德荣, 周广飞. 玉米苞叶数目转录组分析及候选基因鉴定[J]. 作物学报, 2026, 52(3): 790-801.
[14] 孟成, 王哲. 玉米ZmPFK基因家族全基因组鉴定及响应胁迫表达分析[J]. 作物学报, 2026, 52(3): 764-779.
[15] 李新浩, 邢梦柯, 周梓惠, 李思烨, 任昊, 王洪章, 赖华江. 外源褪黑素通过协调光反应与暗反应增强玉米苗期的耐热性[J]. 作物学报, 2026, 52(3): 839-856.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!