小麦白粉病,抗病基因,基因推导,甘肃省," /> 小麦白粉病,抗病基因,基因推导,甘肃省,"/> 甘肃省主要小麦生产品种(系)及抗源材料抗白粉病基因推导分析
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作物学报 ›› 2010, Vol. 36 ›› Issue (12): 2107-2115.doi: 10.3724/SP.J.1006.2010.02107

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

甘肃省主要小麦生产品种(系)及抗源材料抗白粉病基因推导分析

曹世勤1,2,骆惠生1,武翠平3,金社林1,*,王晓鸣3,朱振东3,贾秋珍1,黄瑾1,张勃1,尚勋武2   

  1. 1 甘肃省农业科学院植物保护研究所,甘肃兰州 730070; 2甘肃农业大学农学院,甘肃兰州 730070; 3 中国农业科学院作物科学研究所,北京 100193
  • 收稿日期:2010-03-08 修回日期:2010-07-05 出版日期:2010-12-12 网络出版日期:2010-08-30
  • 通讯作者: 金社林,E-mail:jinshelin@163.com
  • 基金资助:

    本研究由公益性(农业)行业科研专项(3-15)和国家科技支撑计划项目(2006BAD08A05)资助。

Postulation of Powder Mildew Resistance Genes in 64 Wheat Cultivars (Lines) in Gansu Province, China

CAO Shi-Qin1,2,LUO Hui-Sheng1,WU Cui-Ping3,JIN She-Lin1,WANG Xiao-Ming3,ZHU Zheng-Dong3,JIA Qiu-Zhen1,HUANG Jin1,ZHANG Bo1,SHANG Xun-Wu2   

  1. 1 Institute of Plant Protection, Gansu Academy of Agricultural Sciences, Lanzhou 730070, China; 2 College of Agronomy, Gansu Agricultural University, Lanzhou 730070, China; 3 Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • Received:2010-03-08 Revised:2010-07-05 Published:2010-12-12 Published online:2010-08-30
  • Contact: JIN Wen-Lin,E-mail:jinshelin@163.com

摘要: 选用17个致病力不同的小麦白粉病菌菌系,对64个甘肃省主要生产品种(系)及抗源材料进行了苗期白粉病抗性鉴定,并结合系谱分析推导这些品种(系)所含抗病基因。初步判断陇原932含有Pm5及未知抗病基因;西峰20含有Pm6及未知抗病基因;98保1-2含有Pm8及未知抗病基因;863-13和石7816含有Pm19;天选43等6个品种(系)含有Pm21;兰天13等18个品种(系)对所有供试菌系均表现感病,与其他35个供试品种(系)一致,可能含有未知抗病基因或基因组合。聚类分析支持基因推导结果。

关键词: 小麦白粉病')">

小麦白粉病, 抗病基因, 基因推导, 甘肃省

Abstract: Combined with pedigree analysis, genes for resistance to powdery mildew (Pm) in 64 wheat varieties (lines) from Gansu Province were analyzed with 17 isolates which had different spectra of pathogenicity in seedling stage. The preliminary results showed that the line Longyuan 932 was postulated to possess Pm5 and unknown resistant genes. The variety Xifeng 20 was postulated to possess Pm6 and unknown resistant genes. The line 98 bao 1-2 was postulated to possess Pm8 and unknown resistant genes. Gene Pm19 was detected in two varieties (lines) 863-13 and Shi 7816. Six varieties (lines) Tianxuan 43, X9610, 95-111-3, Lantian 17, 92R137, and Guinong 22 were postulated to possess Pm21. Eighteen wheat varieties (lines) susceptible to all the tested powdery mildew isolates might possess unidentified genes. Unknown genes were found in other 35 wheat varieties (lines), which resistant types were different from the tested genes. Cluster analysis was in agreement these results.

Key words: Wheat powdery mildew, Resistance gene, Gene postulation, Gansu Province of China

[1]Li J-P(李继平), Jin S-L(金社林), Chen Y-R(陈怡蓉), Cao S-Q(曹世勤),Guo Z-J(郭致杰), Jia Q-Z(贾秋珍). Identification of resistance to powdery mildew in wheat varieties (lines). Gansu Agric Sci Technol (甘肃农业科技), 1998, (11): 35–36 (in Chinese)
[2]Chen W-Q(陈万权), Wang J-X(王剑雄). Genes for leaf and stem rust resistance in 76 wheat genetic resources. Acta Agron Sin (作物学报), 1997, 23(6): 655–663 (in Chinese with English abstract)
[3]Niu Y-C(牛永春), Qiao Q(乔奇), Wu L-R(吴立人). Postulation of resistance genes to stripe rust in commercial wheat cultivars from Henan, Shandong and Anhui provinces. Acta Phytopathol Sin (植物病理学报), 2000, 30(2): 122–128 (in Chinese with English abstract)
[4]Wang F-L(王凤乐), Wu L-R(吴立人), Wan A-M(万安民), Song W-Z(宋位中). Analysis of resistance genes to stripe rust in commercial wheat cultivars from Shanxi, Gansu and Sichuan provinces. Acta Agron Sin (作物学报), 1994, 20(5): 589–594 (in Chinese with English abstract)
[5]Chen W-Q(陈万权), Qin Q-M(秦庆明), Chen Y-L(陈扬林), Wu Z-X(吴支行), Ma Z-Q(马志强), Liao Q(廖琴). Leaf rust resistance of 40 wheat cultivars in China. Acta Phytopathol Sin (植物病理学报), 2001, 31(1): 16–25 (in Chinese with English abstract)
[6]Yuan J-H(袁军海), Liu T-G(刘太国), Chen W-Q(陈万权). Postulation of leaf rust resistance genes in 47 new wheat cultivars (lines) at seedling stage. Sci Agric Sin (中国农业科学), 2007, 40(9): 1925–1935 (in Chinese with English abstract)
[7]Dubin H J, Johnson R, Stubbs R W. Postulated genes for resistance to stripe rust in selected CIMMYT and related wheats. Plant Dis, 1989, 73: 472–475
[8]Loegering W Q, Burton C H. Computer generated hypoythetical genotypes for reaction and pathogenicity of wheat cultivars and cultures of Puccinia graminis tritici. Phytopathology, 1974, 64: 1380–1384
[9]Zhou Y-L(周益林), Duan X-Y(段霞瑜), Chen G(陈刚), Sheng B-Q(盛宝钦), Zhang Y(张莹). Analysis of resistance genes of 40 wheat cultivars lines. Acta Phytopathol Sin (植物病理学报), 2002, 32(4): 301–305 (in Chinese with English abstract)
[10]Sheng B-Q(盛宝钦). Identification powdery mildew of infection type at seedling stage. Plant Prot (植物保护), 1988, 14(1): 49 (in Chinese)
[11]Dubin H J, Johnson R, Stubbs R W. Postulated genes for resistance to stripe rust in selected CIMMYT and related wheats. Plant Dis, 1989, 73: 472–475
[12]Browder L E. Specificity of the Puccinia recondita f. sp. tritici: Triticum aestivum ‘Bulgaria 88’ relationship. Phytopathology, 1973, 63: 524–528
[13]Dyck P L, Johnson R. Temperature sensitivity of genes for resistance in wheat to Puccinia recondita. Can J Plant Pathol, 1983, 5: 229–234
[14]Li B-N(李伯宁), Zhou Y-L(周益林), Duan X-Y(段霞瑜). Effects of temperature on wheat powdery mildew. Plant Prot (植物保护), 2008, 34(3): 22–25 (in Chinese)
[15]Liu T(刘瞳), Zhang X-B(张学博). Genetic studies of blast disease resistance in rice-gene analysis of major resistant indica rice resources in Fujian. Acta Phytopathol Sin (植物病理学报), 1990, 20(1): 41–46 (in Chinese with English abstract)
[16]Qiao Q(乔奇), Niu Y-C(牛永春), Wan A-M(万安民), Wu L-R(吴立人). Cluster analysis of seventy-eight important wheat cultivars for stripe rust resistance in seedling stage. Acta Phytophylacica Sin (植物保护学报), 2002, 29(3): 210–216 (in Chinese with English abstract)
[17]Sheng B-Q(盛宝钦), Duan X-Y(段霞瑜). Improving the technology of identification using “0-9 scals” at adult stage. Beijing Agric Sci (北京农业科学), 1991, (1): 38–39 (in Chinese)
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