作物学报 ›› 2015, Vol. 41 ›› Issue (11): 1671-1681.doi: 10.3724/SP.J.1006.2015.01671
刘颖1,2,**,张巧凤2,**,付必胜2,蔡士宾2,蒋彦婕2,张志良2,邓渊钰3,吴纪中2,*,戴廷波1,*
LIU Ying1,2,**,ZHANG Qiao-Feng2,**,FU Bi-Sheng2,CAI Shi-Bin2,JIANG Yan-Jie2,ZHANG Zhi-Liang2,DENG Yuan-Yu3,WU Ji-Zhong2*,DAI Ting-Bo1,*
摘要:
为揭示小麦纹枯病抗源的遗传多样性,发掘优异的抗性种质,利用沟带接种法对前期筛选出的88份抗性种质进行了3年田间抗性鉴定,鉴定出抗或中抗纹枯病的小麦种质32份。利用分布于全基因组的SSR标记对这些抗源进行了遗传多样性分析,59个SSR标记共检测到308个等位变异,每个标记可以检测到2~13个等位基因,平均5.2个;多态性信息含量(PIC)的变异范围为0.12~0.89,平均为0.61,表明材料的遗传丰富度较高。根据聚类分析和主成分(PCA)分析,32份小麦纹枯病抗源按照遗传相似系数可划分为2个组群,国外引进品种和国内改良品种聚为一类,国内农家品种聚为一类,并且与地理分布特征相符。利用与纹枯病抗性QTL紧密连锁的14个SSR标记对32份抗源进行基因型分析,发现与抗性QTL连锁的2BS上的Xwmc154和7DS上的Xbarc126普遍存在,可用于分子标记辅助选择。在武农148、陕983、陕农78、Coker 983、H-Line、Mason和Compair中仅检测到一个已报道的抗病QTL,而在Tyalt中没有检测到已知抗病QTL,这些材料有可能携带新的纹枯病抗性基因/QTL,可以在育种中加以利用。
| [1]Lemańczyk G, Kwa?na H. Effects of sharp eyespot (Rhizoctonia cerealis) on yield and grain quality of winter wheat. Eur J Plant Pathol, 2013, 135: 187–200[2]张会云, 陈荣振, 冯国华, 刘东涛, 王静, 王晓军, 楼辰军, 张凤. 中国小麦纹枯病的研究现状与展望. 麦类作物学报, 2007, 27: 1150–1153Zhang H Y, Chen R Z, Feng G H, Liu D T, Wang J, Wang X J, Lou C J, Zhang F. Research advances and prospect on wheat sharp eyespot in China. J Triticeae Crops, 2007, 27: 1150–1153 (in Chinese with English abstract)[3]Cromey M G, Butler R C, Munro C A, Shorter S C. Susceptibility of New Zealand wheat cultivars to sharp eyespot. New Zeal Plant Protect, 2005, 58: 268–272[4]蒋彦婕, 吴纪中, 蔡士宾, 朱芳芳, 张巧凤. 小麦抗纹枯病种质资源的鉴定与评价. 麦类作物学报, 2013, 33: 589–594Jiang Y J, Wu J Z, Cai S B, Zhu F F, Zhang Q F. Screening of resistance to sharp eyespot in wheat germplasm. J Triticeae Crops, 2013, 33: 589–594 (in Chinese with English abstract)[5]Chen J, Li G H, Du Z Y, Quan W, Zhang H Y, Che M Z, Wang Z, Zhang Z J. Mapping of QTL conferring resistance to sharp eyespot (Rhizoctonia cerealis) in bread wheat at the adult plant growth stage. Theor Appl Genet, 2013, 126: 2865–2878[6]蔡士宾, 任丽娟, 颜伟, 吴纪中, 陈怀谷, 吴小有, 张仙义. 小麦抗纹枯病种质创新及QTL定位的初步研究. 中国农业科学, 2006, 39: 928–934Cai S B, Ren L J, Yan W, Wu J Z, Chen H G, Wu X Y, Zhang X Y. Germplasm development and mapping of resistance to sharp eyespot (Rhizoctonia cerealis) in wheat. Sci Agric Sin, 2006, 39: 928–934 (in Chinese with English abstract)[7]霍纳新. 小麦纹枯病、白粉病抗性QTL分析. 中国农业科学院博士学位论文, 北京, 2002Huo N X. QTL analysis of resistance to disease caused by Rhizoctonia cerealis and Blumeris graminis. PhD Dissertation of the Chinese Academy of Agricultural Sciences, Beijing, China, 2002 (in Chinese with English abstract) [8]任丽娟, 蔡士宾, 汤颋, 吴纪中, 周淼平, 颜伟, 马鸿翔, 陆维忠. 小麦纹枯病抗性QTL的SSR标记. 扬州大学学报, 2004, 25(4): 16–19Ren L J, Cai S B, Tang T, Wu J Z, Zhou M P, Yan W, Ma H Y, Lu W Z. SSR marker linked resistance QTLs to sharp eyespot (Rhizoctonia cerealis) in wheat. J Yangzhou Univ, 2004, 25(4): 16–19 (in Chinese with English abstract)[9]任丽娟, 张旭, 周淼平, 陆维忠, 马鸿翔. .小麦抗纹枯病和赤霉病QTL定位研究. 麦类作物学报, 2007, 27: 416–420Ren L J, Zhang X, Zhou M P, Lu W Z, Ma H X. QTL analysis of sharp eyespot (Rhizoctonia cerealis) and Fusarium head blight in wheat. J Triticeae Crops, 2007, 27: 416–420 (in Chinese with English abstract)[10]汤颋, 任丽娟, 蔡士宾, 吴纪中, 陆维忠, 陈建民, 马鸿翔. 小麦ARz抗纹枯病的QTL定位研究. 麦类作物学报, 2004, 24(4): 11–16Tang T, Ren L J, Cai S B, Wu J Z, Lu W Z, Chen J M, Ma H X. Study on QTL mapping of sharp eyespot resistance (Rhizoctonia cerealis) in wheat ARz. J Triticeae Crops, 2004, 24(4): 11–16 (in Chinese with English abstract)[11]张小村, 李斯深, 赵新华, 范玉顶, 李瑞军. 小麦纹枯病抗性的QTL分析和抗病基因的分子标记. 植物遗传资源学报, 2005, 6: 276–279Zhang X C, Li S S, Zhao X H, Fan Y D, Li R J. QTL and molecular markers for resisitance gene of wheat sharp eyespot. J Plant Genet Resour, 2005, 6: 276–279 (in Chinese with English abstract)[12]张小村, 李斯深, 赵新华, 李瑞军. 15个小麦重组自交系群体抗纹枯病性的遗传分析. 麦类作物学报, 2004, 24(3): 13–16Zhang X C, Li S S, Zhao X H, Li R J. Genetic analysis on resistance to sharp eyespot by using fifteen populations of recombinant inbred in wheat. J Triticeae Crops, 2004, 24(3): 13–16 (in Chinese with English abstract)[13]朱芳芳. Niavt14/徐麦25重组自交系群体小麦纹枯病抗性QTL分析. 南京农业大学硕士学位论文, 江苏南京, 2011Zhu F F. QTLs mapping for resistance to sharp eyespot by using a recombinant inbred lines population derived from the cross between Niavt 14 and Xuzhou 25 in wheat. MS Thesis of Nanjing Agricultural University, Jiangsu, China, 2011 (in Chinese with English abstract)[14]Huang Y D, Millet B P, Beaubien K A, Dahl S K, Steffenson B J, Smith K P, Muehlbauer G J. Haplotype diversity and population structure in cultivated and wild barely evaluated for Fusarium head blight responses. Theor Appl Genet, 2013, 126: 619–636[15]Ogbonnaya F C, Imtiaz M, DePauw R M. Haplotype diversity of preharvest sprouting QTLs in wheat. Genome, 2007, 50: 107–118[16]Sardouie-Nasab S, Mohammadi-Nejad G, Zebarjadi A. Haplotype analysis of QTLs attributed to salinity tolerance in wheat (Triticum aestivum). Mol Biol Rep, 2013, 40: 4661–4671[17]Yu G T, Wang T, Anderson K M, Harris M O, Cai X W, Xu S S. Evaluation and haplotype analysis of elite synthetic hexaploid wheat lines for resistance to Hessian fly. Crop Sci, 2012, 52: 752–763[18]王裕中. 纹枯病及其抗性的研究. 见: 庄巧生. 杜振华主编. 中国小麦育种研究进展(1991–1995). 北京:中国农业出版社, 1996. pp 266–274Wang Y Z. Study on wheat sharp eyespot and its resistance. In: Zhuang Q S, Du Z H, eds. Advance of wheat Breeding in Chia. Beijing: China Agriculture Press, 1996. pp 266–274 (in Chinese)[19]李洪连, 袁红霞, 刁晓葛, 李锁平, 胡玉欣, 王守正. 河南小麦主要品种纹枯病抗性评价. 河南农业大学学报, 1998, 32(2): 107–111Li H L, Yuan H X, Diao X G, Li S P, Hu Y X, Wang S Z. Evaluation on the resistance of major wheat varieties in Hernan province to sharp eyespot. Acta Agric Univ Hernanensis, 1998, 32(2): 107–111 (in Chinese with English abstract)[20]Ma Z Q, Sorrells M E, Tanksley S D. RFLP markers linked to powdery mildew resistance genes Pm1, Pm2, Pm3, and Pm4 in wheat. Genome, 1994, 37: 871–875[21]Sourdille P, Singh S, Cadalen T, Brown-Guedira G L, Gay G, Qi L L, Gill B S, Dufour P, Murigneux A, Bernard M. Microsatellite-based deletion bin system for the establishment of genetic-physical map relationships in wheat (Triticum aestivum L.). Funct Integr Genpmics, 2004, 4: 12–25[22]Somers D J, Isaac P, Edwards K. A high-density microsatellite consensus map for bread wheat (Triticum aestivum L.). Theor Appl Genet, 2004, 109: 1105–1114[23]Khlestkna E K, Röder M S, Efremova T T, Börner A, Shumny V K. The genetic diversity of old and modern Siberian varieties of common spring wheat as determined by microsatellite markers. Plant Breed, 2004, 123: 122–127[24]Peng J H, Bai Y, Haley S D, Lapitan N L V. Microsatellite-based molecular diversity of bread wheat germplasm and association mapping of wheat resistance to Russia wheat aphid. Genetica, 2009, 135: 95–122[25]Liu J C, Liu L, Hou N, Zhang A M, Liu C G. Genetic diversity of wheat gene pool of recurrent selection assessed by microsatellite markers and morphological traits. Euphytica, 2007, 155: 249–258[26]李斯深, 王洪刚, 刘爱新, 李宪彬, 李安飞, 刘树兵. 小麦种质抗纹枯病性的鉴定和遗传分析. 西北植物学报, 2001, 21: 1004–1008Li S S, Wang H G, Liu A X, Li X B, Li A F, Liu S B. Indentification and genetic analysis of resistance to sharp eyespot (Rhizoctonia cerealis) in winter wheat germplasm. Acta Bot Boreal-Occident Sin, 2001, 21: 1004–1008 (in Chinese with English abstract)[27]He X Y, Singh P K, Duveiller S, Schlang N, Dreisigacker S, Singh R P. Identification and characterization of international Fusarium head blight screening nurseries of wheat at CIMMYT, Mexico. Eur J Plant Pathol, 2013, 136: 123–134 |
| [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] | 胡川, 赵凯男, 黄修利, 吴金芝, 任开明, 王贺正, 付国占, 黄明, 李友军. 一次灌溉下耕作方式和氮肥用量对旱地小麦产量和品质的影响[J]. 作物学报, 2026, 52(6): 1830-1846. |
| [3] | 陈雪燕, 何华川, 李政嘉, 董新盼, 李藕琪, 刘小云, 李丹萍, 陈志伟, 刘国霞, 吕胜源, 吴印莹, 赵振东, 曹新有, 万何平. 水培盐碱复合胁迫下‘济麦60’苗期根系有机酸分泌动态变化及其转录调控机制[J]. 作物学报, 2026, 52(6): 1859-1875. |
| [4] | 高沛阳, 李瑾璇, 董宇奎, 石玉, 张振, 张永丽. 测墒补灌下小麦分蘖发生和成穗对施氮量的响应[J]. 作物学报, 2026, 52(6): 1847-1858. |
| [5] | 郑玉珍, 齐飞艳, 孙子淇, 刘华, 秦利, 石磊, 王娟, 汪蒙蒙, 韩锁义, 徐静, 苗利娟, 黄冰艳, 董文召, 郑峥, 张新友. 花生籽仁总超长链脂肪酸和7种脂肪酸组分的QTL定位[J]. 作物学报, 2026, 52(6): 1646-1657. |
| [6] | 张献丰, 郭利建, 李康春, 孔斌雪, 刘玉芳, 车卓, 杨德龙. 小麦ABHD6基因家族鉴定与粒重功能标记开发[J]. 作物学报, 2026, 52(6): 1711-1727. |
| [7] | 翟胜男, 曹新有, 李豪圣, 李吉虎, 李法计, 刘金栋, 夏先春, 吕莹莹, 马瑞峰, 王颖, 耿洪伟, 刘建军. 小麦Pod-A1、Pod-D1和Pod-2D位点等位变异对籽粒过氧化物酶活性的遗传效应分析[J]. 作物学报, 2026, 52(6): 1593-1603. |
| [8] | 习千辉, 徐梓瑗, 刘梦梦, 王宏艺, 郎凯琳, 井震海, 陈锋, 赵磊. 小麦籽粒铜含量的全基因组关联分析及候选基因预测[J]. 作物学报, 2026, 52(6): 1604-1617. |
| [9] | 王壮壮, 武紫君, 张永新, 张芯源, 袁丽雪, 陈如雪, 刘世举, 段剑钊, 冯伟, 王同朝, 王永华. 豫东南黏壤潮土区水氮优化协同提高冬小麦产量和氮素利用效率[J]. 作物学报, 2026, 52(5): 1501-1521. |
| [10] | 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. |
| [11] | 何万龙, 耿洪伟, 张飞飞, 米克热阿依·阿巴白克热, 罗紫洋, 李鹏程, 周钊宇, 程宇坤. 基于深度学习的小麦重要病害图像识别系统的研究[J]. 作物学报, 2026, 52(5): 1401-1417. |
| [12] | 张振, 冯连杰, 石玉, 于振文, 张永丽. 节水补灌下不同穗型小麦产量形成差异研究[J]. 作物学报, 2026, 52(5): 1522-1535. |
| [13] | 田春艳, 陆鑫, 吴才文, 徐超华, 刘家勇, 边芯, 桃联安. 基于荧光SSR的甘蔗创新种质遗传多样性分析及育种潜力评估[J]. 作物学报, 2026, 52(4): 1057-1072. |
| [14] | 徐建霞, 丁延庆, 曹宁, 程斌, 高旭, 李文贞, 王若若, 王磊, 张立异. 397份高粱种质资源在贵州表型多样性分析及综合评价[J]. 作物学报, 2026, 52(4): 1073-1087. |
| [15] | 乔宇馨, 李程越, 康晓玉, 张鑫琪, 贾绍辉, 刘倩, 曹亚丽, 史鑫蕊, 郝兴宇, 李萍. 基于APSIM模型的长期免耕秸秆覆盖对旱地小麦增产效应研究[J]. 作物学报, 2026, 52(4): 1181-1192. |
|
||