Evaluating commercial maize hybrids for resistance to gibberella ear rot

被引:33
|
作者
Schaafsma, AW [1 ]
Nicol, RW
Reid, LM
机构
[1] Ridgetown Coll, Ridgetown, ON N0P 2C0, Canada
[2] Agr & Agri Food Canada, Cent Expt Farm, Eastern Ceral & Oilseed Res Ctr, Ottawa, ON K1A 0C6, Canada
关键词
Fusarium graminearum; kernel inoculation; mold severity; silk inoculation; Zea mays;
D O I
10.1023/A:1008629629069
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
An integral component of breeding maize for resistance to Fusarium graminearum ear rot is the identification of resistant genotypes. Since natural infection is not consistent from year to year, maize researchers must use manual techniques to inoculate the plant material with fungal spores. Information is presented here on site resistance of commercial maize hybrids to F. graminearum over three years and at two locations. Additionally, results of an investigation on the two predominant techniques of inoculating maize, the silk channel and kernel inoculation methods, are reported. Of 61 commercial hybrids tested, only two were ranked as moderately resistant to the fungus by both inoculation methods. These two hybrids also had a stable response to the F. graminearum infection across seven environments when the silk channel inoculation method was used. The majority of the hybrids were ranked as either susceptible or highly susceptible and less than 10% of the hybrids had a stable response to fungal infection. In the investigation of methodology, it was concluded that silk browning would be the least laborious way to identify the ideal time to complete silk channel inoculations. It was found that kernel inoculations using the pin inoculation method should take place between 11 and 15 days after 50% silking to achieve proper hybrid discrimination. Mist irrigation increased mold severity ratings and resulted in greater discrimination between hybrids with varying levels of resistance to F. graminearum infection.
引用
收藏
页码:737 / 746
页数:10
相关论文
共 50 条
  • [31] Gibberella ear rot of maize (Zea mays) in Nepal:: Distribution of the mycotoxins nivalenol and deoxynivalenol in naturally and experimentally infected maize
    Desjardins, Anne E.
    Busman, Mark
    Manandhar, Gyanu
    Jarosz, Andrew M.
    Manandhar, Hira K.
    Proctor, Robert H.
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2008, 56 (13) : 5428 - 5436
  • [32] Inheritance of maize resistance to gibberella and fusarium ear rots and kernel contamination with deoxynivalenol and fumonisins
    Butron, A.
    Reid, L. M.
    Santiago, R.
    Cao, A.
    Malvar, R. A.
    PLANT PATHOLOGY, 2015, 64 (05) : 1053 - 1060
  • [33] Tissue-Specific Components of Resistance to Aspergillus Ear Rot of Maize
    Mideros, Santiago X.
    Windham, Gary L.
    Williams, W. Paul
    Nelson, Rebecca J.
    PHYTOPATHOLOGY, 2012, 102 (08) : 787 - 793
  • [34] A META-ANALYSIS OF QTL ASSOCIATED WITH EAR ROT RESISTANCE IN MAIZE
    Xiang, K.
    Zhang, Z. M.
    Reid, L. M.
    Zhu, X. Y.
    Yuan, G. S.
    Pan, G. T.
    MAYDICA, 2010, 55 (3-4): : 281 - 290
  • [35] Fumonisin B1 accumulation and severity of fusarium ear rot and gibberella ear rot in food-grade corn hybrids in Ontario after inoculation according to two methods
    Schaafsma, A. W.
    Tamburic-Illincic, L.
    Reid, L. M.
    CANADIAN JOURNAL OF PLANT PATHOLOGY, 2006, 28 (04) : 548 - 557
  • [36] Detection and verification of quantitative trait loci for resistance to Fusarium ear rot in maize
    Chen, Jiafa
    Ding, Junqiang
    Li, Huimin
    Li, Zhimin
    Sun, Xiaodong
    Li, Jingjing
    Wang, Ruixia
    Dai, Xiaodong
    Dong, Huafang
    Song, Weibin
    Chen, Wei
    Xia, Zongliang
    Wu, Jianyu
    MOLECULAR BREEDING, 2012, 30 (04) : 1649 - 1656
  • [37] Beneficial Rhizobacterium Triggers Induced Systemic Resistance of Maize to Gibberella Stalk Rot via Calcium Signaling
    Cao, Yu
    Wang, Yinying
    Gui, Cuilin
    Nguvo, Kilemi Jessee
    Ma, Liang
    Wang, Qing
    Shen, Qirong
    Zhang, Ruifu
    Gao, Xiquan
    MOLECULAR PLANT-MICROBE INTERACTIONS, 2023, 36 (08) : 516 - 528
  • [38] Phenolics in maize genotypes differing in susceptibility to Gibberella stalk rot (Fusarium graminearum schwabe)
    Santiago, Rogelio
    Reid, Lana M.
    Arnason, John T.
    Zhu, XiaoYang
    Martinez, Noelia
    Malvar, Rosa A.
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2007, 55 (13) : 5186 - 5193
  • [39] A Combination of QTL Mapping and GradedPool-Seq to Dissect Genetic Complexity for Gibberella Ear Rot Resistance in Maize Using an IBM Syn10 DH Population
    Yuan, Guangsheng
    Li, Youliang
    He, Dandan
    Shi, Jiaxin
    Yang, Yan
    Du, Juan
    Zou, Chaoying
    Ma, Langlang
    Pan, Guangtang
    Shen, Yaou
    PLANT DISEASE, 2023, 107 (04) : 1115 - 1121
  • [40] QTL mapping and candidate genes for resistance to Fusarium ear rot and fumonisin contamination in maize
    Maschietto, Valentina
    Colombi, Cinzia
    Pirona, Raul
    Pea, Giorgio
    Strozzi, Francesco
    Marocco, Adriano
    Rossini, Laura
    Lanubile, Alessandra
    BMC PLANT BIOLOGY, 2017, 17