Genetic analysis of tropical maize inbred lines for resistance to maize lethal necrosis disease

被引:0
|
作者
Yoseph Beyene
Manje Gowda
L. M. Suresh
Stephen Mugo
Michael Olsen
Sylvester O. Oikeh
Collins Juma
Amsal Tarekegne
Boddupalli M. Prasanna
机构
[1] International Maize and Wheat Improvement Center (CIMMYT),
[2] African Agricultural Technology Foundation (AATF),undefined
[3] International Maize and Wheat Improvement Center (CIMMYT),undefined
来源
Euphytica | 2017年 / 213卷
关键词
Artificial inoculation; Combining ability; Diallel mating; Maize; MLN resistance;
D O I
暂无
中图分类号
学科分类号
摘要
Maize lethal necrosis (MLN) disease is a recent outbreak in eastern Africa and has emerged as a significant threat to maize production in the region. The disease is caused by the co-infection of Maize chlorotic mottle virus and any member of potyviridae family. A total of 28 maize inbred lines with varying levels of tolerance to MLN were crossed in a half-diallel mating design, and the resulting 340 F1 crosses and four commercial checks were evaluated under MLN artificial inoculation at Naivasha, Kenya in 2015 and 2016 using an alpha lattice design with two replications. The objectives of the study were to (i) investigate the magnitude of general combining ability variance (σGCA2) and specific combining ability variance (σSCA2) and their interaction with years; (ii) evaluate the efficiencies of GCA based prediction and hybrid performance by means of a cross-validation procedure; (iii) estimate trait correlations in the hybrids; and (iv) identify the MLN tolerant single cross hybrids to be used as female parents for three-way cross hybrids. Results of the combined analysis of variance revealed that both GCA and SCA effects were significant (P < 0.05) for all traits except for ear rot. For MLN scores at early and late stages, GCA effects were 2.5–3.5 times higher than SCA effects indicating that additive gene action is more important than non-additive gene action. The GCA based prediction efficiency for MLN resistance and grain yield accounted for 67–90% of the variations in the hybrid performance suggesting that GCA-based prediction can be proposed to predict MLN resistance and grain yield prior to field evaluation. Three parents, CKDHL120918, CML550, and CKLTI0227 with significant GCA effects for GY (0.61–1.21; P < 0.05) were the most resistant to MLN. Hybrids “CKLTI0227 × CML550”, “CKDHL120918 × CKLTI0138”, and “CKDHL120918 × CKLTI0136” ranked among the best performing hybrids with grain yield of 6.0–6.6 t/ha compared with mean yield of commercial check hybrids (0.6 t/ha). The MLN tolerant inbred lines and single cross hybrids identified in this study could be used to improve MLN tolerance in both public and private sector maize breeding programs in eastern Africa.
引用
收藏
相关论文
共 50 条
  • [41] Diallel analysis of maize inbred lines with emphasis on resistance to leaf diseases
    Nihei, Thiago Hideyo
    Ferreira, Josue Maldonado
    PESQUISA AGROPECUARIA BRASILEIRA, 2012, 47 (03) : 369 - 377
  • [42] RESISTANCE OF INBRED MAIZE LINES AND SORGHUM SPECIES TO HUNGARIAN MAIZE PATHOGENIC POTYVIRUSES
    KOVACS, G
    HOANG, NG
    GABORJANYI, R
    NOVENYTERMELES, 1991, 40 (04): : 289 - 294
  • [43] Genetic analysis of resistance to nematodes in inbred maize (Zea mays L.) and maize hybrids
    Kagoda, Frank
    Derera, John
    Tongoona, Pangirayi
    Coyne, Daniel L.
    Lorenzen, J.
    EUPHYTICA, 2011, 182 (03) : 377 - 393
  • [44] Genetic analysis of resistance to nematodes in inbred maize (Zea mays L.) and maize hybrids
    Frank Kagoda
    John Derera
    Pangirayi Tongoona
    Daniel L. Coyne
    J. Lorenzen
    Euphytica, 2011, 182 : 377 - 393
  • [45] Major QTLs for disease resistance and other traits identified in recombinant inbred lines from tropical maize hybrids
    Moon, HG
    Brewbaker, JL
    Lu, XW
    MAYDICA, 1999, 44 (04): : 301 - 311
  • [46] RFLP detection of genetic variation of maize inbred lines
    Li, XH
    Fu, JH
    Zhang, SH
    Yuan, LX
    Li, MS
    ACTA BOTANICA SINICA, 2000, 42 (11): : 1156 - 1161
  • [47] Characterization of maize inbred lines by using genetic markers
    Nagy, E
    Gyulai, G
    Marton, CL
    NOVENYTERMELES, 2000, 49 (06): : 587 - 597
  • [48] Maize Inbred Lines Resistance to Fusarium Ear Rot
    Branimir Šimić
    Jasenka Ćosić
    Vlatka Rozman
    Anita Liska
    Cereal Research Communications, 2007, 35 : 293 - 296
  • [49] Genetic diversity of tropical maize inbred lines combining resistance to Striga hermonthica with drought tolerance using SNP markers
    Mengesha, Wende Abera
    Menkir, Abebe
    Unakchukwu, Nnanna
    Meseka, Silvestro
    Farinola, Adetutu
    Girma, Gezahegn
    Gedil, Melaku
    PLANT BREEDING, 2017, 136 (03) : 338 - 343
  • [50] SELECTION FOR APHID RESISTANCE WITHIN INBRED LINES OF MAIZE
    WALTER, EV
    BRUNSON, AM
    JOURNAL OF THE AMERICAN SOCIETY OF AGRONOMY, 1946, 38 (11): : 974 - 977