Elucidating genotype x environment interactions for grain iron and zinc content in a subset of pearl millet (Pennisetum glaucum) recombinant inbred lines

被引:0
|
作者
Singhal, Tripti [2 ,3 ]
Satyavathi, C. Tara [4 ]
Singh, S. P. [1 ,2 ]
Sankar, Mukesh [2 ]
Mallik, M. [2 ]
Thribhuvan, R. [2 ]
Yadav, Sunaina [2 ]
Bharadwaj, C. [2 ]
机构
[1] ICAR IARI, Div Genet, New Delhi 110012, India
[2] Indian Agr Res Inst, ICAR, New Delhi, India
[3] Amity Univ Campus, Amity Inst Biotechnol, Sect 125, Noida, India
[4] Indian Inst Millets Res, ICAR, Hyderabad 500030, Telangana, India
来源
CROP & PASTURE SCIENCE | 2024年 / 75卷 / 03期
关键词
AMMI; GEI; GGE; iron; multi-environment; pearl millet; stability; zinc; TURFGRASS PERFORMANCE TRIALS; MULTIPLICATIVE INTERACTION; BIPLOT ANALYSIS; YIELD; MODEL; STABILITY; SELECTION;
D O I
10.1071/CP23120
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Context. Micronutrient enrichment of pearl millet (Pennisetum glaucum (L.) R.Br.), an important food source in arid and semi-arid Asia and Africa, can be achieved by using stable genotypes with high iron and zinc content in breeding programs. Aims. We aimed to identify stable expression of high grain iron and zinc content in pearl millet lines across environments. Methods. In total, 29 genotypes comprising 25 recombinant inbred lines (RILs), two parental lines and two checks were grown and examined from 2014 to 2016 in diverse environments. Best performing genotypes were identified through genotype + genotype x environment interaction (GGE) biplot and additive main-effects and multiplicative interaction (AMMI) model analysis. Key results. Analysis of variance showed highly significant (P < 0.01) variations. The GGE biplot accounted for 87.26% (principal component 1, PC1) and 9.64% (PC2) of variation for iron, and 87.04% (PC1) and 6.35% (PC2) for zinc. On the basis of Gollob's F validation test, three interaction PCs were significant for both traits. After 1000 validations, the real root-mean-square predictive difference was computed for model diagnosis. The GGE biplot indicated two winning RILs (G4, G11) across environments, whereas AMMI model analysis determined 10 RILs for iron (G12, G23, G24, G7, G15, G13, G25, G11, G4, G22) for seven for zinc (G14, G15, G4, G7, G11, G4, G26) as best performers. The most stable RILs across environments were G12 for iron and G14 for zinc. Conclusions. High iron and zinc lines with consistent performance across environments were identified and can be used in the development of biofortified hybrids. Implications The findings suggest that AMMI and GGE, as powerful and straightforward techniques, may be useful in selecting better performing genotypes.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Higher iron pearl millet (Pennisetum glaucum L.) provides more absorbable iron that is limited by increased polyphenolic content
    Elad Tako
    Spenser M Reed
    Jessica Budiman
    Jonathan J Hart
    Raymond P Glahn
    Nutrition Journal, 14
  • [22] Higher iron pearl millet (Pennisetum glaucum L.) provides more absorbable iron that is limited by increased polyphenolic content
    Tako, Elad
    Reed, Spenser M.
    Budiman, Jessica
    Hart, Jonathan J.
    Glahn, Raymond P.
    NUTRITION JOURNAL, 2015, 14
  • [23] Effect of food processing of pearl millet (Pennisetum glaucum) IKMP-5 on the level of phenolics, phytate, iron and zinc
    Eyzaguirre, Romina Zanabria
    Nienaltowska, Katarzyna
    de Jong, Linda E. Q.
    Hasenack, Birgit B. E.
    Nout, M. J. Robert
    JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 2006, 86 (09) : 1391 - 1398
  • [24] Prospects of breeding biofortified pearl millet with high grain iron and zinc content
    Velu, G.
    Rai, K. N.
    Muralidharan, V.
    Kulkarni, V. N.
    Longvah, T.
    Raveendran, T. S.
    PLANT BREEDING, 2007, 126 (02) : 182 - 185
  • [25] DETECTION OF CROSS OVER GENOTYPE X ENVIRONMENT INTERACTIONS IN PEARL-MILLET
    VIRK, DS
    MANGAT, BK
    EUPHYTICA, 1991, 52 (03) : 193 - 199
  • [26] Genetic variation and diversity for grain iron, zinc, protein and agronomic traits in advanced breeding lines of pearl millet [Pennisetum glaucum (L.) R. Br.] for biofortification breeding
    Pujar, Mahesh
    Govindaraj, Mahalingam
    Gangaprasad, S.
    Kanatti, A.
    Shivade, H.
    GENETIC RESOURCES AND CROP EVOLUTION, 2020, 67 (08) : 2009 - 2022
  • [27] Genetic variation and diversity for grain iron, zinc, protein and agronomic traits in advanced breeding lines of pearl millet [Pennisetum glaucum (L.) R. Br.] for biofortification breeding
    Mahesh Pujar
    Mahalingam Govindaraj
    S. Gangaprasad
    A. Kanatti
    H. Shivade
    Genetic Resources and Crop Evolution, 2020, 67 : 2009 - 2022
  • [28] Genetic elucidations of grain iron, zinc and agronomic traits by generation mean analysis in pearl millet [Pennisetum glaucum (L.) R. Br.]
    Yadav, Sunaina
    Singh, S. P.
    Singhal, Tripti
    Sankar, S. M.
    Anju-Mahendru, Singh
    Bhargavi, H. A.
    Aavula, Naveen
    Goswami, Suneha
    Satyavathi, C. Tara
    JOURNAL OF CEREAL SCIENCE, 2023, 113
  • [29] Genotype-environment interaction for grain iron and zinc concentration in recombinant inbred lines of a bread wheat (Triticum aestivum L.) cross
    Gopalareddy, K.
    Singh, Anju M.
    Ahlawat, Arvind K.
    Singh, Gyanendra P.
    Jaiswal, Jai P.
    INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 2015, 75 (03) : 307 - 313
  • [30] Patterns of pearl millet genotype-by-environment interaction for yield performance and grain iron (Fe) and zinc (Zn) concentrations in Sudan
    Bashir, Elfadil M. A.
    Ali, Abdelbagi M.
    Ali, Adam M.
    Ismail, Mohamed I.
    Parzies, Heiko K.
    Haussmann, Bettina I. G.
    FIELD CROPS RESEARCH, 2014, 166 : 82 - 91