Assessing onion genotypes stability and potential in diverse Indian environments

被引:0
作者
Gupta, Amar Jeet [1 ]
Khade, Yogesh P. [1 ]
Benke, Ashwini P. [1 ]
Mainkar, Pawan [1 ]
Gedam, Pranjali A. [1 ]
Mahajan, Vijay [1 ]
Singh, Major [1 ]
机构
[1] ICAR Directorate On & Garl Res ICAR DOGR, Pune, Maharashtra, India
来源
COGENT FOOD & AGRICULTURE | 2024年 / 10卷 / 01期
关键词
Allium cepa; stability; AMMI; GEI; stable lines; cluster analysis; METs; ALLIUM-CEPA L; BIPLOT ANALYSIS; GENETIC DIVERSITY; YIELD STABILITY; AMMI ANALYSIS; GRAIN-YIELD; PARAMETERS; CULTIVARS; TRIALS;
D O I
10.1080/23311932.2024.2360606
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
The current study investigates how genotype by environment interaction (GEI) complicates superior cultivar selection in onion breeding. Employing a randomized block design with three replications, we assessed GEI effects on onion yield and identified adaptable, stable genotypes. The sensitivity of onion genotypes to environmental changes significantly influences yield and quality, necessitating adaptability across diverse climatic conditions. We conducted multilocation trials evaluating 28 onion genotypes across four distinct locations, each representing varying environmental factors. Through phylogenetic analysis, genotypes were categorized into four clusters: cluster I (3), cluster II (4), cluster III (15), and cluster IV (6). Rigorous assessment of yield performance, employing additive main effects and multiplicative interaction models, particularly the AMMI model, revealed five genotypes demonstrating remarkable stability and potential across diverse environmental conditions: RO-1626, RO-1623, RO-1639, RO-1625, and RO-1627. Notably, genotypes from cluster II exhibited the highest marketable yield (277.06 q/ha) and total yield (295.66 q/ha), indicating adaptability to varied environmental conditions. These findings hold promise for breeding high-yielding onion varieties resilient to diverse environments, ensuring stability, adaptability, and quality in cultivation.
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页数:14
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共 68 条
  • [1] Abate Mohammed, 2020, Journal of Plant Breeding and Crop Science, V12, P8, DOI 10.5897/JPBCS2019.0839
  • [2] Nonparametric phenotypic stability analysis in advanced barley (Hordeum vulgare L.) genotypes
    Abdipour M.
    Vaezi B.
    Younessi-Hamzekhanlu M.
    Ramazani S.H.R.
    [J]. Journal of Crop Science and Biotechnology, 2017, 20 (4) : 305 - 314
  • [3] Adebola P. O., 2013, Journal of Plant Breeding and Crop Science, V5, P182
  • [4] Admassu Solomon, 2008, Asian Journal of Plant Sciences, V7, P163
  • [5] Akter A., 2015, Bangladesh Rice J, V19, P1, DOI [10.3329/brj.v19i1.25213, DOI 10.3329/BRJ.V19I1.25213]
  • [6] Annicchiarico P., 2002, Genotype x environment interactions: Challenges and opportunities for plant breeding and cultivar recommendations
  • [7] APEDA, 2023, Market intelligence report for pomegranatesAgricultural and Processed Food Products Export Development Authority
  • [8] Arya Vichitra Kumar, 2017, Indian Journal of Agricultural Research, V51, P128, DOI [10.18805/ijare.v0iOF.7634, 10.18805/ijare.v0iof.7634]
  • [9] Baalma D., 2021, European Journal of Agriculture and Food Sciences, V3, P112, DOI [10.24018/ejfood.2021.3.1.233, DOI 10.24018/EJFOOD.2021.3.1.233]
  • [10] Bal S., 2021, Journal of Pharmacognosy and Phytochemistry, V10, P121