Maize (Zea mays L.) is one of the worldwide food crops and plays a fundamental role due to its importance in terms of food, economics, and industry. However, its yields in farmers’ fields in Burkina Faso are low. This is due to production of this crop has low national yields, mainly due to climate variability, and low soil fertility. It is therefore essential to create new high-yielding maize varieties that are stable and adapted to the country’s agro-climatic conditions. This study aimed to contribute to improving maize production by identifying new high-performing and stable hybrids. The plant material, consisting of 36 single-cross white hybrids derived from a half-diallel cross of nine lines were evaluated using a three-replicate alpha-lattice experimental design. Grain yield and its components were recorded during evaluation. The results showed significant difference (p < 0.05) between the hybrids studied, environments and study years, as well as their interaction for most of the traits evaluated. T02058 x ELN41-1-1-4, PI601574 x T02058, and VL05616 x ELN41-1-1-4 were identified as high-performing hybrids and stable hybrids across environments. Four hybrids including, PI601574 x T02058, VL05616 x ELN41-1-1-4, PI601574 x ELN41-1-1-4, and PI601500 x T02058, recorded greater yield than the check Bondofa. Their yield advantage compared to Bondofa was at least 30%.
| Published in | American Journal of BioScience (Volume 14, Issue 2) |
| DOI | 10.11648/j.ajbio.20261402.11 |
| Page(s) | 20-28 |
| Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
| Copyright |
Copyright © The Author(s), 2026. Published by Science Publishing Group |
Maize, Burkina Faso, Hybrids, Performance, Stability
N° | Genotype | Hybrids | N° | Genotype | Hybrids |
|---|---|---|---|---|---|
1 | H1 | PI601361 x PI601563 | 19 | H19 | VL05616 x VL0511298 |
2 | H2 | PI601361 x VL05616 | 20 | H20 | VL05616 x T02058 |
3 | H3 | PI601361 x PI601362 | 21 | H21 | VL05616 x ELN41-1-1-4 |
4 | H4 | PI601361 x PI601500 | 22 | H22 | PI601362 x PI601500 |
5 | H5 | PI601361 x PI601574 | 23 | H23 | PI601362 x PI601574 |
6 | H6 | PI601361 x VL0511298 | 24 | H24 | PI601362 x VL0511298 |
7 | H7 | PI601361 x T02058 | 25 | H25 | PI601362 x T02058 |
8 | H8 | PI601361 x ELN41-1-1-4 | 26 | H26 | PI601362 x ELN41-1-1-4 |
9 | H9 | PI601563 x VL05616 | 27 | H27 | PI601500 x PI601574 |
10 | H10 | PI601563 x PI601362 | 28 | H28 | PI601500 x VL0511298 |
11 | H11 | PI601563 x PI601500 | 29 | H29 | PI601500 x T02058 |
12 | H12 | PI601563 x PI601574 | 30 | H30 | PI601500 x ELN41-1-1-4 |
13 | H13 | PI601563 x VL0511298 | 31 | H31 | PI601574 x VL0511298 |
14 | H14 | PI601563 x T02058 | 32 | H32 | PI601574 x T02058 |
15 | H15 | PI601563 x ELN41-1-1-4 | 33 | H33 | PI601574 x ELN41-1-1-4 |
16 | H16 | VL05616 x PI601362 | 34 | H34 | VL0511298 x T02058 |
17 | H17 | VL05616 x PI601500 | 35 | H35 | VL0511298 x ELN41-1-1-4 |
18 | H18 | VL05616 x PI601574 | 36 | H36 | T02058 x ELN41-1-1-4 |
N° | Genotype | Varieties | Type of varieties |
|---|---|---|---|
1 | C1 | AGRA 2 | Hybrid |
2 | C2 | AGRA 6 | Hybrid |
3 | C3 | Kabako | Hybrid |
4 | C4 | Barka | Composite |
5 | C5 | Bondofa | Hybrid |
6 | C6 | Espoir | Composite |
7 | C7 | KEB | Composite |
8 | C8 | Komsaya | Hybrid |
9 | C9 | Wari | Composite |
Source | DF | ED | EL | NGR | NR | GY |
|---|---|---|---|---|---|---|
Geno | 44 | 7,93*** | 3,06*** | 2,83*** | 39,96*** | 3,39*** |
Env | 2 | 31,95*** | 62,50*** | 61,46*** | 6,95* | 16,61** |
Year | 1 | 334,66*** | 59,94*** | 0,01 | 122,64*** | 20,75*** |
Geno*Env | 88 | 2,35*** | 1,06 | 1,29 | 1,99*** | 2,17*** |
Env*Year | 2 | 232,61*** | 81,89*** | 46,44*** | 50,92*** | 0,48 |
Geno*Year | 44 | 1,24 | 0,94 | 1,20 | 1,30 | 1,15 |
Geno*Env*Year | 88 | 1,40* | 0,85 | 1,13 | 1,23 | 1,29 |
HYBRIDS | GENO | GY (kg/ha) | HS (%) | HYBRIDS | GENO | GY (kg/ha) | HS (%) |
|---|---|---|---|---|---|---|---|
Bondofa | C5 | 4701,86 | 0,00 | Bondofa | C5 | 4701,86 | 0,00 |
PI601574 x T02058 | H32 | 6515,70 | 38,58 | PI601500 x ELN41-1-1-4 | H30 | 5457,07 | 16,06 |
VL05616 x ELN41-1-1-4 | H21 | 6267,64 | 33,30 | VL05616 x PI601362 | H16 | 5447,40 | 15,86 |
PI601574 x ELN41-1-1-4 | H33 | 6196,12 | 31,78 | PI601362 x T02058 | H25 | 5396,25 | 14,77 |
PI601500 x T02058 | H29 | 6111,37 | 29,98 | PI601361 x VL05616 | H2 | 5373,03 | 14,27 |
PI601361 x PI601563 | H1 | 5925,55 | 26,03 | PI601563 x VL0511298 | H13 | 5354,38 | 13,88 |
T02058 x ELN41-1-1-4 | H36 | 5870,43 | 24,85 | PI601361 x PI601574 | H5 | 5298,70 | 12,69 |
VL05616 x PI601574 | H18 | 5837,40 | 24,15 | PI601362 x PI601574 | H23 | 5136,27 | 9,24 |
PI601574 x VL0511298 | H31 | 5827,44 | 23,94 | VL05616 x PI601500 | H17 | 5102,94 | 8,53 |
PI601563 x ELN41-1-1-4 | H15 | 5826,36 | 23,92 | PI601500 x VL0511298 | H28 | 5001,69 | 6,38 |
VL0511298 x T02058 | H34 | 5825,97 | 23,91 | PI601361 x ELN41-1-1-4 | H8 | 5001,41 | 6,37 |
VL05616 x VL0511298 | H19 | 5709,68 | 21,43 | PI601361 x PI601362 | H3 | 4984,57 | 6,01 |
PI601563 x T02058 | H14 | 5603,38 | 19,17 | PI601362 x VL0511298 | H24 | 4827,93 | 2,68 |
VL05616 x T02058 | H20 | 5594,72 | 18,99 | PI601563 x VL05616 | H9 | 4812,47 | 2,35 |
PI601563 x PI601500 | H11 | 5579,58 | 18,67 | PI601563 x PI601574 | H12 | 4789,81 | 1,87 |
PI601500 x PI601574 | H27 | 5571,65 | 18,50 | PI601361 x VL0511298 | H6 | 4760,21 | 1,24 |
PI601362 x ELN41-1-1-4 | H26 | 5558,51 | 18,22 | PI601361 x PI601500 | H4 | 4640,45 | -1,31 |
PI601361 x T02058 | H7 | 5505,64 | 17,09 | PI601563 x PI601362 | H10 | 4411,19 | -6,18 |
VL0511298 x ELN41-1-1-4 | H35 | 5467,52 | 16,28 | PI601362 x PI601500 | H22 | 4205,59 | -10,55 |
ANOVA | Analysis of Variance |
ED | Ear Diameter |
EL | Ear Length |
GCA | General Combining Ability |
GENO | Genotype |
GY | Grain Yield |
INERA | Institute of Environment and Agricultural Research |
HDA | Hounde in Rainy Season |
HS | Standard Heterosis |
NGR | Number of Grains per Row |
NR | Number of Rows |
VKA | Kou Valley in Rainy Season |
VKC | Kou Valley in Dry Season |
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APA Style
Siaka, T., Abdalla, D., Yassine, S. K., Odette, B. T., Lamine, T., et al. (2026). Performance and Stability of Maize (Zea mays L.) Hybrids Derived from the Combination of Tropical and Temperate Lines in Burkina Faso. American Journal of BioScience, 14(2), 20-28. https://doi.org/10.11648/j.ajbio.20261402.11
ACS Style
Siaka, T.; Abdalla, D.; Yassine, S. K.; Odette, B. T.; Lamine, T., et al. Performance and Stability of Maize (Zea mays L.) Hybrids Derived from the Combination of Tropical and Temperate Lines in Burkina Faso. Am. J. BioScience 2026, 14(2), 20-28. doi: 10.11648/j.ajbio.20261402.11
AMA Style
Siaka T, Abdalla D, Yassine SK, Odette BT, Lamine T, et al. Performance and Stability of Maize (Zea mays L.) Hybrids Derived from the Combination of Tropical and Temperate Lines in Burkina Faso. Am J BioScience. 2026;14(2):20-28. doi: 10.11648/j.ajbio.20261402.11
@article{10.11648/j.ajbio.20261402.11,
author = {Tiama Siaka and Dao Abdalla and Siri Kady Yassine and Bonkoungou Tégawendé Odette and Traoré Lamine and Sawadogo Mahamadou},
title = {Performance and Stability of Maize (Zea mays L.) Hybrids Derived from the Combination of Tropical and Temperate Lines in Burkina Faso},
journal = {American Journal of BioScience},
volume = {14},
number = {2},
pages = {20-28},
doi = {10.11648/j.ajbio.20261402.11},
url = {https://doi.org/10.11648/j.ajbio.20261402.11},
eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajbio.20261402.11},
abstract = {Maize (Zea mays L.) is one of the worldwide food crops and plays a fundamental role due to its importance in terms of food, economics, and industry. However, its yields in farmers’ fields in Burkina Faso are low. This is due to production of this crop has low national yields, mainly due to climate variability, and low soil fertility. It is therefore essential to create new high-yielding maize varieties that are stable and adapted to the country’s agro-climatic conditions. This study aimed to contribute to improving maize production by identifying new high-performing and stable hybrids. The plant material, consisting of 36 single-cross white hybrids derived from a half-diallel cross of nine lines were evaluated using a three-replicate alpha-lattice experimental design. Grain yield and its components were recorded during evaluation. The results showed significant difference (p < 0.05) between the hybrids studied, environments and study years, as well as their interaction for most of the traits evaluated. T02058 x ELN41-1-1-4, PI601574 x T02058, and VL05616 x ELN41-1-1-4 were identified as high-performing hybrids and stable hybrids across environments. Four hybrids including, PI601574 x T02058, VL05616 x ELN41-1-1-4, PI601574 x ELN41-1-1-4, and PI601500 x T02058, recorded greater yield than the check Bondofa. Their yield advantage compared to Bondofa was at least 30%.},
year = {2026}
}
TY - JOUR T1 - Performance and Stability of Maize (Zea mays L.) Hybrids Derived from the Combination of Tropical and Temperate Lines in Burkina Faso AU - Tiama Siaka AU - Dao Abdalla AU - Siri Kady Yassine AU - Bonkoungou Tégawendé Odette AU - Traoré Lamine AU - Sawadogo Mahamadou Y1 - 2026/03/30 PY - 2026 N1 - https://doi.org/10.11648/j.ajbio.20261402.11 DO - 10.11648/j.ajbio.20261402.11 T2 - American Journal of BioScience JF - American Journal of BioScience JO - American Journal of BioScience SP - 20 EP - 28 PB - Science Publishing Group SN - 2330-0167 UR - https://doi.org/10.11648/j.ajbio.20261402.11 AB - Maize (Zea mays L.) is one of the worldwide food crops and plays a fundamental role due to its importance in terms of food, economics, and industry. However, its yields in farmers’ fields in Burkina Faso are low. This is due to production of this crop has low national yields, mainly due to climate variability, and low soil fertility. It is therefore essential to create new high-yielding maize varieties that are stable and adapted to the country’s agro-climatic conditions. This study aimed to contribute to improving maize production by identifying new high-performing and stable hybrids. The plant material, consisting of 36 single-cross white hybrids derived from a half-diallel cross of nine lines were evaluated using a three-replicate alpha-lattice experimental design. Grain yield and its components were recorded during evaluation. The results showed significant difference (p < 0.05) between the hybrids studied, environments and study years, as well as their interaction for most of the traits evaluated. T02058 x ELN41-1-1-4, PI601574 x T02058, and VL05616 x ELN41-1-1-4 were identified as high-performing hybrids and stable hybrids across environments. Four hybrids including, PI601574 x T02058, VL05616 x ELN41-1-1-4, PI601574 x ELN41-1-1-4, and PI601500 x T02058, recorded greater yield than the check Bondofa. Their yield advantage compared to Bondofa was at least 30%. VL - 14 IS - 2 ER -