Abstract
AbstractMaize is a major staple food in Sub-Saharan Africa (SSA). Vitamin A deficiency index is high in Africa and could be reduced through the consumption of provitamin-A-enriched maize. However, foliar diseases such as maize streak virus, northern corn leaf blight and common rust constrain maize production in SSA. The cultivation of host-resistant varieties is the most effective approach to mitigate their effects. Therefore, maize synthetics improved for PVA carotenoids, their selection cycles and crosses as well as a commercial disease-resistant check were assessed for resistance to maize streak virus, northern corn leaf blight and common rust at hotspots in Nigeria. The foliar diseases’ effects on the agronomic performance and carotenoid content of the maize genotypes were assessed. The Genotypes differed for most agronomic traits and foliar disease resistance. Stepwise regression revealed that, although the agronomic traits determined 93% of the grain yield, each foliar disease had effect on the yield. A unit increase in maize streak virus score increased plant aspect and husk cover scores by 0.6 and 0.4, respectively, whereas an increase in common rust score decreased plant height by 16.2 cm and increased plant aspect score by 0.7. Maize streak virus and common rust decreased genotypic variability for lutein by 36.7 and 18.7%, respectively, while northern corn leaf blight decreased genotypic variability for provitamin A by 27.1%. Most of the genotypes exhibited moderate susceptibility to northern corn leaf blight. However, three selection cycles and three crosses exhibited high tolerance to maize streak virus and moderate tolerance to common rust, thus can serve as sources of PVA-enriched, maize streak virus and common rust tolerant lines.
Funder
HarvestPlus Challenge Programme of Bill and Melinda Gates
Tertiary Education Trust Fund
Publisher
Springer Science and Business Media LLC
Subject
Genetics,Agronomy and Crop Science,Physiology
Reference47 articles.
1. Abdelsalam NR, Balbaa MG, Osman HT, Ghareeb RY, Desoky EM, Elshehawi A, Aljuaid BS, Elnahal ASM (2022) Inheritance of resistance against northern leaf blight of maize using conventional breeding methods. Saudi J Biol Sci 29:1747–1759. https://doi.org/10.1016/j.sjbs.2021.10.055
2. Akinwale RO, Oyelakin AO (2018) Field assessment of disease resistance status of some new-developed early and extra-early maize varieties under humid rainforest conditions of Nigeria. J Plant Breed Crop Sci 10:69–79. https://doi.org/10.5897/JPBCS2017.0699
3. Alegbejo MD, Olojede SO, Kashina BD, Abo ME (2002) Maize streak mastrevirus in Africa: distribution, transmission, epidemiology, economic significance and management strategies. J Sustain Agric 19:35–45
4. Alvarado G, López M, Vargas M, Pacheco A , Rodríguez F, Burgueño J, Crossa J (2015) META-R (Multi-Environment Trial Analysis with R for Windows) vers 6.04. CIMMYT Research Data & Software Repository Network V23. https://hdl.handle.net/11529/10201
5. Asare-Bediako E, Taah KJ, Puije V, Amenorpe G, Kubi AA, Lamptey N, Oppong J, Monchiah B, Adama I (2020) Phenotypic and molecular evaluation of maize (Zea mays L.) genotypes under field conditions in the Volta Region of Ghana. Afr J Food Agric Nutr Dev 20:1688–16904. https://doi.org/10.18697/ajfand.95.19040
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