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Olasanmi, B.

Publications and source records attributed to Olasanmi, B..

3 recordsLinked to original sources

Provitamin A maize inbred lines exhibit resistance to multiple foliar diseases under laboratory and field conditions

Maize (Zea mays) is a staple food for millions in sub-Saharan Africa (SSA), contributing to both caloric intake and essential micronutrients. Recent breeding efforts have focused on enhancing its nutritional value by increasing provitamin A (PVA) carotenoid content to address vitamin A deficiency (VAD), a common problem among children under 5 years, pregnant and lactating mothers across SSA. However, high rainfall, and both warm and humid conditions in various SSA regions result in devastating foliar diseases such as maize streak virus (MSV), northern corn leaf blight (NCLB), southern corn leaf blight (SCLB), southern corn rust, grey leaf spot (GLS), and Curvularia leaf spot (CLS). Breeding for resistance can aid in mitigating yield losses caused by those diseases. Rapid, efficient screening methods can allow for examining large germplasm collections. The current study evaluated 21 maize inbred lines with contrasting PVA content, along with two commercial inbred controls, for resistance to Exserohilum turcicum, Bipolaris maydis, and Curvularia lunata, causal agents of NCLB, SCLB, and CLS, respectively, using a detached leaf assay (DLA) and under natural field infestation. Significant variation was detected among the inbreds, seven were classified as resistant to certain diseases, ten as moderately resistant, and six as susceptible to all foliar diseases. Overall, high PVA inbred lines had less susceptibility to NCLB, SCLB, and CLS. The results suggest that PVA-enriched maize inbred lines possess improved resistance to multiple foliar diseases. The field assessments of disease severity validated the effectiveness of the DLA in distinguishing resistant from susceptible inbred lines, and resistance to other diseases in field conditions was detected in parallel. The results indicate that high PVA maize has the potential to simultaneously address VAD, mycotoxin contamination in SSA with improved resistance to multiple foliar diseases.

plant biology↗

Genetic diversity and population structure of soybean (Glycine max (L.) Merril) germplasm.

Soybean (Glycine max (L.) Merril) is a significant legume crop for oil and protein. However, its yield in Africa is less than half the global average resulting in low production, which is inadequate for satisfying the continents needs. To address this disparity in productivity, it is crucial to develop new high-yielding cultivars by utilizing the genetic diversity of existing germplasms. Consequently, the genetic diversity and population structure of various soybean accessions were evaluated in this study. In pursuit of this objective, a collection of 147 soybean accessions was genotyped via the Diversity Array Technology Sequencing method. This method enables high-throughput analysis of single-nucleotide polymorphisms (SNPs), resulting in the identification of 7,083 high-quality SNPs distributed throughout the soybean genome. The average values observed for polymorphism information content (PIC), minor allele frequency, expected heterozygosity and observed heterozygosity were 0.277, 0.254, 0.344, and 0.110, respectively. The soybean genotypes were categorized into four groups on the basis of model-based population structure, principal component analysis, and discriminant analysis of the principal component. Alternatively, hierarchical clustering was used to organize the accessions into three distinct clusters. Analysis of molecular variance indicated that the genetic variance within the populations exceeded the variance among them. The insights gained from this study will assist breeders in selecting parental lines for genetic recombination. Overall, this study provides valuable information regarding soybean genetic diversity and lays the groundwork for conservation and genetic enhancement initiatives.

molecular biology↗

Validation of SNP markers for marker-assisted selection of genotypes with increased carotenoid and dry matter contents in cassava

Provitamin A biofortification and increased dry matter content are important breeding targets in cassava improvement programs worldwide. Biofortified varieties contribute to the alleviation of provitamin A deficiency, a leading cause of preventable blindness in developing countries. Dry matter content is a major component of dry yield and thus underlies overall variety performance and acceptability by growers, processors, and consumers. SNP markers linked to these traits have recently been discovered through several genome-wide association studies but have not been deployed for marker-assisted selection (MAS). Assessment of marker performance in diverse genetic backgrounds is an important step towards their deployment for routine MAS. In the present study, seven previously identified markers for these traits were converted to a robust set of uniplex allele-specific PCR assays and validated in two independent pre-breeding and breeding populations. These assays were efficient in discriminating marker genotypic classes and had an average call rate greater than 98%. A high correlation was observed between the predicted and observed carotenoid content as inferred by root yellowness intensity in the breeding (r = 0.92) and pre-breeding (r = 0.95) populations. On the other hand, dry matter content-markers had moderately low predictive accuracy in both populations (r < 0.40) due to the more quantitative nature of the trait. This work confirmed marker effectiveness in multiple backgrounds, therefore, further strengthening its value in cassava biofortification to ensure nutritional security as well as dry matter content productivity. Our study provides a framework to guide future marker development, thus leading to more routine use of markers in MAS in cassava improvement programs.

genomics↗