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S. A. Tesfamariam

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#gene editing Review Open access Sep 2026

Groundnut Improvement for Aflatoxin Resistance: Progress and Opportunities

Groundnut, or peanut, is an industrial oilseed crop that serves the food and feed industries and provides income along the value chain. Pre‐ and post‐harvest aflatoxin contamination, caused by Aspergillus spp., hinders the food and feed value and market opportunities of groundnut products. Developing and deploying aflatoxin‐resistant varieties is the most sustainable and economic approach to control aflatoxin for human and animal well‐being. Variable resistance to Aspergillus infection and disease development has been reported, depending on cultivar susceptibility, crop management practices, and environmental conditions. Hence, understanding the physical, biochemical, and genetic basis of resistance mechanisms to Aspergillus infection is vital for the design and deployment of new varieties. Despite modest global efforts, notably in effective aflatoxin diagnosis and identification of the toxic secondary metabolites, there are limited breeding efforts that have bred and deployed aflatoxin‐resistant varieties. This review aims to present the impacts of groundnut aflatoxin contamination and the progress and opportunities in resistance breeding using current technologies and innovations. The first section presents the production status of groundnut and the extent and conditions of aflatoxin contamination. Aflatoxin control methods and components of resistance are described in the second section, followed by progress and opportunities of resistance breeding with advanced technologies, including omics‐assisted and gene‐editing approaches. Information presented in the review may guide breeding and genetic management of aflatoxin, targeting the development of new varieties with desirable product profiles and durable resistance to control aflatoxin contamination along value chains.

Tullu Tadessa Asefa, Hussein Shimelis, J. Pasupuleti et al. · 0 citations
Open access Aug 2026

Response of tropical maize inbred lines to maize streak virus and major agronomic traits

Maize streak virus (MSV) is a major constraint on maize production in the dry and hot tropics, where susceptible cultivars suffer complete yield loss. The objective of this study was to assess the response of tropical-environment-adapted maize inbred lines for MSV resistance and major agronomic traits to identify parental lines for resistance breeding. Seventy-four inbred lines, including six controls, were evaluated under artificial MSV inoculation over two seasons using an 8 × 10 alpha lattice design. A significant variability (P ≤ 0.05) was detected among genotypes for MSV resistance and yield components. Area under the disease progress curve (AUDPC) ranged from 0.00 to 240.6, disease incidence from 0 to 100%, and grain yield from 0.54 to 4.99 t ha⁻¹. Genotype-by-season interactions were significant for disease incidence and yield-related traits, with most traits showing moderate to high heritability. MSV disease parameters were negatively correlated with grain yield and agronomic traits. Elite parental lines MM05, MM17, MM19, and MM25 were identified as valuable donor parents combining MSV resistance with superior grain yield and favourable agronomic performance. Lines MM10, MM11 and MM72 were identified for hybrid breeding due to their combination of high grain yield and MSV tolerance. Finally, MM36 and MM35 were recognised for their outstanding grain yield performance, attributable to their MSV tolerance. The identified inbred lines provide complementary sources of MSV resistance and represent valuable donor parents for introgression and developing high-yielding MSV-resistant maize hybrids.

Malven Mushayi, Hussein Shimelis, S. A. Tesfamariam et al. · 0 citations

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