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Reactions of Maruca Resistant Transgenic Cowpea to Cowpea Aphid-Borne Mosaic Virus

DOI: 10.4236/as.2024.157041, PP. 742-753

Keywords: Cowpea, Cry1Ab, Cowpea Aphid-Borne Mosaic Virus, Environmental Safety

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Abstract:

Cowpea (Vigna unguiculata L. [Walp.]) in one of the main grain legumes contributing to food security and poverty alleviation in Sub-Saharan Africa. To control the highly damaging legume pod borer Maruca vitrata F., transgenic cowpea lines expressing the insecticidal Cry1Ab Bt protein were developed. In this study, we evaluated the impact of Cry1Ab transgene expression on the susceptibility of four cowpea lines (named IT97K-T, IT98K-T, Gourgou-T and Nafi-T) and their respective non-transgenic near isogenic lines (IT97K, IT98K, Gourgou and Nafi) to Cowpea aphid-borne mosaic virus (CABMV) in greenhouse conditions. In a preliminary quality control test by enzyme-linked immunosorbent assay, the presence of Cry1Ab protein in transgenic seed lots ranged from 59% to 72%, with no significant differences among the lines (χ2 = 3.26; p = 0.35). Upon virus inoculation, all cowpea lines exhibited mosaic symptoms with similar severity between 7- and 11-day post-inoculation. No significant differences were observed in symptom severity. Significant differences were found between cowpea lines for time of symptom onset, virus accumulation in plants and days to 50% flowering. However, while comparing pairs of transgenic lines and corresponding non-transgenic lines, virus accumulation showed not significant differences whatever the pair. Time of symptom onset and days to 50% flowering did not also differ significantly between pairs of cowpea lines except Nafi/Nafi-T in which transgenic Nafi-T showed earlier symptoms (7.4 ± 0.7 vs. 8.9 ± 0.8 days post-inoculation) and shorter flowering time (37.3 ± 0.6 vs. 42 ± 1.7 days after sowing). Overall, these findings improve our understanding of the effects of Cry1Ab gene mediated genetic modification on cowpea infection by Cowpea aphid-borne mosaic virus, with potential implications for environmental safety assessment.

References

[1]  FAOSTAT (2024) FAO Statistics, Crops and Livestock Products.
https://www.fao.org/faostat/en/#data/QCL
[2]  Gondwe, T.M., Alamu, E.O., Mdziniso, P. and Maziya-Dixon, B. (2019) Cowpea (Vigna unguiculata (L.) Walp) for Food Security: An Evaluation of End-User Traits of Improved Varieties in Swaziland. Scientific Reports, 9, Article No. 15991.
https://doi.org/10.1038/s41598-019-52360-w
[3]  Gonçalves, A., Goufo, P., Barros, A., Domínguez-Perles, R., Trindade, H., Rosa, E.A.S., et al. (2016) Cowpea (Vigna unguiculata L. Walp), a Renewed Multipurpose Crop for a More Sustainable Agri-Food System: Nutritional Advantages and Constraints. Journal of the Science of Food and Agriculture, 96, 2941-2951.
https://doi.org/10.1002/jsfa.7644
[4]  Ndiaye, J.B., Obour, A.K., Harmoney, K., Diouf, D., Faye, A., Diamé, L., et al. (2023) Predicting Nutritional Quality of Dual-Purpose Cowpea Using NIRS and the Impacts of Crop Management. Sustainability, 15, Article 12155.
https://doi.org/10.3390/su151612155
[5]  Faye, A., Obour, A.K., Akplo, T.M., Stewart, Z.P., Min, D., Prasad, P.V.V., et al. (2024) Dual-Purpose Cowpea Grain and Fodder Yield Response to Variety, Nitrogen-Phosphorus-Potassium Fertilizer, and Environment. Agrosystems, Geosciences & Environment, 7, e20459.
https://doi.org/10.1002/agg2.20459
[6]  Dube, E. and Fanadzo, M. (2013) Maximising Yield Benefits from Dual-Purpose Cowpea. Food Security, 5, 769-779.
https://doi.org/10.1007/s12571-013-0307-3
[7]  Kebede, E. and Bekeko, Z. (2020) Expounding the Production and Importance of Cowpea (Vigna unguiculata (L.) Walp.) in Ethiopia. Cogent Food & Agriculture, 6, Article ID: 1769805.
https://doi.org/10.1080/23311932.2020.1769805
[8]  Baoua, I., Rabé, M.M., Murdock, L.L. and Baributsa, D. (2021) Cowpea Production Constraints on Smallholders’ Farms in Maradi and Zinder Regions, Niger. Crop Protection, 142, Article ID: 105533.
https://doi.org/10.1016/j.cropro.2021.105533
[9]  Mohammed, S.B., Dzidzienyo, D.K., Umar, M.L., Ishiyaku, M.F., Tongoona, P.B. and Gracen, V. (2021) Appraisal of Cowpea Cropping Systems and Farmers’ Perceptions of Production Constraints and Preferences in the Dry Savannah Areas of Nigeria. CABI Agriculture and Bioscience, 2, Article No. 25.
https://doi.org/10.1186/s43170-021-00046-7
[10]  Thottappilly, G. and Rossel, H.W. (1992) Virus Diseases of Cowpea in Tropical Africa. Tropical Pest Management, 38, 337-348.
https://doi.org/10.1080/09670879209371724
[11]  Palanga, E., Filloux, D., Martin, D.P., Fernandez, E., Gargani, D., Ferdinand, R., et al. (2016) Metagenomic-Based Screening and Molecular Characterization of Cowpea-Infecting Viruses in Burkina Faso. PLOS ONE, 11, e0165188.
https://doi.org/10.1371/journal.pone.0165188
[12]  Jackai, L.E.N. and Daoust, R.A. (1986) Insect Pests of Cowpeas. Annual Review of Entomology, 31, 95-119.
https://doi.org/10.1146/annurev.en.31.010186.000523
[13]  Kusi, F., Nboyine, J.A., Abudulai, M., Seidu, A., Agyare, Y.R., Sugri, I., et al. (2019) Cultivar and Insecticide Spraying Time Effects on Cowpea Insect Pests and Grain Yield in Northern Ghana. Annals of Agricultural Sciences, 64, 121-127.
https://doi.org/10.1016/j.aoas.2019.03.001
[14]  Addae, P.C., Bruce, Y.A., Utono, I.M., Abudulai, M., Traore, F., Ishiyaku, M.F., et al. (2021) Distribution and Diversity of Alternate Hosts of Maruca Vitrata Fabricius in Three West African Countries. International Journal of Tropical Insect Science, 41, 2593-2606.
https://doi.org/10.1007/s42690-021-00470-2
[15]  Echendu, T.N.C. and Akingbohungbe, A.E. (1989) The Larval Population and Crop Growth Phase for Screening Cowpea for Resistance to Maruca testulalis (Geyer) (lepidoptera: Pyralidae) in Nigeria Based on Flowers, Pods and Yield Loss. Tropical Pest Management, 35, 173-175.
https://doi.org/10.1080/09670878909371351
[16]  Ba, N.M., Huesing, J.E., Dabiré-Binso, C.L., Tamò, M., Pittendrigh, B.R. and Murdock, L.L. (2019) The Legume Pod Borer, Maruca vitrata Fabricius (Lepidoptera: Crambidae), an Important Insect Pest of Cowpea: A Review Emphasizing West Africa. International Journal of Tropical Insect Science, 39, 93-106.
https://doi.org/10.1007/s42690-019-00024-7
[17]  Addae, P.C., Ishiyaku, M.F., Tignegre, J., Ba, M.N., Bationo, J.B., Atokple, I.D.K., et al. (2020) Efficacy of a Cry1ab Gene for Control of Maruca vitrata (Lepidoptera: Crambidae) in Cowpea (Fabales: Fabaceae). Journal of Economic Entomology, 113, 974-979.
https://doi.org/10.1093/jee/toz367
[18]  National Research Council (2004) Safety of Genetically Engineered Foods: Approaches to Assessing Unintended Health Effects. The National Academies Press.
https://doi.org/10.17226/10977.
[19]  Ladics, G.S., Bartholomaeus, A., Bregitzer, P., Doerrer, N.G., Gray, A., Holzhauser, T., et al. (2015) Genetic Basis and Detection of Unintended Effects in Genetically Modified Crop Plants. Transgenic Research, 24, 587-603.
https://doi.org/10.1007/s11248-015-9867-7
[20]  Bawa, A.S. and Anilakumar, K.R. (2012) Genetically Modified Foods: Safety, Risks and Public Concerns—A Review. Journal of Food Science and Technology, 50, 1035-1046.
https://doi.org/10.1007/s13197-012-0899-1
[21]  Ogunsola, K.E., Yusuf, A. and Elegbeku, O.A. (2022) Updates on Cowpea Viruses in Southwest Nigeria: Distribution, Prevalence and Coinfection. Indian Phytopathology, 76, 201-213.
https://doi.org/10.1007/s42360-022-00576-8
[22]  Neya, B.J., Zida, P.E., Zinga, I., Zemba, P. and Traore, O. (2019) Pathogenic, Sero-Logical and Molecular Characterization of Cowpea (Vigna unguiculata (L.) Walp.) Aphid Borne Mosaic Virus (CABMV) in Isolates from Burkina Faso, Cameroon and Central African Republic. International Journal of Biological and Chemical Sciences, 13, 382-398.
http://ajol.info/index.php/ijbcs
[23]  Orawu, M., Melis, R., Laing, M. and Derera, J. (2012) Genetic Inheritance of Resistance to Cowpea Aphid-Borne Mosaic Virus in Cowpea. Euphytica, 189, 191-201.
https://doi.org/10.1007/s10681-012-0756-3
[24]  Taiwo, M.A., Kareem, K.T., Nsa, I.Y. and Hughes, J.D. (2007) Cowpea Viruses: Effect of Single and Mixed Infections on Symptomatology and Virus Concentration. Virology Journal, 4, Article No. 95.
https://doi.org/10.1186/1743-422x-4-95
[25]  Classen, D.C., Morningstar, J.M. and Shanley, J.D. (1987) Detection of Antibody to Murine Cytomegalovirus by Enzyme-Linked Immunosorbent and Indirect Immunofluorescence Assays. Journal of Clinical Microbiology, 25, 600-604.
https://doi.org/10.1128/jcm.25.4.600-604.1987
[26]  Clark, M.F. and Adams, A.N. (1977) Characteristics of the Microplate Method of Enzyme-Linked Immunosorbent Assay for the Detection of Plant Viruses. Journal of General Virology, 34, 475-483.
https://doi.org/10.1099/0022-1317-34-3-475
[27]  Gumedzoe, M.Y.D., Rossel, H.W., Thottappilly, G., Asselin, A. and Huguenot, C. (1998) Reaction of Cowpea (Vigna unguiculata L. Walp.) to Six Isolates of Blackeye Cowpea Mosaic Virus (BLCMV) and Cowpea Aphid-Borne Mosaic Virus (CAMV), Two Potyviruses Infecting Cowpea in Nigeria. International Journal of Pest Management, 44, 11-16.
https://doi.org/10.1080/096708798228464
[28]  Mumm, R.H. and Walters, D.S. (2001) Quality Control in the Development of Transgenic Crop Seed Products. Crop Science, 41, 1381-1389.
https://doi.org/10.2135/cropsci2001.4151381x
[29]  Mahesh, H. and Muralimohan, K. (2022) Segregation of Cry Genes in the Seeds Produced by F1 Bollgard® II Cotton Differs between Hybrids: Could This Be Linked to the Observed Field Resistance in the Pink Bollworm? Genes, 14, Article 65.
https://doi.org/10.3390/genes14010065
[30]  Kiptui, L.J., Toroitich, F.J., Kilalo, D.C. and Obonyo, M. (2020) Interaction between Cowpea Aphid-Borne Mosaic Virus Isolates and Its Effect on Passion Fruit Woodiness Disease on Passiflora edulis Sims and Passiflora ligularis Juss. Advances in Agriculture, 2020, Article ID: 8876498.
https://doi.org/10.1155/2020/8876498
[31]  Atiri, G.I. and Thottappilly, G. (1984) Relative Usefulness of Mechanical and Aphid Inoculation as Modes of Screening Cowpeas for Resistance against Cowpea Aphid-Borne Mosaic Virus. Tropical Agriculture, 61, 289-292.
[32]  Oyekanmi, A.A. and Sangodoyin, O.S. (2006) Evaluation of Advanced Lines of Cowpea (Vigna unguiculata (L.) Walp) for Agronomic Traits and Grain Yield in the Transition Zone of Nigeria. Asian Journal of Plant Sciences, 6, 163-167.
https://doi.org/10.3923/ajps.2007.163.167

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