Genetic Diversity in Cowpea<i> </i>(<i>Vigna unguiculata </i>(<i>L</i>.)<i> Walp</i>) under Two Growing Conditions<sup>*</sup> — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Genetic Diversity in Cowpea<i> </i>(<i>Vigna unguiculata </i>(<i>L</i>.)<i> Walp</i>) under Two Growing Conditions<sup>*</sup>
Department of Plant Breeding and Seed Technology, Federal University of Agriculture, Abeokuta, Nigeria
,
College of Education and Liberal Art, Wilmington University, Delaware, USA
1 Department of Plant Breeding and Seed Technology, Federal University of Agriculture, Abeokuta, Nigeria
2 College of Education and Liberal Art, Wilmington University, Delaware, USA
This study explores the use of genetic variability for advancing the genetic improvement of Cowpea (<i>Vigna unguiculata </i>(<i>L.</i>)<i> Walp</i>),<i> </i>particularly in response to insect infestation stress. Over a period spanning 2015 to 2017,<i> </i>forty accessions of cowpeas were evaluated to determine their variability under both insecticide spray and no insecticide spray conditions at the Teachings and Research Farms, Federal University of Agriculture, Abeokuta. The experimental design was a randomized complete block design in three replicates. The accessions were evaluated for plant height, leaf length, leaf width, number of days of 50% flowering, number of pods per plant, pod length, number of seeds per plant, 100-seed weight, and seed yield. Data collected were subjected to principal component and single linkage cluster analyses. Principal axis I (PCA1) accounted for 39% and 35% under insecticide spray and no insecticide spray respectively to the total variation in the accessions. Plant height with a factor score of 0.38, leaf length (0.41), number of leaves (0.37), and 100-seed, weight (0.30) was related to PCAI under insecticide spray while leaf width (0.32). Pod length (0.37) and number of seeds/plant (0.38) were significant to PCA1 under no insecticide spray. Notably, accessions such as SAMPEA6, SAMPEA10, IFE-Brown, and IFE-BPE exhibited consistent performance across both conditions, while others displayed condition-specific attributes. For instance, NGB1063, NGB1152, and NGB1093 demonstrated distinct traits under insecticide spray, while NGB1146 and NGB1124 exhibited notable characteristics under no insecticide spray conditions. Therefore, identifying these forty accessions with desirable traits hold promise for future genetic improvement efforts of cowpea cultivation in Nigeria and beyond.
Kitch, L.W., Boukar, O., Endondo, C. and Murdock, L.L. (1998) Farmer Acceptability Criteria in Breeding Cowpea. Experimental Agriculture , 34, 475-486. https://doi.org/10.1017/S0014479798004049
Herniter, I.A., Muñoz-Amatriaín, M. and Close, T.J. (2020) Genetic, Textual, and Archaeological Evidence of the Historical Global Spread of Cowpea ( Vigna ungu i culata [L.] Walp.). Legume Science , 2, e57. https://onlinelibrary.wiley.com/doi/10.1002/leg3.57 https://doi.org/10.1002/leg3.57
Pasquet, R.S. (1998) Morphological Study of Cultivated Cowpea Vigna unguiculata (L.) Walp. Importance of Ovule Number and Definition of cv gr Melanophthalmus. Agronomie , 18, 61-70. https://doi.org/10.1051/agro:19980104
FAO (2005) The State of Food and Agriculture. Food and Agriculture Organization of the United Nations, Rome.
FAO (2021) Food and Agriculture Organization. https://www.fao.org/4/a0800e/a0800e00.htm
Bittenbender, H.C., Barrett, R.P. and Indire-Lavusa, B.M. (1984) Beans and Cowpea as Leaf Vegetables and Grain Legumes. Bean/Cowpea CRSP, Michigan State University, East Lansing, MI.
Singh, B., Monanray, D.R., Dashielle, K.E. and Jackie L.E.N. (1997) Advances in Cowpea Research. Elsevier Publishers, London, 31-110.
Quin, F.M. (1997) Introduction. In: Singh, B.B., Mohan-Raj, D.R., Dashiell, K.E. and Jackai, L.E.N., Eds., Advances in Cowpea Research , International Institute of Tropical Agriculture (IITA), Ibadan, 10-11.
Gomes, A.M.F., Draper, D., Nhantumbo, N., Massinga, R., Ramalho, J.C., Marques, I. and Ribeiro-Barros, A.I. (2021) Diversity of Cowpea ( Vigna unguiculata (L.) Walp.) Landraces in Mozambique: New Opportunities for Crop Improvement and Future Breeding Programs. Agronomy , 11, Article 991. https://doi.org/10.3390/agronomy11050991
Aremu, A.O. (2005) A Confluence of Credentialing, Career Experience, Self-Efficacy, Emotional Intelligence and Motivation on the Career Commitment of Young Police in Ibadan. Policing : An International Journal of Police Strategies and Management , 28, 609-618. https://doi.org/10.1108/13639510510628695
Aremu, C.O. (2012) Exploring Statistics Tools in Measuring Genetic Diversity for Crop Improvement. IntechOpen Access Publisher, Rijeka.
Horn, L.N., Nghituwamhata, S.N. and Isabella, U. (2022) Cowpea Production Challenges and Contribution to Livelihood in Sub-Saharan Region. Agricultural Science , 13, 25-32. https://www.scirp.org/journal/paperinformation?paperid=114791 https://doi.org/10.4236/as.2022.131003
FAO (2012) Draft Revised Genebank Standards for the Conservation of Orthodox Seeds. http://www.fao.org/agriculture/crops/core-themes/seeds-pgr/conservation/gbs/en/accessed
FAO (2010) Country Statistics. http://www.fao.org/agriculture/crops/core-themes/seeds-pgr/conservation/gbs/en/
Singh, B., Ajeigbe, H.A., Tarawali, S.A., Fernandez-Rivera, S. and Abubakar, M. (2003) Improving the Production and Utilization of Cowpea as Food and Fodder. Field Crops Research , 84, 169-177. https://doi.org/10.1016/S0378-4290(03)00148-5
Duke, J. (1981) Cited by UC SAREP. Cover Crop Database: Complete Crop Summary of Cowpea. https://sarep.ucdavis.edu/covercrop/cowpea
Teran, J.C.B.M., Konzen, E.R., Palkovic, A., Tsai, S.M. and Gepts, P. (2020) Exploration of the Yield Potential of Mesoamerican Wild Common Beans from Contrasting Eco-Geographic Regions by Nested Recombinant Inbred Populations. Frontiers in Plant Science , 11, Article 346. https://doi.org/10.3389/fpls.2020.00346
Allen, D.J. (1983) The Pathology of Tropical Food Legumes. John Wiley and Sons Ltd., Hoboken.
Pasquet, R.S. (1993) Two New Subspecies of Vigna unguiculata (L.) Steele Walp. (Leguminosae: Papilionoideae). Kew Bulletin , 48, 805-806. https://doi.org/10.2307/4118861
Pasquet, R.S. (1997) A New Subspecies of Vigna unguiculata (Leguminosae: Papilionoideae). Kew Bulletin , 52, 840. https://doi.org/10.2307/4117815
Richard, A. (1847) Tentamen Florae Abyssinicae, Volumenprimum. Arthus Bertrand, Paris.
Piper, C.V. (1913) The Wild Prototype of Cowpea. USDA Bureau of Plant Industry Circular No. 124. Miscellaneous Papers, Government Printing Office, Washington, 29-32.
Vavilov, N.I. (1926) Studies on the Origin of Cultivated Plants. Institute of Applied Botany and Plant Breeding, Leningrad.
Steele, W.M. (1972) Cowpeas in Nigeria. Ph.D. Thesis, University of Reading, Reading.
Faris, D.G. (1963) Evidence for the West African Origin of Vigna sinensis (L) Savi. Ph.D. Thesis, University of California, Davis.
Rawal, K.M. (1975) Natural Hybridization among Wild, Weedy and Cultivated Vigna unguiculata (L.) Walp. Euphytica , 24, 699-707. https://doi.org/10.1007/BF00132908
Maréchal, R., Mascherpa, J.M. and Stainer, F. (1978) Etude taxonomique d’un group complexed’especes des genres Phaseolus et Vigna (Papillionaceae) sur la base de donnees morphologiques et polliniques traiteesparl’analyse Informatique. Boissiera , 28, 1-273.
Vaillancourt, R.E. and Weeden, N.F. (1992) Chloroplast DNA Polymorphism Suggests a Nigerian Center of Domestication for the Cowpea, Vigna unguiculata (Leguminosae). American Journal of Botany , 79, 1194-1199. https://doi.org/10.1002/j.1537-2197.1992.tb13716.x
Ng, N.Q. (1995) Cowpea, Vigna unguiculata (Leguminosae: Papilionoideae). In: Smartt, J. and Simmonds, N.W., Eds., Evolution of Crop Plants , 2nd Edition, Longmans, London, 326-332.
Baudoin, J.P. and Maréchal, R. (1985) Genetic Diversity in Vigna . In: Singh, S.R. and Rachie, K.O., Eds., Cowpea Research , Production , and Utilization , Wiley, Hoboken, 3-11.
Close, T., Oyatomi, O., Guo, Y.-N., Paliwal, R., Muñoz-Amatriaín, M., Roberts, P. and Fatokun, C. (2023) SNP Genotypes of the International Institute of Tropical Agriculture Cowpea Core. https://datadryad.org/stash/datase
Verdcourt, B. (1970) Studies of the Leguminosae-Papilionoideas for ‘Flora of Tropical East Africa’: IV. Kew Bulletin , 24, 356-366. https://doi.org/10.2307/4102859
Westphal, E. (1974) Pulses in Ethiopia, Their Taxonomy and Agricultural Significance. Agricultural Research Report No. 815, Centre for Agricultural Publishing and Documentation, Wageningen, Netherlands.
Ng, N.Q. and Maréchal, R. (1985) Cowpea Taxonomy, Origin and Germplasm. In: Singh, S. and Rachie, K., Eds., Cowpea Research , Production , and Utilization , Wiley, Hoboken, 11-21.
Bressani, R. (1985) Nutritive Value of Cowpea. In: Singh, S.R. and Rachie, K.O., Eds., Cowpea Research , Production and Utilization , John Wiley & Sons Ltd., Hoboken, 10-13.
Wu, X., Cortés, A.J. and Blair, M.W. (2022) Genetic Differentiation of Grain, Fodder and Pod Vegetable Type Cowpeas ( Vigna unguiculata L.) Identified through Single Nucleotide Polymorphisms from Genotyping-by-Sequencing. Molecular Ho r ti culture , 2, Article No. 8. https://doi.org/10.1186/s43897-022-00028-x
Davis, D.W., Oelke, E.A., Oplinger, E.S., Doll, J.D., Hanson, C.V. and Putnam, D.H. (1991) Alternative Plant and Animal Products: Programs in Informative Exchange and Research. In: Janick, J. and Sin News, J.E., Eds., Alternative Field Crops M a nual , John Wiley and Sons Ltd., Hoboken, 133-143.
Mahmood, A., Latif, T. and Khan, A.M. (2009) Effect of Salinity on Growth, Yield and Yield Components in Basmati Rice Germplasm. Pakistan Journal of Botany , 41, 3035-3045.
Zafeiriou, I., Sakellariou, M. and Mylona, P.V. (2023) Seed Phenotyping and Genetic Diversity Assessment of Cowpea ( Vigna unguiculata ) Germplasm Collection. Agronomy , 13, Article 274. https://doi.org/10.3390/agronomy13010274