Research in Plant Sciences
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Research in Plant Sciences. 2025, 13(1), 1-8
DOI: 10.12691/plant-13-1-1
Open AccessArticle

Evaluation of Yellow Flesh Cassava Genotypes for Cyanogenic Potential, Total Carotenoid, Dry Matter and Yield in the Coastal Savannah Zone of Ghana

Emmanuel Ogyiri Adu1, , Godwin Amenorpe2, Paul Agu Asare1, Kingsley Joseph Taah1, Alfred Anthony Darkwa1, James Amoah Nyarko1 and Doris Mensah-Wonkyi2

1Department of Crop Science, School of Agriculture, University of Cape Coast, Cape Coast, Ghana

2Biotechnology and Nuclear Agricultural Research Institute, Ghana Atomic Energy Commission, Accra, Ghana

Pub. Date: May 05, 2025

Cite this paper:
Emmanuel Ogyiri Adu, Godwin Amenorpe, Paul Agu Asare, Kingsley Joseph Taah, Alfred Anthony Darkwa, James Amoah Nyarko and Doris Mensah-Wonkyi. Evaluation of Yellow Flesh Cassava Genotypes for Cyanogenic Potential, Total Carotenoid, Dry Matter and Yield in the Coastal Savannah Zone of Ghana. Research in Plant Sciences. 2025; 13(1):1-8. doi: 10.12691/plant-13-1-1

Abstract

Malnutrition, particularly vitamin A deficiency, remains a major public health challenge in Ghana. Cassava plays a crucial role in meeting the dietary needs of many Ghanaians. However, the dominated white-flesh cassava varieties fail to address vitamin A deficiency. This study aimed to evaluate the agronomic performance, cassava mosaic disease (CMD) resistance, and nutritional traits of ten cassava genotypes which included eight yellow-flesh mutant genotypes and two checks (a white-flesh and a yellow-flesh variety). Conducted at the Teaching and Research Farm of the University of Cape Coast, the experiment was laid in a randomized complete block design (RCBD) with four replications. Field evaluation were complemented by morphological and molecular (PCR) screening for CMD resistance as well as the yield and other yield component. The results showed significant (p<0.05) differences among genotypes in all measured traits. A negative correlation was observed between CMD severity and yield, while a positive correlation was found between total carotenoid (TC) content and dry matter content (DMC). The study identified four genotypes; 12B, 5B, 1011A, and 11B, with high TC content, dry matter content (DMC), root yield, low hydrogen cyanide levels (28.52–39.68 mg HCN/kg), and resistance to CMD. These genotypes, were selected for further evaluation and potential release as varieties. The findings highlight the potential of biofortified, high-yielding cassava varieties to improve nutrition, and contribute to sustainable agriculture in Ghana and beyond.

Keywords:
yellow flesh cassava yield dry matter carotenoid hydrogen cyanide CMD

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References:

[1]  WHO, “Hunger numbers stubbornly high for three consecutive years as global crises deepen: UN report.” Accessed: Mar. 17, 2025. [Online]. Available: https://www.who.int/news/item/24-07-2024-hunger-numbers-stubbornly-high-for-three-consecutive-years-as-global-crises-deepen--un-report.
 
[2]  Qaim, M., Stein, A. J., and Meenakshi, J. V., “Economics of biofortification,” Agric. Econ., vol. 37, no. 1, pp. 119 – 133, 2007.
 
[3]  Ssemakula, G., and Dixon, A. G. O., “Biofortification of cassava with provitamin A carotenoids,” African J. Biotechnol., vol. 6, no. 18, pp. 2064–2071, 2007, [Online]. Available: https:// www.ajol.info/ index.php/ajb/article/view/58348.
 
[4]  Ceballos, H., Davrieux, F., Talsma, E. F., Belalcazar, J., Chavarriaga, P., and Andersson, M. S., “Carotenoids in Cassava Roots,” Carotenoids. 2017.
 
[5]  Duah, E. A., Parkes, E., Baah, R. O., Acquatey-Mensah, A., Danquah, A. O., Holger, K., Kulakow, P., and Steiner-Aseidu, M.., “Consumption Trends of White Cassava and Consumer Perceptions of Yellow Cassava in Ghana,” J. Food Nutr. Res. Vol. 4, 2016, Pages 814-819, vol. 4, no. 12, pp. 814–819, 2016, Accessed: Dec. 20, 2021. [Online]. Available: http:// pubs.sciepub.com/jfnr/4/12/8/index.html%0Ahttp://pubs.sciepub.com/jfnr/4/12/8/abstract.html.
 
[6]  Bechoff, A., U. Chijioke, A. Westby, and K. I. Tomlins, “‘Yellow is good for you’: Consumer perception and acceptability of fortified and biofortified cassava products,” PLoS One, vol. 13, no. 9, Sep. 2018.
 
[7]  Akinwale, M. G., R. D. Aladesanwa, B. O. Akinyele, A. G. O. Dixon, and A. C. Odiyi, “Inheritance of ß-carotene in cassava (Manihot esculenta crantz),” Acad. Akinwale, RD Aladesanwa, BO Akinyele, AGO Dixon, AC OdiyiInt. J. Genet. Mol. Biol, 2010 academicjournals.org, vol. 2, no. 10, pp. 198–201, 2010, Accessed: Apr. 02, 2025. [Online]. Available: https:// academicjournals.org/journal/IJGMB/article-full-text-pdf/1A497BC3068.
 
[8]  Adu, E. O., Amenorpe, G., Taah, K. J., Asare, P. A., Parkes, E., Labuschangne, M. and Kulakow, P., 2023, “Farmers and consumers perceptions and preferences for Yellow Flesh Cassava (YFC) in the Central Region of Ghana,” Journal of Food and Nutrition Research. 11, No. 5, 382-388, 2023 Accessed: Apr. 02, 2025. [Online]. Available online at http:// pubs.sciepub. com/jfnr/11/5/7.
 
[9]  Amenorpe, G., Asare-Bediako, E., Tetteh, J. P., Asare, P. A., Taah, K. J., and van der Puijie, G., “Evaluation report on cassava elite lines proposed for release, presented to National Varietal Release Committee,” Department of Crop Science, School of Agriculture, University of Cape Coast. Ghana, 2019.
 
[10]  Asamoah, G. K., “Soils of the proposed farm site of the University of Cape Coast,” Soil Res. Inst. Tech. Rep., vol. 88, p. 36, 1973, Accessed: Apr. 02, 2025.
 
[11]  Fukuda, W. M. G., Guevara, C. L., Kawuki, R., and Ferguson, M. E., “Selected morphological and agronomic descriptors for the characterization of cassava,” in International Institute of Tropical Agriculture (IITA, Ibadan, Nigeria, 2010, p. 19. [Online]. Available: www.iita.org.
 
[12]  Kamau, J., Melis, R., Laing, M., Derera, J., Shanahan, P., and Ngugi, E. C. K., “Farmers ’ participatory selection for early bulking cassava genotypes in semi-arid Eastern Kenya,” J. Plant Breed. Crop Sci., vol. 3, no. 3, pp. 44–52, 2011.
 
[13]  Otim, M., Legg, J. P., Kyamanywa, S., Polaszek, A., and Gerling, D., “Population dynamics of Bemisia tabaci (Homoptera: Aleyrodidae) parasitoids on cassava mosaic disease-resistant and susceptible varieties,” Biocontrol Sci. Technol., vol. 16, no. 2, pp. 205–214, 2006.
 
[14]  International Institute of Tropical Agriculture (IITA), Cassava in Tropical Africa: A reference manual. Ibadan, Nigeria: IITA, 1990.
 
[15]  Ariyo, O. A., Dixon, A. G. O., and Atiri, G. I., “Whitefly Bemisia tabaci (Homoptera Aleyrodidae) infestation on cassava grown at different ecozones in Nigeria,” J. Econ. Entomol., vol. 98, no. 2, pp. 611–617.
 
[16]  Lokko, Y., Danquah, E. Y., Offei, S. K., Dixon, A. G. O., and Gedil, M. A., “Molecular markers associated with a new source of resistance to the cassava mosaic disease,” African J. Biotechnol., vol. 4, no. 9, pp. 873–881, 2005.
 
[17]  Alabi, O. J., and Rayapati, N., “Cassava mosaic disease: A curse to food security in Sub-Saharan Africa,” APSnet Featur., no. July, pp. 1–16, 2011, Accessed: Apr. 02, 2025. [Online]. Available: https://www.researchgate.net/publication/222100600.
 
[18]  Fondong, V. N., Pita, J. S., Rey, M. E. C., De Kochko, A., Beachy, R. N., and Fauquet, C. M., “Evidence of synergism between African cassava mosaic virus and a new double-recombinant geminivirus infecting cassava in Cameroon,” J. Gen. Virol., vol. 81, no. 1, pp. 287–297, 2000.
 
[19]  Usda, “Soil Phosphorus: Soil Quality Kit- Guides for Educators,” United States Dep. Agric. Nat. Resour. Conserv. Serv., no. 1, pp. 1–6, 1994, [Online]. Available: http:// www.nrcs.usda.gov/ Internet/FSE_DOCUMENTS/nrcs142p2_053254.pdf.
 
[20]  Ogbe, F. O., Thottappilly, G., Dixon, A. G. O., Atiri, G. I., and Mignouna, H. D., “Variants of East African cassava mosaic virus and its distribution in double infections with African cassava mosaic virus in Nigeria,” Plant Dis., vol. 87, no. 3, pp. 229–232, Mar. 2003.
 
[21]  Jaramillo, A. M., Sanchez, T., Morante, N., Calle, F., Davrieux, F., Dufour, D., and Ceballos, H. “A comparison study of five different methods to measure carotenoids in biofortified yellow cassava (Manihot esculenta),” PLoS One, vol. 13, no. 12, Dec. 2018.
 
[22]  Kulakow, P., Maroya, N. G., Dixon, A. G. O., Maziya-Dixon, B., and Chikoti, P.,“Linearity, Reproducibility and Comparison of iCheckTM CAROTENE with Spectrophotometer and HPLC for Evaluation of Total Carotenoids in Cassava Roots, ” Eur. J. Nutr. Food Saf., vol. 5, no. 5, pp. 1040– 1041, Jan. 2015.
 
[23]  AOAC, “Official methods of analysis of the Association of Official Analytical Chemists,” Washington, DC, 1990
 
[24]  Nei, M., “Genetic Distance between Populations,” Am. Nat., vol. 106, no. 949, pp. 283–292, 1972.
 
[25]  Schlee, D., Sneath, P. H. A., Sokal, R. R. and Freeman, W. H., “Numerical Taxonomy. The Principles and Practice of Numerical Classification,” Syst. Zool., vol. 24, no. 2, p. 263, 1975.
 
[26]  Nei, M., and Li, W. H., “Mathematical model for studying genetic variation in terms of restriction endonucleases,” Proc. Natl. Acad. Sci. U. S. A., vol. 76, no. 10, pp. 5269–5273, 1979.
 
[27]  Asare, P. A., Galyuon, I. K. A., Sarfo, J. K., and Tetteh, J. P., “Morphological and molecular based diversity studies of some cassava (Manihot esculenta crantz) germplasm in Ghana,” African J. Biotechnol., vol. 10, no. 63, pp. 13900–13908, 2011.
 
[28]  Mezette, T. F., Blumer, C. G., and Veasey, E. A., “Diversidade morfológica e molecular entre genótipos de mandioca,” Pesqui. Agropecu. Bras., vol. 48, no. 5, pp. 510–518, 2013.
 
[29]  Rabbi, I. Y., Kulakow, P. A., Manu-Aduening, J. A., Dankyi, A. A., Asibuo, J. Y., Parkes, E. Y., Abdoulaye, T., Girma, G., Gedil, M. A., Ramu, P., Reyes, B., and Maredia, M. K. “Tracking crop varieties using genotyping-by-sequencing markers: a case study using cassava (Manihot esculenta Crantz),” BMC Genet., vol. 16, no. 1, pp. 1–11, 2015.
 
[30]  Legg, J. P., “Bemisia tabaci; the whitefly vector of Cassava mosaic virus ecological perspective,” African Crop Sci. J., vol. 2, no. 4, pp. 437–448, 1994.
 
[31]  Omongo, C. A., “Cassava whitefly, Bemisia tabaci, behaviour and ecology in relation to the spread of the cassava mosaic epidemic in Uganda,” University of Greenwich, UK, 2003.
 
[32]  Tembo, M., Mataa, M., Legg, J., Chikoti, P. C., and Ntawuruhunga, P., “Cassava mosaic disease: incidence and yield performance of cassava cultivars in Zambia,” J. Plant Pathol., vol. 99, no. 3, pp. 681–689, 2017.
 
[33]  Okogbenin, E., Fregene, M., Chavarriaga, P., Roca, W., Mba, C., Espinosa, A., Marín, J., and Iglesias, C., “Marker-assisted introgression of CMD resistance in Latin American germplasm for genetic improvement of cassava in Africa,” Crop Sci., vol. 47, pp. 1895–1904, 2007.
 
[34]  Rao, V. P., “Breeding for Crop Improvement,” in Current Science, vol. 114, no. 02, R. J. Hillocks, J. M. Tresh, and A. C. Bellotti, Eds., New York, 2018, p. 256.
 
[35]  Wagaba, H., Beyene, G., Trembley, C., Alicai, T., Fauquet, C. M., and Taylor, N. J., “Efficient transmission of Cassava brown streak disease viral pathogens by chip bud grafting,” BMC Res. Notes, vol. 6, p. 516, 2013.
 
[36]  Fargette, D., Thresh, J. M., and Otim-Nape, G. W.,, “The epidemiology of African cassava mosaic geminivirus: reversion and the concept of equilibrium,” Trop. Sci., vol. 34, no. 1, pp. 123–133, 1994.
 
[37]  Chen, X., Yang, J., Xu, J., Li, W., Zhang, S., and Luo, Z., “Analysis of QTL for yield-related traits in cassava using an F1 population from non-inbred parents,” Euphytica, vol. 187, no. 2, pp. 227–234, 2012.
 
[38]  Otim-Nape, G. W., Thresh, J. M., and Shaw, M. W., “The effects of cassava mosaic virus disease on yield and compensation in mixed stands of healthy and infected cassava,” Ann. Appl. Biol., vol. 130, no. 3, pp. 503–521, 1997.
 
[39]  Ekanayake, I. J., Osiru, D. S. O. and Porto, M. C. M., Physiology of Cassava. IITA Research Guide No. 55. Third edition. Ibadan, Nigeria: IITA, 1998.
 
[40]  Ekanayake, I. J., Osiru, D., and Porto, M.,, Agronomy of cassava: IITA research guide, No. 60. Ibadan, Nigeria: IITA, 1997.
 
[41]  Thresh, J. M., Otim-Nape, G. W., Legg, J. P., and Fargette, D.,, “African cassava mosaic virus disease: the magnitude of the problem,” African J. Root Tuber Crop., vol. 2, no. 1/2, pp. 13–19, 1997.
 
[42]  IITA, Cassava in Tropical Africa A Reference Manual. Ibadan, Nigeria: Internation Institute of Tropical Agriculture (IITA), 1990. Accessed: Apr. 02, 2025. [Online]. Available: https:// www.iita.org/ wp-content/ uploads/ 2016/ 06/ Cassava_in_tropical_Africa_a_reference_manual_1990. pdf.
 
[43]  Ogbe, F., “Survey of cassava begomoviruses in Nigeria and the response of resistant cassava genotypes to African cassava mosaic begomovirus infection,” University of Ibadan, Nigeria, 2001.
 
[44]  Hayford, C. J., “Evaluation of five cassava genotypes (Manihot esculenta Crantz) for cassava mosaic disease, yields and nutrient status.” University of Cape Coast, Cape Coast, Ghana, 2017.
 
[45]  Akumanue, D., “Evaluation of eight yellow flesh and two white flesh cassava (Manihot esculenta Crantz) genotypes for cassava mosaic disease, carotenoids and nutrient status.” 2015.
 
[46]  Ceballos, H., Davrieux, F., Talsma, E. F., Belalcazar, J., Chavarriaga, P., and Andersson, M. S., “Rapid cycling recurrent selection for increased carotenoids content in cassava roots,” Crop Sci., vol. 53, no. 6, pp. 2342–2351, 2013.
 
[47]  Edoh, N. L., Adiele, J., Ndukwe, I., Ogbokiri, H., Njoku, D. N., and Egesi, C. N., “Evaluation of high beta carotene cassava genotypes at advanced trial in Nigeria,” benthamopen.com, vol. 7, pp. 144–148, 2016.
 
[48]  Maroya, N. G., Kulakow, P., Dicon, G. O., and Maziya-Dixon, B. B., “Genotype × Environment Interaction of Mosaic Disease, Root Yields and Total Carotene Concentration of Yellow Fleshed Cassava in Nigeria,” J. Agric. Sci., vol. 145, pp. 163–171, 2012.
 
[49]  Amenorpe, G., Amoatey, H. M., Darkwa, A. A., Banini, G. K., and Elloh, V. W., “Peak root and starch weights of ten early bulking cultivars of cassava (Manihot esculenta Crantz) in Ghana,” J. Ghana Sci. Assoc., vol. 9, pp. 54–60, 2007.
 
[50]  Padmaja, G., “Evaluation of Techniques To Reduce Assayable Tannin and Cyanide in Cassava Leaves,” J. Agric. Food Chem., vol. 37, no. 3, pp. 712–716, May 1989.
 
[51]  Vimala, B., Thushara, R., and Nambisan, B., “Carotenoid Retention in Yellow-fleshed Cassava during Processing,” in Proceedings of the 15th Triennial International Society for Tropical Root Crops (ISTRC) Symposium, Lima, Peru, South America, 2010.
 
[52]  Peprah, B. B., Parkes, E., Manu-Aduening, J., Kulakow, P., van Biljon, A., and Labuschagne, M., “Genetic variability, stability and heritability for quality and yield characteristics in provitamin A cassava variety,” Euphytica, vol. 216, p. 31, 2020.