From Weed to Wonder: Nutritional Profiling of Bidens Pilosa as a Forgotten Food Resource for Household Food Security in Zambia
Authors
Department of Natural Resources and Environmental Sciences, School of Agriculture and Natural Resources, Mulungushi University, P.O. Box 80415, Kabwe (Zambia)
C/o Department of Natural Resources and Environmental Sciences, Mulungushi University, P.O. Box. 80415, Kabwe (Zambia)
Research and Innovation Department, Mulungushi University, P.O. Box 80415, Kabwe (Zambia)
Article Information
DOI: 10.51584/IJRIAS.2026.11070109
Subject Category: Food science
Volume/Issue: 11/7 | Page No: 1571-1592
Publication Timeline
Submitted: 2026-07-18
Accepted: 2026-07-23
Published: 2026-08-07
Abstract
Indigenous leafy vegetables play a pivotal role in enhancing food and nutrition security, particularly within economically disadvantaged rural and urban communities. This study evaluated the nutritional and non-food attributes of Bidens pilosa (commonly known as Black Jack) as a potential alternative vegetable for low-income households in Zambia. The research was conducted between December 2023 and March 2024 in Munamakalwe area, Chipapa, Chilanga District, Lusaka Province. Eight leaf samples were collected from smallholder farms and subjected to proximate analysis using standard methodologies: the oven-drying method for moisture content, the Kjeldahl method for crude protein, and conventional protocols for crude fibre, ash, fat, and carbohydrate estimation. The proximate composition per 100g of fresh weight was as follows: moisture 83%, protein 4.21%, fat 0.2%, fibre 4%, ash 1.2%, and carbohydrates11%. When compared with three commonly consumed exotic vegetables (rape, cabbage, and tomato), B. pilosa exhibited a notably higher protein content, double that of rape, triple that of cabbage, and quadruple that of tomato. To assess the non-food uses and perception of B. pilosa, a structured questionnaire was administered. Results indicated significant ethnomedicinal value and positive health implications. However, popularity among the youth remains low, attributed to negative perceptions of indigenous vegetables as ‘backward’ or old-fashioned. The study highlights the potential of B. pilosa to address micronutrient deficiencies and food insecurity in low-income households. It also recommends further research into its amino acid profile to fully characterise its protein quality. Additionally, investigation into varietal nutritional variability and its potential use as livestock feed is warranted. Greater public awareness and promotion of its benefits are essential to increase its utilisation.
Keywords
Bidens pilosa, indigenous vegetables, nutritional analysis, food security, ethnobotany, protein quality.
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References
1. Akinola, R., Pereira, L.M., Mabhaudhi, T., De Bruin, F.-M. and Rusch, L., 2020. A review of indigenous food crops in Africa and the implications for more sustainable and healthy food systems. Sustainability, 12(9), p.3493. [Google Scholar] [Crossref]
2. Akinola, R., Pereira, L.M., Mbhenyane, L., Mabhaudhi, T., De Bruin, F. and Rusch, L., 2020. A review of indigenous food crops in Africa and the implications for more sustainable and healthy food systems. Sustainability, 12, pp.1–30. [Google Scholar] [Crossref]
3. Alaofe, H., 2014. Zambia Nutrition Profile. Washington, DC: United States Agency for International Development (USAID). [Google Scholar] [Crossref]
4. Alaofe, H., Kohler, A., Taren, D. and Musonda, M.J., 2014. Zambia Food Consumption and Nutrient Status Survey Report. Zambia. [Google Scholar] [Crossref]
5. Andersen, P.P., 1993. Nutritional consequences of agricultural projects in developing countries. Washington, DC: International Food Policy Research Institute. [Google Scholar] [Crossref]
6. Anderson, J.W., Baird, P., Davis, R.H., Ferreri, S., Knudtson, M., Koraym, A., Waters, V. and Williams, C.L., 2009. Health benefits of dietary fibre. Nutrition Reviews, 67(4), pp.188–205. [Google Scholar] [Crossref]
7. AOAC, 2000. Official Methods of Analysis of AOAC International. 17th ed. Gaithersburg: AOAC International. [Google Scholar] [Crossref]
8. Arthur, H., 2012. Medicinal uses and nutritional composition of Bidens pilosa in traditional medicine systems. London: Academic Health Press. [Google Scholar] [Crossref]
9. Arthur, G.D., Naidoo, Y. and Coopoosamy, R.M., 2012. Bidens pilosa: Agricultural and pharmaceutical importance. Plants, 6(17), pp.3282–3287. [Google Scholar] [Crossref]
10. Bartolome, A.P., Villaseñor, I.M. and Yang, W.C., 2013. Bidens pilosa L.: botanical properties, traditional uses, phytochemistry, and pharmacology. Evidence-Based Complementary and Alternative Medicine, Article ID 340215. [Google Scholar] [Crossref]
11. Bernard, H.R., 2017. Research Methods in Anthropology: Qualitative and Quantitative Approaches. 6th ed. Lanham: Rowman & Littlefield. [Google Scholar] [Crossref]
12. Bi, S., Guan, D., Suhua, W., Jiajia, L. and Qingchuan, W., 2018. Determination of moisture content in plant-based food using microwave heating. Food Chemistry, 266, pp.283–290. [Google Scholar] [Crossref]
13. Bi, X., Lim, J., Wang, S. and Li, X., 2018. Comparative analysis of moisture content determination methods for leafy vegetables. Journal of Food Science and Technology, 55(10), pp.4085–4091. [Google Scholar] [Crossref]
14. Braun, V. and Clarke, V., 2006. Using thematic analysis in psychology. Qualitative Research in Psychology, 3(2), pp.77–101. [Google Scholar] [Crossref]
15. Chirwa, M. and Saka, A., 2021. Indigenous vegetable species and their contribution to food and nutritional security in Eastern and Southern Africa. African Journal of Food, Agriculture, Nutrition and Development, 21(4), pp.17589–17606. [Google Scholar] [Crossref]
16. Chomba, C., Chabwela, H. and Chavwakaila, W., 2023. An assessment of the nutritional content of selected neglected and underutilized indigenous wild leafy vegetable (Ceratotheca sesamoides and Corchorus olitorius) consumed in Manyumbi area of Kapiri Mposhi, Zambia: A preliminary study for recovering Africa’s lost potential crops. Journal of Agriculture and Life Sciences, 3(5), pp.54–76. [Google Scholar] [Crossref]
17. CSO, 2012. Living Condition and Monitoring Report 2006 and 2010. Lusaka: Central Statistical Office of Zambia. [Google Scholar] [Crossref]
18. CSO, 2022. Zambia Population and Demographic Projections 2022. Lusaka: Central Statistical Office of Zambia. [Google Scholar] [Crossref]
19. Damalas, C.A., 2008. Distribution and biology of Bidens pilosa as a weed in disturbed habitats. Journal of Plant Ecology, 1(3), pp.119–127. [Google Scholar] [Crossref]
20. Emebu, P.K. and Anyika, J.U., 2011. Proximate and mineral composition of kale (Brassica oleracea) grown in Delta State, Nigeria. Pakistan Journal of Nutrition, 10(2), pp.190–194. [Google Scholar] [Crossref]
21. FAO, 1995. Composition and quality of foods in developing countries. Rome: Food and Agriculture Organization of the United Nations. [Google Scholar] [Crossref]
22. FAO, 2017. The future of food and agriculture: Trends and challenges. Rome: Food and Agriculture Organization of the United Nations. [Google Scholar] [Crossref]
23. Fasuyi, A.O., 2006. Nutritional potentials of some tropical vegetable leaf meals. African Journal of Biotechnology, 5(1), pp.49–53. [Google Scholar] [Crossref]
24. Ihekoronye, A.I. and Ngoddy, P.O., 1985. Integrated Food Science and Technology for the Tropics. London: Macmillan Publishers. [Google Scholar] [Crossref]
25. Ibrahim, I.A., Awadalla, S.S., El‐Daim, I.A. and Mustafa, A.I., 2009. Evaluation of leaf protein and mineral content of some wild edible plants. International Journal of Food Science & Technology, 44(6), pp.1232–1238. [Google Scholar] [Crossref]
26. Kamboj, A. and Saluja, A.K., 2010. Phytopharmacological review of Bidens pilosa. International Journal of Green Pharmacy, 4(4), pp.283–290. [Google Scholar] [Crossref]
27. Kissanga, R., 2021. Comparative nutritional analysis of leafy vegetables in Zambia. African Journal of Food, Agriculture, Nutrition and Development, 21(3), pp.17562–17580. [Google Scholar] [Crossref]
28. Kissanga, R.J.S., 2021. Nutritional and functional properties of wild leafy vegetables for improving food security. Frontiers in Sustainable Food Systems, doi:10.3389/fsufs.202.791705. [Google Scholar] [Crossref]
29. Mburu, F.W., Kimiywe, J. and Karanja, N., 2012. Post-harvest handling of indigenous vegetables: A review. African Journal of Horticultural Science, 6(1), pp.56–65. [Google Scholar] [Crossref]
30. Mensah, J.K., 2008. Phytochemical and medical properties of leafy vegetables. African Journal of Biotechnology, 7(14), pp.2304–2309. [Google Scholar] [Crossref]
31. Ndidi, U.S., Ndidi, C.U., Olagunju, A., Muhammad, A., Billy, F.G. and Okpe, O., 2014. Proximate, mineral and anti-nutrient composition of Vernonia amygdalina leaves. Journal of Nutrition & Food Sciences, 4(6), pp.1–6. [Google Scholar] [Crossref]
32. Njume, C.G., 2014. Indigenous leafy vegetables (imifino, morogo, muhuro) in South Africa: A rich and unexplored source of nutrients and antioxidants. African Journal of Biotechnology, 13, doi:10.5897/AJB2013.13320. [Google Scholar] [Crossref]
33. Oboh, G., 2006. Nutrient composition of fermented legumes. Journal of Food Biochemistry, 30(5), pp.579–588. [Google Scholar] [Crossref]
34. Odhava, A., 2007. Preliminary assessment of the nutritional value of traditional leafy vegetables in KwaZulu-Natal. South African Journal of Science, 103(9–10), pp.430–435. [Google Scholar] [Crossref]
35. Okudu, H.O., Olatunde, G.O., Alabi, O. and Ayeni, A.O., 2020. Nutritional evaluation of some selected green leafy vegetables commonly consumed in Nigeria. International Journal of Food Science and Nutrition, 5(2), pp.127–133. [Google Scholar] [Crossref]
36. Omotayo, A.O. and Aremu, A.O., 2020. Underutilized African indigenous fruit trees and food–nutrition security: Opportunities, challenges, and prospects. Food and Energy Security, 9(4), e229. [Google Scholar] [Crossref]
37. Shackleton, C.M., Shackleton, S.E. and Shanley, P., 2009. Non-timber forest products in the global context. Berlin, Heidelberg: Springer. [Google Scholar] [Crossref]
38. Sinangwe, D., 2016. Determination of dichlorvos residue levels in vegetables sold in Lusaka, Zambia. [Unpublished MSc thesis]. University of Zambia. [Google Scholar] [Crossref]
39. Smith, I.F., Eyzaguirre, P. and Johns, T., 2018. Indigenous vegetables: a tool for poverty alleviation and sustainable development in sub-Saharan Africa. Acta Horticulturae, 806, pp.187–194. [Google Scholar] [Crossref]
40. Tembo, F.M., Kalinda, T. and Chitundu, M., 2022. Land use dynamics in peri-urban Zambia: A case of Chilanga District. Zambian Journal of Geography and Planning, 3(2), pp.48–61. [Google Scholar] [Crossref]
41. United States Agency for International Development (USAID), 2022. Nutrition Profile: Zambia. Washington, DC: USAID. [Google Scholar] [Crossref]
42. Umerah, N. and Nnam, D.S., 2019. Nutritional composition of neglected underutilized green leafy vegetables and fruits in South East Nigeria. Asian Food Science Journal, 11(2), pp.15–17. doi:10.9734/AFSJ/2019/v11i230058. [Google Scholar] [Crossref]
43. Uusiku, N.P., Oelofse, A., Duodu, K.G., Bester, M.J. and Faber, M., 2010. Nutritional value of leafy vegetables of sub-Saharan Africa and their potential contribution to human health: A review. Journal of Food Composition and Analysis, 23(6), pp.499–509. [Google Scholar] [Crossref]
44. Williams, J., 2022. Global Research on Underutilized Crops: An Assessment of Current Activities and Proposals for Enhanced Cooperation. Rome: Bioversity International. [Google Scholar] [Crossref]
45. World Health Organization (WHO), 2009. Global health risks: Mortality and burden of disease attributable to selected major risks. Geneva: WHO. [Google Scholar] [Crossref]
46. World Health Organization (WHO), 2021. Global Nutrition Report 2021. Geneva: WHO. [Google Scholar] [Crossref]
47. World Health Organization (WHO), 2022. Nutrition Profile Report. Geneva: WHO. [Google Scholar] [Crossref]
48. Zambia Agricultural Research Institute (ZARI), 2019. Agro-Ecological Zones of Zambia: Technical Handbook. Lusaka: Ministry of Agriculture. [Google Scholar] [Crossref]
49. Zambia Meteorological Department, 2023. Annual Climatic Summary Report – Lusaka Province. Lusaka. [Google Scholar] [Crossref]
50. Zambia Nutrition Profile, 2021. Country Nutrition Profile: Zambia. Washington, DC: United States Agency for International Development (USAID). [Google Scholar] [Crossref]
51. Zulu, L.C. and Mataa, M., 2021. Traditional knowledge and utilisation of wild edible plants in Lusaka Province, Zambia. African Journal of Ecology, 59(3), pp.552–563. [Google Scholar] [Crossref]
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