Drabo Samuel
Fogné, Nikiéma Dominique, Zézouma Anselme Dao, Romba Rahim,
Sedogo Sanata, and Gnankine Olivier, from the institute of the Burkina
Faso. Wrote a research article about, Kogle-Zanga Biopesticide Boosts Amaranth
Yield. Entitled, Role of the Kogle-zanga biopesticide in improving amaranth
leaf production in Loumbila. This research paper published by the International Journal of Biosciences | IJB. an open access scholarly research journal on
Biosciences. under the affiliation of the International Network For
Natural Sciences| INNSpub. an open access multidisciplinary research
journal publisher.
Abstract
Amaranth is a widely consumed traditional vegetable with high nutritional value. However, its production is constrained by both biotic and abiotic factors, which cause significant field damage. To address this issue, farmers often rely on a variety of pesticides, many of which are unregistered and pose risks to both humans and the environment. Hence, there is an urgent need to find alternatives to these synthetic products. In this context, the present study was undertaken to improve amaranth production using Kogle-zanga, a biopesticide. A completely randomized block design with four replications and four treatments was used. The biopesticide’s efficacy was assessed based on pest attack levels, plant growth and development, and leaf yield. The results showed that Kogle-zanga effectively controlled pests. The T3 dose (70 mL/ha) had a more favorable effect on growth, development, and leaf yield compared to the T1 (50 mL/ha) and T2 (60 mL/ha) doses. Among the tested doses, T3 (70 mL/ha) was the most effective. Additionally, the biopesticide enabled amaranth to achieve its potential yield of 1–2 t/ha. Therefore, promoting the use of this biopesticide among producers for amaranth leaf cultivation is essential to protect human health and the environment.
Introduction
Burkina Faso is
characterised by a Sudano-Sahelian climate and an economy strongly dependent on
agricultural and pastoral activities. Agriculture plays a central role in the
national economy and remains a major driver of economic growth. It currently
contributes approximately 18–19% of the gross domestic product (GDP) (INSD,
2025), while the services sector was the principal contributor to the 4.9%
economic recovery recorded in 2024. Agricultural activities continue to be the
primary source of employment in the country, with 98.7% of the agricultural
workforce employed in the informal sector (INSD, 2025).
With cereal production
estimated at 6.1 million tonnes (FAO, 2023), agriculture remains a cornerstone
of both the economy and food security in Burkina Faso. Agricultural production
is largely dominated by cereals, particularly millet, sorghum, maize, rice and
fonio, which occupy more than 60% of cultivated land and contribute over 55% of
total crop production nationwide (INSD, 2025). The sustained production levels
recorded in recent years further underscore the strategic importance of
cereal-based farming systems in the country (FAO, 2023).
This situation is
partly due to a long-standing agricultural policy that has prioritised the
promotion of food and cash crops to the detriment of fruit and vegetable
production. This trend persists today, as subsidies for cereal inputs continue
to account for the largest share of the national agricultural budget (INSD,
2025). According to the World Bank (2023), the agricultural sector contributed
1.9 percentage points to the 4.9% economic growth recorded in 2023 and
represented 18.59% of the national gross domestic product (GDP). Vegetable
crops, particularly onions, tomatoes and cabbages, constitute the second
largest group of primary crops after cereals in Burkina Faso. These crops
contribute substantially to both food security and the livelihoods of rural
households (INSD, 2025). Their production has increased steadily in recent
years, largely driven by the expansion of irrigated farming systems and the
growing use of agricultural inputs, including fertilisers and pesticides.
Improvements in farming practices and the adoption of high-yielding varieties
have also contributed to this upward trend (FAO, 2023).
Among these vegetable
species, amaranth (Amaranthus spp.) is an important traditional leafy vegetable
valued for its high nutritional potential and widespread consumption (Gelaye,
2023; Netshimbupfe et al., 2023). In addition to its leaves, the seeds are also
consumed in various forms (Ajayi et al., 2016; Alemayehu et al., 2015). More
generally, leafy vegetables constitute an essential component of diets in many
parts of the world, particularly in Africa, Asia and Oceania, where they make
significant contributions to nutritional intake and are also used in
traditional medicinal practices (Abolaji et al., 2016; Al-Mamun et al., 2016;
Bhat et al., 2015). However, amaranth production is frequently constrained by a
wide range of biotic pressures, particularly pest infestations, which are among
the major causes of yield losses (Ezeh et al., 2015; Mureithi et al., 2017;
Seni, 2018). To manage these pests, producers frequently depend on the
intensive and often indiscriminate application of synthetic chemical pesticides
(Drabo et al., 2017, 2021). Nevertheless, the excessive use of chemical
fertilisers and pesticides may adversely affect both the agronomic performance
of amaranth and its culinary quality (Ahouangninou et al., 2011; Nampeera et
al., 2019). Moreover, the intensive application of synthetic pesticides poses
considerable risks to human health and the environment, including contamination
of soils and water resources (Acharya et al., 2025), poisoning of producers and
consumers (Romba et al., 2020), and the progressive erosion of biodiversity (Knauer
et al., 2026). A recent study estimated that the annual avoidable health and
environmental costs associated with toxic chemicals in food systems amount to
approximately USD 3 trillion (Systemiq, 2025). In addition, the repeated and
uncontrolled use of insecticides contributes to the development of resistance
among several pest species, thereby reducing treatment efficacy over time and
increasing production costs (Bian et al., 2026). These constraints represent a
major challenge for agricultural production systems, particularly for vegetable
crops that depend heavily on phytosanitary interventions (Schatz et al., 2026).
In response to the
growing challenges associated with synthetic insecticides, increasing attention
is being directed towards plant-based biopesticides as sustainable alternatives
for crop pest management due to their biodegradability, low environmental
impact and compatibility with agroecological and integrated pest management
approaches. The present study aimed to evaluate the efficacy of Kogle-zanga, a
locally produced biopesticide, on pest damage and the agronomic performance of
amaranth crops.
Reference
Abolaji GT, Olooto FM,
Ogundele DT, Williams FE. 2016. Nutritional characterization of grain
amaranth grown in Nigeria for food security and healthy living.
Agrosearch 17(2), 1. DOI: 10.4314/agrosh.v17i2.1
Acharya LK, Paramaguru
PK, Tripathi K, Bhoi TK, Seth P, Birah A. 2025. Pesticide contamination in
groundwater: Processes, risks, and mitigation strategies. Discover
Agriculture 3(1). DOI: 10.1007/s44279-025-00337-x
Ahouangninou C, Fayomi
BE, Martin T. 2011. Évaluation des risques sanitaires et environnementaux
des pratiques phytosanitaires des producteurs maraîchers dans la commune rurale
de Tori-Bossito (Sud-Bénin). Cahiers Agricultures 20(3), 216–222. DOI:
10.1684/agr.2011.0485
Ajayi EO, Sakariyawo
OS, Okeleye KA, Ariyo OJ. 2016. Preliminary evaluation of grain amaranth (Amaranthus spp.)
accessions for drought tolerance by multivariate technique. Agronomski Glasnik,
231–250.
Akhter W, Shah FM, Yang
M, Freed S, Razaq M, Mkindi AG, Akram H, Ali A, Mahmood K, Hanif M. 2023.
Botanical biopesticides have an influence on tomato quality through pest
control and are cost-effective for farmers in developing countries. PLoS
ONE 18(11). DOI: 10.1371/journal.pone.0294775
Alemayehu FR, Bendevis
MA, Jacobsen SE. 2015. The potential for utilizing the seed crop amaranth
(Amaranthus spp.) in East Africa as an alternative crop to support food
security and climate change mitigation. Journal of Agronomy and Crop
Science 201(5), 321–329. DOI: 10.1111/jac.12108
Al-Mamun MA, Husna J,
Khatun M, Hasan R, Kamruzzaman M, Hoque KMF, Reza MA, Ferdousi Z. 2016.
Assessment of antioxidant, anticancer and antimicrobial activity of two
vegetable species of Amaranthus in Bangladesh. BMC Complementary and
Alternative Medicine 16(1). DOI: 10.1186/s12906-016-1130-0
Babendreier D, Koku
Agboyi L, Beseh P, Osae M, Nboyine J, Ofori SEK, Frimpong JO, Attuquaye Clottey
V, Kenis M. 2020. The efficacy of alternative, environmentally friendly
plant protection measures for control of fall armyworm, Spodoptera
frugiperda, in maize. Insects 11(4). DOI: 10.3390/insects11040240
Bhat A, Satpathy G,
Gupta RK. 2015. Evaluation of nutraceutical properties of Amaranthus
hypochondriacus L. grains and formulation of value added cookies. Journal
of Pharmacognosy and Phytochemistry 3(5), 51–54.
Bian DD, Xing ZY, Lu X,
Dai SG, Liu QN, Tang BP, Wang ZG. 2026. Pesticide toxicity in Procambarus
clarkii: Integrating oxidative stress, immune dysfunction, and gut microbiota
disruption. Pesticide Biochemistry and Physiology, 107162. DOI:
10.1016/j.pestbp.2026.107162
De Kock K, Motti P,
Degroote E, Perneel M, Van Droogenbroeck B, Cammue BPA, Höfte M, Demeestere K,
Mangelinckx S, Geelen D, Kyndt T. 2025. Fennel and other aqueous Apiaceae
byproduct extracts as novel bioprotectants: Unravelling their bioactivity,
working mechanism and bioactive compounds. Plant Stress 15. DOI:
10.1016/j.stress.2025.100750
De Sousa TK, Silva AT
da, Soares FE de F. 2025. Fungi-based bioproducts: A review in the context
of One Health. Pathogens 14(5). DOI: 10.3390/pathogens14050463
Drabo SF, Olivier G,
Bassolé IHN, Nébié RC, Laurence M. 2017. Susceptibility of MED-Q1 and
MED-Q3 biotypes of Bemisia tabaci (Hemiptera: Aleyrodidae)
populations to essential and seed oils. Journal of Economic Entomology 110(3),
1031–1038. DOI: 10.1093/jee/tox100
Drabo SF, Ouilly JT,
Romba R, Bassole IHN, Gnankine O. 2021. Bioefficacy of seed oils
from Combretum and Lannea species against Bemisia tabaci (Hemiptera:
Aleyrodidae). International Journal of Tropical Insect Science 41(4),
3041–3048. DOI: 10.1007/s42690-021-00496-6
Ezeh A, Ogedegbe A,
Ogedegbe S. 2015. Insect pest occurrence on cultivated Amaranthus spp.
in Benin City, Edo State, Nigeria. Journal of Applied Sciences and
Environmental Management 19(2), 335. DOI: 10.4314/jasem.v19i2.22
FAO. 2023. World
Food and Agriculture – Statistical Yearbook 2023. Food and Agriculture
Organization of the United Nations, Rome. DOI: 10.4060/cc8166en
Fenibo EO, Matambo T. 2025.
Biopesticides for sustainable agriculture: Feasible options for adopting
cost-effective strategies. Frontiers in Sustainable Food Systems 9. DOI:
10.3389/fsufs.2025.1657000
Gelaye Y. 2023. A
review of amaranth crop as a potential solution to Ethiopia’s nutritional
crisis. Nutrition and Dietary Supplements 15, 101–110. DOI:
10.2147/NDS.S428058
Hounnou EF, Ouedraogo
M. 2025. Methodology for calculating the return of investment (ROI), the
benefit-cost ratio (BCR), and cost effectiveness ratio (CER) of the integrated
resilience programmes in the Sahel. 56 p.
INSD. 2025.
Enquête Nationale Semestrielle sur l’Emploi.
Kashyap U, Reddy SGE. 2025.
Metabolic profiling and insecticidal activities of Rosmarinus officinalis L.
for the management of Aphis craccivora Koch and Planococcus
lilacinus Cockerell. Chemical and Biological Technologies in
Agriculture 12(1). DOI: 10.1186/s40538-025-00761-7
Knauer A, Adhikari S,
Andersson GKS, Andrieu E, Báldi A, Batáry P, Bosch J, Bushmann SL, Cano D,
Carrié R, Danforth BN, Drummond FA, Esquerré D, García D, Gratton C, Hambäck
PA, Happe AK, Hederström V, Holzschuh A, et al. 2026. Pesticides and
habitat loss additively reduce wild bees in crop fields. Nature Ecology and
Evolution 10(1), 95–104. DOI: 10.1038/s41559-025-02924-z
Kostina-Bednarz M,
Płonka J, Perkons I, Bartkevics V, Barchanska H. 2025. Pesticides of
natural origin as safer alternatives to synthetic pesticides: Identification of
hinokitiol, tebuconazole and 2,4-D metabolites and evaluation of their impact
on cereals. Science of the Total Environment 973, 179177. DOI:
10.1016/j.scitotenv.2025.179177
Mahenge N, Mourice KS,
Mabiki PF, Sibuga PK. 2026. Solanum incanum leaf powder exhibits
high insecticidal efficacy against Sitophilus zeamais in stored maize
seeds: Implications for sustainable pest management. Cureus Journal of
Agriculture and Food Science, 1–27. DOI: 10.7759/s44497-026-00048-1
Marrone PG. 2025.
Increasing the use of biological pesticides in integrated pest management
programs. Frontiers in Insect Science 5. DOI: 10.3389/finsc.2025.1552361
Mayamba A, Mutuku B,
Ayuya OI, Kansiime M, Bateman M, Phelps S, Alokit C, Owembabazi L, Aliamo C,
Bundi M, Ochilo W, Bitange N, Lutomia CK, Jong AO, Alworah GO. 2025.
Gendered risk perceptions and structural barriers to sustainable pest
management: Evidence from Uganda’s tomato value chain. Frontiers in Sustainable
Food Systems 9. DOI: 10.3389/fsufs.2025.1656739
Mujuka EA, Affognon H,
Muriithi BW, Subramanian S, Irungu P, Mburu J. 2017. Returns to research
and outreach for integrated pest management of western flower thrips infesting
French bean and tomato in Kenya. International Journal of Tropical Insect
Science 37(2), 114–124. DOI: 10.1017/S1742758417000029.
Mureithi D, Fiaboe K,
Ekesi S, Meyhöfer R. 2017. Important arthropod pests on amaranth and
African nightshade. African Journal of Horticultural Sciences 11, 1–17.
Nampeera EL, Nonnecke
GR, Blodgett SL, Tusiime SM, Masinde DM, Wesonga JM, Murungi LK, Baidu-Forson
JJ, Abukutsa-Onyango MO, Hodgson E. 2019. Farmers’ knowledge and practices
in the management of insect pests of leafy amaranth in Kenya. Journal of
Integrated Pest Management 10(1). DOI: 10.1093/jipm/pmz029
Netshimbupfe MH, Berner
J, Van Der Kooy F, Oladimeji O, Gouws C. 2023. The importance and use
of Amaranthus for crop diversification in the SADC region. South
African Journal of Botany 152, 192–202. DOI: 10.1016/j.sajb.2022.11.039
Othim STO,
Kahuthia-Gathu R, Akutse KS, Foba CN, Fiaboe KKM. 2018. Seasonal
occurrence of amaranth lepidopteran defoliators and effect of attractants and
amaranth lines in their management. Journal of Applied Entomology 142(7),
637–645. DOI: 10.1111/jen.12513
Rajagopal R, Kuppusamy
P, Sathya R, Nandhakumari P, Bensy ADV, Biji GD. 2022. Antifungal
phytochemicals from the methanol and aqueous extract of Acacia concinna and Lantana
camara and synergistic biological control of the hibiscus mealybug (Maconellicoccus
hirsutus). Physiological and Molecular Plant Pathology 119, 101813. DOI:
10.1016/j.pmpp.2022.101813
Romba R, Samuel DF,
Bowende K, Appolinaire Z, Olivier G. 2020. Evaluation des risques liés aux
pratiques phytosanitaires des producteurs maraîchers et mise en évidence de la
résistance aux pesticides chez l’aleurode Bemisia tabaci (Hemiptera:
Aleyrodidae) au Burkina Faso, Afrique de l’Ouest. Science de la Vie, de la
Terre et Agronomie 08, 90–99.
Schatz B, Aubouin L,
Cuvillier V, Deguines N, Fontaine C, Ghisbain G, Hautekèete N, Henry M, Michez
D, Perrard A, Piquot Y, Petitjean Q, Porcher E, Ropars L, Richard FJ, Schurr L,
Tissier M, Geslin B. 2026. France must protect pollinators over
pesticides. Science 392(6796), 366. DOI: 10.1126/science.aeg6003.
Seni A. 2018.
Insect pests of amaranthus and their management. International Journal of Environment,
Agriculture and Biotechnology 3(3), 1100–1103. DOI: 10.22161/ijeab/3.3.50.
Systemiq. 2025.
Tackling toxic chemicals in the food system: Invisible ingredients. Available
from: Systemiq
Vorsah RV, Dingha BN,
Sharma H, Jackai LE. 2020. Evaluation of biorational insecticides as
stand-alone treatments for the management of the pigweed flea beetle, Disonycha
glabrata (Coleoptera: Chrysomelidae), in organic production of Amaranthus spp.
Sustainable Agriculture Research 9(3), 58. DOI: 10.5539/sar.v9n3p58
World Bank. 2023.
Burkina Faso Agro-Forestry-Pastoral Sector Public Expenditure Review. World
Bank. Available from: World Bank
https://documents1.worldbank.org/curated/en/099621304162432367/pdf/IDU12f1912631af9914c85192fe1af9d9e








