IITA NEWS

Aflasafe reduces exposure to cancer-causing toxins and promotes farmer access to premium markets
February 6, 2020

International Year of Plant Health 2020“If someone eats this maize, which may contain high aflatoxin levels, they may die and their death may be attributed to something else,” Dr Alejandro Ortega-Beltran a Plant Pathologist with the International Institute of Tropical Agriculture (IITA) says as he scrolls through pictures of nasty looking maize. Nasty, because it is rotten and covered by mold. “No way, no one eats that! I protest!” He keenly looks at me and adds, “when I was collecting crop samples, a woman in Mali was going to prepare a meal from this to feed her children. They cook the grains that are not too moldy—which may be highly contaminated—and give the rest to chicken and livestock…” A cold chill runs through my body causing me to mouth an unbelievable, “Really?!”

“Yes, really…” Alejandro emphasizes and then explains what aflatoxin and Aflasafe are. Aflatoxin is produced by fungi called Aspergillus. It is present in maize, groundnut, sorghum, chili, millet, ginger, cassava, among other crops grown in the tropics and subtropics. Aflatoxin causes liver cancer but has worse consequences in children. Medical research has shown that the first 1,000 days in a child’s life are critical for their development. So, when a child is fed on aflatoxin-contaminated food—and/or when exposed while in the womb— it may lead to stunting, wasting, poor mental development, and when the levels are too high, death can occur.

Aflasafe can reduce exposure to cancer-causing toxins and promote farmer access to premium markets
Aflatoxin infected maize

How aflatoxins cause liver cancer

When one eats aflatoxin-contaminated food, the liver tries to cleanse the toxin, but if one continuously eats contaminated food, the liver is burdened and over time it develops diseases such as cancer. The World Health Organization recommends the maximum level of aflatoxin in food to be no more than 10 parts per billion (ppb) but in parts of sub-Saharan Africa, food especially maize and groundnut may have 40,000 ppb.

In April 2004, 125 people in Kenya died due to exposure to high aflatoxin levels. A study that was carried out showed that aflatoxin-contaminated homegrown maize was the source of the outbreak. Fifty-five percent of the examined maize had aflatoxin levels greater than the Kenyan regulatory limit of 20 ppb, 35% had levels higher than 100 ppb, and 7% had levels high than 1,000 ppb, some reaching over 40,000 ppb. “Even a bull, huge as it is, would drop dead from aflatoxin levels of 40,000 ppb. It’s like lacing food with poison and giving it to people,” Dr Ranajit Bandyopadhyay, a Principal Plant Pathologist with IITA explains.

Other than affecting people’s health, aflatoxin causes sub-Saharan Africa to lose millions of dollars in exports due to the high contamination levels in grains, which are rejected by the EU and other trading partners.

Armed with this knowledge of how the fungi contaminates crops, and its effects on human health and trade, IITA developed a biocontrol solution—Aflasafe. According to Ranajit, “Aflasafe is sorghum that is coated with beneficial strains of Aspergillus flavus. Aspergillus flavus is the major aflatoxin-producing fungus. However, not all strains of A. flavus produce aflatoxins. It is these non toxin-producing strains (also known as atoxigenic) that are the active ingredient in IITA’s Aflasafe.

What is Aflasafe?

Aflasafe is a granular formulation made from sorgum that is dyed blue to differentiate it from regular sorghum. When a farmer spreads Aflasafe in their field before the plant flowers, the beneficial strains reproduce, and outcompete fungi residing in the treated field and prevent them from multiplying, and contaminating the crop. Crops will always be exposed to aflatoxin because aflatoxin-producing fungi are found everywhere especially in the soil. Aflatoxin is not an Africa-specific problem, the fungi that causes it are found across all tropical and sub-tropical areas of all continents. In USA, where the biocontrol technology was developed, aflatoxin biocontrol products are approved for use in cotton, maize, pistachio, groundnut, almond and figs.

When a farmer treats their field with Aflasafe, at the right time and the right dose (10 kg/ha), as well as  follows good agricultural practices, the crop at harvest will have 80% to 100% less aflatoxins. In Africa, IITA has spearheaded the adapation and improvement of the aflasafe technology. It is now being commercialized and adopted by farmers, agribusinesses, and governments across several African nations. In 2013, Aflasafe was registered for commercial use in Nigeria, which is currently the largest adopter with close to 100,000 farmers using it.

In addition, farmers in Nigeria under the recently-concluded AgResults Nigeria Aflasafe™ Pilot Project used Aflasafe and employed good agricultural, harvest, and postharvest practives. All this combined resulted in increased  productivity from the national average of 1.5 ton/ha to 3.1 ton/ha. Increased productivity, and higher crop quality (i.e., low aflatoxin content) has allowed farmers to  increase their incomes by 16%.


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Olaosebikan, Olamide

Olamide Deborah Nwanze is a Senior Research Associate specializing in gender mainstreaming research to inform participatory and inclusive breeding, variety development, and seed systems policies regarding root, tuber, and banana (RTB) crops in the International Institute of Tropical Agriculture Headquarters, Ibadan, Nigeria. She is a PhD candidate at the University of Ibadan and holds an MSc and B. Agric in Agricultural Extension and Rural Development. Olamide is a fellow of the African Women in Agricultural Research and Development – Gender Responsive Agricultural Systems Policy (AWARD-GRASP) and the Gender Responsive Researchers Equipped for Agricultural Transformation (GREAT). She seeks to apply her gender-mainstreaming learnings, gender-responsive research, and policy development, and review expertise to facilitate women, youth, children, and vulnerable social group’s access to and adoption of agricultural Innovations that guarantee food, nutrition, income, and livelihood security in Africa. Her current roles include mentoring research fellows, development of guides and training manuals, implementation and adaptation of gender frameworks and tools, value chain actors’ engagement as citizen science partners, policy review and redesign, data management, and analysis. Her current research explores mixed methods and participatory and interdisciplinary approaches to capture and highlight gender dynamics, needs, preferences, and challenges stakeholders face within the agricultural livelihood value chain to prioritize gender-inclusive strategies in breeding programs, policy design, and implementation.

At IITA, she contributes to the implementation of the CGIAR Accelerated Breeding Initiative and Genetic Innovation Programs; participatory and gender research within the NextGen CassavaHarvestPlusRTBFoods, and Tricot-ClimMob 1000Farms Projects; and gender knowledge communication via the G-LENS webinar series, video documentary, policy briefspublications, and blogs.

 

Recent publications

de Sousa, K., van Etten, J., Manners, R. Bello, A., Teeken, B., Olaosebikan, O., et al. 2024. The tricot approach: an agile framework for decentralized on-farm testing supported by citizen science. A retrospective. Agron. Sustain. Dev. 44, 8. https://doi.org/10.1007/s13593-023-00937-1

Madu, T., Onwuka, S., Nwafor, S., Onyemauwa, N., Ejechi, M., Ofoeze, M., Ukeje, B., Eluagu, C., Olaosebikan, O., Okoye, B., 2024. Gender-Inclusive Consumer Studies Improve Cassava Breeding in Nigeria in: Frontiers in Sociology, volume 9, number: 1224504, doi: 10.3389/fsoc.2024.1224504

Olaosebikan, O.; Bello, A.; Utoblo, O.; Okoye, B.; Olutegbe, N.; Garner, E.; Teeken, B.; Bryan, E.; Forsythe, L.; Cole, S.; Madu, T. 2023.  Stressors and Resilience within the Cassava Value Chain in Nigeria: Preferred Cassava Variety Traits and Response Strategies of Men and Women to Inform Breeding. Sustainability 15, 7837. https://doi.org/10.3390/su15107837

Okoye, B., Ofoeze, M., Ejechi, M., Onwuka, S., Nwafor, S., Onyemauwa, N., Ukeje, B., Eluagu, C., Obidiegwu, J.*, Olaosebikan, O., Madu, T.* 2023. Prioritizing preferred traits in the yam value chain in Nigeria: a gender situation analysis in: Frontiers in Sociology, volume 8, number: 1232626, pages 1 – 9, ISSN 2297-7775, 2023. https://www.frontiersin.org/articles/10.3389/fsoc.2023.1232626/full

Olaosebikan, O., Bello, A. A., de Sousa, K., Ndjouenkeu, R., Adesokan, M., Alamu, E. O., Agbona, A., van Etten, J., Kegah, F. N.*, Dufour, D., Bouniol, A., Teeken, B. 2023. Consumer acceptability of cassava gari-eba food products across cultural and environmental settings using the triadic comparison of technologies approach (tricot) in: Journal of the Science of Food and Agriculture,

Teeken, B., Olaosebikan, O., Bello, A. A., Madu, T.*, Cole, S. M. 2023. Qualitative assessment on the positionality and preferences of dyads in relation to cassava-related activities: working with tricot trial citizen scientists https://hdl.handle.net/10568/138326 Type: Manual

Bouniol, A., Ceballos, H., Bello, A. A., Teeken, B., Olaosebikan, O., Owoade, D., Agbona, A., Fotso Kuate, A., Madu, T.*, Okoye, B.*, Ofoeze, M.*, Nwafor, S.*, Onyemauwa, N.*, Adinsi, L.*, Forsythe, L., Dufour, D. 2023. Varietal impact on women’s labour, workload and related drudgery in processing root, tuber and banana crops: focus on cassava in sub-Saharan Africa in: Journal of the Science of Food and Agriculture, pages 1 – 25, ISSN 0022-5142,

Bello, A. A., Agbona, A., Olaosebikan, O., Edughaen, G., Dufour, D., Bouniol, A., Iluebbey, P., Ndjouenkeu, R.*, Rabbi, I. Y., Teeken, B. 2023. Genetic and environmental effects on processing productivity and food product yield: drudgery of women’s work in: Journal of the Science of Food and Agriculture, pages 1 – 32, ISSN 0022-5142, 5

Cavicchioli, M., Zimbiti, T., Teeken, B., Nwanze, D.O., Liani, M., Parkes, E. & Bello, A. 2023. IITA-Gender Responsive Breeding Training Report. Genetic Resources Center, IITA-HQ, Ibadan, 21-23 September, 2022. Ibadan, Nigeria: IITA, (34 p.).https://hdl.handle.net/10568/131368

Agbona, A. Peteti P., Teeken B., Olaosebikan O. Bello, A. A., Parkes, E., Rabbi, I. Y., Mueller, L., Egesi, C., Kulakow, P. 2022. Data Management in Multi-disciplinary African RTB Crop Breeding Programs. In: Williamson, H.F., Leonelli, S. (eds) Towards Responsible Plant Data Linkage: Data Challenges for Agricultural Research and Development. Springer, Cham. https://doi.org/10.1007/978-3-031-13276-6_5

Lora Forsythe, Pricilla Marimo, Sarah Mayanja, Olamide D. Olaosebikan, Esme Stuart, Bela Teeken, Benjamin Okoye, Tessy Madu, (2021). Cross-product Gender Analysis of RTBfoods Step 2 Gendered Food Mapping on RTB Products. Understanding the Drivers of Trait Preferences and the Development of Multi-user RTB Product Profiles, WP1. London, UK: RTBfoods Field Scientific Report, 30 p.

Teeken, B., Garner, E., Agbona, A., Balogun, I., Olaosebikan, O., Bello, A., Madu, T., Okoye, B., Egesi, C., Kulakow, P. and Tufan, H.A. 2021. Beyond “Women’s Traits”: Exploring How Gender, Social Difference, and Household Characteristics Influence Trait Preferences. Frontiers Sustainable Food Systems 5:740926. https://doi.org/10.3389/fsufs.2021.740926

Teeken, B., Agbona, A., Bello, A., Olaosebikan, O., Alamu, E., Adesokan, M., Awoyale, W., Madu, T., Okoye, B., Chijioke, U., Owoade, D., Okoro, M., Bouniol, A., Dufour, D., Hershey, C., Rabbi, I., Maziya‐Dixon, B., Egesi, C., Tufan, H. and Kulakow, P. (020. Understanding cassava varietal preferences through pairwise ranking of gari‐eba and fufu prepared by local farmer–processors. Int J Food Sci Technol. https://doi.org/10.1111/ijfs.14862

Bela Teeken, Olamide Olaosebikan, Ireti Balogun, Benjamin Okoye, Tessy Madu, Steven Cole, Abolore Bello, Elizabeth Parkes. (2020). Piloting the G+ customer and product profile tools for gender-responsive cassava breeding in Nigeria. Nigeria: International Institute of Tropical Agriculture (IITA). https://hdl.handle.net/20.500.11766/13000