Influence de trois zones écologiques (Beni, Butembo et Rutshuru) sur certaines qualités de la farine et du foufou de sept nouveaux clones de manioc en RD Congo

https://doi.org/10.57988/crig-2074

Authors

  • Yves Mbusa Kamavu Université officielle de Semuliki

Keywords:

Manioc, matière sèche, amidon, Cyanure, qualité de foufou. (pâte)., Cassava, dry matter, starch, cyanide, fufu quality

Abstract

Cette étude avait pour objectif d’évaluer les teneurs en matière sèche, en amidon et en acide cyanhydrique dans les racines fraiches de sept clones testés dans trois zones agro écologiques : Beni, Butembo et Rutshuru sur une période de 3 ans allant de 2017 à 2020.
Au cours de l’essai de la saison de 2018-2019 durant laquelle les analyses ont été réalisées, après un cycle cultural de 12 mois ; les teneurs en matière sèche, en amidon et en acide cyanhydrique ont varié entre les variétés d’un site à un autre. Le taux en MS des racines de manioc a varié dans l’intervalle de 38,88% et 49,35% ; 23,72% et 48,16% ; 24,37% et 47,33% respectivement dans les sites UCG, Kyatsaba et Rutshuru. S’agissant du taux de l’amidon, il a oscillé entre 45,04% et 71,15% ; 47,72% et 63,18% ; 50,56% et 59,44% respectivement dans les sites UCG, Kyatsaba et Rutshuru. Enfin, les variations du taux de l’acide cyanhydrique sont allées de 5 à 25ppm, 25 à 59 ppm et 14 à 36 ppm respectivement dans les sites UCG, Kyatsaba et Rutshuru. Globalement ces valeurs sont proches de celles de 30 à 50 ppm généralement rapportées pour les variétés cultivées dans le monde et classent nos variétés parmi celles dites douces. L’analyse sensorielle des foufous obtenus à partir des différentes farines montre des bonnes caractéristiques pour les clones Kas 8 et Mayombe puis les clones Kas1 et Kas3. Cependant l’ensemble des dégustateurs ont jugé de moindres qualités les foufous faits à base des clones Kas6, Kas2 et Kas7.

Abstract

This study aimed to assess dry matter, starch and hydrocyanic acid contents in fresh roots of seven clones tested in three agro-ecological zones: Beni, Butembo and Rutshuru over a 3-year period from 2017 to 2020.
During the 2018-2019 season trial during which the analyses were carried out, after a 12-month crop cycle; dry matter, starch and hydrocyanic acid contents varied between varieties from one site to another. The DM content of cassava roots varied in the range of38.88% and 49.35% ;23.72% and 48.16%; 24.37% and 47.33% respectively in the UCG, Kyatsaba and Rutshuru sites. As for the starch rate, it fluctuated between 45.04% and71.15%; 47.72% and 63.18%; 50.56% and 59.44% respectively in the UCG, Kyatsaba and Rutshuru sites. Finally, the variations in the hydrocyanic acid rate ranged from 5 to 25 ppm, 25 to 59 ppm and 14 to 36 ppm respectively in the UCG, Kyatsaba and Rutshuru sites. Overall, these values are close to those of 30 to 50 ppm generally reported for varieties grown in the world and classify our varieties among those called sweet. The sensory analysis of the fufus (cassava bread) obtained from the different flours shows good characteristics for the Kas 8 and Mayombe clones, then the Kas1 and Kas3 clones. However, all the tasters judged the fufus (cassava bread) made from the Kas6, Kas2 and Kas7 clones to be of lower quality.

Downloads

Download data is not yet available.

Author Biography

Yves Mbusa Kamavu, Université officielle de Semuliki

Faculé des Sciences Agronomiques, Université Officielle de Semuliki (UOS)

References

Abraham, K., Buhrke, T., & Lampen, A. (2016). Bioavailability of cyanide after consumption of a single meal of foods containing high levels of cyanogenic glycosides : A crossover study in humans. Archives of Toxicology, 90(3), 559‑574. https://doi.org/10.1007/s00204-015-1479-8

Agahiu, A. E., Baiyeri, K. P., & Ogbuji, R. O. (2011). Correlation analysis of tuber yield in cassava morphological types grown under nine weed management systems. Journal of Applied Biosciences, 48, 316‑3321.

Amelework, A. B., Bairu, M. W., Marx, R., Owoeye, L., Laing, M., & Venter, S. L. (2022). On-farm multi-environment evaluation of selected cassava (manihot esculenta crantz) cultivars in South Africa. Plants, 11(23), 3339. https://doi.org/10.3390/plants11233339

Anikwe, M. A. N., & Ikenganyia, E. E. (2018). Ecophysiology and production principles of cassava (manihot species) in southeastern Nigeria. In M. A. N. Anikwe & E. E. Ikenganyia (Éds.), Cassava. IntechOpen. https://doi.org/10.5772/intechopen.70828

Anonyme. (2015). Document de la strategie de croissance et de reduction de la pauvretepauvretepauvretepauvrete de seconde generationde seconde generationde seconde generationde seconde generation (DSCRP 2) (Ministère du Plan).

Araújo, F. D. C. B. D., Cunha, R. L., Moura, E. F., & Farias, J. T. D. (2015). Chemical characterization of roots of bitter cassava sampled in Pará state, Brazil. Revista de Ciências Agrárias, 58(2), 131‑137. https://doi.org/10.4322/rca.1821

Asaoka, M., Blanshard, J. M. V., & Rickard, J. E. (1992). Effects of cultivar and growth season on the gelatinisation properties of cassava (manihot esculenta) starch. Journal of the Science of Food and Agriculture, 59(1), 53‑58. https://doi.org/10.1002/jsfa.2740590108

Asegbeloyin, J. N., & Onyimonyi, A. E. (2007). The effect of different processing methods on the residual cyanide of `gari`. Pakistan Journal of Nutrition, 6(2), 163‑166. https://doi.org/10.3923/pjn.2007.163.166

Awoyale, W., Asiedu, R., Kawalawu, W. K. C., Abass, A., Maziya-Dixon, B., Kromah, A., Edet, M., & Mulbah, S. (2020). Assessment of the suitability of different cassava varieties for gari and fufu flour production in Liberia. Asian Food Science Journal, 14(2), 36‑52. https://doi.org/10.9734/afsj/2020/v14i230128

Benesi, I. R. M., Labuschagne, M. T., Herselman, L., Mahungu, N. M., & Saka, J. K. (2008). The effect of genotype, location and season on cassava starch extraction. Euphytica, 160(1), 59‑74. https://doi.org/10.1007/s10681-007-9589-x

Brown, A. L., Cavagnaro, T. R., Gleadow, R., & Miller, R. E. (2016). Interactive effects of temperature and drought on cassava growth and toxicity : Implications for food security? Global Change Biology, 22(10), 3461‑3473. https://doi.org/10.1111/gcb.13380

Byju, G., & Suja, G. (2020). Chapter Five—Mineral nutrition of cassava. In D. L. Sparks (Éd.), Advances in Agronomy (Vol. 159, p. 169‑235). Academic Press. https://doi.org/10.1016/bs.agron.2019.08.005

Cardoso, A. P., Mirione, E., Ernesto, M., Massaza, F., Cliff, J., Rezaul Haque, M., & Bradbury, J. H. (2005a). Processing of cassava roots to remove cyanogens. Journal of Food Composition and Analysis, 18(5), 451‑460. https://doi.org/10.1016/j.jfca.2004.04.002

Cardoso, A. P., Mirione, E., Ernesto, M., Massaza, F., Cliff, J., Rezaul Haque, M., & Bradbury, J. H. (2005b). Processing of cassava roots to remove cyanogens. Journal of Food Composition and Analysis, 18(5), 451‑460. https://doi.org/10.1016/j.jfca.2004.04.002

Chijioke, U., Iro, U. J., Osodeke, S. C., Ogunka, N. P., Okoye, B. C., Abah, S. P., Njoku, D., & Egesi, C. (2021). Influence of genotype and environment on quality attributes of fufu processed from cassava planted in two agro-ecologies of Nigeria. Nigerian Agricultural Journal, 53(3), 1‑13. https://doi.org/10.1155/2021/6064545

Cuvaca, I. B., Eash, N. S., Zivanovic, S., Lambert, D. M., Walker, F., & Rustrick, B. (2015). Cassava (manihot esculenta crantz) tuber quality as measured by starch and cyanide (hcn) affected by nitrogen, phosphorus, and potassium fertilizer rates. Journal of Agricultural Science, 7(6), p36. https://doi.org/10.5539/jas.v7n6p36

Delange, F., Ekpechi, L. O., & Rosling, H. (1994). Cassava cyanogenesis and iodine deficiency disorders. Acta Horticulturae, 375, 289‑294. https://doi.org/10.17660/ActaHortic.1994.375.29

Edet, M. A., Tijani-Eniola, H., Lagoke, S. T. O., & Tarawali, G. (2015). Relationship of cassava growth parameters with yield, yield related components and harvest time in Ibadan, Southwestern Nigeria. Journal of Natural Sciences Research, 5(9), 87‑92.

Eduardo, M., Svanberg, U., Oliveira, J., & Ahrné, L. (2013). Effect of cassava flour characteristics on properties of cassava-wheat-maize composite bread types. International Journal of Food Science, 2013, e305407. https://doi.org/10.1155/2013/305407

Egesi, C. N., Ilona, P., Ogbe, F. O., Akoroda, M., & Dixon, A. (2007). Genetic Variation and Genotype × Environment Interaction for Yield and Other Agronomic Traits in Cassava in Nigeria. Agronomy Journal, 99(4), 1137‑1142. https://doi.org/10.2134/agronj2006.0291

Eke, J., Achinewhu, S., & Sanni, L. (2010). Chemical, pasting and sensory properties of tapioca grits from cassava mosaic disease-resistant cassava varieties : Tapioca grits. Journal of Food Processing and Preservation, 17. https://doi.org/10.1111/j.1745-4549.2009.00378.x

Fermont, A. M., Van Asten, P. J. A., Tittonell, P., Van Wijk, M. T., & Giller, K. E. (2009). Closing the cassava yield gap : An analysis from smallholder farms in East Africa. Field Crops Research, 112(1), 24‑36. https://doi.org/10.1016/j.fcr.2009.01.009

Hidayat, A., Zuraida, N., & Hanarida, I. (2002). The cyanogenic potential of roots and leaves of ninety nine cassava cultivars. Indonesian Journal of Agricultural Science, 3(1), 25‑32. https://doi.org/10.21082/ijas.v3n1.2002.25-32

IITA. (1993). Crop Improvement Division : Root and Tuber Improvement Program Archival Report (1989-1993); part 1. Cassava breeding, cytogenetics and histology vol. 2. Germplasm enhancement [Report]. IITA. https://cgspace.cgiar.org/handle/10568/98789

IITA. (2014). Research for development to support the cassava industry in the Democratic Republic of Congo (Cassava III) [Final report].

Isaac, G., & Chiedu, C. (2016). Effect of fermentation periods on the physicochemical and sensory properties of gari. Journal of Environmental Science, Toxicology and Food Technology, 10(1).

Janket, A., Vorasoot, N., Toomsan, B., Kaewpradit, W., Banterng, P., Kesmala, T., Theerakulpisut, P., & Jogloy, S. (2018). Seasonal variation in starch accumulation and starch granule size in cassava genotypes in a tropical savanna climate. Agronomy, 8(12), Article 12. https://doi.org/10.3390/agronomy8120297

John, K. S., Sreekumar, J., Beegum, S. U. S., More, S. J., Sheela, M. N., & Suja, G. (2020). Physiological efficiency of cassava as influenced by genotypes over period of maturity in the screening of K use efficient genotypes. JOURNAL OF ROOT CROPS, 46(2), Article 2. https://journal.isrc.in/index.php/jrc/article/view/587

Khonde, M. (2001). Transformation, Commercialisation et Consommation du Manioc : Une stratégie de sécurité alimentaire à Kinshasa. In M. Kankonde & E. Tollens (Éds.), Sécurité alimentaire au Congo-Kinshasa : Production, consommation et survie (Harmattan, p. 173‑225).

Kundy, A. C., Mkamilo, G. S., & Misangu, R. N. (2014). Correlation and path analysis between yield and yield components in cassava (manihot esculenta crantz) in Southern Tanzania. Journal of Natural Sciences Research, 4(12), 6‑10.

Kundy, A., Mkamilo, R., & Misangu. (2015). Genetic variability among six traits in twelve cassava (manihot esculenta crantz) genotypes in Southern Tanzania. Journal of Natural Sciences Research, 5(12), 2224‑3186.

Latif, S., & Müller, J. (2015). Potential of cassava leaves in human nutrition : A review. Trends in Food Science & Technology, 44(2), 147‑158. https://doi.org/10.1016/j.tifs.2015.04.006

Le, S., & Husson, F. (2008). Sensominer : A package for sensory data analysis. Journal of Sensory Studies, 23(1), 14‑25. https://doi.org/10.1111/j.1745-459X.2007.00137.x

Mawoyo, B., Adebola, P., Gerrano, A. S., & Amonsou, E. O. (2017). Effect of genotypes and growth locations on composition and functional properties of amadumbe flours. Journal of Food Science and Technology, 54(11), 3577‑3586. https://doi.org/10.1007/s13197-017-2816-0

Mburu, F. W., Swaleh, S., & Njue, W. (2012). Potential toxic levels of cyanide in cassava (Manihot esculenta Crantz) grown in Kenya. African Journal of Food Science, 6(16), 416‑420. https://doi.org/10.5897/AJFS12.058

McMahon, J., White, & Sayre, R. (1995). Cyanogenesis in Cassava (Manihot esculenta Crantz). Journal of Experimental Botany, 46(288), 731‑741. https://doi.org/10.1093/jxb/46.7.731

Mikidadi, A., Peter, W., Esther, M., Heneriko, K., Geoffrey, M., Edward, K., Emanuel, M., Wilfred, A., Richard, E., Phinehas, T., Siraj, K., & Patrick, O. (2023). Pasting properties of high-quality cassava flour of some selected improved cassava varieties in Tanzania for baking. African Journal of Agricultural Research, 19(1), 1‑7. https://doi.org/10.5897/AJAR2022.16138

Montagnac, J. A., Davis, C. R., & Tanumihardjo, S. A. (2009). Processing techniques to reduce toxicity and antinutrients of cassava for use as a staple food. Comprehensive Reviews in Food Science and Food Safety, 8(1), 17‑27. https://doi.org/10.1111/j.1541-4337.2008.00064.x

Mtunguja, M. K., Laswai, H. S., Kanju, E., Ndunguru, J., & Muzanila, Y. C. (2016). Effect of genotype and genotype by environment interaction on total cyanide content, fresh root, and starch yield in farmer‐preferred cassava landraces in Tanzania. Food Science & Nutrition, 4(6), 791‑801. https://doi.org/10.1002/fsn3.345

Mubanga, C. S., Seyoum Workneh, T., Bultosa, G., & Laing, M. (2019). Proximate composition, cyanide contents, and particle size distribution of cassava flour from cassava varieties in Zambia. AIMS Agriculture and Food, 4(4), 869‑891. https://doi.org/10.3934/agrfood.2019.4.869

Muiruri, K. S., Fathima, A. A., Muiruri, K. S., & Fathima, A. A. (2023). Advances in Cassava Trait Improvement and Processing Technologies for Food and Feed. IntechOpen. https://doi.org/10.5772/intechopen.110104

Mulualem, T. (2012). Correlation and path coefficient analysis of Cassava (Manihot esculenta Crantz) at Jimma, Southwestern, Ethiopia. Journal of Natural Sciences Research, 2(9), 1‑7.

Ndung’u, J. N., Wachira, F. N., Kinyua, M. G., Lelgut, D. K., Okwaro, H., Njau, P., & Obiero, H. (2012). Influence of the environment on cassava quality traits in central rift Valley of Kenya. American Journal of Plant Sciences, 03(10), 1504‑1512. https://doi.org/10.4236/ajps.2012.310181

Nduwumuremyi, A., Melis, R., Shanahan, P., & Theodore, A. (2017). Interaction of genotype and environment effects on important traits of cassava (Manihot esculenta Crantz). The Crop Journal, 5(5), 373‑386. https://doi.org/10.1016/j.cj.2017.02.004

Ngome, A. F., Amougou, M. F. C., Tata, P. I., Ndindeng, S. A., Mfopou, M. Y. C., Mapiemfu-Lamare, D., & Njeudeng, T. S. (2013). Effects of cassava cultivation on soil quality indicators in the humid forest zone of Cameroon. Greener Journal of Agricultural Sciences, 3(6), 451‑457. https://doi.org/10.15580/GJAS.2013.3.030613519

Njankouo Ndam, Y., Mounjouenpou, P., Kansci, G., Kenfack, M. J., Fotso Meguia, M. P., Natacha Ngono Eyenga, N. S., Mikhaïl Akhobakoh, M., & Nyegue, A. (2019). Influence of cultivars and processing methods on the cyanide contents of cassava (Manihot esculenta Crantz) and its traditional food products. Scientific African, 5, e00119. https://doi.org/10.1016/j.sciaf.2019.e00119

Ntawuruhunga, P., & Dixon, A. G. O. (2010). Quantitative variation and interrelationship between factors influencing cassava yield. Journal of Applied Biosciences, 26, 1592‑1602.

Padmaja, G. (1995). Cyanide detoxification in cassava for food and feed use. Critical reviews in food science and nutrition, 35, 299‑339. https://doi.org/10.1080/10408399509527703

Phoncharoen, P., Banterng, P., Vorasoot, N., Jogloy, S., Theerakulpisut, P., & Hoogenboom, G. (2019). Growth rates and yields of cassava at different planting dates in a tropical savanna climate. Scientia Agricola, 76(5), 376‑388. https://doi.org/10.1590/1678-992x-2017-0413

Sahani, M. (2011). Contexte urbain et climatique des risques hydrologique de la ville de Butembo, Nord-Kivu/ R.D. C [Thèse de doctorat]. Université de Liège.

Sánchez, T., Salcedo, E., Ceballos, H., Dufour, D., Mafla, G., Morante, N., Calle, F., Pérez, J. C., Debouck, D., Jaramillo, G., & Moreno, I. X. (2009). Screening of Starch Quality Traits in Cassava (Manihot esculenta Crantz). Starch - Stärke, 61(1), 12‑19. https://doi.org/10.1002/star.200800058

Santisopasri, V., Kurotjanawong, K., Chotineeranat, S., Piyachomkwan, K., Sriroth, K., & Oates, C. G. (2001). Impact of water stress on yield and quality of cassava starch. Industrial Crops and Products, 13(2), 115‑129. https://doi.org/10.1016/S0926-6690(00)00058-3

Scaria, S. S., Balasubramanian, B., Meyyazhagan, A., Gangwar, J., Jaison, J. P., Kurian, J. T., Pushparaj, K., Pappuswamy, M., Park, S., & Joseph, K. S. (2024). Cassava ( Manihot esculenta Crantz)—A potential source of phytochemicals, food, and nutrition—An updated review. eFood, 5(1), e127. https://doi.org/10.1002/efd2.127

Shigaki, T. (2016). Cassava : The Nature and Uses. In Encyclopedia of Food and Health (p. 687‑693). Elsevier. https://doi.org/10.1016/B978-0-12-384947-2.00124-0

SOPHIE, C. (2007). Rôle des produits de la réaction de Maillard dans l'inhibition de l'oxydation enzymatique des phenols et des lipides, Thèse, l'Institut des Sciences et Industries du Vivant et de l'Environnement (Agro Paris Tech), Sciences de l'aliment, 272p

Stoorvogel, J. J., & Fresco, L. O. (1991). The identification of agro-ecological zones for cassava in Africa with particular emphasis on soils. Collaborative Study of Cassava in Africa (COSCA), Working Parer(5), 10.

Swami, B., Babu, B., & Ramajayam, D. (2017). Correlation and path coefficient analysis of cassava (manihot esculenta crantz) genotypes. International Journal of Current Microbiology and Applied Sciences, 6, 549‑557. https://doi.org/10.20546/ijcmas.2017.609.066

Tesfaye, T., Atnafua, B., Engida, T., Getachew, W. M., Tewodros, M., Wubshet, B., & Mesele, G. (2017). Performance of cassava (Manihot esculanta. Cratz) clones in potential and low moisture stressed areas of Ethiopia. African Journal of Agricultural Research, 12(20), 1738‑1746. https://doi.org/10.5897/AJAR2016.11365

Tester, R., & Karkalas, J. (2001). The effects of environmental conditions on the structural features and physico-chemical properties of starches. Starch - Starke, 53, 513‑519. https://doi.org/10.1002/1521-379X(200110)53:10%3C513::AID-STAR513%3E3.0.CO;2-5

Vernier, P., N’Zue, B., & Zakhia-Rozis, N. (2018). Le manioc, entre culture alimentaire et filière agro-industrielle. Ed. Quae. https://agritrop.cirad.fr/587188/

Vernier, P., N’Zué, B., & Zakhia-Rozis, N. (2018). Le manioc, entre culture alimentaire et filière agro-industrielle (Quæ, CTA, Presses agronomiques de Gembloux). éditions Quae. https://doi.org/10.35690/978-2-7592-2708-2

Vyakuno, K. E. (2006). Pression anthropique et aménagement rationnel des hautes terres de Lubero en RDC. Rapports entre société et milieu physique dans une montagne équatoriale, Tom I [Thesis,].

Wilson, W., & Dufour, D. (2002). Why “Bitter” Cassava? Productivity of “Bitter” and “Sweet” Cassava in a Tukanoan Indian Settlement in the Northwest Amazon. Economic Botany, 56, 49‑57. https://doi.org/10.1663/0013-0001(2002)056[0049:WBCPOB]2.0.CO;2

Yáñez, S., González, N., & Vargas, J. (2010). Hotelling’s T2 control charts based on robust estimators. Dyna (Colombia ) Num.163 Vol.77, 77.

Zhang, Y., Nie, L., Sun, J., Hong, Y., Yan, H., Li, M., You, X., Zhu, L., & Fang, F. (2020). Impacts of environmental factors on pasting properties of cassava flour mediated by its macronutrients. Frontiers in Nutrition, 7, 598960. https://doi.org/10.3389/fnut.2020.598960

Zhao, P., Liu, P., Shao, J., Li, C., Wang, B., Guo, X., Yan, B., Xia, Y., & Peng, M. (2015). Analysis of different strategies adapted by two cassava cultivars in response to drought stress : Ensuring survival or continuing growth. Journal of Experimental Botany, 66(5), 1477‑1488. https://doi.org/10.1093/jxb/eru507

Published

2024-06-19

How to Cite

Mbusa Kamavu, Y. (2024). Influence de trois zones écologiques (Beni, Butembo et Rutshuru) sur certaines qualités de la farine et du foufou de sept nouveaux clones de manioc en RD Congo. Parcours Et Initiatives : Revue Interdisciplinaire Du Graben (PIRIG), (27), 163–188. https://doi.org/10.57988/crig-2074