Wheat Production and Breeding in Ethiopia: Retrospect and Prospects
Wheat Production and Breeding in Ethiopia: Retrospect and Prospects
ES评分9.25
| DOI | 10.20900/cbgg20220003 |
| 刊名 |
CBGG
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| 年,卷(期) | 2022, 4(3) |
| 作者 |
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| 作者单位 |
International Center for Agricultural Research in the Dry Areas (ICARDA), Rabat 6299, Morocco ; |
| Abstract |
Wheat, cultivated on a total area of 2.1 million hectares annually with a total production of 6.7 million tons, is one of the most important food security crops in Ethiopia. However, there is a huge gap between wheat production and supply due to the increasing demand associated with the surge in urban population, change in food preferences such as bread, biscuits, pasta, noodles, and porridge which are easy and quick to prepare. To offset this gap, Ethiopia imports on average 1.2 million tons of wheat annually using its available meagre resources. Though there is enormous potential to increase Ethiopia’s wheat production both vertically and horizontally, it is still limited due to key challenges such as prevalence of biotic (yellow rust, stem rust, septoria, fusarium) and abiotic (acidity, heat, drought) stresses, yield gaps due to low adoption of new technologies, high cost and limited availability of inputs, low public and private investments, and poor infrastructure and marketing systems. Wheat breeding in Ethiopia is dominantly carried out by the Ethiopian Institute of Agricultural Research (EIAR) since 1960’s and recently with regional agricultural research institutes and universities in partnership mainly with the international agricultural research centers (CIMMYT and ICARDA) to develop high yielding, heat/drought tolerant and disease resistant wheat varieties with broad adaptation and acceptable end use qualities. To date, a total of 88 bread wheat varieties of CIMMYT and ICARDA origin have been released with continuous progress in yield (40 kg ha−1 year−1) ranging from 2 t/ha of variety Lakech in 1970 to 6.5 t/ha of the new variety ‘Abay’ released in 2021. This paper summarizes the status of wheat production under rainfed and irrigated environments, production constraints, wheat breeding progress, variety deployment efforts and future prospects in Ethiopia.
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| KeyWord |
breeding; challenges; Ethiopia; production; wheat
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| 基金项目 | |
| 页码 | - |
1.Central Statistics Agency for Ethiopia. Agricultural sample survey of area and production of major crops. Available from: https://www.statsethiopia.gov.et/. Accessed 2022 Jul 15.
2.Chilot Y, Takale M, Menale K, Moti J, Bekele S, Hugo de G, et al. Analysis of adoption and diffusion of improved wheat technologies in Ethiopia. Available from: https://www.researchgate.net/profile/Takele-Mebratu/publication/343610492_Analysisof_Adoption_and_Diffusion_of_Improved_Wheat_Technologies_inEthiopia_Ethiopian_Institute_of_Agricultural_Research_International_Maize_and_Wheat_Improvement_Center_EIAR_CIMMYT/links/5f340737299bf13404bdc1cb/Analysisof-Adoption-and-Diffusion-of-Improved-Wheat-Technologies-inEthiopia-Ethiopian-Institute-of-Agricultural-Research-International-Maize-and-Wheat-Improvement-Center-EIAR-CIMMYT.pdf. Accessed 2022 Jul 13.
3.Hodson DP, Jaleta M, Tesfaye K, Yirga C, Beyene H, Kilian A, et al. Ethiopia’s transforming wheat landscape: tracking variety use through DNA fingerprinting. Sci Rep. 2020;10(1):18532.
4.FAO. FAOSTAT. Available from: http://faostat.fao.org. Accessed 2022 May 15.
5.Negassa A, Shiferaw B, Koo J, Sonder K, Smale M, Braun HJ, et al. The Potential for Wheat Production in Africa: Analysis of Biophysical Suitability and Economic Profitability. Available from: https://www.researchgate.net/profile/Kai-Sonder/publication/281375711_The_Potential_for_Wheat_Production_in_Africa_Analysis_of_Biophysical_Suitability_and_Economic_Profitability/links/55e4814308aecb1a7ccb7fbd/The-Potential-for-Wheat-Production-in-Africa-Analysis-of-Biophysical-Suitability-and-Economic-Profitability.pdf?origin=publication_detail. Accessed 2022 Jul 13.
6.Shiferaw B, Smale M, Braun HJ, Duveiller E, Reynolds M, Muricho G. Crops that feed the world 10. Past successes and future challenges to the role played by wheat in global food security. Food Sec. 2013;5(3):291‑317.
7.Tadesse W, Bishaw Z, Assefa S. Wheat production and breeding in Sub-Saharan Africa: Challenges and opportunities in the face of climate change. Int J Clim Chang Strateg Manag. 2019;11(5):696‑715.
8.Braun HJ, Atlin G, Payne T. Multi-location testing as a tool to identify plant response to global climate change. In: Reynolds MP, éditor. Climate change and crop production. Wallingford (UK): CABI; 2010. p. 115‑38.
9.Hailu G, Amsal T, Endale A. Beneficial break crops for wheat production. Ethiop J Agric Sci. 1989;11(1):15‑24.
10.Amanuel G, Kefyalew G, Tanner G, Asefa T, Shambel S. Effect of crop rotation and fertilizer application on wheat yield performance across five years at two locations in south-eastern Ethiopia. The Eleventh Regional Wheat Workshop for Eastern, Central and Southern Africa; 2000 Sept 18–22; Addis Ababa, Ethiopia.
11.Awlachew SB, Yilma AD, Loulseged M, Loiskandl W, Ayana M, Alamirew T. Water Resources and Irrigation Development in Ethiopia. Available from: https://www.researchgate.net/profile/Mekonen-Ayana/publication/42765483_Water_Resources_and_Irrigation_Development_in_Ethiopia/links/558be39e08ae591c19d8d740/Water-Resources-and-Irrigation-Development-in-Ethiopia.pdf?origin=publication_detail. Accessed 2022 Jul 13.
12.Gebremedhin GH, Asfaw KK. Irrigation in Ethiopia: A review. Available from: https://core.ac.uk/download/pdf/234664348.pdf. Accessed 2022 Jul 13.
13.Bekele Y, Tadesse N, Konka B. Preliminary Study on the Impact of Water Quality and Irrigation Practices on Soil Salinity and Crop Production, Gergera Watershed, Atsbi-Wonberta, Tigray, Northern Ethiopia. Available from: https://www.ajol.info/index.php/mejs/article/download/74055/64721. Accessed 2022 Jul 13.
14.EIAR. Irrigation-based Wheat Production: A transformation from Import to Export. Available from: http://www.eiar.gov.et. Accessed 2022 May 10.
15.Easterling WE, Aggarwal PK, Batima P, Brander KM. Food, Fibre, and Forest Products. Available from: https://ensembles-eu.metoffice.gov.uk/IPCC/rev_archive/SOD/Ch05.pdf. Accessed 2022 Jul 13.
16.Lobell DB, Field CB. Global scale climate—crop yield relationships and the impacts of recent warming. Environ Res Lett. 2007;2(1):014002.
17.Huber B, Rosegrant M, Martinus A, Ortiz R. The future of Food: Scenario for 2050. Crop Sci. 2010;50(S1):S-33-50.
18.Solh M, Nazari K, Tadesse W, Wellings C. The growing threat of stripe rust worldwide. Available from: https://globalrust.org/sites/default/files/posters/solh_2012.pdf. Accessed 2022 Jul 13.
19.Hulluka MG, Woldeab Y, Andnew R, Desta R, Badebo A. Wheat pathology research in Ethiopia. In: Gebremaraim H, Tanner D.G, Hulluka M, editors. Wheat research in Ethiopia: A historical perspective. Addis Ababa (Ethiopia): IAR; 1991. p. 173‑217.
20.Badebo A, Bekele E, Bekele B, Hundie B, Degefu M, Tekalign A, et al. Review of two decades of research on diseases of small cereal crops in Ethiopia. Increasing crop production through improved plant protection—Proceedings of the 14th Annual conference of the Plant Protection Society of Ethiopia (PPSE); 2008, December 19–12; Addis Ababa, Ethiopia.
21.Badebo A, Hundie B. Incidence and challenges of rusts in wheat production. In: Bishaw Z, Alemu D, Atilaw A, Kirub A, editors. Containing the Menace of Wheat Rusts. Addis Ababa (Ethiopia): Ethiopian Institute of Agricultural Research; 2016. p. 41-52.
22.Mosissa F. Progress of Soil Acidity Management Research in Ethiopia. Available from: https://asset-pdf.scinapse.io/prod/2810281594/2810281594.pdf. Accessed 2022 Jul 13.
23.Dencic S, DePauw R, Kobiljski B, Momcilovic V. Hagberg Falling Number and Rheological Properties of Wheat Cultivars in Wet and Dry Preharvest Periods. Plant Prod Sci. 2013;16(4):342‑51.
24.Anteneh A, Asrat D. Wheat production and marketing in Ethiopia: Review study. Cog Food Agric. 2020;6(1):1778893.
25.Manès Y, Gomez HF, Puhl L, Reynolds M, Braun HJ, Trethowan R. Genetic Yield Gains of the CIMMYT International Semi-Arid Wheat Yield Trials from 1994 to 2010. Crop Sci. 2012;52(4):1543‑52.
26.Sharma RC, Crossa J, Velu G, Huerta-Espino J, Vargas M, Payne TS, et al. Genetic Gains for Grain Yield in CIMMYT Spring Bread Wheat across International Environments. Crop Sci. 2012;52(4):1522‑33.
27.Tadesse W, Morgounov AI, Braun HJ, Akin B, Keser M, Kaya Y, et al. Breeding progress for yield in winter wheat genotypes targeted to irrigated environments of the CWANA region. Euphytica. 2013;194(2):177‑85.
28.Van Ittersum MK. Crop yields and global food security: will yield increase continue to feed the world? Eur Rev Agric Econ. 2016;43(1):191-2.
29.Tadesse W, Sanchez-Garcia M, Assefa S, Amri A, Bishaw Z, Ogbonnaya F, et al. Genetic Gains in Wheat Breeding and Its Role in Feeding the World. Crop Breed Genet Genom. 2019;1(1):e190005.
30.Bishaw Z, Alemu D, Atilaw A, Kirub A. Containing the Menace of Wheat Rusts: Institutionalized Interventions and Impacts. Addis Ababa (Ethiopia): Ethiopian Institute of Agricultural Research; 2016.
31.Shewabez E, Bekele E, Alemu A, Mugnai L, Tadesse W. Genetic characterization and genome-wide association mapping for stem rust resistance in spring bread wheat. BMC Genom Data. 2022;23(1):11.
32.Bishaw Z, Struik PC, Van Gastel AJG. Wheat Seed System in Ethiopia: Farmers’ Varietal Perception, Seed Sources, and Seed Management. J New Seeds. 2010;11(4):281‑327.
33.Girma E, Wosene G, Berhane L. Genetic gain in grain yield and associated traits of Ethiopian bread wheat (Tritium aestivium L.) varieties. Int J Agric Biosci. 2019;8(1):12‑9.
34.Singh RP, Huerta-Espino J, Sharma R, Joshi AK, Trethowan R. High yielding spring bread wheat germplasm for global irrigated and rainfed production systems. Euphytica. 2007;157(3):351‑63.
35.Trethowan RM, Reynolds MP, Ortiz-Monasterio JI, Ortiz R. The Genetic Basis of the Green Revolution in Wheat Production. In: Janick J, editor. Plant Breeding Reviews. Hoboken (US): John Wiley & Sons Inc.; 2007. p. 39‑58.
36.Sayre KD, Rajaram S, Fischer RA. Yield Potential Progress in Short Bread Wheats in Northwest Mexico. Crop Sci. 1997;37(1):36‑42.
37.Ferris S, Wheatley C. FAO/GFAR Global Initiative on Post-harvest Technology, Phase 1—Report on the Regional Workshop for Africa, Held at Entebbe, Uganda, 17–19 September 2001. Available from: http://www.foodnet.cgiar.org/Post%20Harvest/Papers/Report1.htm. Accessed 2013 Jan 4.
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