Abstract
Emerging infectious diseases (EIDs) caused by plant pathogens can develop into unexpected and very serious epidemics, owing to the influence of various characteristics of the pathogen, host and environment. Devastating epidemics, having social implications by increasing the rate of urbanization, occurred in the past in Europe, and many other EIDs still occur with high frequency in developing countries. Although the ability to diagnose diseases and the technologies available for their control are far greater than in the past, EIDs are still able to cause tremendous crop losses, the economic and social impact of which, in developing countries, is often underestimated. In the present article, four of the most important EIDs in developing countries are considered from the standpoint of their origin, characteristics, symptoms, mode of spread, possible control strategies, economic impact and the socio-economic consequences of their dissemination. They are Cassava Mosaic Virus Disease, capable of reducing yields by 80–90% and causing the suspension of cassava cultivation in many areas of East Africa; Striga hermonthica, a parasitic weed affecting cereals in an area of at least 5 million hectares in Sub-Saharan Africa; Xanthomonas Wilt of Banana, a bacterial disease that caused around 50% yield losses at the beginning of 21st century in Uganda and is threatening the food security of about 70 million people owing to its impact on an important staple crop; and race Ug99 of the rust fungus Puccinia graminis f. sp. tritici, which is having a tremendous impact on wheat in Uganda, and is also threatening most of the wheat-growing countries of the world.
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References
Abele S, Pillay M (2007) Bacterial wilt and drought stresses in banana production and their impact on economic welfare in Uganda: Implications for banana research in East African highlands. J Crop Improv 19:173–191
Abele S, Twine E, Legg C (2007) Food security in Eastern Africa and the Great Lakes. Crop Crisis Control Project Final Report. USAID. Resource IITA, Nigeria. http://c3project.iita.org/Doc/Final%20report%20C3P%20small.pdf. Accessed 18 January 2010
Akobundu IO (1991) Weeds in human affairs is sub-Saharan Africa. Weed Technol 5:680–690
Amusan IO, Rich PJ, Menkir A, Housley T, Ejeta G (2008) Resistance to Striga hermonthica in a maize inbred line derived from Zea diploperennis. New Phytol 178:157–166
Anderson PK, Cunningham AA, Patel NG, Morales FJ, Epstein PR, Daszak P (2004) Emerging infectious diseases of plants: pathogen pollution, climate change and agrotechnological drivers. Trends Ecol Evol 19:535–544
Bar-Joseph M, Garnsey SM, Gonsalves D (1979) The closteroviruses: a distinct group of elongated plant viruses. Adv Virus Res 25:93–168
Biruma M, Pillay M, Tripathi L, Blomme G, Abele S, Mwangi M et al (2007) Banana Xanthomonas wilt: a review of the disease, management strategies and future research directions. Afr J Biotechnol 6:953–962
Bock KR, Woods RD (1983) Etiology of African cassava mosaic disease. Plant Dis 67:944–955
CIMMYT (2005) Sounding the alarm on global stem rust. An Assessment of race ug99 in Kenya and Ethiopia and the potential for impact in neighbouring regions and beyond. Resource Document. Cimmyt. http://www.cimmyt.org/english/wps/news/2005/aug/pdf/Expert_Panel_Report.pdf. Accessed 18 January 2010
Ciotola M, Watson AK, Hallett SG (1995) Discovery of an isolate of Fusarium oxysporum with potential to control Striga hermonthica in Africa. Weed Res 35:303–309
De Groote H, Wangare L, Kanampiu FK, Odendo M, Diallo A, Karaya H, Friesen D (2008) The potential of a herbicide resistant maize technology for Striga control in Africa. Agric Syst 97:83–94
Deng D, Otim-Nape GW, Sangare A, Ogwal S, Beachy RN, Fauquet CM (1997) Presence of a new virus closely associated with cassava mosaic outbreak in Uganda. Afr J Root Tuber Crops 2:23–28
Doggett H (1988) Sorghum. Longman, Harlow
Eden-Green S (2004) Focus on bacterial wilt. How can the advance of banana Xanthomonas wilt be halted? Infomusa 13:38–41
Edmeades S, Smale M, Kikulwe EM, Nkuba J, Byabachwezi MSR (2007) Characteristics of banana-growing households and banana cultivars in Uganda and Tanzania. In: Smale M, Tushemereirwe WK (eds) An economic assessment of banana genetic improvement and innovation in the Lake Victoria Region of Uganda and Tanzania. IFPRI Research Report 155, Washington, pp 49–74
Ejeta G (2007) The Striga scourge in Africa: a growing pandemic. In: Ejeta G, Gressel J (eds) Integrating new technologies for Striga control - towards ending the witch hunt. World Scientific, Singapore, pp 3–16
Ejeta G (2009) Revitalizing agricultural research for global food security. Food Security 1:391–401
Ejeta G, Rich PJ, Mohamed A (2007) Dissecting a complex trait to simpler components for effective breeding of sorghum with a high level of Striga resistance. In: Gressel J (ed) G Ejeta. World Scientific, Integrating new technologies for Striga control - towards ending the witch hunt. Singapore, pp 87–98
Elzein A, Kroschel J (2004) Fusarium oxysporum Foxy 2 shows potential to control both Striga hermonthica and S. asiatica. Weed Res 44:433–438
FAO (2008a) The state of food insecurity in the world 2008. Resource Document. ftp://ftp.fao.org/docrep/fao/011/i0291e/i0291e00.pdf. Accessed 18 January 2010
FAO (2008b) Wheat rust disease global programme. Resource Document. ftp://ftp.fao.org/docrep/fao/011/i0378e/i0378e.pdf. Accessed 18 January 2010
FAO (2009a) Crop Prospects and Food Situation. No.3-July 2009. Resource document. FAO. http://www.fao.org/docrep/012/ai484e/ai484e00.htm. Assessed 18 January 2010
FAO (2009b) Acting together against banana diseases in Africa. Resource document. FAO http://www.fao.org/ag/portal/ag-archive/detail/0/item/36254/icode/en/. Assessed 10 February 2010
FAO (2010) FAO Country Profiles, Low-Income Food-Deficit Countries (LIFDC) - List for 2010. Resource Document. http://www.fao.org/countryprofiles/lifdc.asp. Accessed 23 March 2010
FAOSTAT (2004) Agriculture Data. 2004. Resource document. FAO. http://faostat.fao.org/. Assessed 18 January 2010
FAOSTAT (2006) Agriculture Data. 2006. Resource document. FAO. http://faostat.fao.org/. Assessed 18 January 2010
FAOSTAT (2007) Agriculture Data 2007. Resource document. FAO. http://faostat.fao.org/. Assessed 18 January 2010
Fekadu M, Gelmesa D (2006) Review of the status of vegetable crops production and marketing in Ethiopia. Uganda J Agric Sci 12(2):26–30
FOODNET (2006) Market price information for Uganda. Resource document. CGIAR. http://www.foodnet.cgiar.org/. Assessed 18 January 2010
Fry WE, Goodwin SB, Matuszak JM, Spielman LJ, Milgroom MG, Drenth A (1992) Population genetics and intercontinental migrations of Phytophthora infestans. Annu Rev Phytopathol 43:83–116
Ganapathi TR, Higgs NS, Balint-Kurti PJ, Arntzen CJ, May GD, Van Eck JM (2001) Agrobacterium-mediated transformation of the embryogenic cell suspensions of the banana cultivars Rasthali (AAB). Plant Cell Report 20:157–162
Garrett KA, Dendy SP, Frank EE, Rouse MN, Travers SE (2006) Climate change effects on plant disease: genomes to ecosystems. Annu Rev Phytopathol 44:489–509
Gomez-Alpizar L, Carbone I, Ristaino JB (2007) An Andean origin of Phytophthora infestans inferred from mitochondrial and nuclear gene genealogies. Proc Natl Acad Sci USA 104(9):3306–3311
Gressel J (2008) Genetic glass ceilings: transgenics for crop biodiversity. Johns Hopkins University Press, Baltimore
Gressel J, Valverde BE (2009) The other, ignored HIV - highly invasive vegetation. Food Security 1:463–478
Harrison BD, Zhou X, Otim-Nape GW, Liu Y, Robinson DJ (1997) Role of a novel type of double infection in the geminivirus induced epidemic of severe cassava mosaic in Uganda. Ann Appl Biol 131:437–448
Hernandez JBP, Remy S, Sauco VG, Swennen R, Sagi L (1999) Chemotactic movement and attachment of Agrobacterium tumefaciens to banana cells and tissues. J Plant Physiol 155:245–250
Hooper AM, Hassanali H, Chamberlain K, Khan Z, Pickett JA (2009) New genetic opportunities from legume intercrops for controlling Striga spp. parasitic weeds. Pest Manag Sci 65:546–552
Howeler RH, Oates CG, Allem AC (2001) Strategic environmental assessment: an assessment of the impact of cassava production and processing on the environment and biodiversity. In Proceedings of the Validation Forum on the Global Cassava Development Strategy, Rome, 26–28 April 2000 (vol. 5 p. 137). Rome, Italy: FAO and IFAD
Joel DM, Kleifeld Y, Losner-Goshen D, Herzlinger G, Gressel J (1995) Transgenic crops against parasites. Nature 374:220–221
Kagezi GH, Kangire A, Tushemereirwe W, Bagamba F, Kikulwe E, Muhanji J, Gold CS, Ragama P (2006) Banana Bacterial wilt incidence in Uganda. Afr Crop Sci J 14:83–91
Kalyebara MR, Ragama PE, Kagezi GH, Kubiriba J, Bagamba F, Nankinga KC, Tushemereirwe W (2006) Economic importance of the banana bacterial wilt in Uganda. Afr Crop Sci J 14(2):93–103
Kanampiu FK, Kabambe V, Massawe C, Jasi L, Friesen D, Ransom JK, Gressel J (2003) Multi-site, multi-season field tests demonstrate that herbicide seed-coating herbicide resistance maize controls Striga spp. and increases yields in several African countries. Crop Protect 22:679–706
Karamura E, Kayobyo G, Blomme G, Benin S, Eden-Green SJ, Markham R (2006) Impacts of BXW epidemic on the livelihoods of rural communities in Uganda. In: Saddler G, Elphinstone J, Smith J (eds) Abstract Book of the 4th International Bacterial Wilt Symposium. Central Science laboratory, York, p 57
Kayobyo G, Aliguma L, Omiat G, Mugisha J, Benin S (2005) Impact of BXW on household livelihoods in Uganda. In Proceedings Workshop: Assessing the impact of the banana bacterial wilt (Xanthomonas campestris pv. musacearum) on household livelihoods in East Africa 20 December 2005, Kampala, Uganda
Khan ZR, Midega CAO, Hassanali A, Pickett JA (2007) Field developments on Striga control by Desmodium intercrops in a push-pull strategy. In: Ejeta G, Gressel J (eds) Integrating new technologies for Striga control - towards ending the witch hunt. World Scientific, Singapore, pp 241–252
Klinkovski M (1970) Catastrophic plant diseases. Annu Rev Phytopathol 8:37–60
Large EC (1940) The Advance of the Fungi. Jonathan Cape, London
Legg JP (1999) Emergence, spread and strategies for controlling the pandemic of cassava mosaic virus disease in east and central Africa. Crop Protect 18:627–637
Legg JP, Ogwal S (1998) Changes in the incidence of African cassava mosaic geminivirus and the abundance of its whitefly vector along south-north transects in Uganda. J Appl Entomol 122:169–178
Legg JP, Thresh JM (2000) Cassava mosaic virus disease in East Africa: a dynamic disease in a changing environment. Virus Res 71:135–149
Legg JP, Sseruwagi P, Kamau J, Ajanga S, Jeremiah SC, Aritua V et al (1999) The pandemic of severe cassava mosaic disease in East Africa: current status and future threats. In: MO Akoroda, JM Teri (eds), Proceedings Workshop of the Southern African Root Crops Research Network (SARRNET), 17–19 August 1998, Lusaka, Zambia, pp. 236–251
Leslie JF, Bandyopadhyay R, Visconti A (2008) Mycotoxins: detection methods, management, public health and agricultural trade. CABI, Wallingford
Mackenzie D (2007) Billions at risk form wheat super-blight. New Scientist, UK Magazine issue 2598, 3 April 2007
Magarey RD, Dolezal WE, Moore TJ (2009) Worldwide Monitoring Systems: the need for public and private collaboration. In: Gisi U, Chet I, Gullino ML (eds) Recent developments in management of plant diseases. Springer, Netherlands, pp 349–355
Manyong VM, Alene AD, Olanrewaju A, Ayedun B, Rweyendela V, Wesonga AS et al (2007) Baseline study of Striga control using IR maize in Western Kenya: an agriculture collaborative study on Striga control by the African Agricultural Technology Foundation and the International Institute of Tropical Agriculture. Resource Document. AATF. http://www.aatf-africa.org/UserFiles/File/IRmaizestudy.pdf. Accessed 18 January 2010
McGee DC (1997) Plant pathogens and the worldwide movement of seeds. APS Press, Saint Paul
McMullen M, Jones R, Gallenberg D (1997) Scab of wheat and barley: a re-emerging disease of devastating impact. Plant Dis 81(12):1340–1348
Miller SA, Beed FD, Lapaire Harmon C (2009) Plant disease diagnostic capabilities and networks. Annu Rev Phytopathol 47:15–38
Mills LA (1964) Ceylon under British Rule, 1795–1932. Cass & Co Ltd., Abingdon
Mwangi M, Bandyopadhyay R (2006) Managing Banana Xanthomonas Wilt. Resource Document. IITA. http://eastafrica.usaid.gov/proxy/Document.1017.aspx. Accessed 18 January 2010
Mwangi M, Pillay M, Bandyopadhyay R, Tushemereirwe W, Ragama P (2006) Progress in understanding mechanisms of host plant tolerance to banana bacterial wilt. In: Saddler G, Elphinstone J, Smith J (eds) Abstract Book of the 4th International Bacterial Wilt Symposium, 17–20 July 2006. Central Science Laboratory, York, p 65
Mwangi M, Mwebaze M, Bandyopadhyay R, Aritua V, Eden-Green S, Tushemereirwe W, Smith J (2007) Development of a semiselective medium for isolating Xanthomonas campestris pv. musacearum from insect vectors, infected plant material and soil. Plant Pathol 56(4):383–390
Mwangi M, Kubiriba J, Tushemereirwe W (2008) The political perspective of banana Xanthomonas wilt control in Eastern and Central Africa. In Abstracts of Banana 2008: Banana and Plantain in Africa: Harnessing International Partnerships to Increase Research Impact. IITA, Ibadan, p 197
Nweke FI (1995) Future prospects for Cassava root yield in Sub-Saharan Africa. Outlook Agriculture 14(1):35–42
Nweke FI, Ezumah HC (1988) Food cassava in African farming and food systems: implications for use in livestock feeds. In: Hahn SK, Reynolds L, Egbunike GN (eds), Proceedings of the IITA/ILCA/University of Ibadan Workshop on the potential utilization of cassava as livestock feed in Africa, 14–18 November 1988, Ibadan, Nigeria, pp 7–15
Nweke FI, Spencer DSC, Lynam JK (2002) The cassava transformation: Africa’s best-kept secret. Michigan State University Press, East Lansing
Okech HO, Gold CS, Abele S, Nankinga CM, Wetala PM, Van Asten P, Nambuye A, Ragama P (2004) Agronomic, pests and economic factors influencing sustainability of banana-coffee systems of Western Uganda and potentials for improvement. Uganda J Agric Sci 9:432–444
Otim-Nape GW (1987) Importance, production and utilization of cassava in Uganda, Proceedings of the International Seminar on African Cassava Mosaic Disease and its Control, Yamoussoukro, Ivory Coast, 4–8 May 1987. Wageningen, CTA, pp 203–218.
Otim-Nape GW (1993) Epidemiology of the African cassava mosaic geminivirus disease (ACMD) in Uganda. Ph.D. Thesis, University of Reading, UK
Otim-Nape GW, Thresh JM (2006) The recent epidemic of cassava mosaic virus disease in Uganda. In: Cooke BM, Gareth Jones D, Kaye B (eds) The epidemiology of plant diseases, 2nd edn. Springer, Dordrecht, pp 521–549
Otim-Nape GW, Bua A, Thresh JM, Baguma Y, Ogwal S, Semakula et al (1997) Cassava mosaic virus disease in Uganda: the current pandemic and approaches to control. Natural Resources Institute, Chatam
Otim-Nape GW, Thresh JM, Bua A, Baguma Y, Shaw MW (1998) Temporal spread of cassava mosaic virus disease in a range of cassava cultivars in different agro-ecological regions of Uganda. Ann Appl Biol 133:415–430
Padmanaban SY (1973) The great Bengal famine. Annu Rev Phytopathol 11:11–26
Parker C (2009) Observations on the current status of Orobanche and Striga problems worldwide. Pest Manag Sci 65:453–459
Peterson RKD, Hunt TE (2003) The probabilistic economic injury level: incorporating economic uncertainty into pest-management decision making. J Econ Entomol 96:536–542
Pretorius ZA, Singh RP, Wagoire WW, Payne TS (2000) Detection of virulence to wheat stem rust resistance gene Sr31 in Puccinia graminis f. sp. tritici in Uganda. Plant Dis 84:203
Pring DR, Lonsdale DM (1989) Cytoplasmic male sterility and maternal inheritance of disease susceptibility in maize. Annu Rev Phytopathol 27:483–502
Ransom JK, Babiker AG, Odhiambo GD (2007) Integrating crop management practices for Striga control. In: Ejeta G, Gressel J (eds) Integrating new technologies for Striga control - towards ending the witch hunt. World Scientific, Singapore, pp 213–228
Saari EE, Prescott JM (1985) World distribution in relation to economic losses. In: Roelfs AP, Bushnell WR (eds) The cereal rusts Vol. II; diseases, distribution, epidemiology, and control. Orlando, Academic Press, pp 259–298
Sauerborn J (1991) The economic importance of the phytoparasites Orobanche and Striga. In: Ransom JK, Musselman LJ, Worsham AD, Parker C (eds) Proceedings of the Fifth Symposium on Parasitic Weeds, Nairobi, Kenya 24–30 June 1991. CIMMYT, Nairobi, pp 137–143
Savastano L (1890) La Patologia vegetale dei Greci, Latini ed Arabi (in Italian). Annuario della Regia Scuola Superiore d’Agricoltura, Portici, 5
Scheffer RP (1997) The nature of disease in plants. Cambridge University Press, Cambridge
Stace-Smith R, Hamilton RI (1988) Inoculum thresholds of seedborne pathogens: viruses. Phytopathology 78:875–880
Strange RN (2003) Introduction to plant pathology. Wiley, Chichester
Swanson MM, Harrison BD (1994) Properties, relationships and distribution of cassava mosaic geminiviruses. Tropical Science 34:15–25
Thresh JM (2006) Control of tropical plant virus diseases. Adv Virus Res 67:245–295
Thresh JM, Otim-Nape GW (1994) Strategies for controlling African cassava mosaic geminivirus. Adv Disease Vector Res 10:215–236
Tinzaara W, Gold CS, Ssekiwoko F, Tushemereirwe W, Bandyopadhyay R, Abera A, Eden-Green SJ (2006) Role of insects in the transmission of Banana Bacterial Wilt. Afr Crop Sci J 14(2):105–110
Tripathi L, Tripathi JN, Tushemereirwe WK, Bandyopadhyay R (2007) Development of a semi-selective medium for isolation of Xanthomonas campestris pv. musacearum from banana plants. Eur J Plant Pathol 117:177–186
Tripathi L, Odipio J, Tripathi JN, Tusiime G (2008) A rapid technique for screening banana cultivars for resistance to Xanthomonas wilt. Eur J Plant Pathol 121:9–19
Tripathi L, Mwangi M, Abele S, Aritua V, Tushemereirwe WK, Bandyopadhyay R (2009) Xanthomonas wilt: a threat to banana production in East and Central Africa. Plant Dis 93(5):440–451
Turyagyenda LF, Blomme G, Ssekiwoko F, Eden-Green S (2007) Determination of the appropriate fallow period to control Xanthomonas wilt following infection of banana. In Abstracts of ISHS/ProMusa symposium: Recent Advances in Banana Crop Protection for Sustainable Production and Improved Livelihoods. White River, South Africa, 10–14 September 2007, pp 58–59
Tushemereirwe WK (2001) A century of banana research and development in Uganda: 1898–1998. Uganda J Agric Sci 6:27–36
Tushemereirwe W, Opolot O (2005) BXW history, status and national strategies. In Workshop Assessing the impact of the banana bacterial wilt Xanthomonas campestris pv. musacearum household livelihoods in East Africa, Kampala, Uganca, 20 December 2005
Tushemereirwe WK, Okaasai O, Kubiriba J, Nanakinga C, Muhangi J, Odoi N, Opio F (2006) Status of banana bacterial wilt in Uganda. Afr Crop Sci J 14:73–82
Venne J, Beed F, Avocanh A, Watson A (2009) Integrating Fusarium oxysporum f. sp. strigae into cereal cropping systems in Africa. Pest Manag Sci 65:572–580
Waage JK, Woodhall JW, Bishop SJ, Smith JJ, Jones DJ, Spence NJ (2006) Patterns of new plant disease spread: a plant pathogen database analysis. Study T15. In: Brownlie J, Peckham C, Waage J, Woolhouse M, Lyall C (eds) Foresight. Infectious diseases: preparing for the future. Office of Science and Innovation, London
Waage JK, Woodhall JW, Bishop SJ, Smith JJ, Jones DJ, Spence NJ (2009) Patterns of plant pest introductions in Europe and Africa. Agric Syst 99(1):1–5
Warburg O (1894) Die kulturpflanzen usambaras. Mitteilungen aus den deutschen Schutzgebieten 7:131–199 (in Deutsch)
Watson IA, de Sousa CNA (1983) Long distance transport of spores of Puccinia graminis tritici in the Southern Hemisphere. Proc Linnean Soc NSW 106:311–321
Wei ZM, Beer SV (1996) Harpin from Erwinia amylovora induces plant resistance. Acta Hortic 411:427–431
Yirgou D, Bradbury JF (1968) Bacterial wilt of enset (Ensete ventricosum) incited by Xanthomonas musacearum sp. nov. Phytopathology 58:111–112
Zhou X, Liu Y, Calvert L, Munoz C, Otim-Nape GW, Robinson DJ, Harrison BD (1997) Evidence that DNA-A of a geminivirus associated with severe cassava mosaic disease in Uganda has arisen by interspecific recombination. J Gen Virol 78:2101–2111
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Authors have contributed equally to the preparation of the manuscript. Dr. Bonciani prepared the paragraphs relating to the economic and social impact of the case-studies considered.
The paper has been derived from an invited oral presentation entitled “Emerging infectious diseases” during a Conference on “Socio-economic impact of plant disease” organized by the Accademia of Georgofili and held in Florence on 26 November 2009.
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Vurro, M., Bonciani, B. & Vannacci, G. Emerging infectious diseases of crop plants in developing countries: impact on agriculture and socio-economic consequences. Food Sec. 2, 113–132 (2010). https://doi.org/10.1007/s12571-010-0062-7
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DOI: https://doi.org/10.1007/s12571-010-0062-7
Keywords
- Emerging infectious diseases
- Cassava Mosaic Virus Disease
- Striga hermonthica
- Banana Xanthomonas Wilt
- Wheat Rust Ug99