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Journal of Biological Sciences

Year: 2006 | Volume: 6 | Issue: 3 | Page No.: 540-546
DOI: 10.3923/jbs.2006.540.546
Fungal Microflora Causing Maize Ear Rots in Uganda and Associated Aflatoxins
G. Bigirwa, G. Sseruwu, A. N. Kaaya, E. Adipala and S. Okanya

Abstract: Freshly harvested dry maize ears were sampled from farmers in 2002A and 2002B seasons in ten major maize growing districts of Uganda and kernels plated onto malt extract or malt salt agar for mould growth and were also analysed for moisture and aflatoxin content. Fusarium, Aspergillus, Penicillium, Phomopsis, Acremonium, Stenocarpella and Rhizopus were the genera identified. Fusarium verticillioides and Aspergillus flavus were the most common mould species identified and were isolated from both symptomatic and asymptomatic maize samples in both seasons. Overall, mean aflatoxin levels of both asymptomatic and symptomatic samples were lower than the FDA/WHO 20 ppb regulatory limit. Samples from Masindi district had the highest mean aflatoxin levels (13 ppb) followed by those from Mayuge (11.8 ppb) while those from Kapchworwa had the least mean levels (0.7 ppb). Samples collected during 2002A season had generally higher moisture content, mould incidence and aflatoxin levels than the 2002B samples. Although the findings from the study were only able to show aflatoxins, there is a strong likelihood of other mycotoxins occurring in maize grain in higher proportions. There is therefore the need to quantify these toxins to form a basis for the next course of action.

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How to cite this article
G. Bigirwa, G. Sseruwu, A. N. Kaaya, E. Adipala and S. Okanya, 2006. Fungal Microflora Causing Maize Ear Rots in Uganda and Associated Aflatoxins. Journal of Biological Sciences, 6: 540-546.

Keywords: mycotoxins, symptomatic, asymptomatic, microflora, Ear rots and safety

REFERENCES

  • Anderson, W.F., C.C. Holbrook, D.M. Wilson and M.E. Matheron, 1995. Evaluation of peanut aflatoxin contamination in several potentially resistant peanut genotypes. Peanut Sci., 22: 29-32.


  • AOAC, 1999. Official Methods of Analysis of AOAC International. 16th Edn., AOAC International, Maryland, USA., ISBN: 9780935584547
    Direct Link    


  • Bacon, C.W., R.M. Bannett, D.M. Hinton and K.A. Voss, 1992. Scanning electron microscopy of Fusarium moniliforme within asymptomatic corn kernels and kernels associated with equine leukocephalomalacia. Plant Dis., 76: 144-148.


  • Flett, B.C. and F.C. Wehner, 1991. Incidence of Sternocarpella and Fusarium cob rots in monoculture maize under different tillage systems. J. Phytopathol., 133: 327-333.


  • Flett, B.C. and J.B.J. van Rensburg, 1992. Effect of Busseola fusca on the incidence of maize ear rot caused by Fusarium moniliforme and Stenocarpella maydis. S. Afr. J. Plant Soil, 9: 177-179.


  • Genstat, A., 1995. Genstat 5, Release 3.2, PC/Windows NT. Copyright 1995, Lawes Agricultural Trust, Rothamsted Experimental Station, USA.


  • Hanlin, R.T. and M. Uiloa, 1979. Atlas of Introductory Mycology. Hunter Publishing Company, Winston-Salem, North Calorina, USA., pp: 3-8


  • Jones, R.K., H.E. Duncan, G.A. Payne and K.J. Leonard, 1980. Factors influencing infection by Aspergillus flavus in silk-inoculated corn. Plant Dis., 64: 859-863.


  • Kaaya, A.N., H.L. Warren and E. Adipala, 2000. Molds and aflatoxin contamination of maize and groundnuts in Mayuge and Kumi districts of Uganda. MUARIK Bull., 3: 33-41.


  • Kaaya, A.N., H.L. Warren, S. Kyamanywa and W. Kyamuhangire, 2005. The effect of delayed harvest on moisture content, insect damage, moulds and aflatoxin contamination of maize in Mayuge district of Uganda. J. Sci. Food. Agric., 85: 2595-2599.
    CrossRef    Direct Link    


  • Kapindu, S.J., V.W. Saka, A.M. Julian, R. Hillocks and W.A.B. Msuku, 1999. The significance and management of maize cob rots in smallholder farms in central Malawi. Afric. Crop Sci. J., 7: 531-538.
    Direct Link    


  • Kikafunda-Twine, J., D.T. Kyetere, G. Bigirwa, T. Kalule and M. Wamaniala, 2001. Maize. In: Agriculture in Uganda, Mukiibi, J.K. (Ed.). Volume II, Fountain Publishers/CTA/NARO, Kampala, pp: 55-69


  • Latterell, F.M and A.E. Rossi, 1983. Stenocarpella macrospore (=Diplodia macrospore) and S. Maydis (= D. maydis) compared as pathogens of corn. Plant Dis., 67: 725-729.


  • Macdonald, M.V. and R. Chapman, 1997. The incidence of Fusarium moniliforme on maize from Central America, Africa and Asia during 1992-1995. Plant Pathol., 46: 112-125.
    Direct Link    


  • Magan, N. and J. Lacey, 1988. Ecological determinants of mould growth in stored grain. Int. J. Food Microbiol., 7: 245-256.
    Direct Link    


  • Miller, J.D., 1995. Fungi and mycotoxins in grain: Implications for stored product research. J. Stored Prod. Res., 31: 1-16.
    CrossRef    Direct Link    


  • Mphande, F.A., B.A. Siame and J.E. Taylor, 2004. Fungi, aflatoxins and cyclopiazonic acid associated with peanut retailing in Botswana. J. Food Prot., 67: 96-102.
    Direct Link    


  • Odogola, W.R. and R. Henriksson, 1991. Postharvest management and storage of maize. Technical Systems for Agriculture. UNDP/OPS Regional Programme on Agricultural Operations Technology for Small Holders in East and Southern Africa, pp: 162.


  • Pitt, J.I. and A.D. Hocking, 1997. Fungi and Food Spoilage. 2nd Edn., Blackie Academic and Professional, London, pp: 21-32


  • Pittet, A., 1998. Natural occurrence of mycotoxins in foods and feeds: An updated review. Rev. Med. Vet., 149: 479-492.
    Direct Link    


  • Rates, 2003. Regional agricultural trade expansion support program. Maize market assessment and baseline study for Uganda. Regional Trade Center, Rates Program, USAID/REDSO Project Report., pp: 1-36.


  • Rwabwoogo, M.O., 2002. Uganda Districts Information Handbook. 5th Edn., Fountain Publishers Ltd., Kampala, Uganda, pp: 67-169


  • Sebunya, T.K. and D.M. Yourtee, 1990. Aflatoxigenic aspergilli in foods and feeds in Uganda. J. Food Qual., 13: 97-107.
    CrossRef    Direct Link    


  • Setamou, M., K.F. Cardwell, F. Schulthess and K. Hell, 1998. Effect of insect damage to maize ears, with special reference to Mussidia nigrivenella (Lepidoptera: Pyralidae), on Aspergillus flavus (Deuteromycetes: Monoliales) infection and aflatoxin production in maize before harvest in the Republic of Benin. J. Econ. Entamol., 91: 433-438.


  • Tuite, J., 1982. Examining and Identifying Fungal Cultures Growing out from Corn Kernels. A Laboratory Manual. Perdue University, USA., pp: 30


  • Tuite, J., C. Koh-Knox, R. Stroshine, F.A. Cantone and L.F. Bauman, 1985. Effect of physical damage to corn kernels on the development of Penicillium species and Aspergillus glaucus in storage. Phytopathology, 75: 1137-1140.
    Direct Link    


  • Vincelli, P., 2003. Ear rot of corn caused by Stenocarpella maydis (= Diplodia maydis). Extension Plant Pathologist. http://www.ca.uky.edu/agc/pubs/ppa/ppa43/ppa43.htm.


  • Widstrom, N.W., W.W. McMillian, R.W. Beaver and D.M. Wilson, 1990. Weather-associated changes in aflatoxin contamination of preharvest maize. J. Prod. Agric., 3: 196-199.
    Direct Link    


  • Williams, J.H., T.D. Phillips, P.E. Jolly, J.K. Stiles, C.M. Jolly and D. Aggarwal, 2004. Human aflatoxicosis in developing countries: A review of toxicology, exposure, potential health consequences and interventions. Am. J. Clin. Nutr., 80: 1106-1122.
    PubMed    Direct Link    

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