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In vitro and in vivo antifungal activity of crude extracts and powdered dry material from Ethiopian wild plants against economically important plant pathogens

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Abstract

In Ethiopia extracts from specific plants are used traditionally as natural fungicides in small scale farming systems where synthetic chemicals are out of reach of the average subsistence farmer while no scientific base exists for this practice. Subsequently, methanolic crude extracts from Dolichos kilimandscharicus and Maerua subcordata roots as well as Phytolacca dodecandra berries were screened in vitro for antifungal activity against Botrytis cinerea Pers.:Fr., Fusarium oxysporum Schlechtend.:Fr., Sclerotium rolfsii Sacc., Rhizoctonia solani Kühn,, Botryosphaeria dothidea (Moug.:Fr.) Ces & De Not. and Pythium ultimum Trow, using an agar diffusion method. Compared to the other plants as well as specific standard fungicides for each pathogen, the root extract of D. kilimandscharicus showed the highest broad-spectrum in vitro antifungal activity by inhibiting the mycelial growth of three of the six test organisms. Additionally, in vivo antifungal activity of dry powdered material from these plants against sorghum covered (Sporisorium sorghi) and loose kernel (Sporisorium cruentum) smuts was screened under field conditions by artificially inoculating separate sets of sorghum seed with smut spores before treating with plant material or two traditionally used fungicides, Thiram® and Apron Plus® that served as positive controls. Although the incidence of both loose and covered kernel smuts were significantly reduced by material from all plant species, the dry powdered berries of P. dodecandra were most effective. Compared to the untreated control, treatment with the plant material as well as standard fungicides resulted in significant yield increases. It was concluded that a rationale has been established for further investigation into the structured utilization of natural vegetation indigenous to Ethiopia in the agricultural industry.

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References

  • Abate D, Fesseha S (1994) In vitro and in vivo antifungal activity of Endod, Phytolacca dodecandra. In: Present status and future trends of research on Endod and Schistosomiasis in Ethiopia. Proceedings of a preparatory workshop held in Nazareth, Ethiopia, pp 62–66

  • Abera D, Tadesse M, Girma T, Fasil R, Snayt Y, Yeshi C, Beyene S, Aberra D, Negusu TM (1995) Sorghum and millets research in eastern and central africa. In: Proceedings of a workshop to re-establish a sorghum and millet research network in the region. Kampala, Uganda. pp 131–152

  • Baard SW, Los O (1989) Two newly reported diseases of peas in South Africa. Phytophylactica 21(3):307–309

    Google Scholar 

  • Blaeser P, Steiner U (1999) Antifungal activity of plant extracts against potato late blight (Phytophthora infestans). In: Lyr, H. Russell PE, Dehne H-W, Siseer HD (eds) Modern Fungicides and Antifungal Compounds II. Intercept Limited. pp 491–499

  • Boshoff WHP, Pretorius ZA, Swart WJ (1998) Fusarium species in wheat grown from head blight infected seed. SA J Plant and Soil 15(1):46–47

    Google Scholar 

  • Carling DE, Meyer L, Brainard KA (1996) Crates disease of wheat caused by Rhizoctonia solani AG-6. Plant Disease 80(12):1429

    Article  Google Scholar 

  • Daayf F, Schmitt A, Bélanger RR (1995) The effect of plant extracts of Reynoutria sachalinensis on powdery mildew development and leaf physiology of Long English Cucumber. Plant Disease 79(6):577–580

    Article  Google Scholar 

  • Dales MJ (1996) A review of plant materials used for controlling insect pests of stored products. In: NRI Bulletin 65, Natural Resources Institute, Chatham, UK

  • De Kock L, Combrink JC, Sass P (1994) Blossom-end rot of pears caused by Botrytis cinerea. International symposium on post harvest treatment of horticultural crops, Keckskemet Hungary. Acta Hort 368:667–672

    Google Scholar 

  • Denman S, Knox-Davies PS, Ali-Shtayeh MS (1995) Pathogenicity of Pythium irregulare, P. sylvaticum and P. ultimum var. ultimum to lucerne (Medicago sativa). Aust Plant Path 24(2):137–143

    Article  Google Scholar 

  • Dimitra DJ, Basil N, Ziogas N, Polissiou MG (2003) The effectiveness of plant essential oils on the growth of Botrytis cinerea, Fusarium sp. and Clavibacter michiganensis subsp. michiganensis. Sci Direct 22(1):39–44

    Google Scholar 

  • El-Fadaly H, Hassan B, El-Badrawy E (1999) Antifungal potentialities of some plant extracts compared to some yeasts and bacteria. Proceedings of the Second International Conference on Fungi: Hopes and Challenges. Ellis Horwood Limited 7(3):95–108

    Google Scholar 

  • Ferreira JHS, Matthee FN, Thomas AC (1989) Fungi associated with dieback and pruning wounds of grapevines in South Africa. SA Enol J Vit 10(2):62–66

    Google Scholar 

  • Fourie JF, Holz G (1998) Effects of fruit and pollen exudates on growth of Botrytis cinerea and infection of plum and nectarine fruit. Plant Disease 82(2):165–170

    Article  Google Scholar 

  • Godet F, Limpert E (1998) Recent evolution of multiple resistance in the wheat mildew pathogen to selected DMI and morpholine fungicides in France. Pest Sci 54(3):244–252

    Article  CAS  Google Scholar 

  • Herbert JA, Marx D (1990) Short-term control of Panama disease of bananas in South Africa. Phytophylactica 22(3):339–340

    Google Scholar 

  • Hu Z, Wu QA, Adams JE (1992) Studies of the rare and endangered plant species in the Yunnan region of China. In: Adams RP (ed) Conservation of plant genes: DNA banking and in vitro biotechnology. Proceedings of the Royal Botanic Gardens, Kew, UPp K, pp 267271

  • Lamprecht SC, Marasas WFO, Knox-Davis PS, Calitz FJ (1990) Incidence of Fusarium species in different cropping systems of annual Medicago species and wheat. Phytophylactica 22(1):69–76

    Google Scholar 

  • Lemma A, Heyneman D, Silangwa SM (1984) Phytolacca dodecandra (Endod) towards controlling transmission of schistosomiasis with the use of a natural product. Final report of the international workshop, Lusaka, Zambia. Tycooly International Publishing, Dublin

  • Lyr H, Werner P (1982) On the mechanism of action of the fungicide Chloroneb. Pest Biochem Phys 18:69–76

    Article  CAS  Google Scholar 

  • Marston A, Gafner F, Dossaji FS, Hostettmann K (1988) Fungicidal and molluscicidal saponins from Dolichos kilimandscharicus. Phytochemistry 27(5):1325–1326

    Article  Google Scholar 

  • Meyer JC, Van Wyk RJ, Phillips AJL (1990) Rhizoctonia leaf spot of tobacco in South Africa. Plant Path 39(1):206–207

    Article  Google Scholar 

  • Opperman L, Wehner FC (1994) Survey of fungi associated with grass roots in virgin soils on the Springbok Flats. SA Bot J 60(1):67–72

    Google Scholar 

  • Pandey KD, Tripathi NN, Tripathi DR, Dixit SN (1982) Fungitoxic and phytotoxic properties of essential oils of Hyptis suaveolens. Zeits. Pflanzenkrank. Pflanzenschutz 89:344–349

    Google Scholar 

  • Pretorius JC, Zietssman PC, Eksteen D (2002) Fungitoxic properties of selected South African plant species against plant pathogens of economic importance in agriculutre. Ann App Biol 141:117–124

    Article  Google Scholar 

  • Rheeder JP, Marasas WFO (1998) Fusarium species from plant debris associated with soils from maize production areas in the Transkei region of South Africa. Mycopathologia 143(2):113–119

    Article  PubMed  CAS  Google Scholar 

  • Rios JL, Recio MC, Villar A (1988) Screening methods for natural products with antimicrobial activity: a review of the literature. Ethnopharm J 23:127–149

    Article  CAS  Google Scholar 

  • Seddon B, Schmitt A (1999) Modern fungicides and antifungal compounds II. In: Lyr H, Russell PE, Dehne H, Siseer HD (eds) Integrated biological control of fungal plant pathogens using natural products. Intercept Limited, pp 423–428

  • Serfontein S, Knox-Davies PS (1990) A flower head blight of Leucadendron discolor caused by Botrytis cinerea. Phytophylactica 22(1):119–120

    Google Scholar 

  • Smith H, Wingfield MJ, Crous PW, Coutinho TA (1996) Sphaeropsis sapinea and Botryosphaeria dothidea endophytic in Pinus spp. and Eucalyptus spp. in South Africa. SA Bot J 62(2):86–88

    Google Scholar 

  • Swart WJ, Blodgett JT (1998) First report of Botryosphaeria dothidea basal canker of pistachio trees in South Africa. Plant Dis 82(8):960

    Article  Google Scholar 

  • Thomas TV, Eicker A, Robbertse PJ (1994) Possible role of fungi in negatively affecting fruit-set in avocados. SA Bot J 60(5):251–256

    Google Scholar 

  • Uys MDR, Thompson AH, Holz G (1996) Diseases associated with tomato in the main tomato-growing regions of South Africa. J SA Soc Hort Sci 6(2):78–81

    Google Scholar 

  • Van Wyk PS, Ndunguru BJ, Hildebrand GL, Subrahmanyam P (1994) Implementation of a cultivar resistance coding system for minimising yield and quality losses in groundnut. Sustainable groundnut production in southern and eastern Africa: proceedings of a Workshop, Mmabane, Swaziland, pp 54–56

  • Venter SL, Steyn PJ (1998) Correlation between fusaric acid production and virulence of isolates of Fusarium oxysporum that causes potato dry rot in South Africa. Potato Res 41(3):289–294

    Article  CAS  Google Scholar 

  • Viljoen A, Wingfield MJ, Crous PW (1992) Fungal pathogens in Pinus and Eucalyptus seedling nurseries in South Africa: a review. J SA For 161:45–51

    Google Scholar 

  • Waard D, Georgopoulos AM, Hollomon GS, Ishii WD, Le Roux H, Le Roux P, Ragsdale NN, Schwinn FJ (1993) Chemical control of plant diseases: problems and prospects. Ann Rev Phytopath 31:403–421

    Article  Google Scholar 

  • Watanabe K, Kawasaki T, Sako N, Funatssu G (1997) Actions of pokeweed antiviral protein on virus-infected protoplast. Biosci Biotech Biochem 61(6):994–997

    Article  CAS  Google Scholar 

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Acknowledgement

We thank the National Research Foundation (NRF) for financial support and Charlotte Maree for technical assistance with in vitro bio-tests.

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Correspondence to Johan C. Pretorius.

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Tegegne, G., Pretorius, J.C. In vitro and in vivo antifungal activity of crude extracts and powdered dry material from Ethiopian wild plants against economically important plant pathogens. BioControl 52, 877–888 (2007). https://doi.org/10.1007/s10526-007-9088-y

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  • DOI: https://doi.org/10.1007/s10526-007-9088-y

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