PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2015 | 14 | 1 |

Tytuł artykułu

Antifungal activity of some plant extracts against Botrytis cinerea Pers. in the blackcurrant crop (Ribes nigrum L.)

Treść / Zawartość

Warianty tytułu

PL
Grzybobójcze działanie niektórych wyciągów roślinnych przeciw Botrytis cinerea Pers. w plonie czarnej porzeczki (Ribes nigrum L.)

Języki publikacji

EN

Abstrakty

EN
There were tested and screened, in vitro and in vivo, for the first time in Romania, nine respectively six plant extracts manufactured by Hofigal S.A. against Botrytis cinerea (strain Bc 27) isolated from blackcurrant (Ribes nigrum L.). The highest antibotrytis in vitro activity (efficiency between 80 and 100%) was obtained using the following extracts: Hyssopus officinalis (at 20, 10 and 5%), Satureja hortensis, Allium sativum, Tagetes patula (at 20 and 10%) and Mentha (at 20%). A moderate antibotrytis activity (efficiency between 35.7 and 65.7%) has been noticed for Mentha (at 10 and 5%), Satureja hortensis, Allium sativum and Tagetes patula (at 5%) extracts. The lowest antibotrytis activity or no efficiency was noticed using extracts obtained from Achillea millefolium, Artemisia dracunculus ‘sativa’, Rosmarinus officinalis and Valeriana officinalis even applied at 20%. Based on results obtained in in vitro tests, six plant extracts were tested and screened in vivo, under field conditions at Hofigal S.A. Bucharest. Satureja hortensis, Allium sativum, Hyssopus officinalis, Menthaand Tagetes patula extracts have been efficient in limiting gray mold severity in blackcurrant applied at 10% compared to untreated control. No in vivo activity was registered for Valeriana officinalis extract. Plant extracts with highly efficiency can be recommended as a non-polluting and environmental-friendly alternative (organic horticulture) in the protection of blackcurrant as medicinal crop against grey mould, the most economically important disease in Europe at present.
PL
Po raz pierwszy w Rumunii przetestowano i dokonano przesiewu in vitro oraz in vivo dziewięciu wyciągów roślinnych produkowanych przez Hofigal S.A. przeciwko Botrytis cinerea (szczep Bc 27) wyizolowanego z czarnej porzeczki (Ribes nigrum L.). Najlepszy efekt przeciw Botrytis in vitro (wydajność między 80 a 100%) uzyskano przy użyciu następujących wyciągów: Hyssopus officinalis (przy 20, 10 i 5%), Satureja hortensis, Allium sativum, Tagetes patula (przy 20 i 10%) oraz Mentha sp. (przy 20%). Umiarkowany efekt przeciw Botrytis (wydajność między 35,7 a 65,7%) zaobserwowano dla wyciągów Mentha sp. (przy 10 i 5%), Satureja hortensis, Allium sativum and Tagetes patula (przy 5%). Najsáabszy efekt przeciw Botrytis lub zero efektu stwierdzono przy użyciu wyciągów otrzymanych z Achillea millefolium, Artemisia dracunculus ‘Sativa’, Rosmarinus officinalis i Valeriana officinalis, zastosowanych nawet w 20%. Na podstawie wyników otrzymanych in vitro przetestowano i dokonano przesiewu in vivo sześciu wyciągów roślinnych w warunkach polowych w Hofigal S.A. Bucharest. Wyciągi Satureja hortensis, Allium sativum, Hyssopus officinalis, Mentha sp. i Tagetes patula byáy skuteczne przy 10% w ograniczaniu nasilenia szarej pleśni w porzeczce w porównaniu z kontrolą. Nie zarejestrowano żadnego dziaáania in vivo dla wyciągu Valeriana officinalis. Wyciągi roślinne o dużej skuteczności mogą być rekomendowane jako alternatywne środki przyjazne dla środowiska, niepowodująca zanieczyszczenia (ogrodnictwo organiczne) w ochronie czarnej porzeczki jako rośliny leczniczej przeciwko szarej pleśni, która jest obecnie gospodarczo najważniejszą chorobą w Europie.

Wydawca

-

Rocznik

Tom

14

Numer

1

Opis fizyczny

p.29-43,fig.,ref.

Twórcy

autor
  • Department of Botany and Microbiology, Biology Faculty, University of Bucharest, 1–3 Portocalelor Alley, sector 6, 060101 Bucharest 35, Romania
autor
  • Department of Botany and Microbiology, Biology Faculty, University of Bucharest, 1–3 Portocalelor Alley, sector 6, 060101 Bucharest 35, Romania
autor
  • University of Agricultural Sciences and Veterinary Medicine, Bucharest, Romania
autor
  • Research-Development Institute of Plant Protection, Bucharest, Romania
autor
  • National Research-Development Institute for Chemistry and Petrochemistry, Bucharest, Romania
autor
  • University of Agricultural Sciences and Veterinary Medicine, Bucharest, Romania

Bibliografia

  • Adebayo, O., Dang, T., Belanger, A., Khanizadeh, S. (2013). Antifungal studies of selected essential oils and a commercial formulation against Botrytis cinerea. J. Food Res., 2(1), 217–226.
  • Alkhail Aba, A.A. (2005). Antifungal activity of some extracts against some plant pathogenic fungi. Pakistan J. Biol. Sci., 8(3), 413–417.
  • Aminifard, M.H., Komodammadi, S. (2013). Essential oils to control Botrytis cinerea in vitro and in vivo on plum fruits. J. Sci. Food Agric., 93(2), 348–353.
  • Antonov, A., Stewart, A., Walter, M. (1997). Inhibition of conidium germination and mycelial growth of Botrytis cinerea by natural products. Proceedings of the 50th New Zealand Plant Protection Conference, New Zealand Plant Protection Society (Inc.), 159–164.
  • Arras, G., Agabbio, M., Piga, A., D'Hallewn, G., Gerasopoulos, D., Olympos, C., Passam, H. (1995). Fungicide effect of volatile compounds Thymus capitatus essential oil. Acta Horticult., 379, 593–600.
  • Beever, R.E., Laracy, E.P., Pak, H.A. (1989). Strains of Botrytis cinerea resistant to dicarboximide and benzimidazole fungicides in New Zealand vineyards. Plant Pathol., 38, 427–437.
  • Bi, Ya Ling, Wang, Bo, Huang, Bao Hong, Zhanng, Wen Tong, Zhang, Yi Hui (2011). Antifungal actyivity of botanical extracts against Botrytis cinerea and Alternaria solani. J. Agricult. Sci. Technol. Hunan, 12(6), 862–864.
  • Bouchra, C., Achouri, M., Hassani, L.M.I., Hmamouchi, M., 2003. Chemical composition and antifungal activity of essential oils of seven Moroccan Labiatae against Botrytis cinerea. Pers. J. Ethnopharm., 89, 165–169.
  • Brent, K.J., Hollomon, D.W. (1998). Fungicide resistance: the assessment of risk. FRAC. Global Crop Prot. Fed., Brussels, Monograph, 2, 1–48.
  • Camele, I., De Feo, V., Altieri, L., Mancini, E., De Martino, L., Rana, A G.L. (2010). An attempt of postharvest orange fruit rot control using essential oils from Mediterranean plants. J. Med. Food, 13(6), 1515–1523.
  • Carta, C., Moretti, M.D.L., Peana, A.T. (1996). Activity of the oil of Salvia officinalis L. against Botrytis cinerea. J. Essent. Oil Res., 8(4), 399–404.
  • Chebli, B., Hmanouchi, M., Achouri, M., Hassani Idrissi, I.M. (2004). Composition and in vitro fungitoxic activity od 19 essential oils against two post-harvest pathogens. J. Essent. Oil Res., 16(5), 507–511.
  • Coetzee, G., Marx, I.J., Pengilly, M., Bushula, V.S., Joubert, E., Bloom, M. (2008). Effect of rooibos and honeybush tea extracts against Botrytis cinerea. http://hdl.handle.net/10019.1/8434
  • Coley-Smith, J.R., Verhoeff, K., Jarvis, W.R. (1980). The biology of Botrytis. London, Academic Press, 181–218.
  • Copping, L.G., Duke, S.O. (2007). Natural products that have been used commercially as crop protection agents. Pest Manag. Sci., 63, 117–153.
  • Cutler, H.G., Hill, R.A., Ward, B.C., Rohitha, B.H., Stewart, A. (1996). Antimicrobial, insecticidal and medicinal properties of natural products, flavours and fragrances. In: Biotechnologies for improved foods and flavors, Takeoka, G.R., Teranishi, R., Williams, P.J., Kobayashi, A. (eds). Am. Chem. Soc., 51–66.
  • Daferera, D.J., Ziogas, B.N., Polissiou, M.G. (2003). The effectiveness of plant essential oils on the growth of Botrytis cinerea, Fusariumand Clavibacter michiganense subsp. michiganensis. Crop Prot., 22(1), 39–44.
  • Davidson, P.M., Naidu, A.S. (2000). Phyto-phenols. In: Natural Food Antimicrobial System Naidu A.S. (ed.). Boca Raton, FL, CRC Press, 265–294.
  • Dubey, N.K. (2011). Natural products in plant pest management. UK, 293 pp.
  • Elad, Y., Evenses, K. (1995). Physiological aspects of resistance to Botrytis cinerea II. Phytopathology, 85, 637–643.
  • Elad, Y., Yunis, H., Katan, T. (1992). Multiple resistance to benzimidazoles, dicarboximidea and diethofenocarb in field isolates of Botrytis cinerea in Israel. Plant Pathol., 41, 41–46.
  • Elad, Y., Williamson, B., Tudzynski, P., Delen, N. (2004). Botrytis spp. and diseases they cause in agricultural systems an introduction. In: Botrytis: Biology, pathology and control, Elad, Y., Williamson, B., Tudzynski, P., Delen, N. (eds). The Netherlands: Kluwer Academic Publishers Dordrecht, 1–8.
  • Enache, E. (2013). Biology, ecology and control of pathogenic fungi for blackcurrant cultivated as medicinal plant in the South of Romania. PhD thesis, University of Bucharest, Biology Faculty, 328 pp. (in Romanian)
  • El Oirdi, M., Bouarab, K. (2007). Plant signalling components EDS1 and SGT1 enhance disease caused by the necrotrophic pathogen Botrytis cinerea. New Phytol., 175, 131–139.
  • Gonzales-Collado, I., Macias-Sachez, A.J., Hanson, J.R. (2006). Fungal terpene metabolites: biosynthetic relationships and the control of phytopathogenic fungus Botrytis cinerea. Nat. Prod. Rep., 24, 674–688.
  • Han, Y., Xiao, D., Xiang, Y., Ye, L., Cheng, C. (2000). Study on the volatile oil of Nardostachys chinensis. Zhong Yao Cai, 23, 34–35.
  • Hébért, C., Charles, M.T., Gauthier, L., Willemot, C., Khanizadeh, S., Cousineau, J. (2002). Strawberry proanthocyanidins: biochemical markers for Botrytis cinerea resistance and selflife predicitability. Acta Horticult., 567, 659–662.
  • Huang, Jenn-Wen, Chung, Wen-Chuan (2003). Management of vegetable crop diseases with plant extracts. In: Advances in plant management, Huang, H.C., Surya A. (eds), 153–163.
  • Iacomi, B., Gherghieú, C., Enciu, S., Manole, M. (2000). Phyto-extracts with antifungal activity, Lucrări ùtiinĠifice. USAMV Buc., ser. B, vol. 18, 137–139.
  • Ivănescu, B. (2010). Studiul fitochimic al unor compuúi din speciile Artemisia absinthium, A. vulgaris úi A. annua recoltate din flora spontană. Rezumat teza de doctorat. Univ. de Medicină úi Farmacie „Gr. T. Popa”, Facultatea de Farmacie, Iaúi.
  • Kordali, S., Cakir, A., Akcin, T.A., Mete, E., Abcin, A., Aydin, T., Kilic, H. (2009). Antifungal and herbicidal properties of essential oils and n-hexane extracts of Achillea gypsicola HubMor. and A. biebersteinii Afan. (Asteraceae). Indust. Crops Prod., 29, 562–570.
  • Kumar, A., Shukla, R., Singh, P., Prasad, C.S., Dubey, N.K. (2008). Assessment of Thymus vulgaris L. essential oil as a seif botanical preservative against post harvest fungal infestation of foof commodities. Innov. Food Sci. Emerg. Technol., 4, 575–580.
  • Lee, H.C., Cheng, S.S., Chang, S.T. (2005). Antifungal property of the essential oils and their constituents from Cinnamomum osmophloem leaf against tree pathogens fungi. J. Sci. Food Agric., 85, 2047–2053. Lee, S.E., Park, B.S., Kim, M.K., Choi, W.S., Kim, H.T., Kho, K.Y., Lee, S.G., Lee, H.S. (2001). Fungicidal activity of pipernonaline, a piperidine alkaloid derived from long pepper, Piper longum L. against phytopathogenic fungi. Crop Protect., 20(6), 523–528.
  • Leroux, P., Fritz, R., Debieu, D., Albertini, C., Lanen, C., Bach, J., Chapeland, F. (2002). Mechanisms of resistance to fungicides in field strains of Botrytis cinerea. Pest Manag. Sci., 58, 876–888.
  • Martinez-Romero, D., Guillen, F., Valverde, J.M., Bailen, G., Zapata, P., Serrano, M., Castillo, S., Valero, D. (2007). Influence of carvacrol on survival of Botrytis cinerea inoculated in table grapes. Int. J. Food Microbiol., 115(2), 144–148.
  • Mendoza, L., Modak, B., Torres, R., Cotoros, M. (2008). In vitro sensitivity of Botrytis cinerea to resinous exudates of Heliotropium filifolium and geranyl derivatives compounds. J. Chil. Chem. Soc., 53(1), 10 pp.
  • Mogle, U.P. (2013). Efficiency of leaf extracts against the post harvest fungal pathogens of cowpea. Biosci. Disc., 4(1), 39–42.
  • Mrabet, N., Lahlou, H., Brnjilali, B. (1999). Effect of Moroccan Cistus ladaniferus L. (rockrose) extracts on the growth of four fungi. Cryptogam. Mycol., 20, 23–33.
  • Nikos, G.T., Economakis, C.E. (2007). Antifungal activity of lemongrass (Cymbopogon citrates L.) essential oil against key postharvest pathogens. Glob. J. Biotechnol. Biochem., 3(2), 56–59.
  • Ozcan, M., Boyraz, N. (2000). Antifungal properties of some herb decoctions. Europ. Food Res. Technol., 212, 86–88.
  • Park, I.K., Lee, S.G., Shing, S.C., Park, D.J., Ahn, Y.J. (2002). Larvicidal activity of isobutylamides identified in Piper nigrum fruits against three mosquito species. J. Agricult. Food Chem., 50, 1866–1870.
  • Patkowska, E. (2008). The application of chitosan, Pythium oligandrum and grapefruit extract in the protection of common bean (Phaseolus vulgaris L.) from soil-borne phytopathogens. Progress on chemistry and application of chitin and its derivatives, vol. 13, 133–139.
  • Pârvu, M., Pârvu, A. (2011). Antifungal plant extracts. In: Science against microbial pathogens: comunicating current research and technological advances, Méndez-Vilas, A. (ed.). Formatex, Microbiol. Ser.3, 1055–1062.
  • Pârvu, M., ùesan, T.E. (1997). In vitro action of plant extracts on Botrytis species from ornamental plants. Rév. Roum. Biol. Biol. Végét. 42(1–2), 103–110.
  • Pârvu, M., Pârvu, A.E. Crăciun, C., Barbu-Tudoran, L., Tămaú, M. (2008). Antifungal activieties of Chelidonium majus extract on Botrytis cinerea in vitro and ultrastructurral changes in its conidia. J. Phytopathol., 156, 550–552.
  • Pârvu, M., Roúca-Casian, O., Puúcaú, M., Groza, G. (2009). Antifungal activity of Allium fistulosum L. ContribuĠii Bot., 44, 125–129.
  • Pârvu, M., Pârvu, A.E. Roúca-Casian, O., Vlase, L., Groza, G. (2010a). Antifungal activity of Allium obliquum. J. Med. Plants Res., 4, 138–141.
  • Pârvu, M., Toiu, A., Vlase, L., Pârvu, A.E. (2010b). Determination of some polyphenolic compounds from Allium species by HPLC-UN-MS. Nat. Prod. Res., 24, 1318–1324.
  • Pârvu, M., Pârvu, A.E., Crăciun, C., Barbu-Tudoran, L., Vlase, L., Tămaú, M., Roúca-Casian, O., Tripon, S.C., Persecă, C., Molnar, A.M. (2010c). Changes in Botrytis cinerea conidia caused by Berberis vulgaris extract. Notulae Bot., 38(3), 15–20.
  • Pârvu, M., Pârvu, A., Vlase, L., Roúca-Casian, O., Pârvu, O. (2011a) Antifungal properties of Allium ursinum L. ethanol extract. J. Med. Plants Res., 5(10), 2041–2046.
  • Pârvu, M., Pârvu, A.E., Vlase, L., Roúca-Casian, O., Pârvu, O., Puúcaú, M. (2011b). Allicin and alliin content and antifungal activity of Allium senescens L. ssp. montanum (F.W. Schmidt) Holub ethanol extract. J. Med. Plants Res., 5(29), 6544–6549.
  • Plotto, A., Roberts, R., Roberts, D. (2003). Evaluation of plant essential oils as natural postharvest disease control of tomato (Lycopersicon esculentum). Acta Horticult., 628, 737–745.
  • Rai, M., Acharya, D., Rios, H.L. (2011). Ethnomedical plants. Revitalization of traditional knowledge of herbs. Sci. Publ. Enfield, New Hampshire, CRC Press, Taylor & Francis, LLC, USA, 507 pp.
  • Reddy, M.V.B., Angres, P., Gosselin, A., Arul, J. (1997). Characterization an duse of essential oil from Thymus vulgaris against Botrytis cinerea and Rhizopus stolonifer in strawberry fruit. Phytochemistry, 97, 1515–1520.
  • Reuveni, M., Neifeld, D., Dazan, D., Kotzer, Z. (2009). BM-608-a noovel organic product base don essential tea tree oil for the control of fungal diseases in tomato. US Department of Agriculture, AGRICOLA on-line catalog of the National Agricultural Library (NAL): 2 pp.
  • Ribera, A., Cotoras, M., Zuniga, G.E. (2008). Effect of extracts from in vitro-grown shoots of Quillaja saponaria Mol. on Botrytis cinerea Pers. World J. Microbiol. Biotechnol., 24(9), 1803–1811.
  • Romagnoli, C., Bruni, R. Andreotti, E., Rai, M.K., Vicentini, C.B., Mares, D. (2005). Chemical characterization and antifungal activity of essential oil of capitula from wild Indian Tagetes patula L.. Protoplasma, 225(1–2), 57–65.
  • Roúca-Casian, O., Pârvu, M., Vlase, I., Tămaú, M. (2007). Antifungal activity of Aloë vera leaves. Fitoterapia 78, 219–222.
  • Roy, S., Chatterjee, P. (2010). A non-toxic antifungal compound from the leaves of Catharanthus roseus characterized as 5-hydroxy flavone by UV spectroscopic analysis and evaluation of its antifungal properties by agar-cup method. Industr. Crops Prod., 32(3), 375–380.
  • Saks, Y., Barkai-Golan, R. (1995). Aloe vera gel activity against plant pathogenic fungi. Postharv. Biol. Technol., 6, 159–165.
  • Saniewska, A. (1996). Potential use of garlic compounds and fungicides in the control on fungi on seeds of some ornamental plants. Polish Phytopathol. Soc., Biol. Contr. of Plant Dis., Skierniewice (Poland), 141–147.
  • Sas-Piotrowska, B., Piotrowski, W. (2002). Plant extracts in protection of strawberry (Fragaria vesca L.) against Botrytis cinerea Pers.. Rocz. Ochr. ĝrod., 4, 545–553.
  • Shaymaa, M.R., Abou-Zaid, M.A., Aly, A.Z., Tohamy, M.R.A. (2012). Safety control of strawberry fruit gray mold fungus by volatile oils. Zagazig J. Agricult. Res., 39(2), 181–187.
  • Shen, Y.H., Weng, Z.Y., Zhao, Q.S., Zeng, Y.Q., Rios, J.L., Xiao, W.L., Ku, G., Sun, H.D. (2005). Five new triterpene glycosides from Lysimachia foenum-graecum and evaluation of their effect on the arachidonic acid metabolizing enzyme. Planta Med., 71, 770–775.
  • Shimoni, M., Putiewski, E., Ravid, U., Reuven, R. (1993). Antifungal activity of volatile fractions of essential oils from four aromatic wild plants in Israel. J. Chem. Ecol., 19(6), 1129–1133.
  • Sivropoulou, A., Papanikolaou, E., Nikolaou, C., Kokkini, S., Lanaras, T., Arsenakis, M. (1996). Antimicrobial and cytotoxic activities od Origanum essential oils. J. Agricult. Food Chem., 44(5), 1202–1205.
  • Soylu, E.M., Yigitbas, H., Tok, F.M., Sozlu, S., Kurt, ù., Baysal, ė., Kaya, A.D. (2005). Chemical composition and antifungal activity of the essential oil of Artemisia annua L. against foliar and soil-borne fungal pathogens. Z. Pflanzenkrankh. Pflanzenschutz, 112(3), 229–239.
  • Soylu, E.M., Kurt, S., Soylu, S. (2010). In vitro and in vivo antifungal activieties of the essential oils of various plants against tomato grey mould disease agent Botrytis cinerea. Internat. J. Food Microbiol. 143(3), 183–189.
  • ùesan, T.E. (2003). Sustainable management of gray mould (Botrytis cinerea) on grapevine, strawberry and ornamentals. In: Chapter in advances in plant managenent, Huang, H.C., Surya A. (eds.). Res. Signpost Publ. House, 121–152.
  • ùeasan, T.E., ùtefan, A.L. (2005). AcĠiunea biologică in vitro a unor extracte vegetale faĠă de ciuperca Botrytis cinerea Pers. Sănătatea Plantelor, ediĠie specială, Lucrările celei de al 14-lea Simpozion NaĠional de Micologie, Sinaia, România, 2004, 111–115.
  • ùeasan, T.E., Tănase, C. (2007). Ciuperci anamorfe fitopatogene. Univ. Bucureúti, 44–66. ùesan, T.E., Tănase, C. (2011). Ascomicete fitopatogene. Univ. Bucureúti, 123–132.
  • Teodorescu, G., Marin, F.C., Sumedrea, M., Murariu, F. (2008). Preliminary results regarding the effect of vegetal extracts on storage diseases. International Workshop on Sustainable Fruit Growing, RIFG Piteúti-Mărăcineni, Romania, 109–119.
  • Tao, S., Zhang, G.S., Tsao, R., Charles, M.T., Yang, R., Khanizadch, S. (2010). In vitro antifungal activity and mode of action of selected polyphenolic antioxidants on Botrytis cinerea. Arch. Phytopathol. Plant Protect., 43(18), 1564–1578.
  • Toncea, I., Stoianov, R. (2002). Metode ecologice de protecĠie a plantelor. Ed. ùtiinĠelor Agricole, Bucureúti.
  • Tzortzakis, N.G., Economakis, C.E. (2007). Antifungal activity of lemongrass (Cymbopogon citratus L.) essential oil against key postharvest pathogens. Innovat. Food Sci. Emerg. Technol., 8(2), 253–258.
  • Vali, R.J., Moorman, G.W. (1992). Influence of selected fungicides regimes on frequency of dicarboximide-resistant and dicarboximide-sensitive strains of Botrytis cinerea. Plant Dis. 76(9), 919–924.
  • Vio-Michaelis, S., Pablaza-Hidalgo, G., Gomez, M., Pena-Vera, R., Montenegro, G. (2012). Antifungal activity of three Chilean plant extracts on Botrytis cinerea. Bot. Sci., 90(2), 179–183.
  • Wahmare, M.B., Wahmare, R.M., Kamble, S.S. (2011). Bioefficiency of plant extracts on growth of Botrytis cinerea causing leaf blight of rose. The Bioscan, 6(4), 643–645.
  • Wilson, C.L., Solar, J.M., El-Ghaouth, A., Wisniewski, M.E. (1997). Rapid evaluation of plant extracts and essentials oils for antifungal activity against Botrytis cinerea. Plant Dis., 81, 204–210.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-b768ae46-ea49-46f4-a816-c0758f7b9c63
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.