Araştırma Makalesi
BibTex RIS Kaynak Göster

In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.)

Yıl 2024, Cilt: 8 Sayı: 2, 273 - 284, 27.06.2024
https://doi.org/10.31015/jaefs.2024.2.4

Öz

This experimental study evaluated the effectiveness of different essential oils against the in vitro growth of Sclerotium rolfsii. The experiment employed a completely randomized design (CRD) with three concentrations (500, 1000, and 1500 ppm) of each essential oil, including thyme oil (Thymus vulgaris L.), cinnamon oil (Cinnamomum zeylanicum Blume), juniper oil (Juniperus horizontalis L.), neem oil (Azadirachta indica A. Juss.), lemon grass oil (Cymbopogon citratus (DC.) Stapf), peppermint oil (Mentha piperita L.), and an unamended control medium. This setup aimed to evaluate their efficacy against the mycelial growth of S. rolfsii. The data were analyzed using R software in R-Studio, and means were compared using Duncan’s Multiple Range Test (DMRT) at a 5% level of significance. Mycelium growth data were recorded at 24 hours, 48 hours, and 72 hours of incubation. All tested essential oils significantly inhibited the mycelial growth of the pathogen compared to the control (p<0.05). After 72 hours, thyme oil at all concentrations and lemongrass oil at 1500 ppm both achieved 100% growth inhibition. In contrast, neem oil at 500 and 1000 ppm showed the lowest inhibitory effects, with rates of 27.56% and 34.62%, respectively. Lemongrass oil at 500 ppm (75.39%) showed statistical similarity to cinnamon oil at 1000 ppm (79.12%). Peppermint oil at 1500 ppm resulted in 82.73% inhibition, and cinnamon oil at 1000 ppm (75.73%) showed comparable results to peppermint oil at 1000 ppm. Thus, the study highlights the superior performance of thyme oil among the tested essential oils. These effective essential oils can potentially be used at lower concentrations to minimize potential hazards. However, further research and field trials are essential to validate these findings for practical applications.

Kaynakça

  • Abdel-Kader, M., El-Mougy, N., & Lashin, S. (2011). Essential oils and Trichoderma harzianum as an integrated control measure against faba bean root rot pathogens. Journal of Plant Protection Research, 51(3), 306–313. https://doi.org/10.2478/v10045-011-0050-8
  • Alizadeh Behbahani, B. A., Falah, F., Lavi Arab, F., Vasiee, M., & Tabatabaee Yazdi, F. (2020). Chemical Composition and Antioxidant, antimicrobial, and antiproliferative Activities of Cinnamomum zeylanicum Bark Essential Oil. Evidence-Based Complementary and Alternative Medicine: eCAM, 2020, 5190603. https://doi.org/10.1155/2020/5190603
  • Alzohairy, M. A. (2016). Therapeutics role of Azadirachta indica (neem) and their active constituents in diseases prevention and treatment. Evidence-Based Complementary and Alternative Medicine: eCAM, 2016, article ID 7382506. https://doi.org/10.1155/2016/7382506
  • Anìovar, S., Barievi, D., Ambri~ Avgutin, J., & Dolenc Koce, J. (2014). Essential Oil of Common Thyme as a Natural Antimicrobial Food Additive. Food Technology & Biotechnology., 52(2), 263–268.
  • Aycock, R. (1966). Stem rot and other diseases caused by Sclerotium rolfsii, or, the status of Rolf’s fungus after 70 years. North Carolina State University.
  • Bakkali, F., Averbeck, S., Averbeck, D., & Idaomar, M. (2008). Biological effects of essential oils—A review. Food and Chemical Toxicology: An International Journal Published for the British Industrial Biological Research Association, 46(2), 446–475. https://doi.org/10.1016/J.FCT.2007.09.106
  • Behnam, S., Farzaneh, M., Ahmadzadeh, M., & Tehrani, A. S. (2006). Composition and antifungal activity of essential oils of Mentha piperita and Lavendula angustifolia on post-harvest phytopathogens. Communications in Agricultural and Applied Biological Sciences, 71(3 Pt B), 1321–1326. PubMed: 17390896
  • Bonanomi, G., Antignani, V., Pane, C., & Scala, F. (2007). Suppression of soilborne fungal diseases with organic amendments. Journal of Plant Pathology, 89(3), 311–324. https://www.jstor.org/stable/41998409
  • Bulluck, L. R., & Ristaino, J. B. (2002). Effect of synthetic and organic soil fertility amendments on southern blight, soil microbial communities, and yield of processing tomatoes. Phytopathology, 92(2), 181–189. https://doi.org/10.1094/PHYTO.2002.92.2.181
  • Chandra Sekhar, J., Prakash Mishra, J., Prasad, R., Reddy, V. P., Kumar, S., Thakur, A., Pal, J., Mishra, J. P., & Reddy, P. (2020). Isolation and in vitro evaluation of biocontrol agents, fungicides and essential oils against stem blight of tomato caused by Sclerotium rolfsii (Curzi). Journal of Pharmacognosy and Phytochemistry, 9(3), 700–705.
  • Chaudhary, S., Kanwar, R. K., Sehgal, A., Cahill, D. M., Barrow, C. J., Sehgal, R., & Kanwar, J. R. (2017). Progress on Azadirachta indica based biopesticides in replacing synthetic toxic pesticides. Frontiers in Plant Science, 8, 610. https://doi.org/10.3389/fpls.2017.00610.
  • Chellemi, D. O. (2002). Nonchemical management of soilborne pests in fresh market vegetable production systems. Phytopathology, 92(12), 1367–1372. https://doi.org/10.1094/PHYTO.2002.92.12.1367
  • Chen, L., Wu, Y. D., Chong, X. Y., Xin, Q. H., Wang, D. X., & Bian, K. (2020). Seed-borne endophytic Bacillus velezensis LHSB1 mediate the biocontrol of peanut stem rot caused by Sclerotium rolfsii. Journal of Applied Microbiology, 128(3), 803–813. https://doi.org/10.1111/jam.14508
  • Clarkson, J. P., Phelps, K., Whipps, J. M., Young, C. S., Smith, J. A., & Watling, M. (2007). Forecasting Sclerotinia disease on lettuce: A predictive model for carpogenic germination of Sclerotinia sclerotiorum sclerotia. Phytopathology, 97(5), 621–631. https://doi.org/10.1094/PHYTO-97-5-0621
  • Cutler, S. J., & Cutler, H. G. (Eds.). (1999). Biologically active natural products: Pharmaceuticals (1st ed). CRC Press. https://doi.org/10.1201/9781420048650
  • Davidson, P. (1989). Methods for testing the efficacy of food antimicrobials. Food Technology, 43, 148–155.
  • Del Río, L. E., Bradley, C. A., Henson, R. A., Endres, G. J., Hanson, B. K., McKay, K., Halvorson, M., Porter, P. M., Le Gare, D. G., & Lamey, H. A. (2007). Impact of Sclerotinia Stem Rot on yield of canola. Plant Disease, 91(2), 191–194. https://doi.org/10.1094/PDIS-91-2-0191
  • Dubey, N. K., Srivastava, B., & Kumar, A. (2008). Current status of plant products as botanical pesticides in storage pest management. Journal of biopesticides, 1(2), 182-186.
  • El-Mohamedy, R. S. R., Abdel-Kader, M. M., Abd-El-Kareem, F., & El-Mougy, N. S. (2013). Essential oils, inorganic acids and potassium salts as control measures against the growth of tomato root rot pathogens in vitro. International Journal of Agricultural Technology, 9(6), 1507–1520.
  • Elteraifi, I. E., & Hassanali, A. (2011). Oil and azadirachtin contents of neem (Azadirachta indica A. Juss) seed kernels collected from trees growing in different habitats in Sudan. International Journal of Biological and Chemical Sciences, 5(3), 1063–1072. https://doi.org/10.4314/ijbcs.v5i3.72211
  • El-Wakil, D. A., El-Deeb, H. M., & Abd-Alla, M. A. (2011). EVALUATION OF SOME ESSENTIAL OILS against the Seed- borne fungus Sclerotium rollfsii Sacc. from Peanut seeds. Journal of Plant Protection and Pathology, 2(10), 905–917. https://doi.org/10.21608/jppp.2011.86622
  • Falasca, A., Caprari, C., De Felice, V., Fortini, P., Saviano, G., Zollo, F., & Iorizzi, M. (2016). GC-MS analysis of the essential oils of Juniperus communis L. berries growing wild in the Molise region: Seasonal variability and in vitro antifungal activity. Biochemical Systematics and Ecology, 69, 166–175. https://doi.org/10.1016/j.bse.2016.07.026
  • Farr, D. F., & Rossman, A. Y. (2006). Fungal databases. http://nt.ars-grin.gov/fungaldatabases/. Agricultural Research Service. Systematic Mycology and Microbiology Laboratory, Anaesthetics Research Society, United States Department of Agriculture.
  • Fawcett, C. H., & Spencer, D. M. (1970). Plant chemotherapy with natural products. Annual Review of Phytopathology, 8(1), 403–418. https://doi.org/10.1146/annurev.py.08.090170.002155
  • Fernando, W. G. D., Nakkeeran, S., & Zhang, Y. (2004). Trivandrum-695 023. Recent Research Development Environmental Biology, 37(2), 81.
  • Filipowicz, N., Kamiński, M., Kurlenda, J., Asztemborska, M., Ochocka, J. R., Ochocka, J. R., & Ochocka, J. R. (2003). Antibacterial and antifungal activity of juniper berry oil and its selected components. Phytotherapy Research, 17(3), 227–231. https://doi.org/10.1002/ptr.1110
  • Flores-Moctezuma, H. E., Montes-Belmont, R., Jiménez-Pérez, A., & Nava-Juárez, R. (2006). Pathogenic diversity of Sclerotium rolfsii isolates from Mexico, and potential control of southern blight through solarization and organic amendments. Crop Protection, 25(3), 195–201. https://doi.org/10.1016/J.CROPRO.2005.04.007
  • Gairhe, P., Bhandari, S., Sitaula, H. P., Karki, B., & Manandhar, H. K. (2021). In vitro evaluation of effect of different essential oils in management of post-harvest fruit rot of banana (Musa paradisiaca) caused by Colletotrichum spp. International Journal of Applied Sciences and Biotechnology, 9(3), 187–192. https://doi.org/10.3126/ijasbt.v9i3.38614
  • Gilbert, B. (1977). Natural product derivatives in tropical insect and parasite control. In G. B. Marini-Bettolo (Ed.), Natural products and protection of plants (pp. 225–239). Elsevier Scientific Publishing Company.
  • Höferl, M., Stoilova, I., Schmidt, E., Wanner, J., Jirovetz, L., Trifonova, D., Krastev, L., & Krastanov, A. (2014). Chemical composition and antioxidant properties of juniper berry (Juniperus communis L.) essential oil. Action of the essential oil on the antioxidant protection of Saccharomyces cerevisiae Model organism. Antioxidants, 3(1), 81–98. https://doi.org/10.3390/antiox3010081
  • International Institute of Tropical Agriculture (IITA). (1997). IITA annual report 1996. https://biblio1.iita.org/handle/20.500.12478/3891?show=full. IITA (p. 68).
  • Jing, L., Lei, Z., Li, L., Xie, R., Xi, W., Guan, Y., Sumner, L. W., & Zhou, Z. (2014). Antifungal activity of citrus essential oils. Journal of Agricultural and Food Chemistry, 62(14), 3011–3033. https://doi.org/10.1021/jf5006148
  • Kim, J., Marshall, M. R., & Wei, C. (1995). Antibacterial activity of some essential oil components against five foodborne pathogens. Journal of Agricultural and Food Chemistry, 43(11), 2839–2845. https://doi.org/10.1021/jf00059a013
  • Kokalis-Burelle, N., Porter, D. M., Rodriguez-Kabana, R., Smith, D. H., & Subrahmanyam, P. (1997). Compendium of peanut diseases, 2. American Phytopathological Society.
  • Kokub, D., Azam, F., Hassan, A., Ansar, M., Asad, M. J., & Khanum, A. (2007). Comparative growth, morphological and molecular characterization of indigenous Sclerotium rolfsii strains isolated from different locations of Pakistan. Pakistan Journal of Botany, 39, 1849–1866.
  • Kotzekidou, P., Giannakidis, P., & Boulamatsis, A. (2008). Antimicrobial activity of some plant extracts and essential oils against foodborne pathogens in vitro and on the fate of inoculated pathogens in chocolate. LWT – Food Science and Technology, 41(1), 119–127. https://doi.org/10.1016/j.lwt.2007.01.016
  • Kowalska, J., Tyburski, J., Krzymińska, J., & Jakubowska, M. (2020). Cinnamon powder: An in vitro and in vivo evaluation of antifungal and plant growth promoting activity. European Journal of Plant Pathology, 156(1), 237–243. https://doi.org/10.1007/s10658-019-01882-0
  • Kumar, R., Dubey, N. K., Tiwari, O. P., Tripathi, Y. B., & Sinha, K. K. (2007). Evaluation of some essential oils as botanical fungitoxicants for the protection of stored food commodities from fungal infestation. Journal of the Science of Food and Agriculture, 87(9), 1737–1742. https://doi.org/10.1002/JSFA.2906
  • Kurita, N., Miyaji, M., Kurane, R., & Takahara, Y. (1981). Antifungal activity of components of essential oils. Agricultural and Biological Chemistry, 45(4), 945–952. https://doi.org/10.1080/00021369.1981.10864635
  • Liamngee, K., Hosea, Z. Y., & Oche, O. D. (2015). Sclerotium rolfsii; Causative organism of southern blight, stem rot, white mold and sclerotia rot disease. Annals of Biological Research, 6(11), 78–89.
  • Lucini, E. I., Zunino, M. P., López, M. L., & Zygadlo, J. A. (2006). Effect of Monoterpenes on Lipid Composition and Sclerotial Development of Sclerotium cepivorum Berk. Journal of Phytopathology, 154(7–8), 441–446. https://doi.org/10.1111/j.1439-0434.2006.01126.x
  • Marwa, C., Fikri-Benbrahim, K., Ou-Yahia, D., & Farah, A. (2017). African peppermint (Mentha piperita) from Morocco: Chemical composition and antimicrobial properties of essential oil. Journal of Advanced Pharmaceutical Technology and Research, 8(3), 86–90. https://doi.org/10.4103/japtr.JAPTR_11_17, PubMed: 28795021, PubMed Central: PMC5527698
  • Mayee, C. D., & Datar, V. V. (1988). Diseases of groundnut in the tropics. Review of Tropical Plant Pathology, 5, 85–118.
  • Moore-Neibel, K., Gerber, C., Patel, J., Friedman, M., & Ravishankar, S. (2012). Antimicrobial activity of lemongrass oil against Salmonella enterica on organic leafy greens. Journal of Applied Microbiology, 112(3), 485–492. https://doi.org/10.1111/j.1365-2672.2011.05222.x
  • Mullen, J. (2001). Southern blight, Southern stem blight, White mold. Plant Health Instructor. https://doi.org/10.1094/PHI-I-2001-0104-01
  • NGLRP. (2015). Annual report – Grain legumes research program. Khajura, Banke. https://opac.narc.gov.np/opac_css/index.php?lvl=publisher_see&id=4333
  • Nurmansyah, H., Idris, H., Suryani, E., Gustia, H., & Ramadhan, A. I. (2022). The effect of various essential oil and solvent additives on the botanical pesticide of Piper aduncum essential oil on formulation antifungal activity. Results in Engineering, 16(June), 100644. https://doi.org/10.1016/j.rineng.2022.100644
  • Ons, L., Bylemans, D., Thevissen, K., & Cammue, B. P. A. (2020). Combining biocontrol agents with chemical fungicides for integrated plant fungal disease control. Microorganisms. MDPI, 12(12), 8. https://doi.org/10.3390/microorganisms8121930
  • Osman Mohamed Ali, E., Shakil, N. A., Rana, V. S., Sarkar, D. J., Majumder, S., Kaushik, P., Singh, B. B., & Kumar, J. (2017). Antifungal activity of nano emulsions of neem and citronella oils against phytopathogenic fungi, Rhizoctonia solani and Sclerotium rolfsii. Industrial Crops and Products, 108, 379–387. https://doi.org/10.1016/j.indcrop.2017.06.061
  • Paparu, P., Acur, A., Kato, F., Acam, C., Nakibuule, J., Nkuboye, A., Musoke, S., & Mukankusi, C. (2020). Morphological and pathogenic characterization of Sclerotium rolfsii, the causal agent of southern blight disease on common bean in Uganda. Plant Disease, 104(8), 2130–2137. https://doi.org/10.1094/PDIS-10-19-2144-RE
  • Plotto, A., Roberts, D. D., & Roberts, R. G. (2003). Evaluation of plant essential oils as natural postharvest disease control of tomato (Lycopersicon esculentum). Acta Horticulturae, 628(628), 737–745. https://doi.org/10.17660/ActaHortic.2003.628.93
  • Porte, A., & Godoy, R. L. (2008). Chemical Compostion of Thymus vulgaris L.(thyme) essential oils from the Rio de jeneiro state (Brazil). Journal of the Serbian Chemical Society, 73(3), 307–310. https://doi.org/10.2298/JSC0803307P
  • PPD. (2018) [Annual report]. Plant protection directorate, Hariharbhawan, Lalitpur, Nepal.
  • Punja, Z. K. (1985). The biology, ecology, and control of Sclerotium rolfsii. Annual Review of Phytopathology, 23(1), 97–127. https://doi.org/10.1146/annurev.py.23.090185.000525
  • Ragab, M. M. M., Ashour, A. M. A. MM, Abdel-Kader, E.-M., El-Mohamady, R., & Abdel-Aziz, A. (2012). In vitro evaluation of some fungicides alternatives against Fusarium oxysporum the Causal of Wilt Disease of Pepper (Capsicum annum L.). International Journal of Agriculture and Forestry, 2(2), 70–77. https://doi.org/10.5923/j.ijaf.20120202.11
  • Raghavendra, S. S., & Balsaraf, K. D. (2014). Antifungal efficacy of Azadirachta indica (neem)-An in vitro study. Brazilian Journal of Oral Sciences, 13(3), 242–245. https://doi.org/10.1590/1677-3225v13n3a15
  • RARS. (2017). Annual Report 2073/74 (2016/17). Regional agricultural research station, NARC, Tarahara. https://www.rarstarahara.gov.np/sites/default/files/2020-02/RS4943_RARS_Tarhara_073_74.pdf
  • Rice, E. L. (1995). Biological control of weeds and plant diseases: Advances in applied allelopathy, 20184. University of Oklahoma press.
  • Roberts, P. D., French-Monar, R. D., & McCarter. (2014). Southern blight. In J. B. Jones, T. A. Zitter MTA MT & S. A. Miller (Eds.), Compendium of tomato diseases (Second, pp. 43–44). APS Publishing.
  • Saharkhiz, M. J., Motamedi, M., Zomorodian, K., Pakshir, K., Miri, R., & Hemyari, K. (2012). Chemical composition, antifungal and antibiofilm activities of the essential oil of Mentha piperita L. Pharmaceutics, 718645. https://doi.org/10.5402/2012/718645.
  • Salome, R., & Zacharia, S. (2021). In vitro evaluation of selected bio-agents, neem oil and amendments against stem rot (Sclerotium rolfsii Sacc.) disease of groundnut (Arachis hypogea L.) Waldron and Kohler, 10(3), 180–187. https://doi.org/10.20546/ijcmas.2021.1003.025
  • Schwan-Estrada, K. R. F., Stangarlin, J. R., & Cruz, M. E. D. S. (2000). Uso de extratos vegetais no controle de fungos fitopatogênicos. FLORESTA. Universidade Federal do Paraná, 30(12). https://doi.org/10.5380/rf.v30i12.2361
  • Sharma, N., & Tripathi, A. (2008). Effects of Citrus sinensis (L.) Osbeck epicarp essential oil on growth and morphogenesis of Aspergillus niger (L.) Van Tieghem. Microbiological Research, 163(3), 337–344. https://doi.org/10.1016/j.micres.2006.06.009
  • Shervin, H., Hasanzadeh, N., Aghajani, M. A., Cirviller, G., & Pordeli, H. R. (2019). The effect of plant essential oils on citrus green mold. Applied Entomology and Phytopathology, 86(2), 1–11. https://jaenph.areeo.ac.ir/article_118997_en.html
  • Sivan, A. (1987). Biological control of Fusarium crown rot of tomato by Trichoderma harzianum under field conditions. Plant Disease, 71(7), 587–592. https://doi.org/10.1094/PD-71-0587
  • Souza, M. A. A., Lemos, M. J., Brito, D. M. C., Fernandes, M. S., Castro, R. N., & Souza, S. R. (2014). Production and quality of menthol mint essential oil and antifungal and antigerminative activity. American Journal of Plant Sciences, 05(21), 3311–3318. https://doi.org/10.4236/ajps.2014.521346
  • Sten, J., Yampi, N., Mahapatra, S., Ray, S. K., & Das, S. (2017). Effect of different NPK combinations against Sclerotium rot of groundnut under different fertility gradient soil. Journal of Micropathological Research, 54(4), 495–501.
  • Sukatta, U., Haruthaithanasan, V., Chantarapanont, W., Dilokkunanant, U., & Suppakul, P. (2008). Antifungal activity of cinnamon oil and their synergistic against postharvest decay fungi of grape in vitro. Kasetsart Journal of Natural Science, 42(5), 169–174.
  • Suleiman, M. (2011). Antifungal properties of leaf extract of neem and tobacco on three fungal pathogens of tomato (Lycopersicon esculentum Mill.). Advances in Applied Science Research, 2, 217–220.
  • Vincent, J. M. (1947). Distortion of fungal hyphae in the presence of certain inhibitors. Nature, 159(4051), 850. https://doi.org/10.1038/159850B0
  • Wilson, C. L., Solar, J. M., El Ghaouth, A., & Wisniewski, M. E. (1997). Rapid evaluation of plant extracts and essential oils for antifungal activity against Botrytis cinerea. Plant Disease, 81(2), 204–210. https://doi.org/10.1094/PDIS.1997.81.2.204
  • Woodward, J. E., Brenneman, T. B., Kemerait, R. C., Smith, N. B., Culbreath, A. K., & Stevenson, K. L. (2008). Use of Resistant Cultivars and Reduced fungicide Programs to Manage Peanut Diseases in Irrigated and non irrigated Fields. Plant Disease, 92(6), 896–902. https://doi.org/10.1094/PDIS-92-6-0896
  • Wu, B. M., Subbarao, K. V., & Liu, Y. B. (2008). Comparative survival of sclerotia of Sclerotinia minor and S. sclerotiorum. Phytopathology, 98(6), 659–665. https://doi.org/10.1094/PHYTO-98-6-0659
  • Zheljazkov, V. D., Cantrell, C. L., Semerdjieva, I., Radoukova, T., Stoyanova, A., Maneva, V., Kačániová, M., Astatkie, T., Borisova, D., Dincheva, I., & Salamon, I. (2021). Essential oil composition and bioactivity of two juniper species from Bulgaria and Slovakia. Molecules, 26(12), 3659. https://doi.org/10.3390/molecules26123659
Yıl 2024, Cilt: 8 Sayı: 2, 273 - 284, 27.06.2024
https://doi.org/10.31015/jaefs.2024.2.4

Öz

Kaynakça

  • Abdel-Kader, M., El-Mougy, N., & Lashin, S. (2011). Essential oils and Trichoderma harzianum as an integrated control measure against faba bean root rot pathogens. Journal of Plant Protection Research, 51(3), 306–313. https://doi.org/10.2478/v10045-011-0050-8
  • Alizadeh Behbahani, B. A., Falah, F., Lavi Arab, F., Vasiee, M., & Tabatabaee Yazdi, F. (2020). Chemical Composition and Antioxidant, antimicrobial, and antiproliferative Activities of Cinnamomum zeylanicum Bark Essential Oil. Evidence-Based Complementary and Alternative Medicine: eCAM, 2020, 5190603. https://doi.org/10.1155/2020/5190603
  • Alzohairy, M. A. (2016). Therapeutics role of Azadirachta indica (neem) and their active constituents in diseases prevention and treatment. Evidence-Based Complementary and Alternative Medicine: eCAM, 2016, article ID 7382506. https://doi.org/10.1155/2016/7382506
  • Anìovar, S., Barievi, D., Ambri~ Avgutin, J., & Dolenc Koce, J. (2014). Essential Oil of Common Thyme as a Natural Antimicrobial Food Additive. Food Technology & Biotechnology., 52(2), 263–268.
  • Aycock, R. (1966). Stem rot and other diseases caused by Sclerotium rolfsii, or, the status of Rolf’s fungus after 70 years. North Carolina State University.
  • Bakkali, F., Averbeck, S., Averbeck, D., & Idaomar, M. (2008). Biological effects of essential oils—A review. Food and Chemical Toxicology: An International Journal Published for the British Industrial Biological Research Association, 46(2), 446–475. https://doi.org/10.1016/J.FCT.2007.09.106
  • Behnam, S., Farzaneh, M., Ahmadzadeh, M., & Tehrani, A. S. (2006). Composition and antifungal activity of essential oils of Mentha piperita and Lavendula angustifolia on post-harvest phytopathogens. Communications in Agricultural and Applied Biological Sciences, 71(3 Pt B), 1321–1326. PubMed: 17390896
  • Bonanomi, G., Antignani, V., Pane, C., & Scala, F. (2007). Suppression of soilborne fungal diseases with organic amendments. Journal of Plant Pathology, 89(3), 311–324. https://www.jstor.org/stable/41998409
  • Bulluck, L. R., & Ristaino, J. B. (2002). Effect of synthetic and organic soil fertility amendments on southern blight, soil microbial communities, and yield of processing tomatoes. Phytopathology, 92(2), 181–189. https://doi.org/10.1094/PHYTO.2002.92.2.181
  • Chandra Sekhar, J., Prakash Mishra, J., Prasad, R., Reddy, V. P., Kumar, S., Thakur, A., Pal, J., Mishra, J. P., & Reddy, P. (2020). Isolation and in vitro evaluation of biocontrol agents, fungicides and essential oils against stem blight of tomato caused by Sclerotium rolfsii (Curzi). Journal of Pharmacognosy and Phytochemistry, 9(3), 700–705.
  • Chaudhary, S., Kanwar, R. K., Sehgal, A., Cahill, D. M., Barrow, C. J., Sehgal, R., & Kanwar, J. R. (2017). Progress on Azadirachta indica based biopesticides in replacing synthetic toxic pesticides. Frontiers in Plant Science, 8, 610. https://doi.org/10.3389/fpls.2017.00610.
  • Chellemi, D. O. (2002). Nonchemical management of soilborne pests in fresh market vegetable production systems. Phytopathology, 92(12), 1367–1372. https://doi.org/10.1094/PHYTO.2002.92.12.1367
  • Chen, L., Wu, Y. D., Chong, X. Y., Xin, Q. H., Wang, D. X., & Bian, K. (2020). Seed-borne endophytic Bacillus velezensis LHSB1 mediate the biocontrol of peanut stem rot caused by Sclerotium rolfsii. Journal of Applied Microbiology, 128(3), 803–813. https://doi.org/10.1111/jam.14508
  • Clarkson, J. P., Phelps, K., Whipps, J. M., Young, C. S., Smith, J. A., & Watling, M. (2007). Forecasting Sclerotinia disease on lettuce: A predictive model for carpogenic germination of Sclerotinia sclerotiorum sclerotia. Phytopathology, 97(5), 621–631. https://doi.org/10.1094/PHYTO-97-5-0621
  • Cutler, S. J., & Cutler, H. G. (Eds.). (1999). Biologically active natural products: Pharmaceuticals (1st ed). CRC Press. https://doi.org/10.1201/9781420048650
  • Davidson, P. (1989). Methods for testing the efficacy of food antimicrobials. Food Technology, 43, 148–155.
  • Del Río, L. E., Bradley, C. A., Henson, R. A., Endres, G. J., Hanson, B. K., McKay, K., Halvorson, M., Porter, P. M., Le Gare, D. G., & Lamey, H. A. (2007). Impact of Sclerotinia Stem Rot on yield of canola. Plant Disease, 91(2), 191–194. https://doi.org/10.1094/PDIS-91-2-0191
  • Dubey, N. K., Srivastava, B., & Kumar, A. (2008). Current status of plant products as botanical pesticides in storage pest management. Journal of biopesticides, 1(2), 182-186.
  • El-Mohamedy, R. S. R., Abdel-Kader, M. M., Abd-El-Kareem, F., & El-Mougy, N. S. (2013). Essential oils, inorganic acids and potassium salts as control measures against the growth of tomato root rot pathogens in vitro. International Journal of Agricultural Technology, 9(6), 1507–1520.
  • Elteraifi, I. E., & Hassanali, A. (2011). Oil and azadirachtin contents of neem (Azadirachta indica A. Juss) seed kernels collected from trees growing in different habitats in Sudan. International Journal of Biological and Chemical Sciences, 5(3), 1063–1072. https://doi.org/10.4314/ijbcs.v5i3.72211
  • El-Wakil, D. A., El-Deeb, H. M., & Abd-Alla, M. A. (2011). EVALUATION OF SOME ESSENTIAL OILS against the Seed- borne fungus Sclerotium rollfsii Sacc. from Peanut seeds. Journal of Plant Protection and Pathology, 2(10), 905–917. https://doi.org/10.21608/jppp.2011.86622
  • Falasca, A., Caprari, C., De Felice, V., Fortini, P., Saviano, G., Zollo, F., & Iorizzi, M. (2016). GC-MS analysis of the essential oils of Juniperus communis L. berries growing wild in the Molise region: Seasonal variability and in vitro antifungal activity. Biochemical Systematics and Ecology, 69, 166–175. https://doi.org/10.1016/j.bse.2016.07.026
  • Farr, D. F., & Rossman, A. Y. (2006). Fungal databases. http://nt.ars-grin.gov/fungaldatabases/. Agricultural Research Service. Systematic Mycology and Microbiology Laboratory, Anaesthetics Research Society, United States Department of Agriculture.
  • Fawcett, C. H., & Spencer, D. M. (1970). Plant chemotherapy with natural products. Annual Review of Phytopathology, 8(1), 403–418. https://doi.org/10.1146/annurev.py.08.090170.002155
  • Fernando, W. G. D., Nakkeeran, S., & Zhang, Y. (2004). Trivandrum-695 023. Recent Research Development Environmental Biology, 37(2), 81.
  • Filipowicz, N., Kamiński, M., Kurlenda, J., Asztemborska, M., Ochocka, J. R., Ochocka, J. R., & Ochocka, J. R. (2003). Antibacterial and antifungal activity of juniper berry oil and its selected components. Phytotherapy Research, 17(3), 227–231. https://doi.org/10.1002/ptr.1110
  • Flores-Moctezuma, H. E., Montes-Belmont, R., Jiménez-Pérez, A., & Nava-Juárez, R. (2006). Pathogenic diversity of Sclerotium rolfsii isolates from Mexico, and potential control of southern blight through solarization and organic amendments. Crop Protection, 25(3), 195–201. https://doi.org/10.1016/J.CROPRO.2005.04.007
  • Gairhe, P., Bhandari, S., Sitaula, H. P., Karki, B., & Manandhar, H. K. (2021). In vitro evaluation of effect of different essential oils in management of post-harvest fruit rot of banana (Musa paradisiaca) caused by Colletotrichum spp. International Journal of Applied Sciences and Biotechnology, 9(3), 187–192. https://doi.org/10.3126/ijasbt.v9i3.38614
  • Gilbert, B. (1977). Natural product derivatives in tropical insect and parasite control. In G. B. Marini-Bettolo (Ed.), Natural products and protection of plants (pp. 225–239). Elsevier Scientific Publishing Company.
  • Höferl, M., Stoilova, I., Schmidt, E., Wanner, J., Jirovetz, L., Trifonova, D., Krastev, L., & Krastanov, A. (2014). Chemical composition and antioxidant properties of juniper berry (Juniperus communis L.) essential oil. Action of the essential oil on the antioxidant protection of Saccharomyces cerevisiae Model organism. Antioxidants, 3(1), 81–98. https://doi.org/10.3390/antiox3010081
  • International Institute of Tropical Agriculture (IITA). (1997). IITA annual report 1996. https://biblio1.iita.org/handle/20.500.12478/3891?show=full. IITA (p. 68).
  • Jing, L., Lei, Z., Li, L., Xie, R., Xi, W., Guan, Y., Sumner, L. W., & Zhou, Z. (2014). Antifungal activity of citrus essential oils. Journal of Agricultural and Food Chemistry, 62(14), 3011–3033. https://doi.org/10.1021/jf5006148
  • Kim, J., Marshall, M. R., & Wei, C. (1995). Antibacterial activity of some essential oil components against five foodborne pathogens. Journal of Agricultural and Food Chemistry, 43(11), 2839–2845. https://doi.org/10.1021/jf00059a013
  • Kokalis-Burelle, N., Porter, D. M., Rodriguez-Kabana, R., Smith, D. H., & Subrahmanyam, P. (1997). Compendium of peanut diseases, 2. American Phytopathological Society.
  • Kokub, D., Azam, F., Hassan, A., Ansar, M., Asad, M. J., & Khanum, A. (2007). Comparative growth, morphological and molecular characterization of indigenous Sclerotium rolfsii strains isolated from different locations of Pakistan. Pakistan Journal of Botany, 39, 1849–1866.
  • Kotzekidou, P., Giannakidis, P., & Boulamatsis, A. (2008). Antimicrobial activity of some plant extracts and essential oils against foodborne pathogens in vitro and on the fate of inoculated pathogens in chocolate. LWT – Food Science and Technology, 41(1), 119–127. https://doi.org/10.1016/j.lwt.2007.01.016
  • Kowalska, J., Tyburski, J., Krzymińska, J., & Jakubowska, M. (2020). Cinnamon powder: An in vitro and in vivo evaluation of antifungal and plant growth promoting activity. European Journal of Plant Pathology, 156(1), 237–243. https://doi.org/10.1007/s10658-019-01882-0
  • Kumar, R., Dubey, N. K., Tiwari, O. P., Tripathi, Y. B., & Sinha, K. K. (2007). Evaluation of some essential oils as botanical fungitoxicants for the protection of stored food commodities from fungal infestation. Journal of the Science of Food and Agriculture, 87(9), 1737–1742. https://doi.org/10.1002/JSFA.2906
  • Kurita, N., Miyaji, M., Kurane, R., & Takahara, Y. (1981). Antifungal activity of components of essential oils. Agricultural and Biological Chemistry, 45(4), 945–952. https://doi.org/10.1080/00021369.1981.10864635
  • Liamngee, K., Hosea, Z. Y., & Oche, O. D. (2015). Sclerotium rolfsii; Causative organism of southern blight, stem rot, white mold and sclerotia rot disease. Annals of Biological Research, 6(11), 78–89.
  • Lucini, E. I., Zunino, M. P., López, M. L., & Zygadlo, J. A. (2006). Effect of Monoterpenes on Lipid Composition and Sclerotial Development of Sclerotium cepivorum Berk. Journal of Phytopathology, 154(7–8), 441–446. https://doi.org/10.1111/j.1439-0434.2006.01126.x
  • Marwa, C., Fikri-Benbrahim, K., Ou-Yahia, D., & Farah, A. (2017). African peppermint (Mentha piperita) from Morocco: Chemical composition and antimicrobial properties of essential oil. Journal of Advanced Pharmaceutical Technology and Research, 8(3), 86–90. https://doi.org/10.4103/japtr.JAPTR_11_17, PubMed: 28795021, PubMed Central: PMC5527698
  • Mayee, C. D., & Datar, V. V. (1988). Diseases of groundnut in the tropics. Review of Tropical Plant Pathology, 5, 85–118.
  • Moore-Neibel, K., Gerber, C., Patel, J., Friedman, M., & Ravishankar, S. (2012). Antimicrobial activity of lemongrass oil against Salmonella enterica on organic leafy greens. Journal of Applied Microbiology, 112(3), 485–492. https://doi.org/10.1111/j.1365-2672.2011.05222.x
  • Mullen, J. (2001). Southern blight, Southern stem blight, White mold. Plant Health Instructor. https://doi.org/10.1094/PHI-I-2001-0104-01
  • NGLRP. (2015). Annual report – Grain legumes research program. Khajura, Banke. https://opac.narc.gov.np/opac_css/index.php?lvl=publisher_see&id=4333
  • Nurmansyah, H., Idris, H., Suryani, E., Gustia, H., & Ramadhan, A. I. (2022). The effect of various essential oil and solvent additives on the botanical pesticide of Piper aduncum essential oil on formulation antifungal activity. Results in Engineering, 16(June), 100644. https://doi.org/10.1016/j.rineng.2022.100644
  • Ons, L., Bylemans, D., Thevissen, K., & Cammue, B. P. A. (2020). Combining biocontrol agents with chemical fungicides for integrated plant fungal disease control. Microorganisms. MDPI, 12(12), 8. https://doi.org/10.3390/microorganisms8121930
  • Osman Mohamed Ali, E., Shakil, N. A., Rana, V. S., Sarkar, D. J., Majumder, S., Kaushik, P., Singh, B. B., & Kumar, J. (2017). Antifungal activity of nano emulsions of neem and citronella oils against phytopathogenic fungi, Rhizoctonia solani and Sclerotium rolfsii. Industrial Crops and Products, 108, 379–387. https://doi.org/10.1016/j.indcrop.2017.06.061
  • Paparu, P., Acur, A., Kato, F., Acam, C., Nakibuule, J., Nkuboye, A., Musoke, S., & Mukankusi, C. (2020). Morphological and pathogenic characterization of Sclerotium rolfsii, the causal agent of southern blight disease on common bean in Uganda. Plant Disease, 104(8), 2130–2137. https://doi.org/10.1094/PDIS-10-19-2144-RE
  • Plotto, A., Roberts, D. D., & Roberts, R. G. (2003). Evaluation of plant essential oils as natural postharvest disease control of tomato (Lycopersicon esculentum). Acta Horticulturae, 628(628), 737–745. https://doi.org/10.17660/ActaHortic.2003.628.93
  • Porte, A., & Godoy, R. L. (2008). Chemical Compostion of Thymus vulgaris L.(thyme) essential oils from the Rio de jeneiro state (Brazil). Journal of the Serbian Chemical Society, 73(3), 307–310. https://doi.org/10.2298/JSC0803307P
  • PPD. (2018) [Annual report]. Plant protection directorate, Hariharbhawan, Lalitpur, Nepal.
  • Punja, Z. K. (1985). The biology, ecology, and control of Sclerotium rolfsii. Annual Review of Phytopathology, 23(1), 97–127. https://doi.org/10.1146/annurev.py.23.090185.000525
  • Ragab, M. M. M., Ashour, A. M. A. MM, Abdel-Kader, E.-M., El-Mohamady, R., & Abdel-Aziz, A. (2012). In vitro evaluation of some fungicides alternatives against Fusarium oxysporum the Causal of Wilt Disease of Pepper (Capsicum annum L.). International Journal of Agriculture and Forestry, 2(2), 70–77. https://doi.org/10.5923/j.ijaf.20120202.11
  • Raghavendra, S. S., & Balsaraf, K. D. (2014). Antifungal efficacy of Azadirachta indica (neem)-An in vitro study. Brazilian Journal of Oral Sciences, 13(3), 242–245. https://doi.org/10.1590/1677-3225v13n3a15
  • RARS. (2017). Annual Report 2073/74 (2016/17). Regional agricultural research station, NARC, Tarahara. https://www.rarstarahara.gov.np/sites/default/files/2020-02/RS4943_RARS_Tarhara_073_74.pdf
  • Rice, E. L. (1995). Biological control of weeds and plant diseases: Advances in applied allelopathy, 20184. University of Oklahoma press.
  • Roberts, P. D., French-Monar, R. D., & McCarter. (2014). Southern blight. In J. B. Jones, T. A. Zitter MTA MT & S. A. Miller (Eds.), Compendium of tomato diseases (Second, pp. 43–44). APS Publishing.
  • Saharkhiz, M. J., Motamedi, M., Zomorodian, K., Pakshir, K., Miri, R., & Hemyari, K. (2012). Chemical composition, antifungal and antibiofilm activities of the essential oil of Mentha piperita L. Pharmaceutics, 718645. https://doi.org/10.5402/2012/718645.
  • Salome, R., & Zacharia, S. (2021). In vitro evaluation of selected bio-agents, neem oil and amendments against stem rot (Sclerotium rolfsii Sacc.) disease of groundnut (Arachis hypogea L.) Waldron and Kohler, 10(3), 180–187. https://doi.org/10.20546/ijcmas.2021.1003.025
  • Schwan-Estrada, K. R. F., Stangarlin, J. R., & Cruz, M. E. D. S. (2000). Uso de extratos vegetais no controle de fungos fitopatogênicos. FLORESTA. Universidade Federal do Paraná, 30(12). https://doi.org/10.5380/rf.v30i12.2361
  • Sharma, N., & Tripathi, A. (2008). Effects of Citrus sinensis (L.) Osbeck epicarp essential oil on growth and morphogenesis of Aspergillus niger (L.) Van Tieghem. Microbiological Research, 163(3), 337–344. https://doi.org/10.1016/j.micres.2006.06.009
  • Shervin, H., Hasanzadeh, N., Aghajani, M. A., Cirviller, G., & Pordeli, H. R. (2019). The effect of plant essential oils on citrus green mold. Applied Entomology and Phytopathology, 86(2), 1–11. https://jaenph.areeo.ac.ir/article_118997_en.html
  • Sivan, A. (1987). Biological control of Fusarium crown rot of tomato by Trichoderma harzianum under field conditions. Plant Disease, 71(7), 587–592. https://doi.org/10.1094/PD-71-0587
  • Souza, M. A. A., Lemos, M. J., Brito, D. M. C., Fernandes, M. S., Castro, R. N., & Souza, S. R. (2014). Production and quality of menthol mint essential oil and antifungal and antigerminative activity. American Journal of Plant Sciences, 05(21), 3311–3318. https://doi.org/10.4236/ajps.2014.521346
  • Sten, J., Yampi, N., Mahapatra, S., Ray, S. K., & Das, S. (2017). Effect of different NPK combinations against Sclerotium rot of groundnut under different fertility gradient soil. Journal of Micropathological Research, 54(4), 495–501.
  • Sukatta, U., Haruthaithanasan, V., Chantarapanont, W., Dilokkunanant, U., & Suppakul, P. (2008). Antifungal activity of cinnamon oil and their synergistic against postharvest decay fungi of grape in vitro. Kasetsart Journal of Natural Science, 42(5), 169–174.
  • Suleiman, M. (2011). Antifungal properties of leaf extract of neem and tobacco on three fungal pathogens of tomato (Lycopersicon esculentum Mill.). Advances in Applied Science Research, 2, 217–220.
  • Vincent, J. M. (1947). Distortion of fungal hyphae in the presence of certain inhibitors. Nature, 159(4051), 850. https://doi.org/10.1038/159850B0
  • Wilson, C. L., Solar, J. M., El Ghaouth, A., & Wisniewski, M. E. (1997). Rapid evaluation of plant extracts and essential oils for antifungal activity against Botrytis cinerea. Plant Disease, 81(2), 204–210. https://doi.org/10.1094/PDIS.1997.81.2.204
  • Woodward, J. E., Brenneman, T. B., Kemerait, R. C., Smith, N. B., Culbreath, A. K., & Stevenson, K. L. (2008). Use of Resistant Cultivars and Reduced fungicide Programs to Manage Peanut Diseases in Irrigated and non irrigated Fields. Plant Disease, 92(6), 896–902. https://doi.org/10.1094/PDIS-92-6-0896
  • Wu, B. M., Subbarao, K. V., & Liu, Y. B. (2008). Comparative survival of sclerotia of Sclerotinia minor and S. sclerotiorum. Phytopathology, 98(6), 659–665. https://doi.org/10.1094/PHYTO-98-6-0659
  • Zheljazkov, V. D., Cantrell, C. L., Semerdjieva, I., Radoukova, T., Stoyanova, A., Maneva, V., Kačániová, M., Astatkie, T., Borisova, D., Dincheva, I., & Salamon, I. (2021). Essential oil composition and bioactivity of two juniper species from Bulgaria and Slovakia. Molecules, 26(12), 3659. https://doi.org/10.3390/molecules26123659
Toplam 74 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Fitopatoloji, Bitki Koruma (Diğer)
Bölüm Makaleler
Yazarlar

Krishna Raj Pandey 0000-0001-6862-3421

Awis Pant Bu kişi benim 0009-0008-0825-6816

Niraj Gajurel Bu kişi benim 0009-0001-4846-1602

Erken Görünüm Tarihi 1 Haziran 2024
Yayımlanma Tarihi 27 Haziran 2024
Gönderilme Tarihi 1 Ocak 2024
Kabul Tarihi 28 Nisan 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 8 Sayı: 2

Kaynak Göster

APA Pandey, K. R., Pant, A., & Gajurel, N. (2024). In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.). International Journal of Agriculture Environment and Food Sciences, 8(2), 273-284. https://doi.org/10.31015/jaefs.2024.2.4
AMA Pandey KR, Pant A, Gajurel N. In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.). int. j. agric. environ. food sci. Haziran 2024;8(2):273-284. doi:10.31015/jaefs.2024.2.4
Chicago Pandey, Krishna Raj, Awis Pant, ve Niraj Gajurel. “In-Vitro Efficacy of Different Essential Oils Against Sclerotium Rolfsii (Sacc.)”. International Journal of Agriculture Environment and Food Sciences 8, sy. 2 (Haziran 2024): 273-84. https://doi.org/10.31015/jaefs.2024.2.4.
EndNote Pandey KR, Pant A, Gajurel N (01 Haziran 2024) In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.). International Journal of Agriculture Environment and Food Sciences 8 2 273–284.
IEEE K. R. Pandey, A. Pant, ve N. Gajurel, “In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.)”, int. j. agric. environ. food sci., c. 8, sy. 2, ss. 273–284, 2024, doi: 10.31015/jaefs.2024.2.4.
ISNAD Pandey, Krishna Raj vd. “In-Vitro Efficacy of Different Essential Oils Against Sclerotium Rolfsii (Sacc.)”. International Journal of Agriculture Environment and Food Sciences 8/2 (Haziran 2024), 273-284. https://doi.org/10.31015/jaefs.2024.2.4.
JAMA Pandey KR, Pant A, Gajurel N. In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.). int. j. agric. environ. food sci. 2024;8:273–284.
MLA Pandey, Krishna Raj vd. “In-Vitro Efficacy of Different Essential Oils Against Sclerotium Rolfsii (Sacc.)”. International Journal of Agriculture Environment and Food Sciences, c. 8, sy. 2, 2024, ss. 273-84, doi:10.31015/jaefs.2024.2.4.
Vancouver Pandey KR, Pant A, Gajurel N. In-vitro efficacy of different essential oils against Sclerotium rolfsii (Sacc.). int. j. agric. environ. food sci. 2024;8(2):273-84.

by-nc.png

International Journal of Agriculture, Environment and Food Sciences dergisinin içeriği, Creative Commons Alıntı-GayriTicari (CC BY-NC) 4.0 Uluslararası Lisansı ile yayınlanmaktadır. Söz konusu telif, üçüncü tarafların içeriği uygun şekilde atıf vermek koşuluyla, ticari olmayan amaçlarla paylaşımına ve uyarlamasına izin vermektedir. Yazarlar, International Journal of Agriculture, Environment and Food Sciences dergisinde yayınlanmış çalışmalarının telif hakkını elinde tutar. 

Web: dergipark.org.tr/jaefs  E-mail: editor@jaefs.com WhatsApp: +90 850 309 59 27