جلد 13، شماره 1 - ( (پاییز و زمستان) 1402 )                   جلد 13 شماره 1 صفحات 124-113 | برگشت به فهرست نسخه ها


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Siahpoush S, Dehghani A. (2024). The effect of environmental stresses on the epidemic of charcoal rot disease in legumes. Plant Pathol. Sci.. 13(1), 113-124. doi:10.61186/pps.13.1.113
URL: http://yujs.yu.ac.ir/pps/article-1-435-fa.html
سیاهپوش سارا، دهقانی علی. اثر تنشهای محیطی در همه گیری بیماری پوسیدگی ذغالی حبوبات دانش بیماری شناسی گیاهی 1402; 13 (1) :124-113 10.61186/pps.13.1.113

URL: http://yujs.yu.ac.ir/pps/article-1-435-fa.html


بخش تحقیقات گیاه‌پزشکی، مرکز تحقیقات و آموزش کشاورزی و منابع طبیعی لرستان، سازمان تحقیقات، آموزش و ترویج کشاورزی، خرم‌آباد، ایران ، a.dehghani@areeo.ac.ir
چکیده:   (356 مشاهده)
سیاهپوش، س.، دهقانی، ع. (1402). اثر تنش­های محیطی در همه ­گیری بیماری­ پوسیدگی ذغالی حبوبات. دانش بیماری­شناسی گیاهی، 13(1)، 124-113.
پوسیدگی ذغالی ناشی از قارچ خاکزیphaseolina  Macrophomina از مهم­ترین بیماری‌های قارچی حبوبات است که در شرایطی که گیاهان تحت تنش­ هستد شیوع می‌یابد. تغییرات اقلیمی طی چند دهه اخیر شرایط محیطی را برای کشت و تولید بهینه حبوبات دشوار ساخته­ است. تنش خشکی مهم­ترین تنش غیرزنده در تولید حبوبات است. پیش ­آمودگی گیاهان برای آلوده شدن به  بیمارگرهای خشکی­ پسند از زمینه­ های بروز و گسترش بیماری­هایی مانند پوسیدگی ذغالی است. با توجه به این که کشت و تولید حبوبات در اراضی قلیایی و آهکی در ایران گسترش زیادی دارد و گیاهان در معرض تنش­های مختلف محیطی به ویژه خشکی در طی فصل زراعی هستند، اهمیت این بیماری، میزان خسارت آن، دامنه میزبانی وزیست­ شناسی بیمارگر، شرایط مناسب همه ­گیری آن و خلاصه یافته‌های پژوهشی روی بیماری در ایران در این مقاله شرح داده شده­ است.
واژه‌های کلیدی: خشکی، لوبیا، سویا، Macrophomina phaseolina
متن کامل [PDF 829 kb]   (294 دریافت)    
نوع مطالعه: مروری | موضوع مقاله: تنشهای محیطی
دریافت: 1402/12/22 | پذیرش: 1403/7/4

فهرست منابع
1. Ahmadi, K., Gholizadeh, H., Ebadzadeh, H., Hoseinpoor, R., Abdeshah, H., Kazemian, A., & Rafiee, M. (2016). Agriculture statistics. Ministry of Jihad e Agriculture of Iran. Tehran, Iran, 1, 125 p.
2. Ali, A., Hall, A.M., & Gladders, P. (1998). The biology and pathology of Rhizoctonia solani and Rhizoctonia oryzae isolated from crown rot of carrots in UK. Brighton Crop protection conference: pests & diseases- 1998: 3. In: Proceedings of an international conference, Brighton UK, pp875-880.
3. Arora, M., & Pareek, S. (2013). Effect of soil moisture and temperature on the severity of Macrophomina charcoal rot of sorghum. Indian Journal of Science Research, 4, 155-158.
4. Aviles, M.S., Castillo, J., Bascon, T., Zea-Bonilla, P.M., Martin-Sanchez, R.M., & Jimenez, P. (2008). First report of Macrophomina phaseolina causing crown and root rot of strawberry in Spain. Plant Pathology, 57, 382. [DOI:10.1111/j.1365-3059.2007.01717.x]
5. Cohen, R., Elkabetz, M., Paris, H.S., Gur, A., Dai, N., Rabinovitz, O., et al. (2022). Occurrence of Macrophomina phaseolina in Israel: Challenges for disease management and crop germplasm enhancement. Plant Disease, 106, 15-25. [DOI:10.1094/PDIS-07-21-1390-FE] [PMID]
6. Cohen, S.P., & Leach, J.E. (2020). High temperature-induced plant disease susceptibility: more than the sum of its parts. Current Opinion in Plant Biology, 56, 235-241. [DOI:10.1016/j.pbi.2020.02.008] [PMID]
7. Dehghani, A. (2012a). Evaluation of irrigation methods on fusarium root rot of bean in eastern Lorestan, Abstract book of 1st Management of Water in Field Congress, Karaj, Iran, p. 360.
8. Dehghani, A. (2012b). Importance of predisposition in prevalence of plant disease (a case study in the province Khuzistan), Abstract book of 20th Iranian Plant Protection Congress, Shiraz, Iran, p.248.
9. Dehghani, A. (2018). Drought stress as an important agent of predisposition of plants to incidence and prevalence of new diseases and prevention methods, Abstract Book of 3rd National Conference on Drought Effects and Management Tools, Lorestan Agriculture and Natural resources Research Center, Khorramabad, Iran.
10. Dehghani, A., Panjekeh, N., & Darvishnia, M. (2016). Distribution and abundance of root and crown rot fungal pathogens on bean in Lorestan. Abstract Book of 6th National Conference on Iranian Beans, Lorestan Agriculture and Natural resources Research Center, Khorramabad, Iran.
11. Dehghani, A., Panjekeh, N., Darvishnia, M., Salari, M., & Asadi Rahmani, H. (2018). Importance and climatic distribution of pathogenic fungi associated with bean root and crown in Lorestan Province, Applied Entomology and Phytopathology, 86 (2), 219-234. (In Persian)
12. Dehghani, A., & Rafiee, M.R. (2009). Study the effects of irrigation frequency on sesame phyllody and wilt in Behbahan. Abstract Book of 1st National Congress on Environmental Stresses in Agricultural Science, Birjand, Iran.
13. Dehghani, A. & S. Siahpoush, (2023a). Climate change and impacts on plant diseases, Abstract Book of 2nd National Conference on Agricultural Sciences (Abiotic Stresses), Urmia,Iran.
14. Dehghani, A. & Siahpoush, S. (2023b). Relation between the stress-related fungi, Macrophomina phaseolina frequency and incidence of charcoal rot in common bean fields (Case study: Lorestan Province), Abstract Book of 2nd National Conference on Agricultural Sciences (Abiotic Stresses), Urmia, Iran.
15. Dong, J., Gruda, N., Li, X., Tang, Y., Zhang, P., & Duan, D. (2020). Sustainable vegetable production under changing climate: The impact of elevated CO2 on yield of vegetables and the interactions with environments-A review. Journal of Cleaner Production, 253, 119920. [DOI:10.1016/j.jclepro.2019.119920]
16. Freeman, S., & Gnayem, N. (2005). Use of plasticulture for strawberry plant production. Small Fruits Review, 4, 21-32. [DOI:10.1300/J301v04n01_04]
17. Gupta, G.K., Sharma, S.K., & Ramteke, R. (2012). Biology, epidemiology and management of the pathogenic fungus Macrophomina phaseolina (Tassi) Goid with special reference to charcoal rot of soybean (Glycine max (L.) Merrill). Journal of Phytopathology, 160, 167-180. [DOI:10.1111/j.1439-0434.2012.01884.x]
18. Indira, N., & Gayatri, S. (2003). Management of blackgram root rot caused by Macrophomina phaseolina by antagonistic microorganisms. Madras Agricultural Journal, 90, 490-494.
19. Kaur, S., Chauhan, V.B., Singh, J.P., & Singh, R.B. (2012). Status of Macrophomina stem canker disease of pigeonpea in eastern Uttar Pradesh.Journal of Food Legumes,25,76-78.
20. Keote, G.A., & Reddy, M.S.P. (2019). Bio-inoculants used against chickpea dry root rot incited by Rhizoctonia bataticola (Taub.) Butler. Journal of Mycopathological Research, 57, 107-111.
21. Kim, J.H. et al. (2022). Increasing the resilience of plant immunity to a warming climate. Nature, 607, 339-344 [DOI:10.1038/s41586-022-04902-y] [PMID] []
22. Lalita, L., & Ahir, R.R. (2020). In-vivo evaluation of different fungicides, plant extracts, biocontrol agents and organics amendments for management of dry root rot of chickpea caused by Macrophomina phaseolina. Legume Research, 43, 140-145.
23. Lodha, S., & Mawar, R. (2020). Population dynamics of Macrophomina phaseolina in relation to disease management: A review. Journal of Phytopathology, 168, 1-17. [DOI:10.1111/jph.12854]
24. Maheswari, U., & Ramakrishnan, G. (1999). Factors influencing the competitive saprophytic ability of Macrophomina phaseolina in groundnut. Madras Agricultural Journal, 86, 552-553. [DOI:10.29321/MAJ.10.A00655]
25. Manici, L.M., Caputo, F., & Cerato, C. (1995). Temperature responses of isolates of Macrophomina phaseolina from different climatic regions of sunflower production in Italy. Plant Disease, 79, 834-838. [DOI:10.1094/PD-79-0834]
26. Mengistu, A., Ray, J.D., Smith, J.R., & Paris, R.L. (2007). Charcoal rot disease assessment of soybean genotypes using a colony forming unit index. Crop Science, 47, 2453-2461. [DOI:10.2135/cropsci2007.04.0186]
27. Mohajer Shoaaei, M.H., Rezaee, A., Rahimi, A.M., Emamyari, A.M.K., & Salehi, P. (1992). Evaluation of resources and land ability of Lorestan regions. Pub. no. 608,75 p.
28. Naseri B.(2023). The potential of agroecological properties in fulfilling the promise of organic farming: a case study of bean root rots and yields in Iran. Organic Farming (Second edition), Global Perspectives and Methods, 203-236. [DOI:10.1016/B978-0-323-99145-2.00011-2]
29. Naseri B. (2014). Charcoal rot of bean in diverse cropping systems and soil environments, Journal of Plant Diseases and Protection, 121 (1): 20-25. [DOI:10.1007/BF03356486]
30. Naseri B., & A. Marefat, 2011, Large-scale assessment of agricultural practices affecting Fusarium root rot and common bean yield, European Journal of Plant Pathology, 131, 179-195. [DOI:10.1007/s10658-011-9798-y]
31. Ndiaye, M.A.J. Termorshuizen, van Bruggen, A.H.C. (2010). Effects of compost amendment and the biocontrol agent Clonostachys rosea on the development of charcoal rot (Macrophomina phaseolina) on cowpea. Journal of Plant Pathology, 92, 173-180.
32. Ortiz, V., Chang, H-X, Sang, H., Jacobs, J., Malvick, D.K., Baird, R., Mathew, F.M., Estevez de Jensen, C., Wise, K.A., Mosquera, G.M., Chilvers, M.I. (2023). Population genomic analysis reveals geographic structure and climatic diversification for Macrophomina phaseolina isolated from soybean and dry bean across the United States, Puerto Rico, and Colombia. Frontiers in Genetics, 14, 1103969. [DOI:10.3389/fgene.2023.1103969] [PMID] []
33. Pandey, A.K., & Basandrai, A.K. (2021). Will Macrophomina phaseolina spread in legumes due to climate change? A critical review of current knowledge. Journal of Plant Diseases and Protection, 128, 9-18. [DOI:10.1007/s41348-020-00374-2]
34. Patel, S.T., & Anahosur, K.H. (2001). Influence of sowing time, soil moisture and pathogens on chickpea wilt and dry root rot incidence. Karnataka Journal of Agricultural Sciences, 14, 833-835.
35. Qiu, J. et al. (2022). Warm temperature compromises JA-regulated basal resistance to enhance Magnaporthe oryzae infection in rice. Molecular Plant Pathology, 15, 723-739. [DOI:10.1016/j.molp.2022.02.014] [PMID]
36. Raj Krishnan, N., Tripathi, N., & Rajinder, S. (1999). Role of edaphic factors on the incidence of dry root- rot sesame caused by Rhizoctonia bataticola (Taub.) Butl. Sesame Safflower News Letter, 14, 69-71.
37. Rayatpanah, S. (1992). Study of charcoal rot disease (Macrophomina phaseolina) in Mazandaran and its epidemiology. Abstract Book of 11th Iranian Plant Protection Congress, Rasht, Iran, p.116.
38. Rayatpanah, S., Alavi, S.V. (2006). Study on soybean charcoal rot disease in Mazandaran, Journal of Agricultural Sciences and Natural Resources, 13 (3), 107-114. (In Persian).
39. Saleh, A., Ahmed, H., Todd, T., Travers, S., Zeller, K., Leslie, J. et al. (2010). Relatedness of Macrophomina phaseolina isolates from tallgrass prairie, maize, soybean and sorghum. Molecular Ecology, 19, 79-91. [DOI:10.1111/j.1365-294X.2009.04433.x] [PMID]
40. Sanchez, S.M., Gambardella, J.L., Henriquez, J.L., & Diaz, I. (2013). First report of crown rot of strawberry caused by Macrophomina phaseolina in Chile. Plant Disease, 97, 996. [DOI:10.1094/PDIS-12-12-1121-PDN] [PMID]
41. Shirai, M., & Eulgem, Th. (2023). Molecular interactions between the soilborne pathogenic fungus Macrophomina phaseolina and its host plants. Frontiers in Plant Science, 14, 1264569. [DOI:10.3389/fpls.2023.1264569] [PMID] []
42. Smith, G.S., & Carvil, O.N. (1997). Field screening of commercial and experimental soybean cultivars for their reaction to Macrophomina phaseolina. Plant Disease, 81,363-368. [DOI:10.1094/PDIS.1997.81.4.363] [PMID]
43. Su, G., Suh, S.O., Schneider, R.W., & Russin, J.S. (2001). Host specialization in the charcoal rot fungus, Macrophomina phaseolina. Phytopathology, 91, 120-126. [DOI:10.1094/PHYTO.2001.91.2.120] [PMID]
44. Taliei, F., Safaie, N., & Aghajani, M.A. (2012). Relationship between disease incidence and severity of soybean charcoal rot in Golestan province. International Journal of Plant Production, 19 (3), 125-142. (In Persian)
45. Tok, F.M., Dervis, S., & Arslan, M. (2018). Host selective virulence, temperature response and genetic diversity in Macrophomina phaseolina isolates from sesame and peanut in southern turkey. Fresenius Environmental Bulletin, 27, 7374-7380.
46. Tossi, L., & Zazzerini, A. (1990). Influence of environmental factors and cultural techniques on Sclerotiam bataticola Taub. On sunflower. Phytopathology, 40, 73-76.
47. Waller, J.M. (1986). Drought, irrigation and fungal diseases of tropical crops. Pp. 175-187 In: Ayres, P.G. and Boddy, L. (Eds.), Water, Fungi and Plants. Cambridge University Press, Cambridge.
48. Wrather, J.A., & Koenning, S.R. (2006). Estimates of disease effects on soybean yields in the United States 2003 to 2005. Journal of Nematology, 38, 173-180.
49. Wyllie, T.S., Gangopadhyay, W.T., Blanchar, R. (1984). Germination and production of Macrophomina phaseolina microsclerotia as affected by oxygen and carbon dioxide concentration. Plant and Soil, 81, 195:201. [DOI:10.1007/BF02197151]
50. Zand, M. (2016). Identification of homogenous climatic zones in Lorestan Province. Final report, Lorestan Agricultural and Natural Resources and Education Center. 20p.

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