Volume 6, Issue 2 (9-2017)                   Plant Pathol. Sci. 2017, 6(2): 33-42 | Back to browse issues page


XML Persian Abstract Print


Download citation:
BibTeX | RIS | EndNote | Medlars | ProCite | Reference Manager | RefWorks
Send citation to:

Azami-Sardooei Z, Fekrat F, Ghalavand F. (2017). A Review on the Application of Benzothiadiazole in Plant Diseases Management . Plant Pathol. Sci.. 6(2), 33-42. doi:10.29252/pps.6.2.33
URL: http://yujs.yu.ac.ir/pps/article-1-180-en.html
Department of Plant Pathology, Jiroft University, Jiroft, Iran , zabih.azami@gmail.com
Abstract:   (10591 Views)
Azami-Sardouei Z., Fekrat  F. and  Ghalavand F. 2017. A review on the application of benzothiadiazole in plant diseases management. Plant Pathology Science 6(2):33-42.

The use of plant defense activators is a novel method of plant diseases management in recent years. Benzothiadiazole (BTH), is the first synthetic plant defense activator. In general, Benzothiadiazole has no direct effect against the pathogens, but it can activate the systemic acquired resistance (SAR) in plants, against a number of plant diseases. In addition, BTH widely is used to protect the plants against a range of pathogens on wheat, tomato, bean, tobacco, lettuce, banana and pears. In overall, Benzothiadiazole can be used as a safe and reliable product for plant protection and also as an alternative for chemical pesticides, which they have hazardous effects on environment.
 
Full-Text [PDF 187 kb]   (1933 Downloads)    
Type of Study: Extentional | Subject: Special
Received: 2017/01/14 | Accepted: 2017/07/30

References
1. Abdel-monaim M. F., Ismail M. E. and K. M. Morsy. 2011. Induction of systemic in soybean plants against Fusarium wilts disease by seed trestment with benzothiadiazole and humic acid. Microbiology 39:290-298.
2. Abo-Elyousr K. A., and El-Hendawy H. H. 2008. Integration of Pseudomonas fluorescens and acibenzolar-S-methyl to control bacterial spot disease of tomato. Crop Protection 27:1118-1124. [DOI:10.1016/j.cropro.2008.01.011]
3. Achuo E., Audenaert K., Meziane H. and Höfte M. 2004. The salicylic acid‐dependent defence pathway is effective against different pathogens in tomato and tobacco. Plant Pathology 53:65-72. [DOI:10.1111/j.1365-3059.2004.00947.x]
4. Agostini L., Martinon F., Burns K., McDermott M. F., Hawkins P. N. and Tschopp J. 2003. NALP3 forms an IL-1β-processing inflammasome with increased activity in Muckle-Wells autoinflammatory disorder. Immunity 20:319-325. [DOI:10.1016/S1074-7613(04)00046-9]
5. Alishiri A. and Rakhshandehroo F. 2014. The role of salicylic acid in plant resistance against plant pathogens. Plant Pathology Science 3:75-82. (In Persian with English summary).
6. Amzalek E. and Cohen Y. 2007.Comparative efficacy of systemic acquired resistance-inducing compounds against rust infection in sunflower plants. Phytopathology 97:179-186. [DOI:10.1094/PHYTO-97-2-0179]
7. Audenaert K., Pattery T., Cornelis P. and Hofte M. 2002. Induction of systemic resistance to Botrytis cinerea in tomato by Pseudomonas aeruginosa 7NSK2: Role of salicylic acid, pyochelin, and pyocyanin. Molecular Plant-Microbe Interaction 15:1147-1156. 9. Azami-Sardooei Z., Seifi H. S., De Vleesschauwer D. and Höfte M. 2013. Benzothiadiazole (BTH)-induced resistance against Botrytis cinerea is inversely correlated with vegetative and generative growth in bean and cucumber, but not in tomato. Australasian Plant Pathology 42:485-490. https://doi.org/10.1007/s13313-013-0207-1 10. Azami-Sardooei Z. 2011. Induction of resistance to Botrytis cinerea in tomato, bean and cucumber by Serratia plymuthica and plant activators. Ph.D thesis, Ghent University, Belgium, 150p. 11. Azami-Sardooei Z., França S. C., De Vleesschauwer D. and Höfte M. 2010. Riboflavin induces resistance against Botrytis cinerea in bean, but not in tomato, by priming for a hydrogen peroxide-fueled resistance response. Physiological and Molecular Plant Pathology 75:23-29. https://doi.org/10.1016/j.pmpp.2010.08.001 [DOI:10.1094/MPMI.2002.15.11.1147]
8. Azami-Sardooei Z., and Höfte M. 2009. Potential of BTH to induce resistance against Botrytis cinerea in tomato, bean and cucumber. 61th International Symposium on Crop Protection, May 19, 2009, Gent, Belgium.
9. Baysal Ö, Turgut C, and Mao G.2005. Acibenzolar-S-methyl induced resistance to Phytophthora capsici in pepper leaves. Biologia Plantarum 49:599-604. [DOI:10.1007/s10535-005-0055-0]
10. Bokshi A., Morris S. C. and Deverall B. J. 2003. Effects of benzothiadiazole and acetylsalicylic acid on beta- 1, 3- glucanase activity and disease resistance in potato. Plant Pathology 52:22-27. 15. Bovie C., Ongena M., Thonart P. and Dommes J. 2004. Cloning and expression analysis of cDNAs corresponding to genes activated in cucumber showing systemic acquired resistance after BTH treatment. BMC Plant Biology 4:15. https://doi.org/10.1186/1471-2229-4-15 [DOI:10.1046/j.1365-3059.2003.00792.x]
11. Brisset M. N., Cesbron S., Thomson S. V. and Paulin J. P. 2000. Acibenzolar- Smethyl induces the accumulation of defense-related enzymes in apple and protects from fire blight. European Journal of Plant Pathology 106:529-536. [DOI:10.1023/A:1008728119087]
12. Boughton A. J., Kelli H. and Gary W. F. 2006. Impact of chemical elicitor applications on greenhouse tomato plants and population growth of the green peach aphid, Myzus persicae. Entomologia Experimentalis et Applicata 120:175-188. [DOI:10.1111/j.1570-7458.2006.00443.x]
13. Buschmann H., Fan Z. W. and Sauerborn J. 2005. Effect of resistance-inducing agents on sunflower (Helianthus annuus L.) and its infestation with the parasitic weed Orobanche cumana Wallr. Journal of Plant Diseases and Protection 112:386-397.
14. Buzi A., Chilosi G. and Magro P. 2004. Induction of resistance in melon seedlings against soil‐borne fungal pathogens by gaseous treatments with methyl jasmonate and ethylene. Journal of Phytopathology 152:491-497. [DOI:10.1111/j.1439-0434.2004.00885.x]
15. Choh Y., Ozawa R. and Takabayashi J. 2004. Effects of exogenous jasmonic acid and benzo (1,2,3) thiadiazole-7-carbothioic acid-S-methyl ester (BTH), a functional analogue of salicylic acid, on the egg production of a herbivorous mite Tetranychus urticae (Acari:Tetranychidae). Applied Entomology and Zoology 39:311-314. [DOI:10.1303/aez.2004.311]
16. Chinnasri B., Sipes B. and Schmitt D. 2003. Effects of acibenzolar-s-methyl application to Rotylenchulus reniformis and Meloidogyne javanica. Journal of Nematology 35:110.
17. Chinnasri B., Sipes B. and Schmitt D. 2006. Effects of inducers of systemic acquired resistance on reproduction of Meloidogyne javanica and Rotylenchulus reniformis in pineapple. Journal of Nematology 38:319.
18. Desmond O. J., Manners J. M., Schenk P. M., Maclean D. J. and Kazan K. 2008. Gene expression analysis of the wheat response to infection by Fusarium pseudograminearum. Physiological and Molecular Plant Pathology 73:40-47. [DOI:10.1016/j.pmpp.2008.12.001]
19. Dinh S., Joyce D. C., Irving D. E. and Wearing A. H. 2008. Effects of multiple applications of chemical elicitors on Botrytis cinerea infecting Geraldton waxflower. Australasian Plant Pathology 37:87-94. [DOI:10.1071/AP07089]
20. Faessel L., Nassr N., Lebeau T. and Walter B. 2008. Effects of the plant defence inducer, acibenzolar-S-methyl, on hypocotyl rot of soybean caused by Rhizoctonia solani AG-4. Journal of Phytopathology 156:236-242. [DOI:10.1111/j.1439-0434.2007.01367.x]
21. Friedrich L., Lawton K., Ruess W., Masner P., Specker N., Gut M.R., Meier B., Dincher S., Staub T., Uknes S., Metraux J.P., Kessmann H. and Ryals J. 1996. A benzothiadiazole derivative induces systemic acquired resistance in tobacco. Plant Journal 10:61-70. [DOI:10.1046/j.1365-313X.1996.10010061.x]
22. Gorlach J., Volrath S., Knauf- Beiter G., Hengy G., Beckhove U., Kogel K. H., O ostendorp M., Staub T., Ward E. and Kessmann H. 1996. Benzothiadiazole, a novel class of inducers of systemic acquired resistance, activates gene expression and disease resistance in wheat. The Plant Cell 8:629-643. 28. Hukkanen A., Kokko H., Buchala A., Yrinen J. and Renlampi S. 2008. Benzothiadiazole affects the leaf proteome in arctic bramble (Rubus arcticus). Molecular Plant Pathology 9:799-808. https://doi.org/10.1111/j.1364-3703.2008.00502.x [DOI:10.1105/tpc.8.4.629]
23. Iriti M. and Faoro F. 2003. Does benzothiadiazole-induced resistance increase fitness cost in bean. Journal of Plant Pathology 46:265-270. 30. Iriti, M., Mapelli S. and Faoro F. 2007. Chemical-induced resistance against post-harvest infection enhances tomato nutritional traits. Food chemistry 105:1040-1046. 31. Kumar S., Thind T. S., Bala A. and Gupta A. K. 2011. Induced resistance in potato against Phytophthora infestans using chemicals and bio-agents. Plant Disease Research 25:12-18. [DOI:10.1016/j.foodchem.2007.04.073]
24. Kusumoto D., Goldwasser Y., Xie X., Yoneyama K., Takeuchi Y. and Yoneyama K. 2007. Resistance of red clover (Trifolium pretense) to the root parasitic plant Orobanche minor is activated by salicylate but not by jasmonate. Annals of Botany 100:537-544. 33. Lang J. M., Gent D. H. and Schwartz H. F. 2007. Management of Xanthomonas leaf blight of onion with bacteriophages and a plant activator. Plant Disease 91(7): 871-878. https://doi.org/10.1094/PDIS-91-7-0871 [DOI:10.1093/aob/mcm148]
25. Liu H., Jiang W., Bi Y. and Luo Y. 2005. Postharvest BTH treatment induces resistance of peach (Prunus persica L. cv. Jiubao) fruit to infection by Penicillium expansum and enhances activity of fruit defense mechanisms. Postharvest Biology and Technoligy 35:263-269. [DOI:10.1016/j.postharvbio.2004.08.006]
26. Lawton K., Friedrich L., Hunt M., Weymann K., Delaney T., Kessmann H., Staub T., and Ryals J. 1996. Benzothiadiazole induces disease resistance in Arabidopsis by activation of the systemic acquired resistance signal transduction pathway. Plant Journal 10:71-82. [DOI:10.1046/j.1365-313X.1996.10010071.x]
27. Lyon G. D., Reglinski T. and Newton A. C.1995. Novel disease control compounds: The potential to 'immunize' plants against infection. Plant Pathology 44:407-427. [DOI:10.1111/j.1365-3059.1995.tb01664.x]
28. Maffi D., Iriti M. and Pigni M. 2010. Uromyces appendiculatus infection in BTH-treated bean plants: Ultrastructural details of a lost fight. Mycopathologia 171:209-221. [DOI:10.1007/s11046-010-9350-1]
29. Mehrabipour S., Abdollahi H. and Ghasemi A. 2010. Response of some quince (Cydonia oblanga Mill.) genotypes from Guilan and Khorasan provinces to fireblight disease. Seed and Plant Improvement Journal 28:67-84.
30. Mondal A. H., Nehl D. B. and Allen S. J. 2005. Acibenzolar-S-methyl induces systemic resistance in cotton against black root rot caused by Thielaviopsis basicola. Australasian Plant Pathology 34:499-507. [DOI:10.1071/AP05089]
31. Pieterse C. M. J., Leon-Reyes A., Van der Ent S. and Van Wees S. C. M. 2009. Networking by small-molecule hormones in plant immunity. Nature Chemical Biology 5:308-316. 41. Ruess W., Mueller K., Knauf-Beiter G., Kunz W. and Staub T. 1996. Plant activator CGA 245704: An innovative approach for disease control in cereals and tobacco. Proceedings of the Brighton Crop Protection Conference, 53-60. 42. Terry L. A. and Joyce D. C. 2000. Suppression of grey mould on strawberry fruit with the chemical plant activator acibenzolar. Pest Management Science 56(11): 989-992. https://doi.org/10.1002/1526-4998(200011)56:11<989::AID-PS229>3.0.CO;2-A [DOI:10.1038/nchembio.164]
32. Veronesi C., Delavault P. and Simier P. 2009. Acibenzolar- S- methyl induces resistance in oilseed rape (Brassica napus L.) against branched broomrape (Orobanche ramose L.). Crop Protection 28:104-108. [DOI:10.1016/j.cropro.2008.08.014]
33. Wang D., Pajerowska-Mukhtar K., Hendrickson Culler A. and Dong X. 2007. Salicylic acid inhibits pathogen growth in plants through repression of the auxin signaling pathway. Current Biology 17:1784-1790. [DOI:10.1016/j.cub.2007.09.025]
34. Yi H. S., Yang J. W., Choi H. K., Ghim S. Y. and Ryu, C. M. 2012. Benzothiadiazole-elicited defense priming and systemic acquired resistance against bacterial and viral pathogens of pepper under field conditions. Plant Biotechnology Reports 6:373-380. [DOI:10.1007/s11816-012-0234-3]

Add your comments about this article : Your username or Email:
CAPTCHA

Send email to the article author


Rights and permissions
Creative Commons License This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

© 2024 CC BY-NC 4.0 | University of Yasouj Plant Pathology Science

Designed & Developed by : Yektaweb