Aqueous Chromolaena Odorata Leaf Extracts Induce Rice Resistance against Bacterial Leaf Blight
Abstract
Aqueous Chromolaena odorata leaf extracts enhanced rice seed germination and seedling growth. Five extract concentrations (1, 2, 3, 4, and 5%, w/v) applied as seed soaking and foliar spraying were tested for their disease-reducing effects against rice bacterial leaf blight (BLB) caused by Xanthomonas oryzae pv. oryzae. For foliar sparying, the extracts were applied using three different methods, i.e., at 7 days before inoculation, at 14 days before inoculation and their combination. It was efficient to apply the 3% extract by seed soaking and foliar spraying at 14 days before inoculation to control BLB as it was the lowest concentration where the disease-reducing effects were observed until 21 DAI. The effects involved induced resistance. Indeed, activities of the four defense-related and antioxidant enzymes, i.e., peroxidase (POX), catalase (CAT), polyphenol oxidase (PPO), and phenylalanine ammonia lyase (PAL), increased after extract application and reached higher levels with both extract application and pathogen inoculation. Activities of POX and CAT were induced earlier and stronger using seed soaking than foliar spraying while those of PPO and PAL increased earlier using foliar spraying than seed soaking. This suggests a combination of both application methods to obtain coordinate increases in activities of the four defense-related and antioxidant enzymes which could provide sufficiently protection to rice plants again the disease.
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References
Ahn, I.P., S. Kim and Y.-H. Lee. 2005. Vitamin B1 functions as an activator of plant disease resistance. Plant Physiology, 138: 1505-15.
Apel, K. and H. Hirt. 2004. Reactive oxygen species: Metabolism, oxidative stress, and signal transduction. Annual Review of Plant Biology, 55: 373-99.
Araji, S., T. A. Grammer, R. Gertzen, S. D. Anderson, M. Mikulic-Petkovsek, R. Veberic, M. L. Phu, A. Solar, C. A. Leslie and A. M. Dandekar. 2014. Novel roles for the polyphenol oxidase enzyme in secondary metabolism and the regulation of cell death in walnut. Plant Physiology, 164: 1191-203.
Beers, R. F. and I. W. Sizer. 1952. A spectrophotometric method for measuring the breakdown of hydrogen peroxide by catalase. Journal of Biological Chemistry, 195: 133-40.
Chanprapai, P. and W. Chavasiri. 2017. Antimicrobial activity from Piper sarmentosum Roxb. against rice pathogenic bacteria and fungi. Journal of integrative agriculture, 16: 2513-24.
Cho, M.-H. and S.-W. Lee. 2015. Phenolic phytoalexins in rice: Biological functions and biosynthesis. International Journal of Molecular Sciences, 16: 29120-33.
Constabel, C. P. and R. Barbehenn. 2008. Defensive roles of polyphenol oxidase in plants. In, Induced plant resistance to herbivory Springer: Netherlands.
Dickerson, D., S. Pascholati, A. E. Hagerman, L. Butler and R. Nicholson. 1984. Phenylalanine ammonia-lyase and hydroxycinnamate: CoA ligase in maize mesocotyls inoculated with Helminthosporium maydis or Helminthosporium carbonum. Physiological plant pathology, 25: 111-23.
Fan, S., F. Tian, J. Li, W. Hutchins, H. Chen, F. Yang, X. Yuan, Z. Cui, C. H. Yang and C. He. 2017. Identification of phenolic compounds that suppress the virulence of Xanthomonas oryzae on rice via the type III secretion system. Molecular plant pathology, 18: 555-68.
Govindappa, M., S. Umesha and S. Lokesh. 2011. Adathoda vasica leaf extract induces resistance in rice against bacterial leaf blight disease (Xanthomonas oryzae pv. oryzae). International Journal of Plant Physiology and Biochemistry, 3: 6-14.
Hammerschmidt, R., E. Nuckles and J. Kuć. 1982. Association of enhanced peroxidase activity with induced systemic resistance of cucumber to Colletotrichum lagenarium. Physiological plant pathology, 20: 73-82.
Hiraga, S., K. Sasaki, H. Ito, Y. Ohashi and H. Matsui. 2001. A large family of class III plant peroxidases. Plant and Cell Physiology, 42: 462-68.
Hương, N. T. T., N. Đ. Khoa and H. L. Tan. 2018. Efficks to reduce disease and the mechanism of resistance related to the enzyme phenylalanine ammonia-lyase and polyphenol oxidase for burning disease the cover of the rice leaves when sprayed through the leaves with life-life leaf extract. Can Tho University Journal of Science, 54: 13-21.
Kagale, S., T. Marimuthu, B. Thayumanavan, R. Nandakumar and R. Samiyappan. 2004. Antimicrobial activity and induction of systemic resistance in rice by leaf extract of Datura metel against Rhizoctonia solani and Xanthomonas oryzae pv. oryzae. Physiological and Molecular Plant Pathology, 65: 91-100.
Kang, Z., L. Huang and H. Buchenauer. 2002. Ultrastructural changes and localization of lignin and callose in compatible and incompatible interactions between wheat and Puccinia striiformis. Journal of Plant Diseases and Protection, 109: 25-37.
Karganilla, A., M. Paris-Natural and S. Ou. 1973. A comparative study of culture media for Xanthomonas oryzae, Philippine Agricultural Scientist: 141–52.
Khan, J., R. Siddiq, H. Arshad, H. Anwar, K. Saleem and F. Jamil. 2012. Chemical control of bacterial leaf blight of rice caused by Xanthomonas oryzae pv. oryzae. Pakistan Journal of Phytopathology, 24: 97-100.
Khoa, N. D. 2005. Effect of single resistance genes and their pyramid on the diversity of Xanthomonas oryzae pv. oryzae population under field conditions as revealed by insertion sequence-polymerase chain reaction (IS-PCR), Philippines University, Los Baños.
Khoa, N. D. 2018. Rice bacterial leaf blight. In: V.T. Mân, B.C. Tuyến, N.V. Tuất and P.V. Kim (eds.), Plant Diseases in Vietnam Publishing House of the Vietnam National University of Agriculture: Vietnam.
Khoa, N. Đ., N. Đ. N. Giàu and T. Q. Tuấn. 2016. Effects of Serratia nematodiphila CT-78 on rice bacterial leaf blight caused by Xanthomonas oryzae pv. oryzae. Biological Control, 103: 1-10.
Khoa, N. Đ., P. T. H. Thúy, T. T. T. Thủy, D. B. Collinge and H. J. L. Jørgensen. 2011. Disease-reducing effect of Chromolaena odorata extract on sheath blight and other rice diseases. Phytopathology, 101: 231-40.
Khoa, N. Đ., T. V. Xạ and L. T. Hào. 2017. Disease-reducing effects of aqueous leaf extract of Kalanchoe pinnata on rice bacterial leaf blight caused by Xanthomonas oryzae pv. oryzae involve induced resistance. Physiological and Molecular Plant Pathology, 100: 57-66.
Kloepper, J. W., S. Tuzun and J. A. Kuć. 1992. Proposed definitions related to induced disease resistance. Biocontrol Science and Technology, 2: 349-51.
Kumar, A., A. Guha, W. Bimolata, A. R. Reddy, G. S. Laha, R. Sundaram, M. K. Pandey and I. A. Ghazi. 2013. Leaf gas exchange physiology in rice genotypes infected with bacterial blight: An attempt to link photosynthesis with disease severity and rice yield. Australian Journal of Crop Science, 7: 32-39.
Kumar, A., R. Kumar, D. Sengupta, S. N. Das, M. K. Pandey, A. Bohra, N. K. Sharma, P. Sinha, H. Sk and I. A. Ghazi. 2020. Deployment of genetic and genomic tools toward gaining a better understanding of rice-Xanthomonas oryzae pv. oryzae interactions for development of durable bacterial blight resistant rice. Frontiers in Plant Science, 11: 1152.
Latz, M. A., B. Jensen, D. B. Collinge and H. J. Jørgensen. 2018. Endophytic fungi as biocontrol agents: elucidating mechanisms in disease suppression. Plant Ecology and Diversity, 11: 555-67.
Li, L. and J. C. Steffens. 2002. Overexpression of polyphenol oxidase in transgenic tomato plants results in enhanced bacterial disease resistance. Planta, 215: 239-47.
Mayer, A. M. 2006. Polyphenol oxidases in plants and fungi: Going places? A review. Phytochemistry, 67: 2318-31.
Mew, T. W., A. M. Alvarez, J. Leach and J. Swings. 1993. Focus on bacterial blight of rice. Plant Disease, 77: 5-12.
Mohan Babu, R., A. Sajeena, A. Vijaya Samundeeswari, A. Sreedhar, P. Vidhyasekaran, K. Seetharaman and M. Reddy. 2003. Induktion einer systemischen Resistenz gegen Xanthomonas oryzae pv. oryzae durch Salicylsäure in Oryza sativa (L.). Journal of Plant Diseases and Protection, 110: 419-31.
Muniappan, R., G. Reddy and P.-Y. Lai. 2005. Distribution and biological control of Chromolaena odorata. In, Invasive plants: Ecological and agricultural aspects Springer.
Niño‐Liu, D. O., P. C. Ronald and A. J. Bogdanove. 2006. Xanthomonas oryzae pathovars: Model pathogens of a model crop. Molecular plant pathology, 7: 303-24.
Nisha, S., K. Revathi, R. Chandrasekaran, S. A. Kirubakaran, S. Sathish-Narayanan, M. J. Stout and S. Senthil-Nathan. 2012. Effect of plant compounds on induced activities of defense-related enzymes and pathogenesis related protein in bacterial blight disease susceptible rice plant. Physiological and Molecular Plant Pathology, 80: 1-9.
Olawale, F., K. Olofinsan and O. Iwaloye. 2022. Biological activities of Chromolaena odorata: A mechanistic review. South African Journal of Botany, 144: 44-57.
Rodríguez-Algaba, J., J. C. Sørensen, H. Sørensen, N. Đ. Khoa, D. B. Collinge and H. J. L. Jørgensen. 2015. Activity-guided separation of Chromolaena odorata leaf extract reveals fractions with rice disease-reducing properties. European journal of plant pathology, 143: 331-41.
Santiago, R., R. De Armas, M. Legaz and C. Vicente. 2009. Changes in phenolic acids content, phenylalanine ammonia-lyase and peroxidase activities in sugarcane leaves induced by elicitors isolated from Xanthomonas albilineans. Australasian Plant Pathology, 38: 357-65.
Shetty, N. P., H. J. L. Jørgensen, J. D. Jensen, D. B. Collinge and H. S. Shetty. 2008. Roles of reactive oxygen species in interactions between plants and pathogens. European journal of plant pathology, 121: 267-80.
Shivalingaiah, U. S. and S. Umesha. 2013. Pseudomonas fluorescens inhibits the Xanthomonas oryzae pv. oryzae, the bacterial leaf blight pathogen in rice. Canadian Journal of Plant Protection, 1: 147-53.
Singh, R. and K. S. Chandrawat. 2017. Role of phytoalexins in plant disease resistance. International Journal of Current Microbiology and Applied Sciences, 6: 125-29.
Singh, R. and M. Rao. 1977. A simple technique for detecting Xanthomonas oryzae in rice seeds. Seed Science and Technology, 5: 123-27.
Solekha, R., F. A. Susanto, T. Joko, T. R. Nuringtyas and Y. A. Purwestri. 2020. Phenylalanine ammonia lyase (PAL) contributes to the resistance of black rice against Xanthomonas oryzae pv. oryzae. Journal of Plant Pathology, 102: 359-65.
Swings, J., M. Van den Mooter, L. Vauterin, B. Hoste, M. Gillis, T. Mew and K. Kersters. 1990. Reclassification of the causal agents of bacterial blight (Xanthomonas campestris pv. oryzae) and bacterial leaf streak (Xanthomonas campestris pv. oryzicola) of rice as pathovars of Xanthomonas oryzae (ex Ishiyama 1922) sp. nov., nom. rev. International Journal of Systematic and Evolutionary Microbiology, 40: 309-11.
Udayashankar, A., S. C. Nayaka, M. Reddy and C. Srinivas. 2011. Plant growth-promoting rhizobacteria mediate induced systemic resistance in rice against bacterial leaf blight caused by Xanthomonas oryzae pv. oryzae. Biological Control, 59: 114-22.
Van Chi, V. and T. Hop. 1999. Useful plants in Vietnam. Education Publishing House: Vietnam.
van Loon, L. C., M. Rep and C. M. Pieterse. 2006. Significance of inducible defense-related proteins in infected plants. Annual Review of Phytopathology, 44: 135-62.
Walters, D., D. Walsh, A. Newton and G. Lyon. 2005. Induced resistance for plant disease control: maximizing the efficacy of resistance elicitors. Phytopathology, 95: 1368-73.
Xạ, T. V., T. K. Thoa, N. Đ. Độ and N. Đ. Khoa. 2023. Seed soaking using methanol Kalanchoe pinnata leaf extracts induces rice resistance against bacterial leaf blight. International Journal of Plant Biology, 14: 1155-66.
Yu, C., N. Wang, M. Wu, F. Tian, H. Chen, F. Yang, X. Yuan, C.-H. Yang and C. He. 2016. OxyR-regulated catalase CatB promotes the virulence in rice via detoxifying hydrogen peroxide in Xanthomonas oryzae pv. oryzae. BMC microbiology, 16: 1-13.
DOI: 10.33687/phytopath.013.02.4888
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