Biologia plantarum 67:262-270, 2023 | DOI: 10.32615/bp.2023.013
Phosphate starvation enhances Xanthomonas oryzae pv. oryzae resistance in rice
- 1 Department of Life Science, University of Science and Technology of Hanoi, Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet, 100000, Cau Giay, Hanoi, Vietnam
- 2 Institute of Biotechnology, 18 Hoang Quoc Viet, 100000, Cau Giay, Hanoi, Vietnam
Bacterial leaf blight (BLB) is a common disease that affects rice development and yield. The effects of major nutrients, especially nitrogen, on rice BLB susceptibility have been considered when devising rational fertilization strategies. However, the defense mechanism of rice against BLB under phosphate (Pi)-deficient conditions remains uncertain. Jasmonic acid (JA) is a phytohormone produced by rice plants to respond to abiotic and biotic stresses. Here, the involvement of the JA pathway in rice response to Xanthomonas oryzae pv. oryzae (Xoo) under low Pi was investigated in two contrasting rice cultivars G299 and G22. Expressions of JA-related genes under low Pi and Pi-related genes under JA treatment were assessed. The resistant capacity of G299 and G22 against Xoo infection was also investigated. In the JA-sensitive and Pi-sensitive cv. G299, JA-related genes were highly expressed under low Pi, and low Pi-responsive genes were strongly upregulated under JA treatment. Neither JA nor Pi pathways were activated in the JA-tolerant and low Pi-tolerant cv. G22. Low Pi strongly enhanced rice resistance to Xoo in cv. G299. Our study demonstrated that Pi deficiency confers rice resistance to Xoo. The JA pathway modulates the response to low Pi, depending on the cultivar. Pi-response genes are involved in Pi stress and may participate in the regulation of overall plant growth under various abiotic stresses. These findings provide new insights into the interaction between phosphate deficiency and the JA pathway and the subsequent effect on plant disease resistance.
Keywords: bacterial leaf blight, jasmonic acid pathway, phosphate starvation, rice, Xanthomonas oryzae pv. oryzae.
Received: July 20, 2022; Revised: April 19, 2023; Accepted: April 20, 2023; Published online: September 11, 2023 Show citation
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References
- Balfagón D., Sengupta S., Gómez-Cadenas A. et al.: Jasmonic acid is required for plant acclimation to a combination of high light and heat stress. - Plant Physiol. 181: 1668-1682, 2019.
Go to original source... - Burdon J.J., Zhan J.: Climate change and disease in plant communities. - PLoS Biol. 18: e3000949, 2020.
Go to original source... - Bustos R., Castrillo G., Linhares F. et al.: A central regulatory system largely controls transcriptional activation and repression responses to phosphate starvation in Arabidopsis. - PLoS Genet. 6: e1001102, 2010.
Go to original source... - Campos M.L., Kang J.H., Howe G.A.: Jasmonate-triggered plant immunity. - J. Chem. Ecol. 40: 657-675, 2014.
Go to original source... - Chacón-López A., Ibarra-Laclette E., Sánchez-Calderón L. et al.: Global expression pattern comparison between low phosphorus insensitive 4 and WT Arabidopsis reveals an important role of reactive oxygen species and jasmonic acid in the root tip response to phosphate starvation. - Plant Signal. Behav. 6: 382-392, 2011.
Go to original source... - Chevalier F., Cuyas L., Jouhet J. et al.: Interplay between jasmonic acid, phosphate signaling and the regulation of glycerolipid homeostasis in Arabidopsis. - Plant Cell Physiol. 60: 1260-1273, 2019.
Go to original source... - Dong Z., Li W., Liu J. et al.: The rice phosphate transporter protein OsPT8 regulates disease resistance and plant growth. - Sci. Rep.-UK 9: 5408, 2019.
Go to original source... - El-Sayed A., Kamel M.: Climatic changes and their role in emergence and re-emergence of diseases. - Environ. Sci. Pollut. Res. 27: 22336-22352, 2020.
Go to original source... - Freeman B.C., Beattie G.A.: An overview of plant defenses against pathogens and herbivores. - Plant Health Instr., 2008.
Go to original source... - Guo W., Zhao J., Li X. et al.: A soybean β-expansin gene GmEXPB2 intrinsically involved in root system architecture responses to abiotic stresses. - Plant J. 66: 541-552, 2011.
Go to original source... - Gupta A., Bhardwaj M., Tran L.S.P.: Jasmonic acid at the crossroads of plant immunity and Pseudomonas syringae virulence. - Int. J. Mol. Sci. 21: 7482, 2020.
Go to original source... - Huang L.F., Liu K.H., He S.L. et al.: Multiple patterns of regulation and overexpression of a ribonuclease-like pathogenesis-related protein gene, OsPR10a, conferring disease resistance in rice and Arabidopsis. - PLoS ONE 11: e0156414, 2016.
Go to original source... - Hunter M.C., Smith R.G., Schipanski M.E. et al.: Agriculture in 2050: Recalibrating targets for sustainable intensification. - BioScience 67: 386-391, 2017.
Go to original source... - Jiang H., Zhang J., Han Z. et al.: Revealing new insights into different phosphorus-starving responses between two maize (Zea mays) inbred lines by transcriptomic and proteomic studies. - Sci. Rep.-UK 7: 44294, 2017.
Go to original source... - Kauffman H.E., Reddy A.P.K., Hsieh S.P.Y., Merca S.D.: An improved technique for evaluating resistance of rice varieties to Xanthomonas oryzae. - Plant Dis. Rep. 57: 537-541, 1973.
- Khan G.A., Vogiatzaki E., Glauser G., Poirier Y.: Phosphate deficiency induces the jasmonate pathway and enhances resistance to insect herbivory. - Plant Physiol. 171: 632-644, 2016.
Go to original source... - Ke Y., Hui S., Yuan M.: Xanthomonas oryzae pv. oryzae inoculation and growth rate on rice by leaf clipping method. - Bio-protoc. J. 7: e2568, 2017.
Go to original source... - Kong Y., Wang G., Chen X. et al.: OsPHR2 modulates phosphate starvation-induced OsMYC2 signaling and resistance to Xanthomonas oryzae pv. oryzae. - Plant Cell Environ. 44: 3432-3444, 2021.
Go to original source... - Lai F., Thacker J., Li Y., Doerner P.: Cell division activity determines the magnitude of phosphate starvation responses in Arabidopsis. - Plant J. 50: 545-556, 2007.
Go to original source... - Liu W., Liu J., Triplett L. et al.: Novel insights into rice innate immunity against bacterial and fungal pathogens. - Annu. Rev. Phytopathol. 52: 213-241, 2014.
Go to original source... - Livak K.J., Schmittgen T.D.: Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method. - Methods 25: 402-408, 2001.
Go to original source... - Long L., Ma X., Ye L. et al.: Root plasticity and Pi recycling within plants contribute to low-P tolerance in Tibetan wild barley. - BMC Plant Biol. 19: 341, 2019.
Go to original source... - López-Arredondo D.L., Leyva-González M.A., González-Morales S.I. et al.: Phosphate nutrition: improving low-phosphate tolerance in crops. - Annu. Rev. Plant Biol. 65: 95-123, 2014.
Go to original source... - López-Bucio J., Hernández-Abreu E., Sánchez-Calderón L. et al.: Phosphate availability alters architecture and causes changes in hormone sensitivity in the Arabidopsis root system. - Plant Physiol. 129: 244-256, 2002.
Go to original source... - Luo X., Li Z., Xiao S. et al.: Phosphate deficiency enhances cotton resistance to Verticillium dahliae through activating jasmonic acid biosynthesis and phenylpropanoid pathway. - Plant Sci. 302: 110724, 2021.
Go to original source... - Lv Q., Zhong Y., Wang Y. et al.: SPX4 negatively regulates phosphate signaling and homeostasis through its interaction with PHR2 in rice. - Plant Cell 26: 1586-1597, 2014.
Go to original source... - Mai N.T.P., Mai C.D., Nguyen H.V. et al.: Discovery of new genetic determinants of morphological plasticity in rice roots and shoots under phosphate starvation using GWAS. - J. Plant Physiol. 257: 153340, 2021.
Go to original source... - Mehra P., Pandey B.K., Giri J.: Improvement in phosphate acquisition and utilization by a secretory purple acid phosphatase (OsPAP21b) in rice. - Plant Biotechnol. J. 15: 1054-1067, 2017.
Go to original source... - Oono Y., Kawahara Y., Yazawa T. et al.: Diversity in the complexity of phosphate starvation transcriptomes among rice cultivars based on RNA-Seq profiles. - Plant Mol. Biol. 83: 523-537, 2013.
Go to original source... - Pandey B.K., Verma L., Prusty A. et al.: OsJAZ11 regulates phosphate starvation responses in rice. - Planta 254: 8, 2021.
Go to original source... - Pérez-Torres C.A., López-Bucio J., Cruz-Ramírez A. et al.: Phosphate availability alters lateral root development in Arabidopsis by modulating auxin sensitivity via a mechanism involving the TIR1 auxin receptor. - Plant Cell 20: 3258-3272, 2008.
Go to original source... - Poonam S., Kaur H., Geetika S.: Effect of jasmonic acid on photosynthetic pigments and stress markers in Cajanus cajan (L.) Millsp. seedlings under copper stress. - Am. J. Plant Sci. 4: 817-823, 2013.
Go to original source... - To H.T.M., Le K.Q., Nguyen H.V. et al.: A genome-wide association study reveals the quantitative trait locus and candidate genes that regulate phosphate efficiency in a Vietnamese rice collection. - Physiol. Mol. Biol. Pla. 26: 2267-2281, 2020.
Go to original source... - To H.T.M., Nguyen H.T., Dang N.T.M. et al.: Unraveling the genetic elements involved in shoot and root growth regulation by jasmonate in rice using a genome-wide association study. - Rice 12: 69, 2019.
Go to original source... - Vikal Y., Das A., Patra B. et al.: Identification of new sources of bacterial blight (Xanthomonas oryzae pv. oryzae) resistance in wild Oryza species and O. glaberrima. - Plant Genet. Resour. 5: 108-112, 2007.
Go to original source... - Wang C., Ying S., Huang H. et al.: Involvement of OsSPX1 in phosphate homeostasis in rice. - Plant J. 57: 895-904, 2009.
Go to original source... - Zhang J., Jiang F., Shen Y. et al.: Transcriptome analysis reveals candidate genes related to phosphorus starvation tolerance in sorghum. - BMC Plant Biol. 19: 306, 2019.
Go to original source... - Zhang L., Zhang F., Melotto M. et al.: Jasmonate signaling and manipulation by pathogens and insects. - J. Exp. Bot. 68: 1371-1385, 2017.
Go to original source... - Zhang Q., Wang C., Tian J. et al.: Identification of rice purple acid phosphatases related to phosphate starvation signalling. - Plant Biol. 13: 7-15, 2011.
Go to original source... - Zhang Y.J., Lynch J.P., Brown K.M.: Ethylene and phosphorus availability have interacting yet distinct effects on root hair development. - J. Exp. Bot. 54: 2351-2361, 2003.
Go to original source... - Zhao Y., Dong W., Zhang N. et al.: A wheat allene oxide cyclase gene enhances salinity tolerance via jasmonate signaling. - Plant Physiol. 164: 1068-1076, 2014.
Go to original source... - Zhong Y., Wang Y., Guo J. et al.: Rice SPX6 negatively regulates the phosphate starvation response through suppression of the transcription factor PHR2. - New Phytol. 219: 135-148, 2018.
Go to original source...



