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Crosstalk between Nutrient Signalling Pathways and Immune Responses in Rice

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  • Beatriz Val-Torregrosa

    (Centre for Research in Agricultural Genomics (CRAG) CSIC-IRTA-UAB-UB, Campus Universitat Autònoma de Barcelona (UAB), 08193 Bellaterra (Cerdanyola del Vallés), Spain)

  • Mireia Bundó

    (Centre for Research in Agricultural Genomics (CRAG) CSIC-IRTA-UAB-UB, Campus Universitat Autònoma de Barcelona (UAB), 08193 Bellaterra (Cerdanyola del Vallés), Spain
    Current affiliation: Laboratori Agroalimentari, Departament d’Agricultura, Ramaderia, Pesca i Alimentació (DARP), C/Camí de Mataró Núm. 1, 08348 Cabrils, Spain.)

  • Blanca San Segundo

    (Centre for Research in Agricultural Genomics (CRAG) CSIC-IRTA-UAB-UB, Campus Universitat Autònoma de Barcelona (UAB), 08193 Bellaterra (Cerdanyola del Vallés), Spain
    Consejo Superior de Investigaciones Científicas (CSIC), 08016 Barcelona, Spain)

Abstract

Rice is a staple food for more than half of the global population. Rice production is, however, severely affected by biotic and abiotic stresses. Fertilisers and pesticides are widely used in rice farming to maintain optimal yield and to prevent losses caused by environmental stress. However, the indiscriminate use of agrochemicals has adverse effects on the environment and human health. Stress caused by nutrient excess or deficiency has an impact on plant disease resistance. The interference of plant responses induced by nutrient stress can result in a positive or negative impact on resistance to pathogen infection. In this review, we explore the effects of combined stresses in rice, focusing on nutrient stress, such as nitrogen and phosphorous supply, and infection by fungal pathogen Magnaporthe oryzae , the causal agent of rice blast disease. Crosstalk between nutrient stress-induced and pathogen-induced signalling pathways in rice is discussed, as well, with particular emphasis on regulatory microRNAs. Understanding the interconnected regulations between nutrient stress and disease resistance will lay a foundation for rationally optimising fertiliser and pesticide use in rice production.

Suggested Citation

  • Beatriz Val-Torregrosa & Mireia Bundó & Blanca San Segundo, 2021. "Crosstalk between Nutrient Signalling Pathways and Immune Responses in Rice," Agriculture, MDPI, vol. 11(8), pages 1-21, August.
  • Handle: RePEc:gam:jagris:v:11:y:2021:i:8:p:747-:d:609789
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    References listed on IDEAS

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    1. Jonathan D. G. Jones & Jeffery L. Dangl, 2006. "The plant immune system," Nature, Nature, vol. 444(7117), pages 323-329, November.
    2. Gabriel Castrillo & Paulo José Pereira Lima Teixeira & Sur Herrera Paredes & Theresa F. Law & Laura de Lorenzo & Meghan E. Feltcher & Omri M. Finkel & Natalie W. Breakfield & Piotr Mieczkowski & Corbi, 2017. "Root microbiota drive direct integration of phosphate stress and immunity," Nature, Nature, vol. 543(7646), pages 513-518, March.
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