Unveiling plant defense arsenal: metabolic strategies in Brassica oleracea during black rot disease

Author:

Vega-Álvarez Carmen1,Soengas Pilar1,Roitsch Thomas2,Abilleira Rosaura1,Velasco Pablo1,Francisco Marta1

Affiliation:

1. Misión Biológica de Galicia (CSIC) Group of Genetics, Breeding and Biochemistry of Brassicas , , ES-36143, Pontevedra, Spain

2. University of Copenhagen Department of Plant and Environmental Sciences, Copenhagen Plant Science Centre, , DK-2630, Taastrup, Denmark

Abstract

Abstract Alterations in plant metabolism play a key role in the complex plant–pathogen interactions. However, there is still a lack of knowledge about the connection between changes in primary and specialized metabolism and the plant defense against diseases that impact crops. Thus, we aim to study the metabolic reprograming in Brassica oleracea plants upon infection by Xanthomonas campestris pv. campestris (Xcc). To accomplish this, we utilized a combination of untargeted and targeted metabolomics, through UPLC-Q-TOF-MS/MS and 1H-NMR, in two crop lines differing in resistance that were evaluated at two- and four-week intervals following inoculation (T1 and T2, respectively). Besides, to depict the physiological status of the plant during infection, enzymatic activities related to the carbohydrate pathway and oxidative stress were studied. Our results revealed different temporal dynamics in the responses of the susceptible vs. resistant crops lines. Resistant B. oleracea line suppresses carbohydrate metabolism contributing to limit nutrient supplies to the bacterium and prioritizes the induction of defensive compounds such as indolic glucosinolates, salicylic acid, phenylpropanoids and phytoalexins precursors at early infection stages. In contrast, the susceptible line invests in carbohydrate metabolism, including enzymatic activities related to the hexoses turnover, and activates defense signaling related to reactive oxygen species. Thus, each line triggers a different metabolic strategy that will affect how the plant overcomes the disease in terms of resistance and growth. This work provides first insights of a fine-tuned metabolic regulation during Xcc infection in B. oleracea that will contribute to develop new strategies for plant disease management.

Funder

Ramón y Cajal Research Program

Ministry of Science and Innovation, the Government of Spain

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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