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Investigating the Resistance Mechanism of Wheat Varieties to Fusarium Head Blight Using Comparative Metabolomics

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2023 Feb 25
PMID 36834625
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Abstract

Fusarium head blight (FHB) is primarily caused by and severely reduces wheat yield, causing mycotoxin contamination in grains and derived products. -secreted chemical toxins stably accumulate in plant cells, disturbing host metabolic homeostasis. We determined the potential mechanisms underlying FHB resistance and susceptibility in wheat. Three representative wheat varieties (Sumai 3, Yangmai 158, and Annong 8455) were inoculated with and their metabolite changes were assessed and compared. In total, 365 differentiated metabolites were successfully identified. Amino acids and derivatives, carbohydrates, flavonoids, hydroxycinnamate derivatives, lipids, and nucleotides constituted the major changes in response to fungal infection. Changes in defense-associated metabolites, such as flavonoids and hydroxycinnamate derivatives, were dynamic and differed among the varieties. Nucleotide and amino acid metabolism and the tricarboxylic acid cycle were more active in the highly and moderately resistant varieties than in the highly susceptible variety. We demonstrated that two plant-derived metabolites, phenylalanine and malate, significantly suppressed growth. The genes encoding the biosynthetic enzymes for these two metabolites were upregulated in wheat spike during infection. Thus, our findings uncovered the metabolic basis of resistance and susceptibility of wheat to and provided insights into engineering metabolic pathways to enhance FHB resistance in wheat.

Citing Articles

Biotic and Abiotic Stressors in Plant Metabolism.

Cornara L, Mandrone M, Smeriglio A Int J Mol Sci. 2024; 25(1).

PMID: 38203292 PMC: 10778783. DOI: 10.3390/ijms25010121.


Comparative transcriptomic analysis of wheat cultivars differing in their resistance to Fusarium head blight infection during grain-filling stages reveals unique defense mechanisms at play.

Chen C, Guo Q, He Q, Tian Z, Hao W, Shan X BMC Plant Biol. 2023; 23(1):433.

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