Barley shows reduced Fusarium head blight under drought and modular expression of differentially expressed genes under combined stress

Author:

Hoheneder Felix1ORCID,Steidele Christina E1,Messerer Maxim2ORCID,Mayer Klaus F X2ORCID,Köhler Nikolai13,Wurmser Christine4,Heß Michael1,Gigl Michael5ORCID,Dawid Corinna5ORCID,Stam Remco16ORCID,Hückelhoven Ralph1

Affiliation:

1. Chair of Phytopathology, TUM School of Life Sciences, HEF World Agricultural Systems Center, Technical University of Munich , Emil-Ramann Str. 2, 85354 Freising-Weihenstephan , Germany

2. Plant Genome and Systems Biology, Helmholtz Center Munich, German Research Center for Environmental Health , Ingolstädter Landstraße 1, 85764 Neuherberg , Germany

3. LipiTUM, Chair of Experimental Bioinformatics, TUM School of Life Sciences, Technical University of Munich , Maximus-von-Imhof Forum 3, 85354 Freising-Weihenstephan , Germany

4. Chair of Animal Physiology and Immunology, TUM School of Life Sciences, Technical University of Munich , Weihenstephaner Berg 3/I, 85354 Freising-Weihenstephan , Germany

5. Chair of Food Chemistry and Molecular Sensory Science, TUM School of Life Sciences, Technical University of Munich , Lise-Meitner-Straße 34, 85354 Freising-Weihenstephan , Germany

6. Institute of Phytopathology, Christian Albrecht University of Kiel , Hermann-Rodewald-Straße 9, 24118 Kiel , Germany

Abstract

Abstract Plants often face simultaneous abiotic and biotic stress conditions; however, physiological and transcriptional responses under such combined stress conditions are still not fully understood. Spring barley (Hordeum vulgare) is susceptible to Fusarium head blight (FHB), which is strongly affected by weather conditions. We therefore studied the potential influence of drought on FHB severity and plant responses in three varieties of different susceptibility. We found strongly reduced FHB severity in susceptible varieties under drought. The number of differentially expressed genes (DEGs) and strength of transcriptomic regulation reflected the concentrations of physiological stress markers such as abscisic acid or fungal DNA contents. Infection-related gene expression was associated with susceptibility rather than resistance. Weighted gene co-expression network analysis revealed 18 modules of co-expressed genes that reflected the pathogen- or drought-response in the three varieties. A generally infection-related module contained co-expressed genes for defence, programmed cell death, and mycotoxin detoxification, indicating that the diverse genotypes used a similar defence strategy towards FHB, albeit with different degrees of success. Further, DEGs showed co-expression in drought- or genotype-associated modules that correlated with measured phytohormones or the osmolyte proline. The combination of drought stress with infection led to the highest numbers of DEGs and resulted in a modular composition of the single-stress responses rather than a specific transcriptional output.

Funder

German Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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