Abstract
Background: Leaf rust, caused by the biotrophic fungal pathogen Puccinia hordei, is one of the most important
foliar disease of barley (Hordeum vulgare) and represents a serious threat in many production regions of the world.
The leaf rust resistance gene Rph15 is of outstanding interest for resistance breeding because it confers resistance
to over 350 Puccinia hordei isolates collected from around the world. Molecular and biochemical mechanisms
responsible for the Rph15 effectiveness are currently not investigated. The aim of the present work was to study the
Rph15-based defence responses using a proteomic approach.
Results: Protein pattern changes in response to the leaf rust pathogen infection were investigated in two barley
near isogenic lines (NILs), Bowman (leaf rust susceptible) and Bowman-Rph15 (leaf rust resistant), differing for the
introgression of the leaf rust resistance gene Rph15. Two infection time points, 24 hours and four days post
inoculation (dpi), were analysed. No statistically significant differences were identified at the early time point, while
at 4 dpi eighteen protein spots were significantly up or down regulated with a fold-change equal or higher than
two in response to pathogen infection. Almost all the pathogen-responsive proteins were identified in the
Bowman-Rph15 resistant NIL. Protein spots were characterized by LC-MS/MS analysis and found to be involved in
photosynthesis and energy metabolism, carbohydrate metabolism, protein degradation and defence. Proteomic
data were complemented by transcriptional analysis of the respective genes. The identified proteins can be related
to modulation of the photosynthetic apparatus components, re-direction of the metabolism to sustain defence
responses and deployment of defence proteins.
Conclusions: The identification of leaf rust infection-modulated defence responses restricted to the resistant NIL
support the hypothesis that basal defence responses of Bowman, but not the Rph15 resistance gene-based ones,
are suppressed or delayed by pathogen effectors to levels below the detection power of the adopted proteomic
approach. Additionally, Rph15-mediated resistance processes identified mainly resides on a modulation of primary
metabolism, affecting photosyntesis and carbohydrate pool
| Lingua originale | Inglese |
|---|---|
| pagine (da-a) | 1-16 |
| Numero di pagine | 16 |
| Rivista | BMC Genomics |
| Volume | 13 |
| DOI | |
| Stato di pubblicazione | Pubblicato - 2012 |
Keywords
- Barley
- Leaf rust
- Near isogenic lines
- Proteomics
- Resistance gene
- Rph15