Your browser doesn't support javascript.
loading
Local and systemic regulation of PSII efficiency in triticale infected by the hemibiotrophic pathogen Microdochium nivale.
Dyda, Mateusz; Wasek, Iwona; Tyrka, Miroslaw; Wedzony, Maria; Szechynska-Hebda, Magdalena.
Affiliation
  • Dyda M; The Franciszek Górski Institute of Plant Physiology, Polish Academy of Sciences, 30-239, Kraków, Poland.
  • Wasek I; Pedagogical University of Cracow, 30-084, Kraków, Poland.
  • Tyrka M; The Franciszek Górski Institute of Plant Physiology, Polish Academy of Sciences, 30-239, Kraków, Poland.
  • Wedzony M; Department of Biochemistry and Biotechnology, Faculty of Chemistry, Rzeszow University of Technology, Rzeszow, Poland.
  • Szechynska-Hebda M; Pedagogical University of Cracow, 30-084, Kraków, Poland.
Physiol Plant ; 165(4): 711-727, 2019 Apr.
Article de En | MEDLINE | ID: mdl-29774565
ABSTRACT
Microdochium nivale is a fungal pathogen that causes yield losses of cereals during winter. Cold hardening under light conditions induces genotype-dependent resistance of a plant to infection. We aim to show how photosystem II (PSII) regulation contributes to plant resistance. Using mapping population of triticale doubled haploid lines, three M. nivale strains and different infection assays, we demonstrate that plants that maintain a higher maximum quantum efficiency of PSII show less leaf damage upon infection. The fungus can establish necrotrophic or biotrophic interactions with susceptible or resistant genotypes, respectively. It is suggested that local inhibition of photosynthesis during the infection of sensitive genotypes is not balanced by a supply of energy from the tissue surrounding the infected cells as efficiently as in resistant genotypes. Thus, defence is limited, which in turn results in extensive necrotic damage. Quantitative trait loci regions, involved in the control of both PSII functioning and resistance, were located on chromosomes 4 and 6, similar to a wide range of PSII- and resistance-related genes. A meta-analysis of microarray experiments showed that the expression of genes involved in the repair and de novo assembly of PSII was maintained at a stable level. However, to establish a favourable energy balance for defence, genes encoding PSII proteins resistant to oxidative degradation were downregulated to compensate for the upregulation of defence-related pathways. Finally, we demonstrate that the structural and functional integrity of the plant is a factor required to meet the energy demand of infected cells, photosynthesis-dependent systemic signalling and defence responses.
Sujet(s)

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Ascomycota / Complexe protéique du photosystème II / Triticale Langue: En Journal: Physiol Plant Année: 2019 Type de document: Article Pays d'affiliation: Pologne

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Ascomycota / Complexe protéique du photosystème II / Triticale Langue: En Journal: Physiol Plant Année: 2019 Type de document: Article Pays d'affiliation: Pologne
...