TY - JOUR
T1 - Conserved requirement for a plant host cell protein in powdery mildew pathogenesis
AU - Consonni, Chiara
AU - Humphry, Matthew E.
AU - Hartmann, H. Andreas
AU - Livaja, Maren
AU - Durner, Jörg
AU - Westphal, Lore
AU - Vogel, John
AU - Lipka, Volker
AU - Kemmerling, Birgit
AU - Schulze-Lefert, Paul
AU - Somerville, Shauna C.
AU - Panstruga, Ralph
N1 - Funding Information:
We thank T. Gjetting (Biotechnology Research and Innovation Centre, Denmark) and J. Shrager (Carnegie Institution) for helpful discussions. We acknowledge the Salk Institute, The Sainsbury Laboratory, Syngenta and the Arabidopsis Biological Resource Center for providing T-DNA/transposon insertion lines and some of the mutant lines. This work was supported by grants from the Max-Planck Society and the Deutsche Forschungsgemeinschaft (PA861/4; to R.P.); grants from the US National Science Foundation (0114783 and 0519898) and the Carnegie Institution (to S.C.S.) and a US National Institutes of Health (NIH) fellowship (FG32 GN19499-01 to J.V.).
PY - 2006/6
Y1 - 2006/6
N2 - In the fungal phylum Ascomycota, the ability to cause disease in plants and animals has been gained and lost repeatedly during phylogenesis. In monocotyledonous barley, loss-of-function mlo alleles result in effective immunity against the Ascomycete Blumeria graminis f. sp. hordei, the causal agent of powdery mildew disease. However, mlo-based disease resistance has been considered a barley-specific phenomenon to date. Here, we demonstrate a conserved requirement for MLO proteins in powdery mildew pathogenesis in the dicotyledonous plant species Arabidopsis thaliana. Epistasis analysis showed that mlo resistance in A. thaliana does not involve the signaling molecules ethylene, jasmonic acid or salicylic acid, but requires a syntaxin, glycosyl hydrolase and ABC transporter. These findings imply that a common host cell entry mechanism of powdery mildew fungi evolved once and at least 200 million years ago, suggesting that within the Erysiphales (powdery mildews) the ability to cause disease has been a stable trait throughout phylogenesis.
AB - In the fungal phylum Ascomycota, the ability to cause disease in plants and animals has been gained and lost repeatedly during phylogenesis. In monocotyledonous barley, loss-of-function mlo alleles result in effective immunity against the Ascomycete Blumeria graminis f. sp. hordei, the causal agent of powdery mildew disease. However, mlo-based disease resistance has been considered a barley-specific phenomenon to date. Here, we demonstrate a conserved requirement for MLO proteins in powdery mildew pathogenesis in the dicotyledonous plant species Arabidopsis thaliana. Epistasis analysis showed that mlo resistance in A. thaliana does not involve the signaling molecules ethylene, jasmonic acid or salicylic acid, but requires a syntaxin, glycosyl hydrolase and ABC transporter. These findings imply that a common host cell entry mechanism of powdery mildew fungi evolved once and at least 200 million years ago, suggesting that within the Erysiphales (powdery mildews) the ability to cause disease has been a stable trait throughout phylogenesis.
UR - https://www.scopus.com/pages/publications/33745243363
U2 - 10.1038/ng1806
DO - 10.1038/ng1806
M3 - Article
C2 - 16732289
AN - SCOPUS:33745243363
SN - 1061-4036
VL - 38
SP - 716
EP - 720
JO - Nature Genetics
JF - Nature Genetics
IS - 6
ER -