Weis Corina, Hildebrandt Ulrich, Hoffmann Thomas, Hemetsberger Christoph, Pfeilmeier Sebastian, König Constanze, Schwab Wilfried, Eichmann Ruth, Hückelhoven Ralph
Lehrstuhl für Phytopathologie, Technische Universität München, Emil-Ramann-Straße 2, 85354, Freising, Germany.
Julius-von-Sachs-Institut für Biowissenschaften, Lehrstuhl für Botanik II, Universität Würzburg, Julius-von-Sachs-Platz 3, 97082, Würzburg, Germany.
New Phytol. 2014 Jun;202(4):1310-1319. doi: 10.1111/nph.12759. Epub 2014 Mar 6.
Aliphatic glucosinolates function in the chemical defense of Capparales. The cytochrome P450 83A1 monooxygenase (CYP83A1) catalyzes the initial conversion of methionine-derived aldoximes to thiohydroximates in the biosynthesis of glucosinolates, and thus cyp83a1 mutants have reduced levels of aliphatic glucosinolates. Loss of CYP83A1 function leads to dramatically reduced parasitic growth of the biotrophic powdery mildew fungus Erysiphe cruciferarum on Arabidopsis thaliana. The cyp83a1 mutants support less well the germination and appressorium formation of E. cruciferarum on the leaf surface and post-penetration conidiophore formation by the fungus. By contrast, a myb28-1 myb29-1 double mutant, which totally lacks aliphatic glucosinolates, shows a wild-type level of susceptibility to E. cruciferarum. The cyp83a1 mutants also lack very-long-chain aldehydes on their leaf surface. Such aldehydes support appressorium formation by E. cruciferarum in vitro. In addition, when chemically complemented with the C26 aldehyde n-hexacosanal, cyp83a1 mutants can again support appressorium formation. The mutants further accumulate 5-methylthiopentanaldoxime, the potentially toxic substrate of CYP83A1. Loss of powdery mildew susceptibility by cyp83a1 may be explained by a reduced supply of the fungus with inductive signals from the host and an accumulation of potentially fungitoxic metabolites.
脂肪族硫代葡萄糖苷在十字花目植物的化学防御中发挥作用。细胞色素P450 83A1单加氧酶(CYP83A1)在硫代葡萄糖苷的生物合成过程中催化蛋氨酸衍生的醛肟向硫代肟酸酯的初始转化,因此cyp83a1突变体中脂肪族硫代葡萄糖苷的水平降低。CYP83A1功能的丧失导致活体营养型白粉病菌——十字花科白粉菌在拟南芥上的寄生生长显著减少。cyp83a1突变体对十字花科白粉菌在叶表面的萌发和附着胞形成以及该真菌穿透后分生孢子梗的形成支持能力较差。相比之下,完全缺乏脂肪族硫代葡萄糖苷的myb28 - 1 myb29 - 1双突变体对十字花科白粉菌的易感性表现出野生型水平。cyp83a1突变体的叶表面还缺乏极长链醛。此类醛在体外支持十字花科白粉菌附着胞的形成。此外,当用C26醛正二十六醛进行化学互补时,cyp83a1突变体又能够支持附着胞的形成。这些突变体还积累了5 - 甲基硫代戊醛肟,这是CYP83A1的潜在毒性底物。cyp83a1对白粉菌易感性的丧失可能是由于宿主向真菌提供的诱导信号减少以及潜在的真菌毒性代谢产物的积累所致。