Nature Communications · 2024 · 22 citations · 33 references
Plants initiate specific defense responses by recognizing conserved epitope peptides within the flagellin proteins derived from bacteria. Proteolytic cleavage of epitope peptides from flagellin by plant apoplastic proteases is thought to be crucial for the perception of the epitope by the plant receptor. However, the identity of the plant proteases involved in this process remains unknown. Here, we establish an efficient identification system for the target proteases in Arabidopsis apoplastic fluid; the method employs native two-dimensional electrophoresis followed by an in-gel proteolytic assay using a fluorescence-quenching peptide substrate. We designed a substrate to specifically detect proteolytic activity at the C-terminus of the flg22 epitope in flagellin and identified two plant subtilases, SBT5.2 and SBT1.7, as specific proteases responsible for the C-terminal cleavage of flg22. In the apoplastic fluid of Arabidopsis mutant plants deficient in these two proteases, we observe a decrease in the C-terminal cleavage of the flg22 domain from flagellin, leading to a decrease in the efficiency of flg22 epitope liberation. Consequently, defensive reactive oxygen species (ROS) production is delayed in sbt5.2 sbt1.7 double-mutant leaf disks compared to wild type following flagellin exposure.
33
SignalP 6.0 predicts all five types of signal peptides using protein language models
Felix Teufel, José Juan Almagro Armenteros, Alexander Rosenberg Johansen et al. · Repository for Publications and Research Data (ETH Zurich) · 2022 · 2.1K citations · Full text
Protein Secretion, Signal Recognition, Molecular Biology +21
A flagellin-induced complex of the receptor FLS2 and BAK1 initiates plant defence
Delphine Chinchilla, Cyril Zipfel, Silke Robatzek et al. · Nature · 2007 · 1.9K citations
Bacterial disease resistance in Arabidopsis through flagellin perception
Cyril Zipfel, Silke Robatzek, Lionel Navarro et al. · Nature · 2004 · 1.8K citations
Neil D. Rawlings, A. John Barrett, Paul D. Thomas et al. · Nucleic Acids Research · 2017 · 1.7K citations · Full text