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1.
New Phytol ; 2024 Aug 26.
Artículo en Inglés | MEDLINE | ID: mdl-39187921

RESUMEN

In Arabidopsis, the enzymatically active lysin motif-containing receptor-like kinase (LysM-RLK) CHITIN ELICITOR RECEPTOR KINASE 1 (CERK1) and the pseudokinases LYSIN MOTIF-CONTAINING RECEPTOR-LIKE KINASE 5 (LYK5) and LYK4 are the core components of the canonical chitin receptor complex. CERK1 dimerizes and autophosphorylates upon chitin binding, resulting in activation of chitin signaling. In this study, we clarified and further elucidated the individual contributions of LYK4 and LYK5 to chitin-dependent signaling using mutant (combination)s and stably transformed Arabidopsis plants expressing fluorescence-tagged LYK5 and LYK4 variants from their endogenous promoters. Our analyses revealed that LYK5 interacts with CERK1 upon chitin treatment, independently of LYK4 and vice versa. We show that chitin-induced autophosphorylation of CERK1 is predominantly dependent on LYK5, whereas chitin-triggered ROS generation is almost exclusively mediated by LYK4. This suggests specific signaling functions of these two co-receptor proteins apart from their redundant function in mitogen-activated protein kinase (MAPK) signaling and transcriptional reprogramming. Moreover, we demonstrate that LYK5 is subject to chitin-induced and CERK1-dependent ubiquitination, which serves as a signal for chitin-induced internalization of LYK5. Our experiments provide evidence that a combination of phosphorylation and ubiquitination events controls LYK5 removal from the plasma membrane via endocytosis, which likely contributes to receptor complex desensitization.

2.
J Exp Bot ; 75(3): 746-759, 2024 Feb 02.
Artículo en Inglés | MEDLINE | ID: mdl-37878766

RESUMEN

Elucidating protein-protein interactions is crucial for our understanding of molecular processes within living organisms. Microscopy-based techniques can detect protein-protein interactions in vivo at the single-cell level and provide information on their subcellular location. Fluorescence lifetime imaging microscopy (FLIM)-Förster resonance energy transfer (FRET) is one of the most robust imaging approaches, but it is still very challenging to apply this method to proteins which are expressed under native conditions. Here we describe a novel combination of fluorescence proteins (FPs), mCitrine and mScarlet-I, which is ideally suited for FLIM-FRET studies of low abundance proteins expressed from their native promoters in stably transformed plants. The donor mCitrine displays excellent brightness in planta, near-mono-exponential fluorescence decay, and a comparatively long fluorescence lifetime. Moreover, the FRET pair has a good spectral overlap and a large Förster radius. This allowed us to detect constitutive as well as ligand-induced interaction of the Arabidopsis chitin receptor components CERK1 and LYK5 in a set of proof-of-principle experiments. Due to the good brightness of the acceptor mScarlet-I, the FP combination can be readily utilized for co-localization studies. The FP pair is also suitable for co-immunoprecipitation experiments and western blotting, facilitating a multi-method approach for studying and confirming protein-protein interactions.


Asunto(s)
Transferencia Resonante de Energía de Fluorescencia , Transferencia Resonante de Energía de Fluorescencia/métodos , Proteínas Fluorescentes Verdes/metabolismo , Microscopía Fluorescente/métodos
3.
Stress Biol ; 4(1): 20, 2024 Mar 20.
Artículo en Inglés | MEDLINE | ID: mdl-38507026

RESUMEN

The Arabidopsis pi4kß1,2 mutant is mutated in the phosphatidylinositol 4-kinase (PI4K) ß1 and PI4Kß2 enzymes which are involved in the biosynthesis of phosphatidylinositol 4-phosphate (PI4P), a minor membrane lipid with important signaling roles. pi4kß1,2 plants display autoimmunity and shorter roots. Though the pi4kß1,2 mutant has been extensively characterized, the source of its autoimmunity remains largely unknown. In this study, through a genetic suppressor screen, we identified multiple partial loss-of-function alleles of signal peptide peptidase (spp) that can suppress all the defects of pi4kß1,2. SPP is an intramembrane cleaving aspartic protease. Interestingly, pi4kß1,2 plants display enhanced ER stress response and mutations in SPP can suppress such phenotype. Furthermore, reduced ER stress responses were observed in the spp single mutants. Overall, our study reveals a previously unknown function of PI4Kß and SPP in ER stress and plant immunity.

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