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Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
A Universal Stress Protein Involved in Oxidative Stress Is a Phosphorylation Target for Protein Kinase CIPK6
Emilio Gutiérrez-Beltrán1, José María Personat1, Fernando de la Torre1
1Instituto de Bioquímica Vegetal y Fotosíntesis, Universidad de Sevilla/Consejo Superior de Investigaciones Científicas, 41092 Sevilla, Spain.
Abstract:
Calcineurin B-like interacting protein kinases (CIPKs) decode calcium signals upon interaction with the calcium sensors calcineurin B like proteins into phosphorylation events that result into adaptation to environmental stresses. Few phosphorylation targets of CIPKs are known and therefore the molecular mechanisms underlying their downstream output responses are not fully understood. Tomato (Solanum lycopersicum) Cipk6 regulates immune and susceptible Programmed cell death in immunity transforming Ca2+ signals into reactive oxygen species (ROS) signaling. To investigate SlCipk6-induced molecular mechanisms and identify putative substrates, a yeast two-hybrid approach was carried on and a protein was identified that contained a Universal stress protein (Usp) domain present in bacteria, protozoa and plants, which we named "SlRd2". SlRd2 was an ATP-binding protein that formed homodimers in planta. SlCipk6 and SlRd2 interacted using coimmunoprecipitation and bimolecular fluorescence complementation (BiFC) assays in Nicotiana benthamiana leaves and the complex localized in the cytosol. SlCipk6 phosphorylated SlRd2 in vitro, thus defining, to our knowledge, a novel target for CIPKs. Heterologous SlRd2 overexpression in yeast conferred resistance to highly toxic LiCl, whereas SlRd2 expression in Escherichia coli UspA mutant restored bacterial viability in response to H2O2 treatment. Finally, transient expression of SlCipk6 in transgenic N benthamiana SlRd2 overexpressors resulted in reduced ROS accumulation as compared to wild-type plants. Taken together, our results establish that SlRd2, a tomato UspA, is, to our knowledge, a novel interactor and phosphorylation target of a member of the CIPK family, SlCipk6, and functionally regulates SlCipk6-mediated ROS generation.
Insights
Scientists discovered a new tomato protein, SlRd2, that interacts with and is phosphorylated by SlCipk6. This interaction regulates reactive oxygen species (ROS) generation, crucial for plant stress adaptation.
Area of Science:
- Plant molecular biology
- Biochemistry
- Plant signaling
Background:
- Calcineurin B-like interacting protein kinases (CIPKs) are crucial for decoding calcium signals and mediating environmental stress responses in plants.
- Understanding CIPK downstream targets and molecular mechanisms is vital for elucidating plant adaptation pathways.
- Tomato SlCipk6 plays a role in programmed cell death and reactive oxygen species (ROS) signaling during plant immunity.
Purpose of the Study:
- To investigate the molecular mechanisms of SlCipk6 and identify its substrates.
- To characterize a novel protein interacting with SlCipk6.
Main Methods:
- Yeast two-hybrid screening to identify interacting proteins.
- Co-immunoprecipitation and bimolecular fluorescence complementation (BiFC) assays to confirm interactions in planta.
- In vitro kinase assays to determine phosphorylation events.
- Heterologous expression in yeast and E. coli to assess protein function.
- Transient expression in Nicotiana benthamiana to study ROS accumulation.
Main Results:
- A novel ATP-binding protein, SlRd2, containing a Universal stress protein (Usp) domain, was identified as an interactor of SlCipk6.
- SlCipk6 and SlRd2 interact and SlCipk6 phosphorylates SlRd2 in vitro, identifying SlRd2 as a novel CIPK target.
- SlRd2 confers resistance to LiCl in yeast and restores H2O2 tolerance in an E. coli UspA mutant.
- SlCipk6 expression in SlRd2 overexpressors reduces ROS accumulation in Nicotiana benthamiana.
Conclusions:
- SlRd2 is a novel interactor and phosphorylation target of the tomato CIPK family member, SlCipk6.
- SlRd2 functionally regulates SlCipk6-mediated ROS generation, contributing to plant stress adaptation.
- This study elucidates a new component in the calcium-ROS signaling pathway involved in plant immunity and stress response.
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