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Updated: Sep 9, 2025

Forward Genetic Screen Using Transgenic Calcium Reporter Aequorin to Identify Novel Targets in Calcium Signaling
Published on: August 1, 2020
Sense and sensitivity - decoding calcium signalling across cellular, autocrine, paracrine and endocrine pathways in
Sarah Lederer1, Anja Liese1, Justin Lee1
1Department for Biochemistry of Plant Interactions, Leibniz Institute of Plant Biochemistry, Halle (Saale), Germany.
Abstract:
Calcium (Ca2+) signalling plays a central role in plant immunity, as underscored by recent findings showing that many disease resistance mechanisms result in formation of Ca2+-permeable pores, and that optogenetic activation of Ca2+ influx is sufficient to trigger immune responses. This review emphasizes on Ca2+ decoding, i.e. how diverse intracellular proteins interpret Ca2+ signals to drive cellular reactions. States of "Ca2+ responsiveness" - defined by the distinct sensitivities of various decoders and additional sensitization mechanisms - contribute to the regulation of immunity, possibly including the mutual potentiation of pattern- and effector-triggered immunity pathways. Additionally, the "PRIMER-bystander" model of immune signalling is interpreted within this decoding framework. Here, infected cells are proposed to enter a primed (PRIMER) immune state through strong Ca2+ signals derived from resistosome pores, while adjacent bystander cells respond to spreading signalling molecules from their neighbours. Through this spatial arrangement, coordination is achieved between cell-autonomous (autocrine) responses and non-autonomous (paracrine or endocrine) signalling, allowing robust immune propagation across plant tissues. By framing plant immunity through this Ca2+ "sense and sensitivity" paradigm, insights are provided into immune system robustness, and potential targets may be identified for future development of disease-resistant, climate-resilient crops.
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