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Updated: Jan 8, 2026

Forward Genetic Screen Using Transgenic Calcium Reporter Aequorin to Identify Novel Targets in Calcium Signaling
Published on: August 1, 2020
Subfamily I ethylene receptors are functionally conserved in calcium permeability across the green lineage
Dongsheng Yu1, Chuanli Ju1, Zebin Liu1
1College of Life Sciences, Capital Normal University, and Beijing Key Laboratory of Plant Gene Resources and Biotechnology for Carbon Reduction and Environmental Improvement, Beijing 100048, China.
Abstract:
The gaseous hormone ethylene plays a key role in regulating plant growth and stress responses. Although Ca2+ has long been implicated in ethylene signaling, the identity of molecules controlling Ca2+ permeability has remained elusive. In this study, we revealed that Arabidopsis subfamily I ethylene receptors ETR1 and ERS1, as well as their homologs across the green lineage, are Ca2+ permeable. We found that simultaneous disruption of ETR1 and ERS1 markedly attenuates ethylene-induced elevation in cytosolic Ca2+ concentrations in Arabidopsis seedlings, and that both ETR1 and ERS1 exhibit Ca2+ permeability in the Xenopus laevis oocyte system and two additional heterologous expression systems. Moreover, we showed that homologs of ETR1 from eight land plants and algal species also exhibit Ca2+ permeability, suggesting an evolutionarily conserved function. We further demonstrated that ethylene enhances the Ca2+ permeability of ETR1 and its homolog from the charophyte Klebsormidium flaccidum, and a mutation disrupting ethylene binding (Cys65Ser) abolishes the effect of ethylene. These findings uncover a previously unrecognized yet conserved role of ethylene receptors as Ca2+-permeable channels in the green lineage, with broad implications for Ca2+ signaling in plant development and environmental adaptation.
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