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Updated: Feb 7, 2026

Utilizing the Ethylene-releasing Compound, 2-Chloroethylphosphonic Acid, as a Tool to Study Ethylene Response in Bacteria
Published on: November 10, 2016
Rice ethylene receptors OsERS1/2 function as Ca2+-permeable channels mediating calcium-dependent antagonism of
Zhangli Ye1, Zijian Yang1, Changyuan Li1
1Beijing Key Laboratory of Plant Gene Resources and Biotechnology for Carbon Reduction and Environmental Improvement, and College of Life Sciences, Capital Normal University, Beijing 100048, China.
Abstract:
Rice (Oryza sativa), a staple food for over half of the global population and a model cereal, has evolved unique physiological mechanisms to adapt to its semi-aquatic environment, in which root development is critical for nutrient acquisition, stress tolerance, and grain yield. Ethylene, a gaseous phytohormone, plays a key role in regulating root elongation in rice. Calcium (Ca2+) is an essential nutrient and universal second messenger that mediates diverse physiological processes in plants. However, the molecular link between ethylene signaling and Ca2+ dynamics in rice particularly in the regulation of root growth that impacts agricultural productivity remains unclear. Here, we identify a Ca2+-dependent antagonism of the ethylene-induced response (CAER) that specifically modulates root elongation in rice. Notably, we demonstrate that ethylene receptors OsERS1/2 function as Ca2+-permeable channels. OsERS1, in particular, exhibits permeability to both monovalent and divalent cations. Mutagenesis analyses further reveal that OsERS1 channel activity depends on homomeric assembly sites (Cys4 and Cys6), rather than on its ethylene-binding site (Cys65), indicating a clear functional decoupling between receptor signaling and ion channel activity. Loss-of-function mutants Osers1 and Osers2 fail to exhibit the CAER phenotype observed in wild-type plants, confirming that this Ca2+-dependent regulatory mechanism requires OsERS1/2. Collectively, these findings uncover an unexpected ion channel function of ethylene receptors, redefining their molecular identity beyond canonical hormone signaling receptors. Moreover, our work introduces the concept of "hormone receptor-type ion channels (HRICs)" as a new functional category, expanding our understanding of how plant hormones transduce signals at the molecular level.
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