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Nitric Oxide Negatively Regulates Gibberellin Signaling to Coordinate Growth and Salt Tolerance in Arabidopsis
Lichao Chen, Shuhao Sun, Chun-Peng Song, Jian-Min Zhou, Jiayang Li, Jianru Zuo
Journal of Genetics and Genomics
Abstract
In response to dynamically altered environments, plants must finely coordinate the balance between growth and stress responses for their survival. However, the underpinning regulatory mechanisms remain largely elusive. The phytohormone gibberellin promotes growth via a derepression mechanism by proteasomal degradation of the DELLA transcription repressors. Conversely, the stress-induced burst of nitric oxide (NO) enhances stress tolerance, largely relaying on NO-mediated S-nitrosylation, a redox-based posttranslational modification. Here, we show that S-nitrosylation of Cys-374 in the Arabidopsis RGA protein, a key member of DELLAs, inhibits its interaction with the F-box protein SLY1, thereby preventing its proteasomal degradation under salinity condition. The accumulation of RGA consequently retards growth but enhances salt tolerance. We propose that NO negatively regulates gibberellin signaling via S-nitrosylation of RGA to coordinate the balance of growth and stress responses when challenged by adverse environments.
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论文编号: |
DOI:10.1016/j.jgg.2022.02.023 |
论文题目: |
Nitric Oxide Negatively Regulates Gibberellin Signaling to Coordinate Growth and Salt Tolerance in Arabidopsis |
英文论文题目: |
Nitric Oxide Negatively Regulates Gibberellin Signaling to Coordinate Growth and Salt Tolerance in Arabidopsis |
第一作者: |
Lichao Chen, Shuhao Sun, Chun-Peng Song, Jian-Min Zhou, Jiayang Li, Jianru Zuo |
英文第一作者: |
Lichao Chen, Shuhao Sun, Chun-Peng Song, Jian-Min Zhou, Jiayang Li, Jianru Zuo |
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2022-03-10 |
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摘要: |
In response to dynamically altered environments, plants must finely coordinate the balance between growth and stress responses for their survival. However, the underpinning regulatory mechanisms remain largely elusive. The phytohormone gibberellin promotes growth via a derepression mechanism by proteasomal degradation of the DELLA transcription repressors. Conversely, the stress-induced burst of nitric oxide (NO) enhances stress tolerance, largely relaying on NO-mediated S-nitrosylation, a redox-based posttranslational modification. Here, we show that S-nitrosylation of Cys-374 in the Arabidopsis RGA protein, a key member of DELLAs, inhibits its interaction with the F-box protein SLY1, thereby preventing its proteasomal degradation under salinity condition. The accumulation of RGA consequently retards growth but enhances salt tolerance. We propose that NO negatively regulates gibberellin signaling via S-nitrosylation of RGA to coordinate the balance of growth and stress responses when challenged by adverse environments. |
英文摘要: |
In response to dynamically altered environments, plants must finely coordinate the balance between growth and stress responses for their survival. However, the underpinning regulatory mechanisms remain largely elusive. The phytohormone gibberellin promotes growth via a derepression mechanism by proteasomal degradation of the DELLA transcription repressors. Conversely, the stress-induced burst of nitric oxide (NO) enhances stress tolerance, largely relaying on NO-mediated S-nitrosylation, a redox-based posttranslational modification. Here, we show that S-nitrosylation of Cys-374 in the Arabidopsis RGA protein, a key member of DELLAs, inhibits its interaction with the F-box protein SLY1, thereby preventing its proteasomal degradation under salinity condition. The accumulation of RGA consequently retards growth but enhances salt tolerance. We propose that NO negatively regulates gibberellin signaling via S-nitrosylation of RGA to coordinate the balance of growth and stress responses when challenged by adverse environments. |
刊物名称: |
Journal of Genetics and Genomics |
英文刊物名称: |
Journal of Genetics and Genomics |
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Lichao Chen, Shuhao Sun, Chun-Peng Song, Jian-Min Zhou, Jiayang Li, Jianru Zuo. Nitric Oxide Negatively Regulates Gibberellin Signaling to Coordinate Growth and Salt Tolerance in Arabidopsis. Journal of Genetics and Genomics. DOI:10.1016/j.jgg.2022.02.023 |
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