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The OsSAPK2-OsNAC4 module couples water stress signaling with cadmium accumulation in rice

  • Xiao Fang Zhu
  • , Fang Wei Yu
  • , Chang Zhao Chen
  • , Su Li
  • , Lin Zhou Huang
  • , Shen Yun Wang
  • , Xiao Zheng Yang
  • , Lu Zheng
  • , Qiang Zhang
  • , Xian Jiao Guan
  • , Xiao Lin He
  • , Zhong Hua Chen
  • , Da Li Zeng
  • , Fang Jie Zhao
  • , Ren Fang Shen
  • Chinese Academy of Sciences
  • University of Chinese Academy of Sciences
  • Jiangsu Academy of Agricultural Sciences
  • Zhejiang Agriculture and Forestry University
  • Chinese Academy of Agricultural Sciences
  • Jiangxi Academy of Agricultural Sciences
  • Jiangxi Provincial Agricultural Technology Extension Center
  • Jiangxi Agricultural University
  • Adelaide University
  • Nanjing Agricultural University

Research output: Contribution to journalArticlepeer-review

Abstract

Water-saving cultivation practices, such as intermittent irrigation, are essential for sustainable rice production but often exacerbate grain cadmium (Cd) accumulation due to aerobic-soil-induced increases in Cd bioavailability. Uncoupling this trade-off is a critical challenge for global food safety. Here, we identify the transcription factor OsNAC4 as a key positive regulator of Cd uptake. Loss-of-function osnac4 mutants significantly reduce grain Cd accumulation by 30%–50% across diverse genetic backgrounds without compromising grain yield or agronomic traits. Mechanistically, we reveal that the drought/abscisic acid (ABA)-activated kinase OsSAPK2 interacts with and phosphorylates OsNAC4, thereby stabilizing the protein and enhancing its transcriptional activation of the Cd transporter gene OsNRAMP1 . This signaling cascade establishes a direct molecular link whereby environmental water stress signaling cascades effectively “hijack” the basal Cd uptake machinery. Crucially, multi-location field trials demonstrate that osnac4 mutation effectively suppresses the aerobic-induced Cd elevation typically observed under water-saving regimes. Our findings elucidate the molecular mechanism underlying the conflict between water conservation and Cd accumulation, providing a robust genetic resource for breeding safe, climate-resilient rice varieties suitable for water-limited agriculture.

Original languageEnglish
Pages (from-to)3608-3622.e6
Number of pages22
JournalCurrent Biology
Volume36
Issue number14
DOIs
Publication statusPublished - 20 Jul 2026
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 2 - Zero Hunger
    SDG 2 Zero Hunger
  2. SDG 6 - Clean Water and Sanitation
    SDG 6 Clean Water and Sanitation
  3. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • low-cadmium breeding
  • OsSAPK2–OsNAC4–OsNRAMP1 module
  • protein phosphorylation
  • rice
  • water management

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