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September 28, 2025New Phytologist5 citationsOpen Access

Rapid induction of NH4+ efflux in rice roots under high‐ammonium stress and its association with varietal differences in ammonium tolerance and ammonium‐utilization efficiency

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DDDong‐Wei DiTLTingting LiJWJingjing Wu

Key Points

  • NH4+ efflux serves as a critical response mechanism under ammonium toxicity, influencing nitrogen-use efficiency.
  • A study of 99 rice cultivars shows a significant correlation between NH4+ efflux and both ammonium tolerance and utilization efficiency.
  • Pharmacological profiling indicates acute NH4+ stress triggers immediate efflux, likely through aquaporins and potassium channels.
  • Inhibition of efflux with probenecid enhances NH4+ uptake by 23.65% in high-efflux cultivars, suggesting practical applications for nutrient management.

Abstract

Summary Ammonium (NH 4 + ) efflux is a pivotal mechanism underlying root responses to NH 4 + toxicity, yet critical questions have remained unresolved, such as on the speed of onset and rectification of the NH 4 + ‐efflux response to NH 4 + stress, its association with ammonium‐use efficiency (AUE) and NH 4 + tolerance, and the identity of the transporter proteins or channel types mediating efflux. Here we survey the current state of the literature on the topic and combine the survey with new experiments in the leading crop species rice. We provide a pharmacological profile of NH 4 + fluxes under transient high‐NH 4 + treatments in rice‐root protoplasts and demonstrate that acute NH 4 + stress induces immediate and sustained NH 4 + efflux, likely mediated by aquaporins, ATP‐Binding Cassette transporters, and potassium channels. We furthermore provide a screen of 99 cultivars that reveals a strong negative correlation ( P < 0.01) between NH 4 + efflux and both root‐NH 4 + tolerance and AUE, identifying efflux as a critical constraint on nitrogen‐use efficiency. Probenecid‐mediated inhibition of efflux is shown to boost NH 4 + uptake by 23.65% in high‐efflux cultivars, underscoring the regulatory role of NH 4 + efflux. Our findings shine new light on plant adaptation to NH 4 + toxicity and establish a molecular framework for improving nitrogen‐use‐efficiency of crops through modulation of NH 4 + ‐efflux pathways.

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Cite This Study

Di et al. (2025) studied this question.

synapsesocial.com/papers/68d9052541e1c178a14f5482https://doi.org/10.1111/nph.70590
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