水稻根系形态和生理对铵态氮的协调响应

Xiangyu Wu, Xiaoxiao Xie, Shan Yang, Qianyu Yin, Huairong Cao, Xiaonan Dong, Jing Hui, Zhi Liu, Zhongtao Jia, Chuanzao Mao, Lixing Yuan
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引用次数: 4

摘要

植物的最佳生长发育依赖于根系的形态和生理适应,以适应土壤中分布不均的氮素。水稻主要生长在以铵(NH4+)为主要氮源的水稻土中。虽然根的NH4+觅食行为可能与农艺学有关,但其潜在机制仍不清楚。本研究表明,NH4+供应可瞬间增强高亲和力的NH4+吸收,刺激侧根(LR)分支和伸长。这些协同的生理和形态反应与NH4+诱导的根中NH4+转运体OsAMT1;1和OsAMT1;2的表达密切相关。两个独立的双突变体(dko)在OsAMT1;1和OsAMT1;2中存在缺陷,无法诱导NH4+摄取和刺激LR形成,这表明OsAMT1赋予了依赖底物的根NH4+觅食能力。在dko植物中,NH4+不能激活OsPIN2的表达,而OsPIN2突变体(lra1)在NH4+触发的LR分支中表现出强烈的减少,这表明生长素途径可能参与了osamt1s依赖性的LR分支。重要的是,在波动的NH4+供应下,依赖osamt1s的根系NH4+觅食行为促进了水稻的生长和氮的获取。这些结果揭示了OsAMT1s在协同根系形态和生理过程中的重要作用,允许在波动的氮有效性下有效的根系NH4+觅食以优化氮捕获。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
OsAMT1;1 and OsAMT1;2 Coordinate Root Morphological and Physiological Responses to Ammonium for Efficient Nitrogen Foraging in Rice.

Optimal plant growth and development rely on morphological and physiological adaptions of the root system to forage heterogeneously distributed nitrogen (N) in soils. Rice grows mainly in the paddy soil where ammonium (NH4+) is present as the major N source. Although root NH4+ foraging behaviors are expected to be agronomically relevant, the underlying mechanism remains largely unknown. Here, we showed that NH4+ supply transiently enhanced the high-affinity NH4+ uptake and stimulated lateral root (LR) branching and elongation. These synergistic physiological and morphological responses were closely related to NH4+-induced expression of NH4+ transporters OsAMT1;1 and OsAMT1;2 in roots. The two independent double mutants (dko) defective in OsAMT1;1 and OsAMT1;2 failed to induce NH4+ uptake and stimulate LR formation, suggesting that OsAMT1s conferred the substrate-dependent root NH4+ foraging. In dko plants, NH4+ was unable to activate the expression of OsPIN2, and the OsPIN2 mutant (lra1) exhibited a strong reduction in NH4+-triggered LR branching, suggesting that the auxin pathway was likely involved in OsAMT1s-dependent LR branching. Importantly, OsAMT1s-dependent root NH4+ foraging behaviors facilitated rice growth and N acquisition under fluctuating NH4+ supply. These results revealed an essential role of OsAMT1s in synergizing root morphological and physiological processes, allowing for efficient root NH4+ foraging to optimize N capture under fluctuating N availabilities.

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