内胚层
拟南芥
水通道蛋白
中柱周期
细胞生物学
化学
硝酸盐
开枪
突变体
野生型
侧根
生物
生物物理学
植物
生物化学
基因
有机化学
作者
Thayssa Rabelo Schley,Ting Zhu,Birgit Geist,Amandine Crabos,Daniela Dietrich,Regina Antoni Alandes,Malcolm J. Bennett,Philippe Nacry,Anton R. Schaeffner
摘要
ABSTRACT Nitrate (NO 3 − ) deficiency decreases root water uptake and root hydraulic conductance. This adaptive response is correlated with reduced abundance and activity of plasma membrane intrinsic protein (PIP) aquaporins. We therefore screened changes in the root architecture of a complete set of Arabidopsis pip loss‐of‐function mutants grown under NO 3 − deficiency to systematically approach the impact of PIPs under these conditions. NO 3 − deprivation led to attenuated responses of specific pip single mutants compared to the strongly altered LR parameters of wild‐type plants. In particular, pip1;1 exhibited a lower relative reduction in LR length and LR density, revealing that PIP1;1 represses LR development when NO 3 − is scarce. Indeed, PIP1;1 compromises root and shoot NO 3 − accumulation during early developmental stages. A fluorescent VENUS‐PIP1;1 fusion revealed that PIP1;1 is specifically repressed in the pericycle, endodermis and at the flanks of emerging LRs upon NO 3 − deficiency. Thus, LR plasticity and NO 3 − uptake are affected by an interactive mechanism involving aquaporins (PIP1;1) and nitrate accumulation during seedling development under NO 3 − ‐deficient conditions.
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