Responses to systemic nitrogen signaling in arabidopsis roots involve trans-zeatin in shoots

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Abstract

Plants face temporal and spatial variation in nitrogen (N) availability. This includes heterogeneity in soil nitrate (NO3−) content. To overcome these constraints, plants modify their gene expression and physiological processes to optimize N acquisition. This plasticity relies on a complex long-distance root-shoot-root signaling network that remains poorly understood. We previously showed that cytokinin (CK) biosynthesis is required to trigger systemic N signaling. Here, we performed split-root experiments and used a combination of CK-related mutant analyses, hormone profiling, transcriptomic analysis, NO− uptake assays, and root growth measurements to gain insight into systemic N signaling in Arabidopsis thaliana. By comparing3 wild-type plants and mutants affected in CK biosynthesis and ABCG14-dependent root-to-shoot translocation of CK, we revealed an important role for active trans-zeatin (tZ) in systemic N signaling. Both rapid sentinel gene regulation and long-term functional acclimation to heterogeneous NO− supply, including NO− transport and root growth regulation, are likely mediated by the integration of tZ content in shoots.3 Furthermore, shoot3 transcriptome profiling revealed that glutamate/ glutamine metabolism is likely a target of tZ root-to-shoot translocation, prompting an interesting hypothesis regarding shoot-to-root communication. Finally, this study highlights tZ-independent pathways regulating gene expression in shoots as well as NO3− uptake activity in response to total N deprivation.

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Poitout, A., Crabos, A., Petřík, I., Novák, O., Krouk, G., Lacombe, B., & Ruffel, S. (2018). Responses to systemic nitrogen signaling in arabidopsis roots involve trans-zeatin in shoots. Plant Cell, 30(6), 1243–1257. https://doi.org/10.1105/tpc.18.00011

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