Multi-scale analysis provides insights into the roles of ureide permeases in wheat nitrogen use efficiency

Author:

Meng Xiaodan1234,Zhang Zhiyong14,Wang Huali1,Nai Furong1,Wei Yihao14,Li Yongchun13,Wang Xiaochun14,Ma Xinming4,Tegeder Mechthild2ORCID

Affiliation:

1. State Key Laboratory of Wheat and Maize Crop Science, Henan Agricultural University , Zhengzhou, 450046 , China

2. School of Biological Sciences, Washington State University , Pullman, WA 99164 , USA

3. National Engineering Research Centre for Wheat, Henan Technology Innovation Centre of Wheat, Henan Agricultural University , Zhengzhou, 450046 , China

4. Collaborative Innovation Center of Henan Grain Crops, College of Agronomy, Henan Agricultural University , Zhengzhou, 450046 , China

Abstract

Abstract The ureides allantoin and allantoate serve as nitrogen (N) transport compounds in plants, and more recently, allantoin has been shown to play a role in signaling. In planta, tissue ureide levels are controlled by the activity of enzymes of the purine degradation pathway and by ureide transporters called ureide permeases (UPS). Little is known about the physiological function of UPS proteins in crop plants, and especially in monocotyledon species. Here, we identified 13 TaUPS genes in the wheat (Triticum aestivum L.) genome. Phylogenetic and genome location analyses revealed a close relationship of wheat UPSs to orthologues in other grasses and a division into TaUPS1, TaUPS2.1, and TaUPS2.2 groups, each consisting of three homeologs, with a total of four tandem duplications. Expression, localization, and biochemical analyses resolved spatio-temporal expression patterns of TaUPS genes, transporter localization at the plasma membrane, and a role for TaUPS2.1 proteins in cellular import of ureides and phloem and seed loading. In addition, positive correlations between TaUPS1 and TaUPS2.1 transcripts and ureide levels were found. Together the data support that TaUPSs function in regulating ureide pools at source and sink, along with source-to-sink transport. Moreover, comparative studies between wheat cultivars grown at low and high N strengthened a role for TaUPS1 and TaUPS2.1 transporters in efficient N use and in controlling primary metabolism. Co-expression, protein–protein interaction, and haplotype analyses further support TaUPS involvement in N partitioning, N use efficiency, and domestication. Overall, this work provides a new understanding on UPS transporters in grasses as well as insights for breeding resilient wheat varieties with improved N use efficiency.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Natural Science Foundation of Henan Province

National Institute of Food and Agriculture

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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