Spatio-Temporal Transcript Profiling of Rice Roots and Shoots in Response to Phosphate Starvation and Recovery

Author:

Secco David1,Jabnoune Mehdi2,Walker Hayden1,Shou Huixia34,Wu Ping34,Poirier Yves2,Whelan James145

Affiliation:

1. Australian Research Council Centre of Excellence in Plant Energy Biology, University of Western Australia, Crawley 6009, Australia

2. Department of Plant Molecular Biology, Biophore Building, University of Lausanne, Lausanne CH-1015, Switzerland

3. State Key Laboratory of Plant Physiology and Biochemistry College of Life Sciences, Zhejiang University, Hangzhou 310058, China

4. Joint Research Laboratory in Genomics and Nutriomics, Zhejiang University, Hangzhou 310058, China

5. Department of Botany, School of Life Science, La Trobe University, Bundoora 3086, Victoria, Australia

Abstract

Abstract Using rice (Oryza sativa) as a model crop species, we performed an in-depth temporal transcriptome analysis, covering the early and late stages of Pi deprivation as well as Pi recovery in roots and shoots, using next-generation sequencing. Analyses of 126 paired-end RNA sequencing libraries, spanning nine time points, provided a comprehensive overview of the dynamic responses of rice to Pi stress. Differentially expressed genes were grouped into eight sets based on their responses to Pi starvation and recovery, enabling the complex signaling pathways involved in Pi homeostasis to be untangled. A reference annotation-based transcript assembly was also generated, identifying 438 unannotated loci that were differentially expressed under Pi starvation. Several genes also showed induction of unannotated splice isoforms under Pi starvation. Among these, PHOSPHATE2 (PHO2), a key regulator of Pi homeostasis, displayed a Pi starvation–induced isoform, which was associated with increased translation activity. In addition, microRNA (miRNA) expression profiles after long-term Pi starvation in roots and shoots were assessed, identifying 20 miRNA families that were not previously associated with Pi starvation, such as miR6250. In this article, we present a comprehensive spatio-temporal transcriptome analysis of plant responses to Pi stress, revealing a large number of potential key regulators of Pi homeostasis in plants.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

Reference71 articles.

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