INOSITOL (1,3,4) TRIPHOSPHATE 5/6 KINASE1-dependent inositol polyphosphates regulate auxin responses in Arabidopsis

Author:

Laha Nargis Parvin1ORCID,Giehl Ricardo F H2ORCID,Riemer Esther1ORCID,Qiu Danye3ORCID,Pullagurla Naga Jyothi4ORCID,Schneider Robin1ORCID,Dhir Yashika Walia5ORCID,Yadav Ranjana4ORCID,Mihiret Yeshambel Emewodih1ORCID,Gaugler Philipp1ORCID,Gaugler Verena1ORCID,Mao Haibin6,Zheng Ning6ORCID,von Wirén Nicolaus2ORCID,Saiardi Adolfo7ORCID,Bhattacharjee Saikat5ORCID,Jessen Henning J3ORCID,Laha Debabrata4,Schaaf Gabriel1ORCID

Affiliation:

1. Department of Plant Nutrition, Institute of Crop Science and Resource Conservation, Rheinische Friedrich-Wilhelms-Universität Bonn , Bonn 53115, Germany

2. Department of Physiology & Cell Biology, Leibniz-Institute of Plant Genetics and Crop Plant Research , Gatersleben 06466, Germany

3. Department of Chemistry and Pharmacy & CIBSS–The Center for Biological Signalling Studies, University of Freiburg , Freiburg 79104, Germany

4. Department of Biochemistry, Indian Institute of Science , Bengaluru 560012, Karnataka, India

5. Laboratory of Signal Transduction and Plant Resistance, Regional Centre for Biotechnology, NCR-Biotech Science Cluster , Faridabad 121001, Haryana, India

6. Department of Pharmacology, Howard Hughes Medical Institute, University of Washington , Seattle, Washington 98195, USA

7. Medical Research Council Laboratory for Molecular Cell Biology (MRC-LMCB), University College London , London WC1E 6BT, UK

Abstract

Abstract The combinatorial phosphorylation of myo-inositol results in the generation of different inositol phosphates (InsPs), of which phytic acid (InsP6) is the most abundant species in eukaryotes. InsP6 is also an important precursor of the higher phosphorylated inositol pyrophosphates (PP-InsPs), such as InsP7 and InsP8, which are characterized by a diphosphate moiety and are also ubiquitously found in eukaryotic cells. While PP-InsPs regulate various cellular processes in animals and yeast, their biosynthesis and functions in plants has remained largely elusive because plant genomes do not encode canonical InsP6 kinases. Recent work has shown that Arabidopsis (Arabidopsis thaliana) INOSITOL (1,3,4) TRIPHOSPHATE 5/6 KINASE1 (ITPK1) and ITPK2 display in vitro InsP6 kinase activity and that, in planta, ITPK1 stimulates 5-InsP7 and InsP8 synthesis and regulates phosphate starvation responses. Here we report a critical role of ITPK1 in auxin-related processes that is independent of the ITPK1-controlled regulation of phosphate starvation responses. Those processes include primary root elongation, root hair development, leaf venation, thermomorphogenic and gravitropic responses, and sensitivity to exogenously applied auxin. We found that the recombinant auxin receptor complex, consisting of the F-Box protein TRANSPORT INHIBITOR RESPONSE1 (TIR1), ARABIDOPSIS SKP1 HOMOLOG 1 (ASK1), and the transcriptional repressor INDOLE-3-ACETIC ACID INDUCIBLE 7 (IAA7), binds to anionic inositol polyphosphates with high affinity. We further identified a physical interaction between ITPK1 and TIR1, suggesting a localized production of 5-InsP7, or another ITPK1-dependent InsP/PP-InsP isomer, to activate the auxin receptor complex. Finally, we demonstrate that ITPK1 and ITPK2 function redundantly to control auxin responses, as deduced from the auxin-insensitive phenotypes of itpk1 itpk2 double mutant plants. Our findings expand the mechanistic understanding of auxin perception and suggest that distinct inositol polyphosphates generated near auxin receptors help to fine-tune auxin sensitivity in plants.

Funder

Deutsche Forschungsgemeinschaft

Research Training Group

DBT

Medical Research Council

Howard Hughes Medical Institute Investigator

Department of Biotechnology

HGK-Innovative Young Biotechnologist Award

Science and Engineering Research Board

Indian Institute of Science start-up fund

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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