Literature DB >> 31419530

Inositol Pyrophosphate InsP8 Acts as an Intracellular Phosphate Signal in Arabidopsis.

Jinsong Dong1, Guojie Ma2, Liqian Sui1, Mengwei Wei3, Viswanathan Satheesh1, Ruyue Zhang3, Shenghong Ge3, Jinkai Li3, Tong-En Zhang3, Christopher Wittwer4, Henning J Jessen5, Huiming Zhang1, Guo-Yong An6, Dai-Yin Chao7, Dong Liu8, Mingguang Lei9.   

Abstract

The maintenance of cellular phosphate (Pi) homeostasis is of great importance in living organisms. The SPX domain-containing protein 1 (SPX1) proteins from both Arabidopsis and rice have been proposed to act as sensors of Pi status. The molecular signal indicating the cellular Pi status and regulating Pi homeostasis in plants, however, remains to be identified, as Pi itself does not bind to the SPX domain. Here, we report the identification of the inositol pyrophosphate InsP8 as a signaling molecule that regulates Pi homeostasis in Arabidopsis. Polyacrylamide gel electrophoresis profiling of InsPs revealed that InsP8 level positively correlates with cellular Pi concentration. We demonstrated that the homologs of diphosphoinositol pentakisphosphate kinase (PPIP5K), VIH1 and VIH2, function redundantly to synthesize InsP8, and that the vih1 vih2 double mutant overaccumulates Pi. SPX1 directly interacts with PHR1, the central regulator of Pi starvation responses, to inhibit its function under Pi-replete conditions. However, this interaction is compromised in the vih1 vih2 double mutant, resulting in the constitutive induction of Pi starvation-induced genes, indicating that plant cells cannot sense cellular Pi status without InsP8. Furthermore, we showed that InsP8 could directly bind to the SPX domain of SPX1 and is essential for the interaction between SPX1 and PHR1. Collectively, our study suggests that InsP8 is the intracellular Pi signaling molecule serving as the ligand of SPX1 for controlling Pi homeostasis in plants.
Copyright © 2019 The Author. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  InsP(8); Pi homeostasis; SPX domain; inositol pyrophosphates; phosphate signal

Mesh:

Substances:

Year:  2019        PMID: 31419530     DOI: 10.1016/j.molp.2019.08.002

Source DB:  PubMed          Journal:  Mol Plant        ISSN: 1674-2052            Impact factor:   13.164


  38 in total

Review 1.  Prospects of genetics and breeding for low-phosphate tolerance: an integrated approach from soil to cell.

Authors:  Jonathan Odilón Ojeda-Rivera; Gerardo Alejo-Jacuinde; Héctor-Rogelio Nájera-González; Damar López-Arredondo
Journal:  Theor Appl Genet       Date:  2022-05-07       Impact factor: 5.699

2.  Arabidopsis inositol polyphosphate kinases IPK1 and ITPK1 modulate crosstalk between SA-dependent immunity and phosphate-starvation responses.

Authors:  Hitika Gulabani; Krishnendu Goswami; Yashika Walia; Abhisha Roy; Jewel Jameeta Noor; Kishor D Ingole; Mritunjay Kasera; Debabrata Laha; Ricardo F H Giehl; Gabriel Schaaf; Saikat Bhattacharjee
Journal:  Plant Cell Rep       Date:  2021-11-19       Impact factor: 4.570

3.  SlSPX1-SlPHR complexes mediate the suppression of arbuscular mycorrhizal symbiosis by phosphate repletion in tomato.

Authors:  Dehua Liao; Chao Sun; Haiyan Liang; Yang Wang; Xinxin Bian; Chaoqun Dong; Xufang Niu; Meina Yang; Guohua Xu; Aiqun Chen; Shuang Wu
Journal:  Plant Cell       Date:  2022-09-27       Impact factor: 12.085

4.  Analyses of Inositol Phosphates and Phosphoinositides by Strong Anion Exchange (SAX)-HPLC.

Authors:  Debabrata Laha; Marília Kamleitner; Philipp Johnen; Gabriel Schaaf
Journal:  Methods Mol Biol       Date:  2021

5.  Control of XPR1-dependent cellular phosphate efflux by InsP8 is an exemplar for functionally-exclusive inositol pyrophosphate signaling.

Authors:  Xingyao Li; Chunfang Gu; Sarah Hostachy; Soumyadip Sahu; Christopher Wittwer; Henning J Jessen; Dorothea Fiedler; Huanchen Wang; Stephen B Shears
Journal:  Proc Natl Acad Sci U S A       Date:  2020-02-04       Impact factor: 11.205

6.  Interplay between primary familial brain calcification-associated SLC20A2 and XPR1 phosphate transporters requires inositol polyphosphates for control of cellular phosphate homeostasis.

Authors:  Uriel López-Sánchez; Sandrine Tury; Gaël Nicolas; Miranda S Wilson; Snejana Jurici; Xavier Ayrignac; Valérie Courgnaud; Adolfo Saiardi; Marc Sitbon; Jean-Luc Battini
Journal:  J Biol Chem       Date:  2020-05-11       Impact factor: 5.157

7.  Ultrasensitive photoelectrochemical aptasensor for diclofenac sodium based on surface-modified TiO2-FeVO4 composite.

Authors:  Liwei Yang; Lele Li; Fen Li; Hejie Zheng; Tongtong Li; Xiaoqiang Liu; Jichun Zhu; Yanmei Zhou; Subbiah Alwarappan
Journal:  Anal Bioanal Chem       Date:  2020-10-29       Impact factor: 4.142

8.  GhPIPLC2D promotes cotton fiber elongation by enhancing ethylene biosynthesis.

Authors:  Liping Zhu; Lingling Dou; Haihong Shang; Hongbin Li; Jianing Yu; Guanghui Xiao
Journal:  iScience       Date:  2021-02-17

9.  Commonly and Specifically Activated Defense Responses in Maize Disease Lesion Mimic Mutants Revealed by Integrated Transcriptomics and Metabolomics Analysis.

Authors:  Xiaohuan Mu; Jiankun Li; Zhuangzhuang Dai; Liping Xu; Tianyuan Fan; Teng Jing; Mengyao Chen; Mingyue Gou
Journal:  Front Plant Sci       Date:  2021-05-17       Impact factor: 5.753

10.  OsJAZ11 regulates phosphate starvation responses in rice.

Authors:  Bipin K Pandey; Lokesh Verma; Ankita Prusty; Ajit Pal Singh; Malcolm J Bennett; Akhilesh K Tyagi; Jitender Giri; Poonam Mehra
Journal:  Planta       Date:  2021-06-18       Impact factor: 4.116

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