Literature DB >> 29779236

Arabidopsis inositol phosphate kinases IPK1 and ITPK1 constitute a metabolic pathway in maintaining phosphate homeostasis.

Hui-Fen Kuo1, Yu-Ying Hsu1, Wei-Chi Lin1, Kai-Yu Chen1, Teun Munnik2, Charles A Brearley3, Tzyy-Jen Chiou1.   

Abstract

Emerging studies have suggested that there is a close link between inositol phosphate (InsP) metabolism and cellular phosphate (Pi ) homeostasis in eukaryotes; however, whether a common InsP species is deployed as an evolutionarily conserved metabolic messenger to mediate Pi signaling remains unknown. Here, using genetics and InsP profiling combined with Pi -starvation response (PSR) analysis in Arabidopsis thaliana, we showed that the kinase activity of inositol pentakisphosphate 2-kinase (IPK1), an enzyme required for phytate (inositol hexakisphosphate; InsP6 ) synthesis, is indispensable for maintaining Pi homeostasis under Pi -replete conditions, and inositol 1,3,4-trisphosphate 5/6-kinase 1 (ITPK1) plays an equivalent role. Although both ipk1-1 and itpk1 mutants exhibited decreased levels of InsP6 and diphosphoinositol pentakisphosphate (PP-InsP5 ; InsP7 ), disruption of another ITPK family enzyme, ITPK4, which correspondingly caused depletion of InsP6 and InsP7 , did not display similar Pi -related phenotypes, which precludes these InsP species from being effectors. Notably, the level of d/l-Ins(3,4,5,6)P4 was concurrently elevated in both ipk1-1 and itpk1 mutants, which showed a specific correlation with the misregulated Pi phenotypes. However, the level of d/l-Ins(3,4,5,6)P4 is not responsive to Pi starvation that instead manifests a shoot-specific increase in the InsP7 level. This study demonstrates a more nuanced picture of the intersection of InsP metabolism and Pi homeostasis and PSRs than has previously been elaborated, and additionally establishes intermediate steps to phytate biosynthesis in plant vegetative tissues.
© 2018 The Authors The Plant Journal © 2018 John Wiley & Sons Ltd.

Entities:  

Keywords:  zzm321990Arabidopsis thalianazzm321990; d/l-inositol 3,4,5,6-tetrakisphosphate; diphosphoinositol pentakisphosphate; inositol 1,3,4-trisphosphate 5/6-kinase 1 (ITPK1); inositol pentakisphosphate 2-kinase (IPK1); inositol phosphate; phosphate homeostasis; phosphate starvation response; phytate biosynthesis

Year:  2018        PMID: 29779236     DOI: 10.1111/tpj.13974

Source DB:  PubMed          Journal:  Plant J        ISSN: 0960-7412            Impact factor:   6.417


  22 in total

1.  SPX4 Acts on PHR1-Dependent and -Independent Regulation of Shoot Phosphorus Status in Arabidopsis.

Authors:  Marina Borges Osorio; Sophia Ng; Oliver Berkowitz; Inge De Clercq; Chuanzao Mao; Huixia Shou; James Whelan; Ricarda Jost
Journal:  Plant Physiol       Date:  2019-07-01       Impact factor: 8.340

2.  Arabidopsis PFA-DSP-Type Phosphohydrolases Target Specific Inositol Pyrophosphate Messengers.

Authors:  Philipp Gaugler; Robin Schneider; Guizhen Liu; Danye Qiu; Jonathan Weber; Jochen Schmid; Nikolaus Jork; Markus Häner; Kevin Ritter; Nicolás Fernández-Rebollo; Ricardo F H Giehl; Minh Nguyen Trung; Ranjana Yadav; Dorothea Fiedler; Verena Gaugler; Henning J Jessen; Gabriel Schaaf; Debabrata Laha
Journal:  Biochemistry       Date:  2022-05-31       Impact factor: 3.321

3.  Structural and catalytic analyses of the InsP6 kinase activities of higher plant ITPKs.

Authors:  Guangning Zong; Stephen B Shears; Huanchen Wang
Journal:  FASEB J       Date:  2022-07       Impact factor: 5.834

4.  Spatial Profiles of Phosphate in Roots Indicate Developmental Control of Uptake, Recycling, and Sequestration.

Authors:  Abira Sahu; Swayoma Banerjee; Aditi Subramani Raju; Tzyy-Jen Chiou; L Rene Garcia; Wayne K Versaw
Journal:  Plant Physiol       Date:  2020-09-30       Impact factor: 8.340

Review 5.  Inositol Pyrophosphate Pathways and Mechanisms: What Can We Learn from Plants?

Authors:  Caitlin Cridland; Glenda Gillaspy
Journal:  Molecules       Date:  2020-06-17       Impact factor: 4.411

6.  Role for Arabidopsis PLC7 in Stomatal Movement, Seed Mucilage Attachment, and Leaf Serration.

Authors:  Ringo van Wijk; Qianqian Zhang; Xavier Zarza; Mart Lamers; Francisca Reyes Marquez; Aisha Guardia; Denise Scuffi; Carlos García-Mata; Wilco Ligterink; Michel A Haring; Ana M Laxalt; Teun Munnik
Journal:  Front Plant Sci       Date:  2018-11-27       Impact factor: 5.753

7.  Two bifunctional inositol pyrophosphate kinases/phosphatases control plant phosphate homeostasis.

Authors:  Jinsheng Zhu; Kelvin Lau; Robert Puschmann; Robert K Harmel; Youjun Zhang; Verena Pries; Philipp Gaugler; Larissa Broger; Amit K Dutta; Henning J Jessen; Gabriel Schaaf; Alisdair R Fernie; Ludwig A Hothorn; Dorothea Fiedler; Michael Hothorn
Journal:  Elife       Date:  2019-08-22       Impact factor: 8.140

8.  Inositol hexakisphosphate biosynthesis underpins PAMP-triggered immunity to Pseudomonas syringae pv. tomato in Arabidopsis thaliana but is dispensable for establishment of systemic acquired resistance.

Authors:  Jacquelyne S Y Poon; Ruth E Le Fevre; John P Carr; David E Hanke; Alex M Murphy
Journal:  Mol Plant Pathol       Date:  2019-12-26       Impact factor: 5.663

9.  PI signal transduction and ubiquitination respond to dehydration stress in the red seaweed Gloiopeltis furcata under successive tidal cycles.

Authors:  Shun Liu; Zi-Min Hu; Quansheng Zhang; Xiaoqi Yang; Alan T Critchley; Delin Duan
Journal:  BMC Plant Biol       Date:  2019-11-27       Impact factor: 4.215

10.  An ATP-responsive metabolic cassette comprised of inositol tris/tetrakisphosphate kinase 1 (ITPK1) and inositol pentakisphosphate 2-kinase (IPK1) buffers diphosphosphoinositol phosphate levels.

Authors:  Hayley Whitfield; Gaye White; Colleen Sprigg; Andrew M Riley; Barry V L Potter; Andrew M Hemmings; Charles A Brearley
Journal:  Biochem J       Date:  2020-07-31       Impact factor: 3.857

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