Literature DB >> 35635723

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

Guangning Zong1, Stephen B Shears1, Huanchen Wang1.   

Abstract

Inositol phosphate signaling in plants is of substantial agricultural interest, with a considerable focus on the inositol tris/tetrakisphosphate kinase (ITPK) family of inositol phosphate kinases. Historically, the 4-6 isoforms of ITPKs that higher plants each express have been studied for their multiplexing a metabolic pathway to synthesize inositol hexakisphosphate (ie InsP6 or phytate), through the phosphorylation and dephosphorylation of multiple inositol phosphates, including Ins(1,3,4,5,6)P5 (inositol-1,3,4,5,6-pentakisphosphate). A more recent discovery is ITPK-catalyzed phosphorylation of InsP6 to inositol pyrophosphates, which regulate plant immunity and phosphate homeostasis. However, a molecular-based explanation for these alternate catalytic activities has been missing, because no plant ITPK structure has previously been solved. Herein, we provide biochemical and structural analyses of ITPKs from Zea mays and Glycine max. For this work we introduce a simple, enzyme-coupled microplate-based assay of InsP6  kinase activity that should promote more general access to this important field. Furthermore, a ZmITPK1/InsP6 crystal complex is described at a resolution of 2.6 Å, which identifies a number of catalytically important residues; their functionality is confirmed by mutagenesis. We further demonstrate that ZmITPK1 adds a β-phosphate to the 3-position of Ins(1,2,3,4,5)P5 , yielding a candidate signal for regulating phosphate homeostasis. An impactful discovery is our description of a 29-residue catalytic specificity element; by interchanging this element between GmITPK1 and GmITPK2, we demonstrate how its isoform-specific sequence specifically determines whether the host protein phosphorylates InsP6 , without substantially affecting Ins(1,3,4,5,6)P5  metabolism. Our structural rationalization of key catalytic differences between alternate ITPK isoforms will complement future research into their functional diversity.
© 2022 Federation of American Societies for Experimental Biology.

Entities:  

Keywords:  ITPK; catalysis; crystal structure; enzyme-coupled assay; inositol pyrophosphate; kinase; phosphate homeostasis; phytate; substrate binding

Mesh:

Substances:

Year:  2022        PMID: 35635723      PMCID: PMC9202514          DOI: 10.1096/fj.202200393R

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.834


  43 in total

Review 1.  Genetics of inositol polyphosphates.

Authors:  Victor Raboy; David Bowen
Journal:  Subcell Biochem       Date:  2006

2.  IP6K structure and the molecular determinants of catalytic specificity in an inositol phosphate kinase family.

Authors:  Huanchen Wang; Eugene F DeRose; Robert E London; Stephen B Shears
Journal:  Nat Commun       Date:  2014-06-24       Impact factor: 14.919

3.  Regulation of Ins(3,4,5,6)P(4) signaling by a reversible kinase/phosphatase.

Authors:  Melisa W Y Ho; Xiaonian Yang; Mark A Carew; Tong Zhang; Len Hua; Yong-Uk Kwon; Sung-Kee Chung; Stephan Adelt; Günter Vogel; Andrew M Riley; Barry V L Potter; Stephen B Shears
Journal:  Curr Biol       Date:  2002-03-19       Impact factor: 10.834

4.  Long-term uncoupling of chloride secretion from intracellular calcium levels by Ins(3,4,5,6)P4.

Authors:  M Vajanaphanich; C Schultz; M T Rudolf; M Wasserman; P Enyedi; A Craxton; S B Shears; R Y Tsien; K E Barrett; A Traynor-Kaplan
Journal:  Nature       Date:  1994-10-20       Impact factor: 49.962

5.  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

6.  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

Review 7.  A high energy phosphate jump - From pyrophospho-inositol to pyrophospho-serine.

Authors:  Shubhra Ganguli; Akruti Shah; Aisha Hamid; Arpita Singh; Ravichand Palakurti; Rashna Bhandari
Journal:  Adv Biol Regul       Date:  2019-10-08

8.  Mutation of Inositol 1,3,4-trisphosphate 5/6-kinase6 Impairs Plant Growth and Phytic Acid Synthesis in Rice.

Authors:  Meng Jiang; Yang Liu; Yanhua Liu; Yuanyuan Tan; Jianzhong Huang; Qingyao Shu
Journal:  Plants (Basel)       Date:  2019-04-29

9.  New structural insights reveal an expanded reaction cycle for inositol pyrophosphate hydrolysis by human DIPP1.

Authors:  Guangning Zong; Nikolaus Jork; Sarah Hostachy; Dorothea Fiedler; Henning J Jessen; Stephen B Shears; Huanchen Wang
Journal:  FASEB J       Date:  2021-02       Impact factor: 5.834

10.  ITPK1 mediates the lipid-independent synthesis of inositol phosphates controlled by metabolism.

Authors:  Yann Desfougères; Miranda S C Wilson; Debabrata Laha; Gregory J Miller; Adolfo Saiardi
Journal:  Proc Natl Acad Sci U S A       Date:  2019-11-21       Impact factor: 11.205

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