Home LiteratureArticle Details
PMID: 29523814 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Identification of new abscisic acid receptor agonists using a wheat cell-free based drug screening system.

Scientific reports ·Vol. 8 ·No. 1 ·2018-00-09 ·Pages 4268

Nemoto K, Kagawa M, Nozawa A, Hasegawa Y, Hayashi M, Imai K, Tomii K, Sawasaki T

Abstract

Abscisic acid (ABA) is the main phytohormone involved in abiotic stress response and its adaptation, and is a candidate agrichemical. Consequently, several agonists of ABA have been developed using the yeast two-hybrid system. Here, we describe a novel cell-free-based drug screening approach for the development and validation of ABA receptor agonists. Biochemical validation of this approach between 14 ABA receptors (PYR/PYL/RCARs) and 7 type 2C-A protein phosphatases (PP2CAs) revealed the same interactions as those of previous proteome data, except for nine new interactions. By chemical screening using this approach, we identified two novel ABA receptor agonists, JFA1 (julolidine and fluorine containing ABA receptor activator 1) and JFA2 as its analog. The results of biochemical validation for this approach and biological analysis suggested that JFA1 and JFA2 inhibit seed germination and cotyledon greening of seedlings by activating PYR1 and PYL1, and that JFA2 enhanced drought tolerance without inhibiting root growth by activating not only PYR1 and PYL1 but also PYL5. Thus, our approach was useful for the development of ABA receptor agonists and their validation.

MeSH Terms
Abscisic Acid/analogs & derivatives,pharmacology Cell-Free System Drug Evaluation, Preclinical/methods Plant Proteins/metabolism Protein Phosphatase 2/metabolism Triticum/drug effects,enzymology
Chemicals
Plant Proteins Abscisic Acid Protein Phosphatase 2
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Nemoto Keiichirou
Proteo-Science Center, Ehime University, 3 Bunkyo-cho, Matsuyama, Ehime, 790-8577, Japan.
Kagawa Makiko
Proteo-Science Center, Ehime University, 3 Bunkyo-cho, Matsuyama, Ehime, 790-8577, Japan.
Nozawa Akira
Proteo-Science Center, Ehime University, 3 Bunkyo-cho, Matsuyama, Ehime, 790-8577, Japan.
Hasegawa Yoshinori
Department of Technology Development, Kazusa DNA Research Institute, Kisarazu, Chiba, 292-0818, Japan.
Hayashi Minoru
Department of Materials Science and Biotechnology, Graduate School of Science and Engineering, Ehime University, 3 Bunkyo-cho, Matsuyama, 790-8577, Japan.
Imai Kenichiro
Artificial Intelligence Research Center (AIRC) and Biotechnology Research Institute for Drug Discovery, National Institute of Advanced Industrial Science and Technology (AIST), 2-4-7 Aomi, Koto Ward, Tokyo, 135-0064, Japan.
Tomii Kentaro ORCID
Artificial Intelligence Research Center (AIRC) and Biotechnology Research Institute for Drug Discovery, National Institute of Advanced Industrial Science and Technology (AIST), 2-4-7 Aomi, Koto Ward, Tokyo, 135-0064, Japan.
Sawasaki Tatsuya
Proteo-Science Center, Ehime University, 3 Bunkyo-cho, Matsuyama, Ehime, 790-8577, Japan. sawasaki@ehime-u.ac.jp.
References (50)
50 references, click to expand
  1. The expression of a rab-related gene, rab18, is induced by abscisic acid during the cold acclimation process of Arabidopsis thaliana (L.) Heynh.
    Plant Mol Biol. 1992 Dec;20(5):951-62 PMID: 1463831
  2. Evolution of abscisic acid synthesis and signaling mechanisms.
    Curr Biol. 2011 May 10;21(9):R346-55 PMID: 21549957
  3. Abscisic acid inhibits type 2C protein phosphatases via the PYR/PYL family of START proteins.
    Science. 2009 May 22;324(5930):1068-71 PMID: 19407142
  4. A Novel Chemical Inhibitor of ABA Signaling Targets All ABA Receptors.
    Plant Physiol. 2017 Apr;173(4):2356-2369 PMID: 28193765
  5. Combinatorial interaction network of abscisic acid receptors and coreceptors from Arabidopsis thaliana.
    Proc Natl Acad Sci U S A. 2017 Sep 19;114(38):10280-10285 PMID: 28874521
  6. Abscisic Acid and Abiotic Stress Tolerance in Crop Plants.
    Front Plant Sci. 2016 May 04;7:571 PMID: 27200044
  7. Activation of dimeric ABA receptors elicits guard cell closure, ABA-regulated gene expression, and drought tolerance.
    Proc Natl Acad Sci U S A. 2013 Jul 16;110(29):12132-7 PMID: 23818638
  8. Complex structures of the abscisic acid receptor PYL3/RCAR13 reveal a unique regulatory mechanism.
    Structure. 2012 May 9;20(5):780-90 PMID: 22579247
  9. Structural basis of abscisic acid signalling.
    Nature. 2009 Dec 3;462(7273):609-14 PMID: 19855379
  10. OsMYC2, an essential factor for JA-inductive sakuranetin production in rice, interacts with MYC2-like proteins that enhance its transactivation ability.
    Sci Rep. 2017 Jan 09;7:40175 PMID: 28067270
  11. Cold acclimation and cold-regulated gene expression in ABA mutants of Arabidopsis thaliana.
    Plant Mol Biol. 1991 Dec;17(6):1233-40 PMID: 1834244
  12. Phosphatase ABI1 and okadaic acid-sensitive phosphoprotein phosphatases inhibit salt stress-activated SnRK2.4 kinase.
    BMC Plant Biol. 2016 Jun 13;16(1):136 PMID: 27297076
  13. An ABA-mimicking ligand that reduces water loss and promotes drought resistance in plants.
    Cell Res. 2013 Aug;23(8):1043-54 PMID: 23835477
  14. Structural basis for selective activation of ABA receptors.
    Nat Struct Mol Biol. 2010 Sep;17(9):1109-13 PMID: 20729860
  15. Monitoring the expression pattern of around 7,000 Arabidopsis genes under ABA treatments using a full-length cDNA microarray.
    Funct Integr Genomics. 2002 Nov;2(6):282-91 PMID: 12444421
  16. The molecular basis of ABA-independent inhibition of PP2Cs by a subclass of PYL proteins.
    Mol Cell. 2011 Jun 10;42(5):662-72 PMID: 21658606
  17. Regulators of PP2C phosphatase activity function as abscisic acid sensors.
    Science. 2009 May 22;324(5930):1064-8 PMID: 19407143
  18. Bach2-Batf interactions control Th2-type immune response by regulating the IL-4 amplification loop.
    Nat Commun. 2016 Sep 01;7:12596 PMID: 27581382
  19. A gate-latch-lock mechanism for hormone signalling by abscisic acid receptors.
    Nature. 2009 Dec 3;462(7273):602-8 PMID: 19898420
  20. Molecular basis of the core regulatory network in ABA responses: sensing, signaling and transport.
    Plant Cell Physiol. 2010 Nov;51(11):1821-39 PMID: 20980270
  21. Type 2C protein phosphatases directly regulate abscisic acid-activated protein kinases in Arabidopsis.
    Proc Natl Acad Sci U S A. 2009 Oct 13;106(41):17588-93 PMID: 19805022
  22. Establishment of a Wheat Cell-Free Synthesized Protein Array Containing 250 Human and Mouse E3 Ubiquitin Ligases to Identify Novel Interaction between E3 Ligases and Substrate Proteins.
    PLoS One. 2016 Jun 01;11(6):e0156718 PMID: 27249653
  23. Identification of two protein kinases required for abscisic acid regulation of seed germination, root growth, and gene expression in Arabidopsis.
    Plant Cell. 2007 Feb;19(2):485-94 PMID: 17307925
  24. Regulation of abscisic acid biosynthesis.
    Plant Physiol. 2003 Sep;133(1):29-36 PMID: 12970472
  25. Characterization of the expression of a desiccation-responsive rd29 gene of Arabidopsis thaliana and analysis of its promoter in transgenic plants.
    Mol Gen Genet. 1993 Jan;236(2-3):331-40 PMID: 8437577
  26. A thermodynamic switch modulates abscisic acid receptor sensitivity.
    EMBO J. 2011 Aug 16;30(20):4171-84 PMID: 21847091
  27. Transcriptional regulatory networks in cellular responses and tolerance to dehydration and cold stresses.
    Annu Rev Plant Biol. 2006;57:781-803 PMID: 16669782
  28. Tyrosine phosphorylation of the GARU E3 ubiquitin ligase promotes gibberellin signalling by preventing GID1 degradation.
    Nat Commun. 2017 Oct 17;8(1):1004 PMID: 29042542
  29. Mechanisms of abscisic acid-mediated control of stomatal aperture.
    Curr Opin Plant Biol. 2015 Dec;28:154-62 PMID: 26599955
  30. The selectivity of 6-nor-ABA and 7'-nor-ABA for abscisic acid receptor subtypes.
    Bioorg Med Chem Lett. 2015 Sep 1;25(17):3507-10 PMID: 26174552
  31. Abscisic Acid: Hidden Architect of Root System Structure.
    Plants (Basel). 2015 Aug 11;4(3):548-72 PMID: 27135341
  32. ABI1 and PP2CA phosphatases are negative regulators of Snf1-related protein kinase1 signaling in Arabidopsis.
    Plant Cell. 2013 Oct;25(10):3871-84 PMID: 24179127
  33. Modulation of drought resistance by the abscisic acid receptor PYL5 through inhibition of clade A PP2Cs.
    Plant J. 2009 Nov;60(4):575-88 PMID: 19624469
  34. Establishment of a robust dengue virus NS3-NS5 binding assay for identification of protein-protein interaction inhibitors.
    Antiviral Res. 2012 Dec;96(3):305-14 PMID: 23072882
  35. The unique mode of action of a divergent member of the ABA-receptor protein family in ABA and stress signaling.
    Cell Res. 2013 Dec;23(12):1380-95 PMID: 24189045
  36. Gene networks involved in drought stress response and tolerance.
    J Exp Bot. 2007;58(2):221-7 PMID: 17075077
  37. ABA promotes quiescence of the quiescent centre and suppresses stem cell differentiation in the Arabidopsis primary root meristem.
    Plant J. 2010 Dec;64(5):764-74 PMID: 21105924
  38. Arabidopsis PYR/PYL/RCAR receptors play a major role in quantitative regulation of stomatal aperture and transcriptional response to abscisic acid.
    Plant Cell. 2012 Jun;24(6):2483-96 PMID: 22739828
  39. Structural mechanism of abscisic acid binding and signaling by dimeric PYR1.
    Science. 2009 Dec 4;326(5958):1373-9 PMID: 19933100
  40. ABA signaling in stress-response and seed development.
    Plant Cell Rep. 2013 Jul;32(7):959-70 PMID: 23535869
  41. Complex regulation of ABA biosynthesis in plants.
    Trends Plant Sci. 2002 Jan;7(1):41-8 PMID: 11804826
  42. Members of the Plant CRK Superfamily Are Capable of Trans- and Autophosphorylation of Tyrosine Residues.
    J Biol Chem. 2015 Jul 3;290(27):16665-77 PMID: 25969537
  43. AGIA Tag System Based on a High Affinity Rabbit Monoclonal Antibody against Human Dopamine Receptor D1 for Protein Analysis.
    PLoS One. 2016 Jun 06;11(6):e0156716 PMID: 27271343
  44. Plant Aurora kinases interact with and phosphorylate transcription factors.
    J Plant Res. 2016 Nov;129(6):1165-1178 PMID: 27734173
  45. Abscisic acid biosynthesis and catabolism.
    Annu Rev Plant Biol. 2005;56:165-85 PMID: 15862093
  46. Abscisic acid sensor RCAR7/PYL13, specific regulator of protein phosphatase coreceptors.
    Proc Natl Acad Sci U S A. 2014 Apr 15;111(15):5741-6 PMID: 24706923
  47. Abscisic acid: emergence of a core signaling network.
    Annu Rev Plant Biol. 2010;61:651-79 PMID: 20192755
  48. A Rapid and Simple Method for Microscopy-Based Stomata Analyses.
    PLoS One. 2016 Oct 12;11(10 ):e0164576 PMID: 27732636
  49. Identification and mechanism of ABA receptor antagonism.
    Nat Struct Mol Biol. 2010 Sep;17(9):1102-8 PMID: 20729862
  50. Arabidopsis HY5 protein functions as a DNA-binding tag for purification and functional immobilization of proteins on agarose/DNA microplate.
    FEBS Lett. 2008 Jan 23;582(2):221-8 PMID: 18082144
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Published
2018-00-09
Epub
2018-00-09
Pages
4268
Language
English
Region
England
NLM ID
101563288
PMCID
PMC5844987
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com