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PMID: 24958886 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Hit-and-run transcriptional control by bZIP1 mediates rapid nutrient signaling in Arabidopsis.

Para A, Li Y, Marshall-Colón A, Varala K, Francoeur NJ, Moran TM, Edwards MB, Hackley C, Bargmann BO, Birnbaum KD, McCombie WR, Krouk G, Coruzzi GM

Abstract

The dynamic nature of gene regulatory networks allows cells to rapidly respond to environmental change. However, the underlying temporal connections are missed, even in kinetic studies, as transcription factor (TF) binding within at least one time point is required to identify primary targets. The TF-regulated but unbound genes are dismissed as secondary targets. Instead, we report that these genes comprise transient TF-target interactions most relevant to rapid signal transduction. We temporally perturbed a master TF (Basic Leucine Zipper 1, bZIP1) and the nitrogen (N) signal it transduces and integrated TF regulation and binding data from the same cell samples. Our enabling approach could identify primary TF targets based solely on gene regulation, in the absence of TF binding. We uncovered three classes of primary TF targets: (i) poised (TF-bound but not TF-regulated), (ii) stable (TF-bound and TF-regulated), and (iii) transient (TF-regulated but not TF-bound), the largest class. Unexpectedly, the transient bZIP1 targets are uniquely relevant to rapid N signaling in planta, enriched in dynamic N-responsive genes, and regulated by TF and N signal interactions. These transient targets include early N responders nitrate transporter 2.1 and NIN-like protein 3, bound by bZIP1 at 1-5 min, but not at later time points following TF perturbation. Moreover, promoters of these transient targets are uniquely enriched with cis-regulatory motifs coinherited with bZIP1 binding sites, suggesting a recruitment role for bZIP1. This transient mode of TF action supports a classic, but forgotten, "hit-and-run" transcription model, which enables a "catalyst TF" to activate a large set of targets within minutes of signal perturbation.

Keywords
gene networks nitrogen signaling systems biology transcription regulation
MeSH Terms
Anion Transport Proteins/biosynthesis,genetics Arabidopsis/genetics,metabolism Arabidopsis Proteins/biosynthesis,genetics,metabolism Basic-Leucine Zipper Transcription Factors/genetics,metabolism Gene Expression Regulation, Plant/physiology Nitrogen/metabolism Plant Proteins/biosynthesis,genetics Response Elements/physiology Signal Transduction/physiology Time Factors
Chemicals
Anion Transport Proteins Arabidopsis Proteins Basic-Leucine Zipper Transcription Factors NRT1.1 protein, Arabidopsis NRT2 protein, Arabidopsis Plant Proteins bZIP1 protein, Arabidopsis Nitrogen
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Para Alessia
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Li Ying
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Marshall-Colón Amy
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Varala Kranthi
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Francoeur Nancy J
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Moran Tara M
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Edwards Molly B
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Hackley Christopher
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Bargmann Bastiaan O R
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
Birnbaum Kenneth D
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;
McCombie W Richard
Cold Spring Harbor Laboratory, Cold Spring Harbor, NY 11724; and.
Krouk Gabriel
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003;Biochimie et Physiologie Moléculaire des Plantes, Unité Mixte de Recherche 5004, Centre National de la Recherche Scientifique/Institut National de la Recherche Agronomique/SupAgro/Université Montpellier 2, Institut de Biologie Intégrative des Plantes-Claude Grignon, 34060 Montpellier, France.
Coruzzi Gloria M
Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY 10003; gloria.coruzzi@nyu.edu.
References (39)
39 references, click to expand
  1. Saturation mutagenesis of the yeast his3 regulatory site: requirements for transcriptional induction and for binding by GCN4 activator protein.
    Science. 1986 Oct 24;234(4775):451-7 PMID: 3532321
  2. Cell-specific nitrogen responses mediate developmental plasticity.
    Proc Natl Acad Sci U S A. 2008 Jan 15;105(2):803-8 PMID: 18180456
  3. LRH-1 governs vital transcriptional programs in endocrine-sensitive and -resistant breast cancer cells.
    Cancer Res. 2014 Apr 1;74(7):2015-25 PMID: 24520076
  4. Temporal transcriptional response to ethylene gas drives growth hormone cross-regulation in Arabidopsis.
    Elife. 2013 Jun 11;2:e00675 PMID: 23795294
  5. Systems approach identifies an organic nitrogen-responsive gene network that is regulated by the master clock control gene CCA1.
    Proc Natl Acad Sci U S A. 2008 Mar 25;105(12):4939-44 PMID: 18344319
  6. New insights into aluminum tolerance in rice: the ASR5 protein binds the STAR1 promoter and other aluminum-responsive genes.
    Mol Plant. 2014 Apr;7(4):709-21 PMID: 24253199
  7. Predictive network modeling of the high-resolution dynamic plant transcriptome in response to nitrate.
    Genome Biol. 2010;11(12):R123 PMID: 21182762
  8. Genomic analysis of the nitrate response using a nitrate reductase-null mutant of Arabidopsis.
    Plant Physiol. 2004 Sep;136(1):2512-22 PMID: 15333754
  9. MicroChIP--a rapid micro chromatin immunoprecipitation assay for small cell samples and biopsies.
    Nucleic Acids Res. 2008 Feb;36(3):e15 PMID: 18202078
  10. The Arabidopsis thaliana STYLISH1 protein acts as a transcriptional activator regulating auxin biosynthesis.
    Plant Cell. 2010 Feb;22(2):349-63 PMID: 20154152
  11. Two-hybrid protein-protein interaction analysis in Arabidopsis protoplasts: establishment of a heterodimerization map of group C and group S bZIP transcription factors.
    Plant J. 2006 Jun;46(5):890-900 PMID: 16709202
  12. Modeling the global effect of the basic-leucine zipper transcription factor 1 (bZIP1) on nitrogen and light regulation in Arabidopsis.
    BMC Syst Biol. 2010 Aug 12;4:111 PMID: 20704717
  13. Gene regulation. A hit-and-run mechanism for transcriptional activation?
    Nature. 1988 Dec 1;336(6198):427-8 PMID: 3194030
  14. A central integrator of transcription networks in plant stress and energy signalling.
    Nature. 2007 Aug 23;448(7156):938-42 PMID: 17671505
  15. Pioneer factors: directing transcriptional regulators within the chromatin environment.
    Trends Genet. 2011 Nov;27(11):465-74 PMID: 21885149
  16. Profiling of the BRCA1 transcriptome through microarray and ChIP-chip analysis.
    Nucleic Acids Res. 2011 Dec;39(22):9536-48 PMID: 21880590
  17. Genome-wide protein-DNA binding dynamics suggest a molecular clutch for transcription factor function.
    Nature. 2012 Apr 11;484(7393):251-5 PMID: 22498630
  18. Heterodimers of the Arabidopsis transcription factors bZIP1 and bZIP53 reprogram amino acid metabolism during low energy stress.
    Plant Cell. 2011 Jan;23(1):381-95 PMID: 21278122
  19. Dynamic and complex transcription factor binding during an inducible response in yeast.
    Genes Dev. 2009 Jun 1;23(11):1351-63 PMID: 19487574
  20. Animal transcription networks as highly connected, quantitative continua.
    Dev Cell. 2011 Oct 18;21(4):611-26 PMID: 22014521
  21. The arabidopsis bZIP1 transcription factor is involved in sugar signaling, protein networking, and DNA binding.
    Mol Plant. 2010 Mar;3(2):361-73 PMID: 20080816
  22. Microarray analysis of the nitrate response in Arabidopsis roots and shoots reveals over 1,000 rapidly responding genes and new linkages to glucose, trehalose-6-phosphate, iron, and sulfate metabolism.
    Plant Physiol. 2003 Jun;132(2):556-67 PMID: 12805587
  23. Arabidopsis NIN-like transcription factors have a central role in nitrate signalling.
    Nat Commun. 2013;4:1617 PMID: 23511481
  24. A gene expression map of the Arabidopsis root.
    Science. 2003 Dec 12;302(5652):1956-60 PMID: 14671301
  25. Genetic analysis of Arabidopsis GATA transcription factor gene family reveals a nitrate-inducible member important for chlorophyll synthesis and glucose sensitivity.
    Plant J. 2005 Nov;44(4):680-92 PMID: 16262716
  26. The TAGteam motif facilitates binding of 21 sequence-specific transcription factors in the Drosophila embryo.
    Genome Res. 2012 Apr;22(4):656-65 PMID: 22247430
  27. Nuclear retention of the transcription factor NLP7 orchestrates the early response to nitrate in plants.
    Nat Commun. 2013;4:1713 PMID: 23591880
  28. A systems approach uncovers restrictions for signal interactions regulating genome-wide responses to nutritional cues in Arabidopsis.
    PLoS Comput Biol. 2009 Mar;5(3):e1000326 PMID: 19300494
  29. Members of the LBD family of transcription factors repress anthocyanin synthesis and affect additional nitrogen responses in Arabidopsis.
    Plant Cell. 2009 Nov;21(11):3567-84 PMID: 19933203
  30. Rapid, organ-specific transcriptional responses to light regulate photomorphogenic development in dicot seedlings.
    Plant Physiol. 2011 Aug;156(4):2124-40 PMID: 21653191
  31. AGRIS: the Arabidopsis Gene Regulatory Information Server, an update.
    Nucleic Acids Res. 2011 Jan;39(Database issue):D1118-22 PMID: 21059685
  32. What does biologically meaningful mean? A perspective on gene regulatory network validation.
    Genome Biol. 2011;12(4):109 PMID: 21489330
  33. Unraveling the KNOTTED1 regulatory network in maize meristems.
    Genes Dev. 2012 Aug 1;26(15):1685-90 PMID: 22855831
  34. Systematic evaluation of factors influencing ChIP-seq fidelity.
    Nat Methods. 2012 Jun;9(6):609-14 PMID: 22522655
  35. Genome-wide analysis of transcription factor binding sites based on ChIP-Seq data.
    Nat Methods. 2008 Sep;5(9):829-34 PMID: 19160518
  36. Toward the identification and regulation of the Arabidopsis thaliana ABI3 regulon.
    Nucleic Acids Res. 2012 Sep 1;40(17):8240-54 PMID: 22730287
  37. MEME SUITE: tools for motif discovery and searching.
    Nucleic Acids Res. 2009 Jul;37(Web Server issue):W202-8 PMID: 19458158
  38. TARGET: a transient transformation system for genome-wide transcription factor target discovery.
    Mol Plant. 2013 May;6(3):978-80 PMID: 23335732
  39. Mapping yeast transcriptional networks.
    Genetics. 2013 Sep;195(1):9-36 PMID: 24018767
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2014-07-15
Epub
2014-00-23
Pages
10371-6
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC4104873
Subset
IM
Grants
NIGMS NIH HHS · R01-GM078279 · United States
NIGMS NIH HHS · R01-GM032877 · United States
NIGMS NIH HHS · R01 GM032877 · United States
NIGMS NIH HHS · R01 GM078279 · United States
NIGMS NIH HHS · GM095273 · United States
NIGMS NIH HHS · F32 GM095273 · United States
Databases
GEO
SRA
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