Home LiteratureArticle Details
PMID: 22028675 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Temporal coordination of gene networks by Zelda in the early Drosophila embryo.

PLoS genetics ·Vol. 7 ·No. 10 ·2011-10-00 ·Pages e1002339

Nien CY, Liang HL, Butcher S, Sun Y, Fu S, Gocha T, Kirov N, Manak JR, Rushlow C

Abstract

In past years, much attention has focused on the gene networks that regulate early developmental processes, but less attention has been paid to how multiple networks and processes are temporally coordinated. Recently the discovery of the transcriptional activator Zelda (Zld), which binds to CAGGTAG and related sequences present in the enhancers of many early-activated genes in Drosophila, hinted at a mechanism for how batteries of genes could be simultaneously activated. Here we use genome-wide binding and expression assays to identify Zld target genes in the early embryo with the goal of unraveling the gene circuitry regulated by Zld. We found that Zld binds to genes involved in early developmental processes such as cellularization, sex determination, neurogenesis, and pattern formation. In the absence of Zld, many target genes failed to be activated, while others, particularly the patterning genes, exhibited delayed transcriptional activation, some of which also showed weak and/or sporadic expression. These effects disrupted the normal sequence of patterning-gene interactions and resulted in highly altered spatial expression patterns, demonstrating the significance of a timing mechanism in early development. In addition, we observed prevalent overlap between Zld-bound regions and genomic "hotspot" regions, which are bound by many developmental transcription factors, especially the patterning factors. This, along with the finding that the most over-represented motif in hotspots, CAGGTA, is the Zld binding site, implicates Zld in promoting hotspot formation. We propose that Zld promotes timely and robust transcriptional activation of early-gene networks so that developmental events are coordinated and cell fates are established properly in the cellular blastoderm embryo.

MeSH Terms
Animals Binding Sites/genetics Blastoderm/embryology,growth & development Body Patterning/genetics Drosophila Proteins/genetics,metabolism Drosophila melanogaster/embryology,genetics Embryonic Development/genetics Enhancer Elements, Genetic/genetics Gene Expression Regulation, Developmental Gene Regulatory Networks Neurogenesis/genetics Nuclear Proteins Nucleotide Motifs/genetics Promoter Regions, Genetic Protein Binding/genetics Sex Determination Processes/genetics Transcription Factors/genetics,metabolism Transcriptional Activation/genetics Zygote/growth & development
Chemicals
Drosophila Proteins Nuclear Proteins Transcription Factors zld protein, Drosophila
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Nien Chung-Yi
Department of Biology, Center for Developmental Genetics, New York University, New York, New York, USA.
Liang Hsiao-Lan
Butcher Stephen
Sun Yujia
Fu Shengbo
Gocha Tenzin
Kirov Nikolai
Manak J Robert
Rushlow Christine
Conflict of Interest

The authors have declared that no competing interests exist.

References (62)
62 references, click to expand
  1. Parameters controlling transcriptional activation during early Drosophila development.
    Cell. 1986 Mar 28;44(6):871-7 PMID: 2420468
  2. fdrtool: a versatile R package for estimating local and tail area-based false discovery rates.
    Bioinformatics. 2008 Jun 15;24(12):1461-2 PMID: 18441000
  3. Design flexibility in cis-regulatory control of gene expression: synthetic and comparative evidence.
    Dev Biol. 2009 Mar 15;327(2):578-89 PMID: 19135437
  4. The Integrated Genome Browser: free software for distribution and exploration of genome-scale datasets.
    Bioinformatics. 2009 Oct 15;25(20):2730-1 PMID: 19654113
  5. Novel 8-base pair sequence (Drosophila DNA replication-related element) and specific binding factor involved in the expression of Drosophila genes for DNA polymerase alpha and proliferating cell nuclear antigen.
    J Biol Chem. 1993 Jan 25;268(3):2092-9 PMID: 8093616
  6. Structure and function of the feed-forward loop network motif.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):11980-5 PMID: 14530388
  7. Supervised detection of conserved motifs in DNA sequences with cosmo.
    Stat Appl Genet Mol Biol. 2007;6:Article8 PMID: 17402923
  8. The graded distribution of the dorsal morphogen is initiated by selective nuclear transport in Drosophila.
    Cell. 1989 Dec 22;59(6):1165-77 PMID: 2598265
  9. Cloning of the homeotic Sex combs reduced gene in Drosophila and in situ localization of its transcripts.
    EMBO J. 1985 Dec 30;4(13B):3757-64 PMID: 16453653
  10. The Drosophila cellularization gene nullo produces a blastoderm-specific transcript whose levels respond to the nucleocytoplasmic ratio.
    Genes Dev. 1992 Jul;6(7):1255-68 PMID: 1378418
  11. Biological function of unannotated transcription during the early development of Drosophila melanogaster.
    Nat Genet. 2006 Oct;38(10):1151-8 PMID: 16951679
  12. Activation of transcription in Drosophila embryos is a gradual process mediated by the nucleocytoplasmic ratio.
    Genes Dev. 1996 May 1;10(9):1131-42 PMID: 8654928
  13. The TAGteam DNA motif controls the timing of Drosophila pre-blastoderm transcription.
    Development. 2006 May;133(10):1967-77 PMID: 16624855
  14. Developmental roles of 21 Drosophila transcription factors are determined by quantitative differences in binding to an overlapping set of thousands of genomic regions.
    Genome Biol. 2009;10(7):R80 PMID: 19627575
  15. Whole-genome ChIP-chip analysis of Dorsal, Twist, and Snail suggests integration of diverse patterning processes in the Drosophila embryo.
    Genes Dev. 2007 Feb 15;21(4):385-90 PMID: 17322397
  16. Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources.
    Nat Protoc. 2009;4(1):44-57 PMID: 19131956
  17. Binding site turnover produces pervasive quantitative changes in transcription factor binding between closely related Drosophila species.
    PLoS Biol. 2010 Mar 23;8(3):e1000343 PMID: 20351773
  18. Dynamics of the Dorsal morphogen gradient.
    Proc Natl Acad Sci U S A. 2009 Dec 22;106(51):21707-12 PMID: 19996178
  19. The serendipity alpha gene encodes a membrane-associated protein required for the cellularization of the Drosophila embryo.
    Genes Dev. 1990 Jun;4(6):922-31 PMID: 2166703
  20. Evolutionarily conserved elements in vertebrate, insect, worm, and yeast genomes.
    Genome Res. 2005 Aug;15(8):1034-50 PMID: 16024819
  21. Polarized insertion of new membrane from a cytoplasmic reservoir during cleavage of the Drosophila embryo.
    J Cell Biol. 2000 Aug 21;150(4):849-60 PMID: 10953008
  22. Identification of functional elements and regulatory circuits by Drosophila modENCODE.
    Science. 2010 Dec 24;330(6012):1787-97 PMID: 21177974
  23. slam encodes a developmental regulator of polarized membrane growth during cleavage of the Drosophila embryo.
    Dev Cell. 2002 Apr;2(4):425-36 PMID: 11970893
  24. Network motifs in the transcriptional regulation network of Escherichia coli.
    Nat Genet. 2002 May;31(1):64-8 PMID: 11967538
  25. Quantitative imaging of the Dorsal nuclear gradient reveals limitations to threshold-dependent patterning in Drosophila.
    Proc Natl Acad Sci U S A. 2009 Dec 29;106(52):22317-22 PMID: 20018754
  26. Shadow enhancers foster robustness of Drosophila gastrulation.
    Curr Biol. 2010 Sep 14;20(17):1562-7 PMID: 20797865
  27. Ringo--an R/Bioconductor package for analyzing ChIP-chip readouts.
    BMC Bioinformatics. 2007 Jun 26;8:221 PMID: 17594472
  28. Genome-wide analysis of mRNA decay patterns during early Drosophila development.
    Genome Biol. 2010;11(9):R93 PMID: 20858238
  29. Fitting a mixture model by expectation maximization to discover motifs in biopolymers.
    Proc Int Conf Intell Syst Mol Biol. 1994;2:28-36 PMID: 7584402
  30. Normalization for cDNA microarray data: a robust composite method addressing single and multiple slide systematic variation.
    Nucleic Acids Res. 2002 Feb 15;30(4):e15 PMID: 11842121
  31. Two distinct mechanisms for differential positioning of gene expression borders involving the Drosophila gap protein giant.
    Development. 1998 Oct;125(19):3765-74 PMID: 9729485
  32. The dorsal gradient morphogen regulates stripes of rhomboid expression in the presumptive neuroectoderm of the Drosophila embryo.
    Genes Dev. 1992 Sep;6(9):1728-39 PMID: 1325394
  33. DAVID: Database for Annotation, Visualization, and Integrated Discovery.
    Genome Biol. 2003;4(5):P3 PMID: 12734009
  34. Studies of nuclear and cytoplasmic behaviour during the five mitotic cycles that precede gastrulation in Drosophila embryogenesis.
    J Cell Sci. 1983 May;61:31-70 PMID: 6411748
  35. Comprehensive identification of Drosophila dorsal-ventral patterning genes using a whole-genome tiling array.
    Proc Natl Acad Sci U S A. 2006 Aug 22;103(34):12763-8 PMID: 16908844
  36. JASPAR, the open access database of transcription factor-binding profiles: new content and tools in the 2008 update.
    Nucleic Acids Res. 2008 Jan;36(Database issue):D102-6 PMID: 18006571
  37. Mutually repressive interactions between the gap genes giant and Krüppel define middle body regions of the Drosophila embryo.
    Development. 1991 Feb;111(2):611-21 PMID: 1893878
  38. Regulation of a segmentation stripe by overlapping activators and repressors in the Drosophila embryo.
    Science. 1991 Nov 29;254(5036):1385-7 PMID: 1683715
  39. Recruitment of the proneural gene scute to the Drosophila sex-determination pathway.
    Genetics. 2003 Dec;165(4):2007-27 PMID: 14704182
  40. RNA polymerase stalling at developmental control genes in the Drosophila melanogaster embryo.
    Nat Genet. 2007 Dec;39(12):1512-6 PMID: 17994019
  41. Rates of synthesis of major classes of RNA in Drosophila embryos.
    Dev Biol. 1979 May;70(1):217-31 PMID: 110635
  42. Mutations of the Drosophila zinc finger-encoding gene vielfältig impair mitotic cell divisions and cause improper chromosome segregation.
    Mol Biol Cell. 2006 May;17(5):2356-65 PMID: 16525017
  43. Regulation of organogenesis by the Caenorhabditis elegans FoxA protein PHA-4.
    Science. 2002 Feb 1;295(5556):821-5 PMID: 11823633
  44. Paused RNA polymerase II as a developmental checkpoint.
    Cell. 2011 May 13;145(4):502-11 PMID: 21565610
  45. SMAUG is a major regulator of maternal mRNA destabilization in Drosophila and its translation is activated by the PAN GU kinase.
    Dev Cell. 2007 Jan;12(1):143-55 PMID: 17199047
  46. Diversity and complexity in DNA recognition by transcription factors.
    Science. 2009 Jun 26;324(5935):1720-3 PMID: 19443739
  47. Multiple response elements in the Sex-lethal early promoter ensure its female-specific expression pattern.
    Mol Cell Biol. 1995 Feb;15(2):904-17 PMID: 7823955
  48. Unmasking activation of the zygotic genome using chromosomal deletions in the Drosophila embryo.
    PLoS Biol. 2007 May;5(5):e117 PMID: 17456005
  49. Slow as molasses is required for polarized membrane growth and germ cell migration in Drosophila.
    Development. 2002 Aug;129(16):3925-34 PMID: 12135929
  50. The tailless nuclear receptor acts as a dedicated repressor in the early Drosophila embryo.
    Mol Cell Biol. 2006 May;26(9):3446-54 PMID: 16611987
  51. Transcription factors bind thousands of active and inactive regions in the Drosophila blastoderm.
    PLoS Biol. 2008 Feb;6(2):e27 PMID: 18271625
  52. The zinc-finger protein Zelda is a key activator of the early zygotic genome in Drosophila.
    Nature. 2008 Nov 20;456(7220):400-3 PMID: 18931655
  53. Control of cleavage cycles in Drosophila embryos by frühstart.
    Dev Cell. 2003 Aug;5(2):285-94 PMID: 12919679
  54. Grainyhead and Zelda compete for binding to the promoters of the earliest-expressed Drosophila genes.
    Dev Biol. 2010 Sep 15;345(2):248-55 PMID: 20599892
  55. Whole-genome analysis of temporal gene expression during foregut development.
    PLoS Biol. 2004 Nov;2(11):e352 PMID: 15492775
  56. Precise registration of gene expression boundaries by a repressive morphogen in Drosophila.
    Curr Biol. 2008 Jun 24;18(12):868-76 PMID: 18571415
  57. Stability and nuclear dynamics of the bicoid morphogen gradient.
    Cell. 2007 Jul 13;130(1):141-52 PMID: 17632061
  58. The nullo protein is a component of the actin-myosin network that mediates cellularization in Drosophila melanogaster embryos.
    J Cell Sci. 1994 Jul;107 ( Pt 7):1863-73 PMID: 7983153
  59. REDfly: a Regulatory Element Database for Drosophila.
    Bioinformatics. 2006 Feb 1;22(3):381-3 PMID: 16303794
  60. Genomic regulatory networks and animal development.
    Dev Cell. 2005 Oct;9(4):449-62 PMID: 16198288
  61. FlyEx, the quantitative atlas on segmentation gene expression at cellular resolution.
    Nucleic Acids Res. 2009 Jan;37(Database issue):D560-6 PMID: 18953041
  62. Dpp signaling thresholds in the dorsal ectoderm of the Drosophila embryo.
    Development. 2000 Aug;127(15):3305-12 PMID: 10887086
Article Info
Journal
PLoS genetics
Abbr.
PLoS Genet
ISSN
1553-7404
Published
2011-10-00
Epub
2011-00-20
Pages
e1002339
Language
English
Region
United States
NLM ID
101239074
PMCID
PMC3197689
Subset
IM
Grants
NIGMS NIH HHS · R01 GM063024 · United States
NIGMS NIH HHS · GM63024 · United States
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