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Curr Opin Genet Dev
2009 Dec 01;196:535-40. doi: 10.1016/j.gde.2009.10.007.
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Network design principles from the sea urchin embryo.
Davidson EH
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As gene regulatory network models encompass more and more of the specification processes underlying sea urchin embryonic development, topological themes emerge that imply the existence of structural network ''building blocks''. These are subcircuits which perform given logic operations in the spatial control of gene expression. The various parts of the sea urchin gene regulatory networks offer instances of the same subcircuit topologies accomplishing the same developmental logic functions but using different genes. These subcircuits are dedicated to specific developmental functions, unlike simpler ''motifs'', and may indicate a repertoire of specific devices of which developmental gene regulatory networks are composed.
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,
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Angerer,
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,
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Bolouri,
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,
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Britten,
Gene regulation for higher cells: a theory.
1969,
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Davidson,
How embryos work: a comparative view of diverse modes of cell fate specification.
1990,
Pubmed
,
Echinobase
Davidson,
Properties of developmental gene regulatory networks.
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,
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Davidson,
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,
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Duboc,
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,
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Duboc,
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,
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Georgescu,
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Gilchrist,
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2006,
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Huang,
Bifurcation dynamics in lineage-commitment in bipotent progenitor cells.
2007,
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Kim,
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Koide,
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,
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Lee,
Control of developmental regulators by Polycomb in human embryonic stem cells.
2006,
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Milo,
Network motifs: simple building blocks of complex networks.
2002,
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Minokawa,
cis-Regulatory inputs of the wnt8 gene in the sea urchin endomesoderm network.
2005,
Pubmed
,
Echinobase
Nam,
Cis-regulatory control of the nodal gene, initiator of the sea urchin oral ectoderm gene network.
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Pubmed
,
Echinobase
Oliveri,
Activation of pmar1 controls specification of micromeres in the sea urchin embryo.
2003,
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,
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Oliveri,
Global regulatory logic for specification of an embryonic cell lineage.
2008,
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,
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Oliveri,
Repression of mesodermal fate by foxa, a key endoderm regulator of the sea urchin embryo.
2006,
Pubmed
,
Echinobase
Oliveri,
A regulatory gene network that directs micromere specification in the sea urchin embryo.
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Pubmed
,
Echinobase
Oliveri,
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2007,
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Pan,
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2007,
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Peter,
Genomic control of patterning.
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,
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Peter,
The endoderm gene regulatory network in sea urchin embryos up to mid-blastula stage.
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,
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Range,
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,
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Revilla-i-Domingo,
A missing link in the sea urchin embryo gene regulatory network: hesC and the double-negative specification of micromeres.
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,
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Sethi,
Gene regulatory network interactions in sea urchin endomesoderm induction.
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Pubmed
,
Echinobase
Smith,
A gene regulatory network subcircuit drives a dynamic pattern of gene expression.
2007,
Pubmed
,
Echinobase
Smith,
A new method, using cis-regulatory control, for blocking embryonic gene expression.
2008,
Pubmed
,
Echinobase
Stathopoulos,
Genomic regulatory networks and animal development.
2005,
Pubmed
Su,
A perturbation model of the gene regulatory network for oral and aboral ectoderm specification in the sea urchin embryo.
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,
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Wei,
The sea urchin animal pole domain is a Six3-dependent neurogenic patterning center.
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,
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Yaguchi,
Sp-Smad2/3 mediates patterning of neurogenic ectoderm by nodal in the sea urchin embryo.
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Pubmed
,
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Yuh,
An otx cis-regulatory module: a key node in the sea urchin endomesoderm gene regulatory network.
2004,
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,
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