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A systems biology approach uncovers the core gene regulatory network governing iridophore fate choice from the neural crest
by
Petratou, Kleio
, Rocco, Andrea
, Kelsh, Robert N.
, Subkhankulova, Tatiana
, Schwetlick, Hartmut
, Lister, James A.
in
Animals
/ Animals, Genetically Modified
/ Biochemistry
/ Biology and Life Sciences
/ Cell Lineage - genetics
/ Chromatophores
/ Chromatophores - cytology
/ Chromatophores - metabolism
/ Developmental biology
/ Embryo, Nonmammalian - cytology
/ Embryo, Nonmammalian - embryology
/ Embryo, Nonmammalian - metabolism
/ Forkhead Transcription Factors - genetics
/ Forkhead Transcription Factors - metabolism
/ Funding
/ Gene expression
/ Gene Expression Regulation, Developmental
/ Gene Regulatory Networks
/ Genetic aspects
/ Genetic regulation
/ Genetics
/ Kinases
/ Mathematical models
/ Medicine
/ Medicine and Health Sciences
/ Melanocytes
/ Molecular modelling
/ Mutation
/ Neural circuitry
/ Neural crest
/ Neural Crest - cytology
/ Neural Crest - embryology
/ Neural Crest - metabolism
/ Neural stem cells
/ Observations
/ Phenotypes
/ Physical Sciences
/ Protein-tyrosine kinase receptors
/ Research and Analysis Methods
/ Sox10 protein
/ SOXE Transcription Factors - genetics
/ SOXE Transcription Factors - metabolism
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Systems biology
/ Systems Biology - methods
/ Transcription factors
/ Zebrafish
/ Zebrafish - embryology
/ Zebrafish - genetics
/ Zebrafish Proteins - genetics
/ Zebrafish Proteins - metabolism
2018
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A systems biology approach uncovers the core gene regulatory network governing iridophore fate choice from the neural crest
by
Petratou, Kleio
, Rocco, Andrea
, Kelsh, Robert N.
, Subkhankulova, Tatiana
, Schwetlick, Hartmut
, Lister, James A.
in
Animals
/ Animals, Genetically Modified
/ Biochemistry
/ Biology and Life Sciences
/ Cell Lineage - genetics
/ Chromatophores
/ Chromatophores - cytology
/ Chromatophores - metabolism
/ Developmental biology
/ Embryo, Nonmammalian - cytology
/ Embryo, Nonmammalian - embryology
/ Embryo, Nonmammalian - metabolism
/ Forkhead Transcription Factors - genetics
/ Forkhead Transcription Factors - metabolism
/ Funding
/ Gene expression
/ Gene Expression Regulation, Developmental
/ Gene Regulatory Networks
/ Genetic aspects
/ Genetic regulation
/ Genetics
/ Kinases
/ Mathematical models
/ Medicine
/ Medicine and Health Sciences
/ Melanocytes
/ Molecular modelling
/ Mutation
/ Neural circuitry
/ Neural crest
/ Neural Crest - cytology
/ Neural Crest - embryology
/ Neural Crest - metabolism
/ Neural stem cells
/ Observations
/ Phenotypes
/ Physical Sciences
/ Protein-tyrosine kinase receptors
/ Research and Analysis Methods
/ Sox10 protein
/ SOXE Transcription Factors - genetics
/ SOXE Transcription Factors - metabolism
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Systems biology
/ Systems Biology - methods
/ Transcription factors
/ Zebrafish
/ Zebrafish - embryology
/ Zebrafish - genetics
/ Zebrafish Proteins - genetics
/ Zebrafish Proteins - metabolism
2018
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A systems biology approach uncovers the core gene regulatory network governing iridophore fate choice from the neural crest
by
Petratou, Kleio
, Rocco, Andrea
, Kelsh, Robert N.
, Subkhankulova, Tatiana
, Schwetlick, Hartmut
, Lister, James A.
in
Animals
/ Animals, Genetically Modified
/ Biochemistry
/ Biology and Life Sciences
/ Cell Lineage - genetics
/ Chromatophores
/ Chromatophores - cytology
/ Chromatophores - metabolism
/ Developmental biology
/ Embryo, Nonmammalian - cytology
/ Embryo, Nonmammalian - embryology
/ Embryo, Nonmammalian - metabolism
/ Forkhead Transcription Factors - genetics
/ Forkhead Transcription Factors - metabolism
/ Funding
/ Gene expression
/ Gene Expression Regulation, Developmental
/ Gene Regulatory Networks
/ Genetic aspects
/ Genetic regulation
/ Genetics
/ Kinases
/ Mathematical models
/ Medicine
/ Medicine and Health Sciences
/ Melanocytes
/ Molecular modelling
/ Mutation
/ Neural circuitry
/ Neural crest
/ Neural Crest - cytology
/ Neural Crest - embryology
/ Neural Crest - metabolism
/ Neural stem cells
/ Observations
/ Phenotypes
/ Physical Sciences
/ Protein-tyrosine kinase receptors
/ Research and Analysis Methods
/ Sox10 protein
/ SOXE Transcription Factors - genetics
/ SOXE Transcription Factors - metabolism
/ Stem cells
/ Stem Cells - cytology
/ Stem Cells - metabolism
/ Systems biology
/ Systems Biology - methods
/ Transcription factors
/ Zebrafish
/ Zebrafish - embryology
/ Zebrafish - genetics
/ Zebrafish Proteins - genetics
/ Zebrafish Proteins - metabolism
2018
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A systems biology approach uncovers the core gene regulatory network governing iridophore fate choice from the neural crest
Journal Article
A systems biology approach uncovers the core gene regulatory network governing iridophore fate choice from the neural crest
2018
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Overview
Multipotent neural crest (NC) progenitors generate an astonishing array of derivatives, including neuronal, skeletal components and pigment cells (chromatophores), but the molecular mechanisms allowing balanced selection of each fate remain unknown. In zebrafish, melanocytes, iridophores and xanthophores, the three chromatophore lineages, are thought to share progenitors and so lend themselves to investigating the complex gene regulatory networks (GRNs) underlying fate segregation of NC progenitors. Although the core GRN governing melanocyte specification has been previously established, those guiding iridophore and xanthophore development remain elusive. Here we focus on the iridophore GRN, where mutant phenotypes identify the transcription factors Sox10, Tfec and Mitfa and the receptor tyrosine kinase, Ltk, as key players. Here we present expression data, as well as loss and gain of function results, guiding the derivation of an initial iridophore specification GRN. Moreover, we use an iterative process of mathematical modelling, supplemented with a Monte Carlo screening algorithm suited to the qualitative nature of the experimental data, to allow for rigorous predictive exploration of the GRN dynamics. Predictions were experimentally evaluated and testable hypotheses were derived to construct an improved version of the GRN, which we showed produced outputs consistent with experimentally observed gene expression dynamics. Our study reveals multiple important regulatory features, notably a sox10-dependent positive feedback loop between tfec and ltk driving iridophore specification; the molecular basis of sox10 maintenance throughout iridophore development; and the cooperation between sox10 and tfec in driving expression of pnp4a, a key differentiation gene. We also assess a candidate repressor of mitfa, a melanocyte-specific target of sox10. Surprisingly, our data challenge the reported role of Foxd3, an established mitfa repressor, in iridophore regulation. Our study builds upon our previous systems biology approach, by incorporating physiologically-relevant parameter values and rigorous evaluation of parameter values within a qualitative data framework, to establish for the first time the core GRN guiding specification of the iridophore lineage.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
/ Animals, Genetically Modified
/ Embryo, Nonmammalian - cytology
/ Embryo, Nonmammalian - embryology
/ Embryo, Nonmammalian - metabolism
/ Forkhead Transcription Factors - genetics
/ Forkhead Transcription Factors - metabolism
/ Funding
/ Gene Expression Regulation, Developmental
/ Genetics
/ Kinases
/ Medicine
/ Medicine and Health Sciences
/ Mutation
/ Protein-tyrosine kinase receptors
/ Research and Analysis Methods
/ SOXE Transcription Factors - genetics
/ SOXE Transcription Factors - metabolism
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