A central challenge of developmental and evolutionary biology is to understand the transformation of genetic information into morphology. Elucidating the connections between genes and anatomy will require model morphogenetic processes that are amenable to detailed analysis of cell/tissue behaviors and to systems-level approaches to gene regulation. The formation of the calcified endoskeleton of the sea urchin embryo is a valuable experimental system for developing such an integrated view of the genomic regulatory control of morphogenesis. A transcriptional gene regulatory network (GRN) that underlies the specification of skeletogenic cells (primary mesenchyme cells, or PMCs) has recently been elucidated. In this study, we carried out a geno...
<p>Specification and differentiation of a cell is accomplished by changing its gene expression profi...
Sea urchin embryos begin zygotic transcription shortly after the egg is fertilized. Throughout the ...
The primary mesenchyme cells (PMCs) of the sea urchin embryo have been an important model system for...
<p>A central challenge of developmental and evolutionary biology is to understand how anatomy is enc...
A key challenge in developmental biology is to determine how anatomy is encoded in the genome. Durin...
Significant new insights have emerged from the analysis of a gene regulatory network (GRN) that unde...
As development proceeds, cells acquire specialized properties and functions that are critical for th...
<p>A central challenge of developmental and evolutionary biology is to explain how anatomy is encode...
Cell fates in the sea urchin embryo are remarkably labile, despite the fact that maternal polarity a...
Cell migration and differentiation are fundamental aspects of embryogenesis, essential to the develo...
The well-known regulative properties of the sea urchin embryo, coupled with the recent elucidation o...
AbstractRecent work on the sea urchin endomesoderm gene regulatory network (GRN) offers many opportu...
Epithelial-mesenchymal transitions (EMTs) are fundamental and indispensable to embryonic morphogenes...
Abstract Background The developmental gene regulatory network (GRN) that underlies skeletogenesis in...
This work focuses on the GRNs specifying embryonic skeletogenesis and the pigment cell differentiati...
<p>Specification and differentiation of a cell is accomplished by changing its gene expression profi...
Sea urchin embryos begin zygotic transcription shortly after the egg is fertilized. Throughout the ...
The primary mesenchyme cells (PMCs) of the sea urchin embryo have been an important model system for...
<p>A central challenge of developmental and evolutionary biology is to understand how anatomy is enc...
A key challenge in developmental biology is to determine how anatomy is encoded in the genome. Durin...
Significant new insights have emerged from the analysis of a gene regulatory network (GRN) that unde...
As development proceeds, cells acquire specialized properties and functions that are critical for th...
<p>A central challenge of developmental and evolutionary biology is to explain how anatomy is encode...
Cell fates in the sea urchin embryo are remarkably labile, despite the fact that maternal polarity a...
Cell migration and differentiation are fundamental aspects of embryogenesis, essential to the develo...
The well-known regulative properties of the sea urchin embryo, coupled with the recent elucidation o...
AbstractRecent work on the sea urchin endomesoderm gene regulatory network (GRN) offers many opportu...
Epithelial-mesenchymal transitions (EMTs) are fundamental and indispensable to embryonic morphogenes...
Abstract Background The developmental gene regulatory network (GRN) that underlies skeletogenesis in...
This work focuses on the GRNs specifying embryonic skeletogenesis and the pigment cell differentiati...
<p>Specification and differentiation of a cell is accomplished by changing its gene expression profi...
Sea urchin embryos begin zygotic transcription shortly after the egg is fertilized. Throughout the ...
The primary mesenchyme cells (PMCs) of the sea urchin embryo have been an important model system for...