Embryonic stem cells (ESCs), characterized by their ability to both self-renew and differentiate into multiple cell lineages, are a powerful model for biomedical research and developmental biology. Human and mouse ESCs share many features, yet have distinctive aspects, including fundamental differences in the signaling pathways and cell cycle controls that support self-renewal. Here, we explore the molecular basis of human ESC self-renewal using Bayesian network machine learning to integrate cell-type-specific, high-throughput data for gene function discovery. We integrated high-throughput ESC data from 83 human studies (∼1.8 million data points collected under 1,100 conditions) and 62 mouse studies (∼2.4 million data points collected under...
In the past few decades, embryonic stem cells (ESCs) were of great interest as a model system for st...
Embryonic Stem cells (ESCs) can be differentiated into ectoderm, endoderm, and mesoderm derivatives,...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
<div><p>Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undiffere...
AbstractThe past few years have seen remarkable progress in our understanding of embryonic stem cell...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse embryon...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
Abstract Background Recent work has revealed that a core group of transcription factors (TFs) regula...
BACKGROUND: Embryonic stem cells (ESC) maintain their 'stemness' by self-renewal. However, the molec...
SummaryAnalyses of gene expression in single mouse embryonic stem cells (mESCs) cultured in serum an...
<div><p>Embryonic Stem cells (ESCs) can be differentiated into ectoderm, endoderm, and mesoderm deri...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
In the past few decades, embryonic stem cells (ESCs) were of great interest as a model system for st...
Embryonic Stem cells (ESCs) can be differentiated into ectoderm, endoderm, and mesoderm derivatives,...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
<div><p>Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undiffere...
AbstractThe past few years have seen remarkable progress in our understanding of embryonic stem cell...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse embryon...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
Abstract Background Recent work has revealed that a core group of transcription factors (TFs) regula...
BACKGROUND: Embryonic stem cells (ESC) maintain their 'stemness' by self-renewal. However, the molec...
SummaryAnalyses of gene expression in single mouse embryonic stem cells (mESCs) cultured in serum an...
<div><p>Embryonic Stem cells (ESCs) can be differentiated into ectoderm, endoderm, and mesoderm deri...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
In the past few decades, embryonic stem cells (ESCs) were of great interest as a model system for st...
Embryonic Stem cells (ESCs) can be differentiated into ectoderm, endoderm, and mesoderm derivatives,...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...