<div><p>Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated state, is a defining characteristic of all stem cells. Here, we clarify the molecular foundations of mouse embryonic stem cell (mESC) self-renewal by applying a proven Bayesian network machine learning approach to integrate high-throughput data for protein function discovery. By focusing on a single stem-cell system, at a specific developmental stage, within the context of well-defined biological processes known to be active in that cell type, we produce a consensus predictive network that reflects biological reality more closely than those made by prior efforts using more generalized, context-independent methods. In addition, we show...
During differentiation and reprogramming, new cell identities are generated by reconfiguration of ge...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
Motivation: Transcriptional regulatory networks controlling cell fate decisions in mammalian embryon...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Embryonic stem cells (ESCs), characterized by their ability to both self-renew and differentiate int...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
<p>Our approach is designed to generate reliable and relevant predictive biological networks using h...
Motivation: Signaling events that direct mouse embryonic stem (ES) cell self-renewal and differentia...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse embryon...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
During differentiation and reprogramming, new cell identities are generated by reconfiguration of ge...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
Motivation: Transcriptional regulatory networks controlling cell fate decisions in mammalian embryon...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Self-renewal, the ability of a stem cell to divide repeatedly while maintaining an undifferentiated ...
Embryonic stem cells (ESCs), characterized by their ability to both self-renew and differentiate int...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
Pluripotent stem cell research is an active, often controversial field focused on a special type of ...
<p>Our approach is designed to generate reliable and relevant predictive biological networks using h...
Motivation: Signaling events that direct mouse embryonic stem (ES) cell self-renewal and differentia...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse embryon...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
During differentiation and reprogramming, new cell identities are generated by reconfiguration of ge...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
Motivation: Transcriptional regulatory networks controlling cell fate decisions in mammalian embryon...