PC12 cells are a popular model system to study changes driving and accompanying neuronal differentiation. While attention has been paid to changes in transcriptional regulation and protein signaling, much less is known about the changes in organization that accompany PC12 differentiation. Fluorescence microscopy can provide extensive information about these changes, although it is difficult to continuously observe changes over many days of differentiation. We describe a generative model of differentiation-associated changes in cell and nuclear shape and their relationship to mitochondrial distribution constructed from images of different cells at discrete time points. We show that the model accurately represents complex cell and nuclear sha...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
Our knowledge of how individual cells self-organize to form complex multicellular systems is being r...
Mitochondria, classically known as the powerhouse of cells, are unique double membrane-bound multifa...
ABSTRACT Modeling cell shape variation is critical to our understanding of cell biology. Pre-vious w...
Mechanical stimuli and geometrical constraints transmitted across the cytoskeleton to the nucleus af...
<div><p>Pluripotent embryonic stem cells (ESCs) have the unique ability to differentiate into cells ...
In a worldwide effort to generate clinically useful therapeutic or preventive interventions, harness...
Revolutionary advances in AI and deep learning in recent years have resulted in an upsurge of papers...
Detection of neuronal cell differentiation is essential to study cell fate decisions under various s...
Higher-order genomic architecture varies according to cell type and changes dramatically during diff...
Essential biological functions, such as mitosis, require tight coordination of hundreds of proteins ...
In this report, we present multiparameter deformability cytometry (m-DC), in which we explore a larg...
International audienceRelating genotypes with phenotypes is important to understand diseases like ca...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
Cell lineage decisions occur in three-dimensional spatial patterns that are difficult to identify by...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
Our knowledge of how individual cells self-organize to form complex multicellular systems is being r...
Mitochondria, classically known as the powerhouse of cells, are unique double membrane-bound multifa...
ABSTRACT Modeling cell shape variation is critical to our understanding of cell biology. Pre-vious w...
Mechanical stimuli and geometrical constraints transmitted across the cytoskeleton to the nucleus af...
<div><p>Pluripotent embryonic stem cells (ESCs) have the unique ability to differentiate into cells ...
In a worldwide effort to generate clinically useful therapeutic or preventive interventions, harness...
Revolutionary advances in AI and deep learning in recent years have resulted in an upsurge of papers...
Detection of neuronal cell differentiation is essential to study cell fate decisions under various s...
Higher-order genomic architecture varies according to cell type and changes dramatically during diff...
Essential biological functions, such as mitosis, require tight coordination of hundreds of proteins ...
In this report, we present multiparameter deformability cytometry (m-DC), in which we explore a larg...
International audienceRelating genotypes with phenotypes is important to understand diseases like ca...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
Cell lineage decisions occur in three-dimensional spatial patterns that are difficult to identify by...
The molecular regulatory network underlying stem cell pluripotency has been intensively studied, and...
Our knowledge of how individual cells self-organize to form complex multicellular systems is being r...
Mitochondria, classically known as the powerhouse of cells, are unique double membrane-bound multifa...