Chromosome conformation capture (3C) has revolutionized the ways in which the conformation of chromatin and its relationship to other molecular functions can be studied. 3C-based techniques are used to determine the spatial arrangement of chromosomes in organisms ranging from bacteria to humans. In particular, they can be applied to the study of chromosome folding and organization in model organisms with small genomes and for which powerful genetic tools exist, such as budding yeast. Studies in yeast allow the mechanisms that establish or maintain chromatin structure to be analyzed at very high resolution with relatively low cost, and further our understanding of these fundamental processes in higher eukaryotes as well. Here we provide an o...
Chromatin packages eukaryotic genomes via a hierarchical series of folding steps, encrypting multipl...
SummaryWe describe a Hi-C-based method, Micro-C, in which micrococcal nuclease is used instead of re...
The study of chromosome, and genome, organization is a both an ongoing challenge, and one with a lon...
Chromosome conformation capture (3C) is a method for studying chromosomal organization that takes ad...
Three-dimensional organization of the chromatin has important roles in transcription, replication, D...
Chromosome conformation capture (3C) is one of the only techniques that allows for analysis of an in...
The higher order arrangement of nucleosomes and the level of compaction of the chromatin fiber play ...
Eukaryotic genomes are packaged into a nucleoprotein complex known as chromatin, which affects most ...
In eukaryotes, genome organization can be observed on many levels and at different scales. This orga...
In all organisms, chromatin is packed to fulfil structural constraints and functional requirements. ...
We describe a Hi-C-based method, Micro-C, in which micrococcal nuclease is used instead of restricti...
Regulation of gene expression in eukaryotes involves many complex processes, in which chromatin stru...
3C (chromatin conformation capture) is a technique to analyze chromatin organization in nuclei of eu...
Detecting three-dimensional (3D) genome organization in the form of physical interactions between va...
Chromosome conformation capture (3C) is used to quantify physical DNA contacts in vivo at high resol...
Chromatin packages eukaryotic genomes via a hierarchical series of folding steps, encrypting multipl...
SummaryWe describe a Hi-C-based method, Micro-C, in which micrococcal nuclease is used instead of re...
The study of chromosome, and genome, organization is a both an ongoing challenge, and one with a lon...
Chromosome conformation capture (3C) is a method for studying chromosomal organization that takes ad...
Three-dimensional organization of the chromatin has important roles in transcription, replication, D...
Chromosome conformation capture (3C) is one of the only techniques that allows for analysis of an in...
The higher order arrangement of nucleosomes and the level of compaction of the chromatin fiber play ...
Eukaryotic genomes are packaged into a nucleoprotein complex known as chromatin, which affects most ...
In eukaryotes, genome organization can be observed on many levels and at different scales. This orga...
In all organisms, chromatin is packed to fulfil structural constraints and functional requirements. ...
We describe a Hi-C-based method, Micro-C, in which micrococcal nuclease is used instead of restricti...
Regulation of gene expression in eukaryotes involves many complex processes, in which chromatin stru...
3C (chromatin conformation capture) is a technique to analyze chromatin organization in nuclei of eu...
Detecting three-dimensional (3D) genome organization in the form of physical interactions between va...
Chromosome conformation capture (3C) is used to quantify physical DNA contacts in vivo at high resol...
Chromatin packages eukaryotic genomes via a hierarchical series of folding steps, encrypting multipl...
SummaryWe describe a Hi-C-based method, Micro-C, in which micrococcal nuclease is used instead of re...
The study of chromosome, and genome, organization is a both an ongoing challenge, and one with a lon...