Abstract Topologically associating domains (TAD) are a key structure of the 3D mammalian genomes. However, the prevalence and dynamics of TAD-like domains in single cells remain elusive. Here we develop a new algorithm, named deTOKI, to decode TAD-like domains with single-cell Hi-C data. By non-negative matrix factorization, deTOKI seeks regions that insulate the genome into blocks with minimal chance of clustering. deTOKI outperforms competing tools and reliably identifies TAD-like domains in single cells. Finally, we find that TAD-like domains are not only prevalent, but also subject to tight regulation in single cells
Continuous improvements to high-throughput conformation capture (Hi-C) are revealing richerinformati...
Understanding how regulatory sequences interact in the context of chromosomal architecture is a cent...
Genome-wide proximity ligation based assays such as Hi-C have revealed that eukaryotic genomes are o...
BackgroundChromatin folding gives rise to structural elements among which are clusters of densely in...
Abstract Background Topologically associating domains (TADs) are considered the structural and funct...
Chromatin folding gives rise to structural elements among which are clusters of densely interacting ...
Abstract Background Mechanisms underlying genome 3D organization and domain formation in the mammali...
The rapid development of Chromosome Conformation Capture (3C-based techniques), as well as imaging t...
Abstract Background Topologically associating domains (TADs) are important building blocks of three-...
Super-resolution microscopy identifies sub-topologically associating domain (TAD) nanodomains and in...
The tridimensional (3D) organization of mammalian genomes combines structures from different length ...
Abstract Background With the development of chromosomal conformation capturing techniques, particula...
International audienceThe tridimensional (3D) organization of mammalian genomes combines structures ...
Background: Topologically associating domains (TADs) are considered the structural and functional un...
AbstractMetazoan genomes are highly organized inside the cell nucleus. Topologically associating dom...
Continuous improvements to high-throughput conformation capture (Hi-C) are revealing richerinformati...
Understanding how regulatory sequences interact in the context of chromosomal architecture is a cent...
Genome-wide proximity ligation based assays such as Hi-C have revealed that eukaryotic genomes are o...
BackgroundChromatin folding gives rise to structural elements among which are clusters of densely in...
Abstract Background Topologically associating domains (TADs) are considered the structural and funct...
Chromatin folding gives rise to structural elements among which are clusters of densely interacting ...
Abstract Background Mechanisms underlying genome 3D organization and domain formation in the mammali...
The rapid development of Chromosome Conformation Capture (3C-based techniques), as well as imaging t...
Abstract Background Topologically associating domains (TADs) are important building blocks of three-...
Super-resolution microscopy identifies sub-topologically associating domain (TAD) nanodomains and in...
The tridimensional (3D) organization of mammalian genomes combines structures from different length ...
Abstract Background With the development of chromosomal conformation capturing techniques, particula...
International audienceThe tridimensional (3D) organization of mammalian genomes combines structures ...
Background: Topologically associating domains (TADs) are considered the structural and functional un...
AbstractMetazoan genomes are highly organized inside the cell nucleus. Topologically associating dom...
Continuous improvements to high-throughput conformation capture (Hi-C) are revealing richerinformati...
Understanding how regulatory sequences interact in the context of chromosomal architecture is a cent...
Genome-wide proximity ligation based assays such as Hi-C have revealed that eukaryotic genomes are o...