Recent sequence-based profiling technologies such as high-throughput sequencing to detect fragment nucleotide sequence (Hi-C) and chromatin interaction analysis by paired-end tag sequencing (ChIA-PET) have revolutionized the field of three-dimensional (3D) chromatin architecture. It is now recognized that human genome functions as folded 3D chromatin units and looping paradigm is the basic principle of gene regulation. To better interpret the 3D data dramatically accumulating in past five years and to gain deep biological insights, huge efforts have been made in developing novel quantitative analysis methods. However, the full understanding of genome regulation requires thorough knowledge in both genomic technologies and their related data ...
The development and widespread implementation of chromosome conformation capture (3C) technology has...
Recently developed methods that couple next-generation sequencing with chromosome conformation captu...
© 2019 The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research....
Recent sequence-based profiling technologies such as high-throughput sequencing to detect fragment n...
DNA inside the nuclei of cells is folded into an intricate three-dimensional (3D) structure that inf...
Beyond linear sequence, higher order structure of the genome influences gene regulation and has been...
The hierarchical organization of chromatin is known to associate with diverse cellular functions; ho...
The three-dimensional structure of the genome plays a key role in gene regulation. For example, whil...
How DNA is organized in three dimensions inside the cell nucleus and how this affects the ways in wh...
Genome-wide 3C technologies (Hi-C) are being increasingly employed to study three-dimensional (3D) g...
Understanding 3D genome structure is crucial to learn how chromatin folds and how genes are regulate...
Precise and delicate 3D genome organization is fundamental to cellular homeostasis. Big data generat...
Precise and delicate 3D genome organization is fundamental to cellular homeostasis. Big data generat...
In all organisms, chromatin is packed to fulfil structural constraints and functional requirements. ...
The chromatin organization in the 3D nuclear space is essential for genome functionality. This spati...
The development and widespread implementation of chromosome conformation capture (3C) technology has...
Recently developed methods that couple next-generation sequencing with chromosome conformation captu...
© 2019 The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research....
Recent sequence-based profiling technologies such as high-throughput sequencing to detect fragment n...
DNA inside the nuclei of cells is folded into an intricate three-dimensional (3D) structure that inf...
Beyond linear sequence, higher order structure of the genome influences gene regulation and has been...
The hierarchical organization of chromatin is known to associate with diverse cellular functions; ho...
The three-dimensional structure of the genome plays a key role in gene regulation. For example, whil...
How DNA is organized in three dimensions inside the cell nucleus and how this affects the ways in wh...
Genome-wide 3C technologies (Hi-C) are being increasingly employed to study three-dimensional (3D) g...
Understanding 3D genome structure is crucial to learn how chromatin folds and how genes are regulate...
Precise and delicate 3D genome organization is fundamental to cellular homeostasis. Big data generat...
Precise and delicate 3D genome organization is fundamental to cellular homeostasis. Big data generat...
In all organisms, chromatin is packed to fulfil structural constraints and functional requirements. ...
The chromatin organization in the 3D nuclear space is essential for genome functionality. This spati...
The development and widespread implementation of chromosome conformation capture (3C) technology has...
Recently developed methods that couple next-generation sequencing with chromosome conformation captu...
© 2019 The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research....