Explore the human genome in 3D — a fun way to learn.

The era of 3D and spatial genomics is here.

Most early studies on 3D genome organization used imaging-based approaches, and the development of the first genomic method to query the 3D genome over two decades ago – chromosome conformation capture – created a massive ripple effect across the field.

Together, spatial genomics and spatial transcriptomics promise to revolutionize both biology and medicine by providing unprecedented insights into the spatial organization of tissues and how fundamental cellular processes are orchestrated in multicellular organisms.

3D genomics

We summarize how the toolkit for charting genome topology

Spatial variations

We summarize how the toolkit for charting genome topology

Nucleic mapping

We summarize how the toolkit for charting genome topology

3D genome organization analysis, including sequencing-based techniques

Every chromosome occupies a separate territory in the interphase nucleus and forms the top layer of hierarchical structure (CTs) in most of the eukaryotes. While the A and B compartments are associated with active (euchromatic) and inactive (heterochromatic) chromatin, respectively, having well-defined genomic/epigenomic features, TADs are the structural units of chromatin.

Gnome Alpha Explorer 1.0

Every chromosome occupies a separate territory in the interphase nucleus and forms the top layer of hierarchical structure (CTs) in most of the eukaryotes.

Chroma Vue 2.0

Every chromosome occupies a separate territory in the interphase nucleus and forms the top layer of hierarchical structure (CTs) in most of the eukaryotes.

Nuclei Mapper Alpha

Every chromosome occupies a separate territory in the interphase nucleus and forms the top layer of hierarchical structure (CTs) in most of the eukaryotes.

Get in touch with us

Opposite Google Next Innovation,
5th Close, Alhaji SUley Street, Abelemkpe, Accra, Ghana

connect@gnome3d.io

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