Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

Understanding mammalian interphase genome structure in mouse ES cells

In plain English

AI plain-English summary

Every human cell packs two metres of DNA into a nucleus just a few millionths of a metre across, and the way that DNA is folded determines which genes are active. This project aims to settle a long-standing chicken-and-egg question: does a protein complex called NuRD physically reshape the genome to switch genes on or off, or does it simply turn genes on and off, and the genome’s shape changes as a side effect? The researchers have already calculated the first three-dimensional structures of entire mammalian genomes from single cells, using a new technique that combines imaging with a biochemical method called Hi-C. They now plan to build a custom microscope that can track single NuRD proteins in 3D at super-resolution, and then link those protein positions directly to the genome structures in the same cell. This is fundamental science—there is no immediate medical or commercial application. But understanding how genome folding is established and regulated in mouse embryonic stem cells will reveal basic principles of gene control that apply across mammals, including humans. Similar fundamental work on chromatin structure in the past laid the groundwork for modern gene-editing tools and cancer diagnostics.

View original technical description
The folding of genomic DNA from the beads-on-a-string like structure of nucleosomes into higher order assemblies is critically linked to nuclear processes, but it is unclear to what degree it is a cause or consequence of function. We aim to understand whether the Nucleosome Remodeling and Deacetylation (NuRD) complex regulates chromatin structure to control transcription, or whether it is NuRD’s regulation of transcription that results in global changes in chromosome structure. We have calculated the first 3D structures of entire mammalian genomes using a new chromosome conformation capture procedure, which combines imaging with Hi-C processing of the same single cell. Our objectives are now: • To study: 1) how interphase mammalian genome structure is established in G1; 2) the factors that drive this formation and; 3) how this organisation is regulated by chromatin remodellers (such as the NuRD complex) as mESC’s differentiate. • To build a dedicated bespoke microscope for 3D double helix point spread function detection with light sheet activation, optimised for 3D single-molecule/super-resolution imaging of proteins such as the NuRD complex. • To combine 3D super-resolution imaging and the biochemical processing steps of single cell Hi-C to directly correlate binding of protein complexes to regions of the structures.

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Researchers

Ernest Laue (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Exploring Genome Structure During Self-Renewal and the Exit from Pluripotency
Understanding how the NuRD complex regulates ES cell differentiation using single molecule fluorescence imaging
Understanding how the NuRD complex assembles and functions in mouse embryonic stem cells (mESC's)
Interrogating the mesoscale chromatin domain organisation and function with super-resolution imaging
Understanding how the NuRD complex functions in mouse embryonic stem cells (mESC's)

Original classification

Collaborative Award in Science

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