Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Understanding the mechanistic relationship between 3D gene structure and transcription

In plain English

AI plain-English summary

Every human cell packs two metres of DNA into a nucleus a few millionths of a metre across, and the way that DNA is folded in 3D space may control which genes are switched on or off. Scientists have long suspected that this 3D gene structure regulates transcription—the process that reads genes into proteins—but direct proof has been thin. This project aims to close that gap by building a new computer model that predicts how a gene’s 3D shape relates to its activity, then testing those predictions in living human cells. The team will also create the first genome-wide catalogue of 3D gene structures, asking whether evolution has shaped these folds to fine-tune gene expression. A further strand investigates whether a protein called SAF-A, which forms gel-like structures with RNA, can physically alter gene architecture and thereby influence transcription. This is fundamental science: there is no immediate clinical or commercial application. But understanding how 3D genome misfolding causes disease—already linked to cancers and developmental disorders—depends on first knowing how healthy folding works. Past work on chromatin structure has already reshaped how we think about gene regulation; this project could provide the mechanistic foundation for that field.

View original technical description
A role for 3D gene structure in regulating transcription has been hypothesised, but direct evidence remains limited. This restricts our understanding of the mechanisms through which chromatin misfolding leads to disease. To understand the relationship between structure and transcription in human cells we will integrate molecular biology approaches and cutting-edge mechanistic polymer models of chromatin. Such models are well-suited to explore parameter space, predict molecular properties, and generate hypotheses to provide a framework for laboratory experiments. Using minimal bioinformatic data, a new polymer model to predict gene structure and transcriptional activity in healthy or diseased cells will be developed and experimentally validated. We will then assemble the first genome-wide, 3D gene structure compendium and use it as a foundation to determine if structure has evolved to regulate transcription. Polymer models predict a range of possible structures. We will combine simulations and experiments to test whether such intra-gene structural heterogeneity regulates transcriptional noise and will identify the mechanisms involved through locus engineering. Finally, as the protein SAF-A interacts with RNA to regulate gene architecture, we will incorporate RNA fields into simulations and experimentally investigate the concept that protein/RNA gels can impact transcription, thereby characterising a novel feedback between structure and function.

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Researchers

Davide Marenduzzo (EPMC Awardee)Nick Gilbert (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Employment of MD simulations to study the relation between 3D genome organisation and disease predisposition and treatment
Computational Methods for Predicting Changes in 3-D Chromosome Re- arrangement and Gene Deregulation in Human Diseases
Chromatin architecture and regulation
Physical Modelling of Chromatin at Individual Nucleosome Scale
Mechanism and regulation of RNA-directed chromatin modification.

Original classification

Investigator Award in Science

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