Active Genetics & Molecular Biology Pregnancy, Children & Inherited Conditions

Mechanisms of long-range gene regulation in craniofacial development and disease

In plain English

AI plain-English summary

Identical twins have nearly identical faces, revealing that our DNA largely sculpts how we look. This project studies how the lower jaw forms, focusing on a life-threatening birth defect called Pierre Robin sequence (PRS), where the jaw is dangerously small and can block breathing. The researchers grow human face cells in a dish to watch development in action. The problem is that many mutations causing PRS do not sit inside genes but in distant stretches of DNA. These mutations break genetic “switches” that control a key face gene called SOX9. The team wants to understand how SOX9’s many switches, unusually far from the gene itself, coordinate across long distances to turn the gene on and off at the right time. This is fundamental science: it asks how genes are normally regulated and what goes wrong in disease. If successful, it will explain a basic mechanism of long-range gene control, which could improve genetic diagnosis for PRS and other conditions caused by broken switches. Deeper knowledge of how DNA folds and communicates across vast stretches of the genome may eventually open routes to therapies that restore switch function—not just for facial disorders, but for many genetic diseases where distant mutations are the hidden cause.

View original technical description
The almost identical faces of twins reveal that facial appearance is largely determined by our genetic make-up. We focus on understanding how one feature of the face, the lower jaw, is formed. Some babies are born with a jaw that is much smaller than in most children (a condition called PRS), which can be life threatening due to difficulties breathing. To study human jaw development and disease, we grow cells in a dish that are like cells that form the face in the womb. Changes to our DNA, called mutations, are mostly non-harmful and can contribute to differences in facial appearance between people. Some mutations can cause disease by damaging genes (instructions to make proteins). Surprisingly, many patient mutations (including those causing PRS) are located far away from genes, instead of within them, raising the question how these changes cause disease. We now understand that these non-gene mutations often break ‘switches’ that turn genes on and off. Many of the mutations that cause PRS break switches for an important face gene called SOX9. Interestingly, SOX9 has many switches which are unusually far away from the gene, and we are interested to understand how these switches work together across long distances. Ultimately, we hope to understand how genes are turned on and off normally, and how disruption can cause human disease. Our work will help to improve diagnosis and treatment options for patients and will have wide-reaching implications for many genetic conditions.

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Researchers

Hannah Long (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Mechanisms of sox9 gene regulation and function in neural crest specification and craniofacial development
Cellular mechanisms of facial primordium growth
Composition of a regulatory locus and the impact on phenotype and disease
Genomic imprinting and the epigenetic control of developmental processes
Gene regulation in health and disease

Original classification

Intramural

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