Active Genetics & Molecular Biology Pregnancy, Children & Inherited Conditions

Mechanisms for Microcephaly, Cancer and Autoinflammation

In plain English

AI plain-English summary

Faulty enzymes that fail to clean up waste DNA and RNA inside cells can trick the body into attacking its own brain, mimicking a viral infection. This research programme studies the genes behind rare inherited brain disorders to understand what goes wrong at the molecular level. One condition, Aicardi-Goutières syndrome, involves defects in nuclease enzymes that normally clear out naturally produced genetic waste. When these enzymes fail, the immune system mounts a self-attack—a mechanism also relevant to common autoimmune diseases like lupus. Separately, the team investigates genes that cause primordial dwarfism, where extreme growth failure results from too few cells being produced during development. This is fundamental science with no immediate practical application. However, the work has already revealed that ribonucleotides—the building blocks of RNA—can end up in DNA, causing genome damage and mutations linked to cancer. That mutation signature could one day help tailor cancer therapies. Understanding how the body regulates growth may also shed light on why humans are larger than mice and how our brains evolved to be so big. Similar fundamental research into DNA repair and cell division has previously led to breakthroughs in cancer treatment and genetic diagnostics.

View original technical description
This programme identifies genes causing inherited disorders of the brain. We study how these genes function, using cells and model organisms. Aicardi-Goutières syndrome is a genetic condition in which faults in genes encoding enzymes called nucleases mimic viral infection of the brain. These nucleases may normally clean up naturally produced ‘waste’ DNA and RNA. Failure of this process leads to the body mounting an immune reaction against itself. This immune response mechanism is relevant to common autoimmune diseases such as lupus. So, we are studying these nucleases to understand their normal roles in cells and to establish what happens when these enzymes fail. From studying one of these nucleases, we have found that ribonucleotides, the building blocks of RNA, are also present in DNA. They can be harmful causing damage to the genome and can lead to mutations in cancers. The signature of such mutations may be useful in future in tailoring cancer therapies. We also discover genes that cause primordial dwarfism, conditions with extreme growth failure of the brain and body. Such individuals are the 'smallest people in the world'. These disorders are due to fewer cells being made during development, leading to a smaller person. Identifying primordial dwarfism genes helps diagnose and manage these rare conditions. It also gives insights into how the body regulates growth, perhaps shedding light into why humans are bigger than mice and how our brains evolved to be so large.

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Researchers

Andrew Jackson (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

From Microcephaly to Genome Stability, Inflammation and Growth Regulation
The basis underlying microcephaly caused by defects in replication or DNA repair.
Functional studies of mutant nucleases in a genetic model of inflammatory and viral disease.
Epigenetic changes in the early life programming of disease
The smallest of the small: determining size through cell number

Original classification

Intramural

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