Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Regulation of DNA repair pathways by monoubiquitin signals

In plain English

AI plain-English summary

Every time a cell divides, it must copy three billion DNA letters with near-perfect accuracy—and this project studies the molecular signals that coordinate the repair when that process goes wrong. DNA is under constant attack from sunlight, tobacco smoke, and even normal metabolism. Cells have multiple repair pathways to fix the damage, but when those pathways fail, mutations accumulate and cancers can develop. Current chemotherapies exploit this vulnerability by deliberately damaging cancer cells’ DNA, but tumours often develop resistance by switching between repair pathways—a process researchers do not yet fully understand. This project focuses on two specific repair pathways, both controlled by the same molecular signal: a single ubiquitin tag attached to a key protein. The same enzyme must remove that tag to complete the repair. The team will map the atomic structures of the molecules involved and test how the pathways interact in living cells. This is fundamental science. A clearer picture of how repair pathways collaborate could eventually reveal why some tumours resist chemotherapy and suggest new ways to make cancer cells vulnerable again. Past discoveries in DNA repair have already transformed cancer treatment; this work builds on that foundation.

View original technical description
The information required for human life is encoded in our DNA, which is copied every time cells divide. It is crucial that DNA is copied accurately, as errors and mutations can be passed on to the next generations of cells, and can give rise to many different diseases, particularly cancers. The DNA in our cells is under constant threat from DNA-damaging agents. These include external sources such as UV from sunlight, tobacco, pollution, among many more, but DNA damage also happens during normal replication, metabolism, and other physiological processes. Humans have evolved multiple different pathways for repairing the many different types of DNA damage that can occur. Several inheritable diseases arise from mutations in these pathways including ataxia telangiectasia and Fanconi Anemia. These pathways are controlled by complex signal relays to recruit the many different proteins and enzymes required to keep DNA replication an accurate, high-fidelity process. One such signalling relay is the use of monoubiquitin signals, whereby a single molecule of ubiquitin is attached to a specific position on a protein that is required for recruitment and regulation of downstream repair factors. In many cancers, tumour cells are replicating more quickly than non-cancerous cells. As such, cancer cells are vulnerable to DNA damage because of the potential to slow down or stop DNA replication. This vulnerability is exploited in medicine, with targeted DNA damage being a major form of chemotherapy and radiotherapy. However, such treatments also cause damage in other cells. Furthermore, chemotherapy encourages the rapidly dividing cells in tumours to find ways around the damage, which can lead to resistance. These mechanisms of resistance to drug treatments are not yet well understood. One possibility is that cancer cells recruit components from other repair pathways to circumvent the damage being caused by targeting one particular pathway. However, we do not yet have a full understanding of how different DNA repair pathways interact and interplay with each other. Two of these repair pathways - one for allowing bypass of DNA damage sites, and one for fixing the damage when two strands of DNA become linked to each other - are regulated by common signals that are created by a unique set of proteins. The same enzyme is required to remove the signal, a step required for completion of the repair. We hypothesise that the shared features of these pathways underpin the interplay and cooperation between pathways. We aim to dissect and define the molecular details of the synergies and collaboration between pathways, defining unique elements that are specific, and generic elements that are common. We will take an integrated approach to testing this hypothesis, uncovering the atomic details of the molecules involved in order to understand how they function, and assessing the ability of individual pathways to impact on each other in cell lines. We'd like to use our insights into the molecular components to understand the basis of the interplay, how they influence each other, and whether that deep molecular understanding can be exploited to develop strategies to target cancer cells.

View the original record at the funder ↗

Researchers

Helen Walden (Principal Investigator)Neil Bulleid (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Structural Biology of DNA Damage Response and Repair Mechanisms and its Exploitation for Drug Discovery
Structures, Recruitment and Regulation of Key Components in DNA Damage Response
DNA damage response mechanisms
Structural Biology of DNA Damage Response and Repair Mechanisms
Determining how global genome nucleotide excision repair promotes efficient removal of DNA damage from chromatin

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.