Completed Cancer Genetics & Molecular Biology

Explaining and exploiting the spectrum of isocitrate dehydrogenase driver mutations in different tumour types

In plain English

AI plain-English summary

A single mutation in a cancer gene can produce either too little or too much of a toxic chemical, and tumours may actively select for the "just right" amount. This matters because the genes *IDH1* and *IDH2* are frequently mutated in aggressive cancers, including certain brain tumours and leukaemias. The mutations force cells to churn out a molecule called D2HG. But the puzzle is that different cancer types favour different mutations, and the most common mutation in a given tumour does not always produce the most D2HG. The researchers suspect that tissues vary in how they handle D2HG, and that tumours evolve to hit a specific D2HG level that best fuels their growth. If this is correct, the impact could be unexpected. Instead of blocking mutant IDH—the current therapeutic strategy—doctors might one day *raise* D2HG levels in some tumours to push them past a tolerable threshold, stunting their growth. This is fundamental science: it asks why certain mutations win out in evolution. Past work on such selective pressures has revealed new drug targets, but this project is curiosity-driven, exploring a basic principle of cancer biology with no immediate clinical application.

View original technical description
Recently, there has been great interest in mutational processes in cancer. This project looks at the other side of the coin, namely important genetic changes in cancer that cannot be explained by mutational processes and hence probably result from natural selection. The driver oncogenes IDH1 and IDH2 are frequently mutated in several cancer types, including some with a very poor prognosis. The mutations cause de novo production of the “oncometabolite” D2HG. Pathogenic IDH1 and IDH2 mutations occur at specific amino acids, but the mutation spectrum varies strikingly across cancer types, independent of underlying mutational processes. Preliminary evidence suggests that different IDH mutations vary in their ability to produce D2HG and the most frequent mutations may not make the most D2HG. This project tests the model that tissues vary quantitatively in their D2HG production and/or detoxification and/or activation of oncogenic pathways in response to D2HG. We hypothesise that the most common IDH mutations in each tumour type are selected to produce the level of D2HG that best promotes tumorigenesis. We shall test whether some mutations actually produce too much D2HG for efficient tumour growth, opening up exciting new therapeutic opportunities based not on targeting mutant IDH, but on raising D2HG levels.

View the original record at the funder ↗

Researchers

Ian Tomlinson (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Metabolomics for therapeutic discovery: How do Isocitrate Dehydrogenase (IDH1) mutations impact on cellular metabolism?
The role of IDH mutation in liver cell plasticity and cancer
Identifying the mechanisms responsible for low- to high-grade transformation in IDH mutant astrocytoma
Investigation of the metabolic changes caused by isocitrate dehydrogenase mutations using mass spectrometry
The role of partner mutations in histone-mutant paediatric glioma

Original classification

Investigator Award in Science

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