Completed Brain & Nervous System Cancer

Real time clinical imaging of tumour metabolism using hyperpolarized 13C magnetic resonance spectroscopy.

In plain English

AI plain-English summary

A single injection could soon allow doctors to watch a tumour’s metabolism in real time, revealing within hours whether a cancer treatment is working. Standard MRI scans show anatomy but not function. They cannot tell, days or weeks after starting chemotherapy, whether a patient’s tumour is dying or resistant. This project uses a technique called dissolution Dynamic Nuclear Polarization (DNP) to boost the magnetic signal from injected carbon-13 molecules by more than 10,000-fold. The resulting images track where the labelled molecules go and what they turn into inside the body—effectively mapping tumour metabolism as it happens. If successful, this technology could transform clinical radiology. Instead of waiting weeks to see if a drug shrinks a tumour, clinicians could assess treatment response within hours in individual patients. That would allow faster switches to effective therapies, sparing patients from toxic but useless drugs. The team has already shown the method works in preclinical animal models and in an early clinical trial for prostate cancer. This grant aims to complete the translation into routine hospital use, potentially changing how cancer treatment is monitored across the NHS.

View original technical description
Hyperpolarization of MR-active nuclei can increase their sensitivity to detection by more than 10,000-fold. The recent development of dissolution Dynamic Nuclear Polarization (DNP) has enabled the spatial distribution of injected hyperpolarized 13C-labelled cell substrates to be imaged in vivo using 13C magnetic resonance spectroscopic imaging (MRSI) as well as the spatial distribution of their metabolites. The technique promises unprecedented insights into human tissue metabolism, where it should allow the detection of disease processes that impact metabolism and the responses of these diseases to treatment. This is a transformational technology with the potential to change the practice of clinical radiology. Since patients with similar tumour types can have markedly different responses to the same therapy, the development of new treatments would benefit from the introduction of imaging methods that allow an early assessment of treatment response in individual patients. We have shown how hyperpolarised 13C-MRSI can be used to detect early evidence of treatment response in preclinical animal models of disease. The purpose of this application is to build on this growing body of preclinical data and the initial results of a phase I/II clinical trial in prostate cancer patients to translate this technology into the clinic.

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Researchers

Kevin Brindle (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Development of hyperpolarised carbon-13 MRI as a novel clinical imaging tool in oncology
Hyperpolarised carbon-13 MRI for metabolic imaging of renal cell carcinoma
Development of novel MRI methods to detect tumour cell proliferation in vivo
13C-pyruvate DNP hyperpolarised magnetic resonance imaging metabolic assessment of disease
Metabolic imaging of tumours and their response to chemotherapy

Original classification

Strategic Award - Innovations

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