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Hyperpolarized 13C Metabolic Magnetic Resonance Spectroscopy and Imaging
Published on: December 30, 2016
Monitoring chemotherapeutic response by hyperpolarized 13C-fumarate MRS and diffusion MRI
Lionel Mignion1, Prasanta Dutta, Gary V Martinez
1Authors' Affiliations: Biomedical Magnetic Resonance Research Group, Louvain Drug Research Institute, Université Catholique de Louvain, Brussels, Belgium; and Department of Cancer Imaging and Metabolism, H. Lee Moffitt Cancer Center and Research Institute, Tampa, Florida.
Abstract:
Targeted chemotherapeutic agents often do not result in tumor shrinkage, so new biomarkers that correlate with clinical efficacy are needed. In this study, we investigated noninvasive imaging protocols to monitor responses to sorafenib, a multikinase inhibitor approved for treatment of renal cell and hepatocellular carcinoma. Healthy cells are impermeable to fumarate, so conversion of this metabolite to malate as detected by (13)C-magnetic resonance spectroscopy (MRS) has been suggested as one marker for cell death and treatment response in tumors. Diffusion MRI also has been suggested as a measure of therapy-induced cytotoxic edema because viable cells act as a diffusion barrier in tissue. For these reasons, we assessed sorafenib responses using hyperpolarized (13)C-fumarate, diffusion-weighted MRI (DW-MRI) in a xenograft model of human breast cancer in which daily administration of sorafenib was sufficient to stabilize tumor growth. We detected signals from fumarate and malate following intravenous administration of hyperpolarized fumarate with a progressive increase in the malate-to-fumarate (MA/FA) ratio at days 2 to 5 after sorafenib infusion. The apparent diffusion coefficient (ADC) measured by DW-MRI increased in the treated group consistent with cytotoxic edema. However, the MA/FA ratio was a more sensitive marker of therapeutic response than ADC, with 2.8-fold versus 1.3-fold changes, respectively, by day 5 of drug treatment. Histologic analyses confirmed cell death in the sorafenib-treated cohort. Notably, (13)C-pyruvate-to-lactate conversion was not affected by sorafenib in the breast cancer model examined. Our results illustrate how combining hyperpolarized substrates with DW-MRI can allow noninvasive monitoring of targeted therapeutic responses at relatively early times after drug administration.
Insights
New imaging techniques show promise for monitoring cancer drug effectiveness. Hyperpolarized (13)C-fumarate magnetic resonance spectroscopy (MRS) and diffusion-weighted MRI (DW-MRI) can detect early signs of tumor response to sorafenib treatment.
Area of Science:
- Oncology
- Medical Imaging
- Biochemistry
Background:
- Targeted therapies require biomarkers to assess clinical efficacy.
- Noninvasive imaging methods are needed to monitor treatment response.
- Sorafenib is a multikinase inhibitor used for renal cell and hepatocellular carcinoma.
Purpose of the Study:
- To investigate noninvasive imaging protocols for monitoring responses to sorafenib.
- To assess hyperpolarized (13)C-fumarate MRS and DW-MRI as biomarkers for therapeutic response.
Main Methods:
- Utilized a xenograft model of human breast cancer.
- Administered daily sorafenib to stabilize tumor growth.
- Assessed responses using hyperpolarized (13)C-fumarate MRS and DW-MRI.
Main Results:
- Detected fumarate and malate signals, with an increasing malate-to-fumarate (MA/FA) ratio post-sorafenib.
- DW-MRI showed an increased apparent diffusion coefficient (ADC), indicating cytotoxic edema.
- The MA/FA ratio was a more sensitive marker of therapeutic response than ADC.
Conclusions:
- Hyperpolarized (13)C-fumarate MRS and DW-MRI can noninvasively monitor early therapeutic responses.
- The MA/FA ratio shows potential as a sensitive biomarker for sorafenib efficacy.
- Combined imaging approaches offer valuable insights into targeted therapy outcomes.

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