Assessing cancer therapeutic efficacy in vivo using [<sup>2</sup>H<sub>7</sub>]glucose deuterium metabolic imaging.

Chang, Mario C; Malut, Vinay R; Mahar, Rohit; Rushin, Anna; McLeod, Marc A; Pierre, Geraldine L; Malut, Indu R; Staklinski, Stephen J et al. · Sci Adv · 2025

basic_science · Level V

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Abstract

Metabolic imaging produces powerful visual assessments of organ function in vivo. Current techniques can be improved by safely increasing metabolic contrast. The gold standard, 2-[<sup>18</sup>F]fluorodeoxyglucose-positron emission tomography (FDG-PET) imaging, is limited by radioactive exposure and sparse assessment of metabolism beyond glucose uptake and retention. Deuterium magnetic resonance imaging (DMRI) with [6,6-<sup>2</sup>H<sub>2</sub>]glucose is nonradioactive, achieves tumor metabolic contrast, but can be improved by enriched contrast from deuterated water (HDO) based imaging. Here, we developed a DMRI protocol employing [<sup>2</sup>H<sub>7</sub>]glucose. Imaging <sup>2</sup>H-signal and measuring HDO production in tumor-bearing mice detected differential glucose utilization across baseline tumors, tumors treated with vehicle control or anti-glycolytic BRAFi and MEKi therapy, and contralateral healthy tissue. Control tumors generated the most <sup>2</sup>H-signal and HDO. To our knowledge this is the first application of DMRI with [<sup>2</sup>H<sub>7</sub>]glucose for tumoral treatment monitoring. This approach demonstrates HDO as a marker of tumor glucose utilization and suggests translational capability in humans due to its safety, noninvasiveness, and suitability for serial monitoring.

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