It's a Trap! Aldolase-Prescribed C<sub>4</sub> Deoxyradiofluorination Affords Intracellular Trapping and the Tracing of Fructose Metabolism by PET.

Kirby, Alexia; Graf, Dominic; Suchý, Mojmír; Calvert, Nicholas D; Charlton, Thomas A; Ben, Robert N; Addison, Christina L; Shuhendler, Adam · J Nucl Med · 2024

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Abstract

Fructose metabolism has been implicated in various diseases, including metabolic disorders, neurodegenerative disorders, cardiac disorders, and cancer. However, the limited availability of a quantitative imaging radiotracer has hindered its exploration in pathology and diagnostic imaging. <b>Methods:</b> We adopted a molecular design strategy based on the catalytic mechanism of aldolase, a key enzyme in fructolysis. We successfully synthesized a radiodeoxyfluorinated fructose analog, [<sup>18</sup>F]4-fluoro-4-deoxyfructose ([<sup>18</sup>F]4-FDF), in high molar activity. <b>Results:</b> Through heavy isotope tracing by mass spectrometry, we demonstrated that C<sub>4</sub>-deoxyfluorination of fructose led to effective trapping as fluorodeoxysorbitol and fluorodeoxyfructose-1-phosphate in vitro, unlike C<sub>1</sub>- and C<sub>6</sub>-fluorinated analogs that resulted in fluorolactate accumulation. This observation was consistent in vivo, where [<sup>18</sup>F]6-fluoro-6-deoxyfructose displayed substantial bone uptake due to metabolic processing whereas [<sup>18</sup>F]4-FDF did not. Importantly, [<sup>18</sup>F]4-FDF exhibited low uptake in healthy brain and heart tissues, known for their high glycolytic activity and background levels of [<sup>18</sup>F]FDG uptake. [<sup>18</sup>F]4-FDF PET/CT allowed for sensitive mapping of neuro- and cardioinflammatory responses to systemic lipopolysaccharide administration. <b>Conclusion:</b> Our study highlights the significance of aldolase-guided C<sub>4</sub> radiodeoxyfluorination of fructose in enabling effective radiotracer trapping, overcoming limitations of C<sub>1</sub> and C<sub>6</sub> radioanalogs toward a clinically viable tool for imaging fructolysis in highly glycolytic tissues.

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