<sup>18</sup>F-FAC PET Visualizes Brain-Infiltrating Leukocytes in a Mouse Model of Multiple Sclerosis.

Chen, Bao Ying; Ghezzi, Chiara; Villegas, Brendon; Quon, Andrew; Radu, Caius G; Witte, Owen N; Clark, Peter M · J Nucl Med · 2020

basic_science · Level V

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Abstract

Brain-infiltrating leukocytes contribute to multiple sclerosis (MS) and autoimmune encephalomyelitis and likely play a role in traumatic brain injury, seizure, and stroke. Brain-infiltrating leukocytes are also primary targets for MS disease-modifying therapies. However, no method exists for noninvasively visualizing these cells in a living organism. 1-(2'-deoxy-2'-<sup>18</sup>F-fluoroarabinofuranosyl) cytosine (<sup>18</sup>F-FAC) is a PET radiotracer that measures deoxyribonucleoside salvage and accumulates preferentially in immune cells. We hypothesized that <sup>18</sup>F-FAC PET could noninvasively image brain-infiltrating leukocytes. <b>Methods:</b> Healthy mice were imaged with <sup>18</sup>F-FAC PET to quantify if this radiotracer crosses the blood-brain barrier (BBB). Experimental autoimmune encephalomyelitis (EAE) is a mouse disease model with brain-infiltrating leukocytes. To determine whether <sup>18</sup>F-FAC accumulates in brain-infiltrating leukocytes, EAE mice were analyzed with <sup>18</sup>F-FAC PET, digital autoradiography, and immunohistochemistry, and deoxyribonucleoside salvage activity in brain-infiltrating leukocytes was analyzed ex vivo. Fingolimod-treated EAE mice were imaged with <sup>18</sup>F-FAC PET to assess if this approach can monitor the effect of an immunomodulatory drug on brain-infiltrating leukocytes. PET scans of individuals injected with 2-chloro-2'-deoxy-2'-<sup>18</sup>F-fluoro-9-β-d-arabinofuranosyl-adenine (<sup>18</sup>F-CFA), a PET radiotracer that measures deoxyribonucleoside salvage in humans, were analyzed to evaluate whether <sup>18</sup>F-CFA crosses the human BBB. <b>Results:</b><sup>18</sup>F-FAC accumulates in the healthy mouse brain at levels similar to <sup>18</sup>F-FAC in the blood (2.54 ± 0.2 and 3.04 ± 0.3 percentage injected dose per gram, respectively) indicating that <sup>18</sup>F-FAC crosses the BBB. EAE mice accumulate <sup>18</sup>F-FAC in the brain at 180% of the levels of control mice. Brain <sup>18</sup>F-FAC accumulation localizes to periventricular regions with significant leukocyte infiltration, and deoxyribonucleoside salvage activity is present at similar levels in brain-infiltrating T and innate immune cells. These data suggest that <sup>18</sup>F-FAC accumulates in brain-infiltrating leukocytes in this model. Fingolimod-treated EAE mice accumulate <sup>18</sup>F-FAC in the brain at 37% lower levels than control-treated EAE mice, demonstrating that <sup>18</sup>F-FAC PET can monitor therapeutic interventions in this mouse model. <sup>18</sup>F-CFA accumulates in the human brain at 15% of blood levels (0.08 ± 0.01 and 0.54 ± 0.07 SUV, respectively), indicating that <sup>18</sup>F-CFA does not cross the BBB in humans. <b>Conclusion:</b><sup>18</sup>F-FAC PET can visualize brain-infiltrating leukocytes in a mouse MS model and can monitor the response of these cells to an immunomodulatory drug. Translating this strategy into humans will require exploring additional radiotracers.

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