Effect of Acute Hypoxia Exposure on the Availability of A<sub>1</sub> Adenosine Receptors and Perfusion in the Human Brain.

Michno, Manuel; Schmitz, Jan; Foerges, Anna L; Beer, Simone; Jordan, Jens; Neumaier, Bernd; Drzezga, Alexander; Aeschbach, Daniel et al. · J Nucl Med · 2025

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Abstract

In animal studies it has been observed that the inhibitory neuromodulator adenosine is released into the cerebral interstitial space during hypoxic challenges. Adenosine's actions on the A<sub>1</sub> adenosine receptor (A<sub>1</sub>AR) protect the brain from oxygen deprivation and overexertion through adjustments in cerebral blood flow, metabolism, and electric activity. <b>Methods:</b> Using 8-cyclopentyl-3-(3-[<sup>18</sup>F]fluoropropyl)-1-propylxanthine ([<sup>18</sup>F]CPFPX), a PET tracer for the A<sub>1</sub>AR, we tested the hypothesis that hypoxia-induced adenosine release reduces A<sub>1</sub>AR availability in the human brain. Furthermore, we investigated whether this response is associated with altered brain perfusion and psychomotor vigilance. Ten healthy volunteers completed a 110-min bolus-plus-constant-infusion [<sup>18</sup>F]CPFPX PET/MRI hybrid experiment including a 30-min interval of normobaric hypoxia with peripheral oxygen saturation between 70% and 75%. We obtained blood samples to calculate metabolite-corrected steady-state A<sub>1</sub>AR distribution volumes and measured gray matter brain perfusion via arterial spin labeling in high temporal resolution. A 3-min psychomotor vigilance test was conducted every 10 min, and heart rate and peripheral blood oxygen saturation were continuously measured. <b>Results:</b> In all 7 examined brain regions, hypoxia reduced A<sub>1</sub>AR availability significantly (e.g., frontal lobe, 13.5%; <i>P</i> = 0.0144) whereas gray matter brain perfusion increased (e.g., frontal lobe, 42.5%; <i>P</i> = 0.0007). Heart rate increased by 19% (<i>P</i> = 0.0039). Mean reaction speed decreased by 4.3% (<i>P</i> = 0.0021). <b>Conclusion:</b> Our study is the first, to our knowledge, to demonstrate that acute hypoxia, corresponding to a mean altitude of 5,500 m (18,000 ft), reduces A<sub>1</sub>AR availability in the human brain. The finding is consistent with hypoxia-induced cerebral adenosine release leading to increased A<sub>1</sub>AR occupancy.

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