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Updated: May 2, 2026

A Dual Tracer PET-MRI Protocol for the Quantitative Measure of Regional Brain Energy Substrates Uptake in the Rat
Published on: December 28, 2013
Age dependence of brain oxygen metabolism in adults assessed by 3D constrained quantitative BOLD MRI
Kathryn M Jaroszynski1, Sina Dindarian2, Hyunyeol Lee3
1Department of Radiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, USA; Department of Bioengineering, School of Engineering and Applied Sciences, University of Pennsylvania, Philadelphia, PA, USA.
Abstract:
Global and regional variations in cerebral oxygen metabolism are known to be associated with both healthy aging and the early stages of neurodegeneration. To quantify age effects, a recently developed 3D constrained qBOLD protocol was implemented to determine voxelwise OEF, integrated with ASL-derived CBF measurements to compute CMRO2. Thirty-four healthy adults (23-87 years) were examined to identify global and regional patterns of cerebral oxygen metabolism across younger (<35, n = 15) and older (>50, n = 19) adults. Whole-brain OEF was greater in older than in younger adults (40.2 ± 5.1 % vs 34.5 ± 4.6 %, P = 0.002), whereas CBF was lower (39.5 ± 10.3 vs 48.3 ± 8.3 mL/100g/min, P = 0.011), resulting in comparable CMRO2 (144.0 ± 31.8 vs 150.7 ± 30.0 µmol/100g/min, P = 0.537). Across participants, OEF increased by 1.5 % and CBF declined by 2.1 % per decade. Regionally, OEF was greater in older adults within medial temporal lobe (MTL) (37.4 ± 5.9 % vs 32.2 ± 5.1 %), hippocampus (37.2 ± 7.0 % vs 29.1 ± 6.1 %), amygdala (38.3 ± 8.6 % vs 27.9 ± 6.1 %), thalamus (40.5 ± 6.4 % vs 32.5 ± 7.1 %), striatum (42.7 ± 5.3 % vs 36.2 ± 5.5 %), frontal (38.7 ± 5.2 % vs 34.7 ± 5.0 %), parietal (43.9 ± 5.1 % vs 38.2 ± 5.5 %), and occipital (40.7 ± 6.3 % vs 35.1 ± 5.3 %) lobes, all P < 0.05. CMRO2 differed between older vs younger subjects only in the amygdala (126.6 ± 35.9 vs 97.5 ± 31.6 μmol/min/100 g, P = 0.01). Exploring regional heterogeneity, MTL and its substructures exhibited reduced OEF relative to whole-brain averages in both groups. Overall findings indicate that cerebral oxygen metabolism remains largely preserved throughout adulthood. The combined qBOLD-ASL technique offers a robust framework for detecting regional variations in brain oxygen metabolism, characterizing both normative cerebrovascular aging and possibly early stages of neurodegeneration.

