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Published on: August 17, 2022
Quantitative functional BOLD (qfBOLD): A combined gradient-echo and spin-echo framework for oxygen extraction
Antonio M Chiarelli1,2, Lucie Chalet1,2, Sara Pomante1,2
1Department of Neurosciences, Imaging, and Clinical Sciences, University 'G d'Annunzio' of Chieti-Pescara, Chieti, Italy.
We developed quantitative functional BOLD (qfBOLD), a novel MRI method for oxygen extraction fraction (OEF) mapping. This technique uses dynamic signal variations to accurately measure OEF in gray and white matter.
Area of Science:
- Neuroimaging
- Biophysics
- Medical Physics
Background:
- Accurate oxygen extraction fraction (OEF) mapping is crucial for understanding brain metabolism and function.
- Existing MRI methods like calibrated fMRI (cfMRI) often require complex physiological measurements (e.g., cerebral blood flow) and can be limited in applicability.
- Quantitative BOLD (qBOLD) methods typically rely on baseline signal values, which may not fully capture dynamic physiological changes.
Purpose of the Study:
- To introduce a novel MRI framework, quantitative functional BOLD (qfBOLD), for mapping OEF.
- To develop a method that isolates deoxyhemoglobin (dHb) effects by exploiting dynamic signal variations rather than baseline values.
- To enable simultaneous decoupling of OEF and cerebral blood volume (CBV) without requiring separate cerebral blood flow (CBF) measurements.
Main Methods:
- The qfBOLD framework utilizes temporal variations in Gradient Echo (GE) and Spin-Echo (SE) Blood-Oxygen-Level-Dependent (BOLD) signals.
- It leverages isometabolic modulations in CBF to induce dynamic changes in relaxation times.
- The method relies on the interaction between dHb-induced extravascular field distortions and water diffusion, analyzed via Monte Carlo simulations and in vivo feasibility studies.
Main Results:
- In vivo feasibility assessment during a hypercapnic breath-holding task yielded OEF values of 37.0±2.9% in gray matter (GM) and 41.6±2.9% in white matter (WM).
- qfBOLD demonstrated significant correlations with cfMRI in GM (r=0.71, p<10-3).
- Correlations were also observed with relaxometry-based measures in the superior sagittal sinus for both GM (r=0.51, p<0.05) and WM (r=0.61, p<0.01).
Conclusions:
- The qfBOLD framework offers a promising advancement for OEF mapping using MRI.
- This method enhances signal-to-noise ratio and spatiotemporal resolution, applicable to both GM and WM.
- Future work will focus on improving accuracy by attenuating intravascular signals and refining WM modeling.
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