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Pseudo-Resting-State Functional MRI Derived from Dynamic Susceptibility Contrast Perfusion MRI Can Predict Cognitive
Nicholas S Cho1,2,3,4, Chencai Wang1,2, Kathleen Van Dyk5
1From the UCLA Brain Tumor Imaging Laboratory (BTIL) (N.S.C., C.W., F.S., S.O., J.Y., B.M.E.), Center for Computer Vision and Imaging Biomarkers, University of California, Los Angeles, Los Angeles, California.
Background And Purpose:
Resting-state functional MRI (rs-fMRI) can be used to estimate functional connectivity (FC) between different brain regions, which may be of value for identifying cognitive impairment in patients with brain tumors. Unfortunately, neither rs-fMRI nor neurocognitive assessments are routinely assessed clinically, mostly due to limitations in examination time and cost. Since DSC perfusion MRI is often used clinically to assess tumor vascularity and similarly uses a gradient-echo-EPI sequence for T2*-sensitivity, we theorized a "pseudo-rs-fMRI" signal could be derived from DSC perfusion to simultaneously quantify FC and perfusion metrics, and these metrics can be used to estimate cognitive impairment in patients with brain tumors.
Materials And Methods:
Twenty-four consecutive patients with gliomas were enrolled in a prospective study that included DSC perfusion MRI, resting-sate functional MRI (rs-fMRI), and neurocognitive assessment. Voxelwise modeling of contrast bolus dynamics during DSC acquisition was performed and then subtracted from the original signal to generate a residual "pseudo-rs-fMRI" signal. Following the preprocessing of pseudo-rs-fMRI, full rs-fMRI, and a truncated version of the full rs-fMRI (first 100 timepoints) data, the default mode, motor, and language network maps were generated with atlas-based ROIs, Dice scores were calculated for the resting-state network maps from pseudo-rs-fMRI and truncated rs-fMRI using the full rs-fMRI maps as reference. Seed-to-voxel and ROI-to-ROI analyses were performed to assess FC differences between cognitively impaired and nonimpaired patients.
Results:
Dice scores for the group-level and patient-level (mean±SD) default mode, motor, and language network maps using pseudo-rs-fMRI were 0.905/0.689 ± 0.118 (group/patient), 0.973/0.730 ± 0.124, and 0.935/0.665 ± 0.142, respectively. There was no significant difference in Dice scores between pseudo-rs-fMRI and the truncated rs-fMRI default mode (P = .97) or language networks (P = .30), but there was a difference in motor networks (P = .02). A multiple logistic regression classifier applied to ROI-to-ROI FC networks using pseudo-rs-fMRI could identify cognitively impaired patients (sensitivity = 84.6%, specificity = 63.6%, receiver operating characteristic area under the curve (AUC) = 0.7762 ± 0.0954 (standard error), P = .0221) and performance was not significantly different from full rs-fMRI predictions (AUC = 0.8881 ± 0.0733 (standard error), P = .0013, P = .29 compared with pseudo-rs-fMRI).
Conclusions:
DSC perfusion MRI-derived pseudo-rs-fMRI data can be used to perform typical rs-fMRI FC analyses that may identify cognitive decline in patients with brain tumors while still simultaneously performing perfusion analyses.
Insights
This study shows that "pseudo-resting-state functional MRI" (pseudo-rs-fMRI) derived from DSC perfusion MRI can effectively assess functional connectivity (FC) and identify cognitive impairment in brain tumor patients, offering a time-efficient clinical tool.
Area of Science:
- Neuroimaging
- Radiology
- Neurology
Background:
- Resting-state functional MRI (rs-fMRI) assesses brain functional connectivity (FC) but is not routinely used clinically due to time and cost constraints.
- Cognitive impairment is common in brain tumor patients, necessitating efficient assessment methods.
Purpose of the Study:
- To investigate the feasibility of deriving a "pseudo-rs-fMRI" signal from DSC perfusion MRI data.
- To evaluate if this pseudo-rs-fMRI signal can be used for FC analysis and cognitive impairment detection in glioma patients.
- To determine if pseudo-rs-fMRI can simultaneously provide perfusion and FC metrics.
Main Methods:
- A prospective study involving 24 glioma patients who underwent DSC perfusion MRI, rs-fMRI, and neurocognitive assessment.
- A "pseudo-rs-fMRI" signal was generated by modeling and subtracting contrast dynamics from DSC perfusion data.
- Functional network maps (default mode, motor, language) were created from pseudo-rs-fMRI, truncated rs-fMRI, and full rs-fMRI for comparison using Dice scores.
- Seed-to-voxel and ROI-to-ROI analyses were conducted to compare FC between cognitively impaired and non-impaired groups.
Main Results:
- Pseudo-rs-fMRI demonstrated high similarity to full rs-fMRI for group-level network maps (Dice scores > 0.90) and good patient-level agreement.
- Dice scores for pseudo-rs-fMRI and truncated rs-fMRI showed no significant difference for default mode and language networks, but a difference for motor networks.
- A logistic regression classifier using pseudo-rs-fMRI ROI-to-ROI FC data identified cognitively impaired patients with 84.6% sensitivity and 63.6% specificity (AUC = 0.7762), performing comparably to full rs-fMRI predictions.
Conclusions:
- DSC perfusion MRI-derived pseudo-rs-fMRI is a viable method for standard rs-fMRI functional connectivity analyses.
- This approach allows for simultaneous assessment of perfusion and FC metrics in brain tumor patients.
- Pseudo-rs-fMRI holds potential for identifying cognitive decline in brain tumor patients within a clinically feasible timeframe.
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