Agreement and repeatability of vascular reactivity estimates based on a breath-hold task and a resting state scan

Согласованность и повторяемость оценок сосудистой реактивности на основе задания с задержкой дыхания и сканирования в состоянии покоя
Ilona Lipp, Kevin Murphy, Xavier Caseras, Richard G. Wise
2015-03-25

BOLD percent signal changebreath-hold taskend-tidal CO2resting-state fMRIvascular reactivity
FMRI BOLD responses to changes in neural activity are influenced by the reactivity of the vasculature. By complementing a task-related BOLD acquisition with a vascular reactivity measure obtained through breath-holding or hypercapnia, this unwanted variance can be statistically reduced in the BOLD responses of interest. Recently, it has been suggested that vascular reactivity can also be estimated using a resting state scan. This study aimed to compare three breath-hold based analysis approaches (block design, sine-cosine regressor and CO2 regressor) and a resting state approach (CO2 regressor) to measure vascular reactivity. We tested BOLD variance explained by the model and repeatability of the measures. Fifteen healthy participants underwent a breath-hold task and a resting state scan with end-tidal CO2 being recorded during both. Vascular reactivity was defined as CO2-related BOLD percent signal change/mmHg change in CO2. Maps and regional vascular reactivity estimates showed high repeatability when the breath-hold task was used. Repeatability and variance explained by the CO2 trace regressor were lower for the resting state data based approach, which resulted in highly variable measures of vascular reactivity. We conclude that breath-hold based vascular reactivity estimations are more repeatable than resting-based estimates, and that there are limitations with replacing breath-hold scans by resting state scans for vascular reactivity assessment.
1
Breath-hold-based vascular reactivity maps and regional estimates showed high repeatability across measurements.
2
Replacing breath-hold scans with resting-state scans has important limitations for reliable vascular reactivity assessment.
3
Resting-state CO2-regressor estimates explained less BOLD variance and had lower repeatability, producing highly variable vascular reactivity measures.
4
The study compared three breath-hold analysis methods with a resting-state CO2-regressor approach for estimating vascular reactivity.
5
Vascular reactivity was quantified as CO2-related BOLD percent signal change per mmHg change in CO2 using end-tidal CO2 recordings.

Human cerebrovascular reactivity measured with BOLD fMRI during breath-hold and resting-state scans

Agreement, repeatability, and CO2-related BOLD signal variance explained by breath-hold versus resting-state vascular reactivity estimates

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2015-03-25
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Authors
Ilona Lipp
Kevin Murphy
Xavier Caseras
Richard G. Wise
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