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bioRxiv · 10.1101/176891

Modeling of dynamic cerebrovascular reactivity to spontaneous and externally induced CO2 fluctuations in the brainstem respiratory control centers in the human brain using BOLD-fMRI

Abstract

In this work, we investigate the regional characteristics of the dynamic interactions between arterial CO2 and BOLD (dynamic cerebrovascular reactivity - dCVR) during normal breathing and hypercapnic, externally induced step CO2 challenges. To obtain CVR curves at each voxel, we use a custom set of basis functions based on the Laguerre and gamma basis sets. This allows us to obtain robust dCVR estimates both in larger regions of interest (ROIs) as well as in individual voxels. We also implement classification schemes to identify brain regions with similar dCVR characteristics. Our results reveal considerable variability of dCVR across different brain regions, as well as during different experimental conditions (normal breathing and hypercapnia), suggesting a differential response of cerebral vasculature to spontaneous CO2 fluctuations and larger, externally induced CO2 changes. The clustering results suggest that anatomically distinct brain regions exhibit different dCVR curves that do not exhibit the standard, positive valued curves that have been previously reported using measurements of global cerebral blood flow or using larger ROIs. They also revealed a consistent set of dCVR cluster shapes for resting and forcing conditions that exhibited different distribution patterns across brain voxels.

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Prokopiou, P. C., Pattinson, K. T. S., Wise, R. G., Mitsis, G. D.. 2017-08-17. Modeling of dynamic cerebrovascular reactivity to spontaneous and externally induced CO2 fluctuations in the brainstem respiratory control centers in the human brain using BOLD-fMRI. https://doi.org/10.1101/176891

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