Sleep research article

Calibration-Free Estimation of Cerebrovascular Reactivity From Resting-State BOLD fMRI Using Reconstructed Respiratory Fluctuations.

2026-01-01 · arXiv: 10.1002/mrm.70553

Authors: Addeh A , Church E , Mahajna M , Ardila K , Charatpangoon P , Cohen AD , Wang Y , Williams RJ , Pike GB , MacDonald ME

One-line summary

A sleep science research article on Calibration-Free Estimation of Cerebrovascular Reactivity From Resting-State BOLD fMRI Using Reconstructed Respiratory Fluctuations..

Sleep health notes

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中文解读

中文解读待补充:本站会优先为失眠研究、睡眠质量改善、昼夜节律等高价值睡眠研究添加中文说明。

Original abstract

<h4>Purpose</h4>Cerebrovascular reactivity (CVR) provides an important index of vascular health and is conventionally quantified using a hypercapnic gas or breath-hold challenge in conjunction with blood-oxygen-level-dependent functional magnetic resonance imaging (BOLD-fMRI). Such approaches require a dedicated extra scan and, for hypercapnia, specialized equipment for gas administration and external physiological recordings, limiting their applicability in large-scale neuroimaging studies and clinical populations. To address this limitation, we introduce a calibration-free and breath-hold-free framework for CVR estimation from resting-state BOLD-fMRI.<h4>Methods</h4>The method leverages a previously validated machine learning-based respiratory variation (RV) reconstruction approach to recover respiratory dynamics directly from BOLD-fMRI time series. The reconstructed RV is subsequently convolved with a respiratory response function and incorporated as a regressor in a voxel-wise general linear model (GLM), yielding regression coefficients that serve as CVR estimates.<h4>Results</h4>Validation was performed on a cohort of 83 healthy young adults with ground-truth CVR maps obtained from hypercapnic gas challenges. The proposed framework demonstrated spatial correspondence with measured CVR (mean correlation = 0.61), with the strongest performance observed in participants exhibiting greater respiratory variability (mean r = 0.72).<h4>Conclusion</h4>Collectively, these results establish a reliable, non-invasive, and calibration-free strategy for CVR mapping, enabling broader deployment in both research and clinical environments where gas-challenge protocols and physiological monitoring are impractical.

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