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June 14, 20251 citationsOpen Access

Quantifying cardiac, respiratory, and slow vasomotion components of CSF motion from fMRI inflow effects

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PSPontus SöderströmUmeå UniversityCBCecilia BjörnfotUmeå UniversityBABritt M. AnderssonCentre for Sustainable Energy

Key Result

A spin-history modeling method for fMRI enabled quantitative estimation of CSF flow, showing the cardiac cycle dominates motion with a median stroke volume of 0.86 mL at the foramen magnum.

Study Design

Type

Observational (n=48)

Structured PICO

P
Population
48 older adults aged 68 to 82 years evaluated using resting-state fMRI to characterize cerebrospinal fluid flow at the foramen magnum.
E
Exposure
Spin-history modeling method to translate fMRI-derived CSF inflow signals into quantitative flow rates
O
Outcome
Quantitative estimation of CSF flow components (cardiac, respiratory, and slow-vasomotion cycles)surrogate

A novel spin-history modeling method enables quantitative estimation of CSF flow components using conventional fMRI, revealing that the cardiac cycle dominates CSF motion at the foramen magnum.

Abstract

Abstract Purpose Cerebrospinal fluid (CSF) flow oscillations have emerged as a potentially important marker related to brain clearance, but their acquisition often relies on specialized imaging MRI sequences. The purpose of this work was to enable quantitative assessment of CSF flow associated with cardiac, respiratory, and slow-vasomotion cycles using widely available functional magnetic resonance imaging (fMRI) acquisitions. Methods A method was developed to translate fMRI-derived CSF inflow signals into quantitative flow rates. This approach modelled the spin-history of an oscillating ensemble of molecules. Validation was performed using phantom experiments with oscillatory flow at cardiac-, respiratory-, and slow-vasomotion-like frequencies. The method was further applied to resting-state data from 48 older adults (68–82 years; 19 women) to characterize CSF flow at the foramen magnum. Results Phantom experiments demonstrated excellent correlations between estimated and true velocities for cardiac- and respiratory-like frequencies (r = 0.94 and 0.97, respectively) and moderate correlation for a slow-vasomotion-like frequency (r = 0.58). In the population cohort, median CSF stroke volumes were 0.86 0.61, 1.17 mL for the cardiac cycle, 0.44 0.25, 0.94 mL for the respiratory cycle, and 0.28 0.14, 0.45 mL for the slow-vasomotion cycle. Conclusion The proposed spin-history modeling method enabled quantitative estimation of CSF flow components using a conventional fMRI dataset and showed that the cardiac cycle dominates CSF motion at the foramen magnum.

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Cite This Study

Söderström et al. (2025) reported an observational. fMRI with spin-history modeling was evaluated on Cerebrospinal fluid stroke volumes. A spin-history modeling method for fMRI enabled quantitative estimation of CSF flow, showing the cardiac cycle dominates motion with a median stroke volume of 0.86 mL at the foramen magnum.

synapsesocial.com/papers/6a20da10e2d1a39857ecb875https://doi.org/10.1101/2025.06.10.658005
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Quantifying Cardiac, Respiratory, and Low Frequency Components of <scp>CSF</scp> Motion From <scp>fMRI</scp> Inflow Effects2026
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  4. 4Real-Time Imaging of Cerebrospinal Fluid Flow with Low-Rank and Subspace Modeling2024
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