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Zwanenburg, J.

Publications and source records attributed to Zwanenburg, J..

2 recordsLinked to original sources

Challenging the classical view of CSF flow: measuring CSF net velocity in the human subarachnoid space with 7T MRI

Traditionally, cerebrospinal fluid (CSF) is believed to exit the brain via arachnoid villi, being absorbed into the superior sagittal sinus (SSS), with a net flow towards these exit sites driven by constant CSF turnover. However, measuring these velocities non-invasively in humans is challenging due to their slow nature and the presence of relatively large confounding factors such as physiological CSF pulsations (heartbeat and respiration) and head motion. This study presents a novel magnetic resonance imaging (MRI) method designed to measure the net velocity of CSF whilst accounting for confounding effects, which is called CSF displacement encoding with stimulated echoes (CSF-DENSE). By applying a similar model as used to study sea-level rise, different motion components of CSF were successfully disentangled. Simulations, along with phantom and in vivo experiments, demonstrate the ability of CSF-DENSE combined with time series analysis using unobserved components modeling to detect ultraslow velocities of approximately 1 μm/s, even in the presence of confounding motions that are an order of magnitude larger. If the major egress of CSF were via the SSS, the expected net velocity towards the SSS was estimated to be 4.22±0.14 µm/s, based on measured CSF net flow through the aqueduct into the subarachnoid space (SAS). However, no significant net velocity toward the SSS was observed (v = -0.18±0.15 µm/s, with positive velocity directed towards the SSS), thereby challenging the classical view of CSF outflow. These findings suggest the need to reconsider traditional models of CSF outflow pathways, with potential implications for understanding and treating neurological disorders.

neuroscience↗

Assessing the feasibility of a new approach to measure the full spectrum of CSF dynamics within the human brain using MRI: insights from a simulation study

Cerebrospinal fluid (CSF) dynamics are essential in waste clearance of the brain. Disruptions in CSF flow are linked to various neurological conditions, highlighting the need for accurate measurement of its dynamics. Current methods typically capture limited aspects of CSF movement or focus on a single anatomical region, presenting challenges for comprehensive analysis. This study proposes a novel approach using Displacement Encoding with Stimulated Echoes (DENSE) MRI to assess the full spectrum of CSF motion within the brain. Through simulations, we evaluated the feasibility of disentangling distinct CSF motion components, including heartbeat- and respiration-driven flows, as well as a net velocity component due to continuous CSF turnover, and tested the performance of our method under incorrect assumptions about the underlying model of CSF motion. Results demonstrate that DENSE MRI can accurately separate these components, and reliably estimated a net velocity, even when periodic physiological motions vary over time. The method proved to be robust for including low frequency components (LFO), incorrect assumption on the nature of the net velocity component and missing CSF components in the model. This approach offers a comprehensive measurement technique for quantifying CSF dynamics, advancing our understanding of the relative role of various drivers of CSF dynamics in brain clearance.

neuroscience↗