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Dynamic oxygen-enhanced MRI of cerebrospinal fluid
Taha M Mehemed1, Yasutaka Fushimi1, Tomohisa Okada1
1Department of Diagnostic Imaging and Nuclear Medicine, Kyoto University Graduate School of Medicine, Kyoto, Japan.
Abstract:
Oxygen causes an increase in the longitudinal relaxation rate of tissues through its T1-shortening effect owing to its paramagnetic properties. Due to such effects, MRI has been used to study oxygen-related signal intensity changes in various body parts including cerebrospinal fluid (CSF) space. Oxygen enhancement of CSF has been mainly studied using MRI sequences with relatively longer time resolution such as FLAIR, and T1 value calculation. In this study, fifteen healthy volunteers were scanned using fast advanced spin echo MRI sequence with and without inversion recovery pulse in order to dynamically track oxygen enhancement of CSF. We also focused on the differences of oxygen enhancement at sulcal and ventricular CSF. Our results revealed that CSF signal after administration of oxygen shows rapid signal increase in both sulcal CSF and ventricular CSF on both sequences, with statistically significant predominant increase in sulcal CSF compared with ventricular CSF. CSF is traditionally thought to mainly form from the choroid plexus in the ventricles and is absorbed at the arachnoid villi, however, it is also believed that cerebral arterioles contribute to the production and absorption of CSF, and controversy remains in terms of the precise mechanism. Our results demonstrated rapid oxygen enhancement in sulcal CSF, which may suggest inhaled oxygen may diffuse into sulcal CSF space rapidly probably due to the abundance of pial arterioles on the brain sulci.
Insights
Oxygen rapidly increases cerebrospinal fluid (CSF) signal intensity, particularly in sulcal CSF, suggesting faster diffusion through brain sulci. This MRI study reveals dynamic oxygen enhancement in CSF spaces.
Area of Science:
- Neuroimaging
- Biophysics
- Physiology
Background:
- Oxygen's paramagnetic properties affect tissue relaxation rates (T1-shortening).
- Magnetic Resonance Imaging (MRI) can detect oxygen-induced signal changes, including in cerebrospinal fluid (CSF).
- Previous studies on CSF oxygen enhancement used longer MRI sequences, limiting dynamic tracking.
Purpose of the Study:
- To dynamically track oxygen enhancement in CSF using a fast MRI sequence.
- To investigate differences in oxygen enhancement between sulcal and ventricular CSF.
- To explore the implications for CSF production and absorption mechanisms.
Main Methods:
- Fifteen healthy volunteers underwent MRI scans using a fast advanced spin echo sequence.
- Scans were performed with and without an inversion recovery pulse.
- Oxygen administration was used to observe dynamic signal changes in CSF.
Main Results:
- Oxygen administration caused a rapid signal increase in both sulcal and ventricular CSF.
- The signal increase was statistically significantly greater in sulcal CSF compared to ventricular CSF.
- These findings were consistent across both MRI sequences used.
Conclusions:
- Inhaled oxygen rapidly enhances CSF signal, especially in sulcal spaces.
- The predominant enhancement in sulcal CSF suggests rapid oxygen diffusion, potentially via pial arterioles.
- Results provide insights into the dynamic interaction of oxygen with CSF and its potential contribution to CSF physiology.
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