Venous Vessel Size Imaging Derived From A Breath-Hold Task.
Ke Zhang1,2,3,4, Artur Hahn5, Simon M F Triphan1,2,3
1Department of Diagnostic and Interventional Radiology, Heidelberg University Hospital, Heidelberg, Germany.
This study introduces a noninvasive method for measuring brain venous vessel size using a simple breath-hold task. This technique offers a practical alternative to contrast agents for assessing brain microvasculature.
Area of Science:
- Neuroimaging
- Biophysics
- Medical Physics
Background:
- Vessel size imaging (VSI) measures brain vessel radius, traditionally requiring contrast agents.
- Existing methods for venous VSI often rely on hypercapnia/hyperoxia, necessitating external equipment.
- A non-invasive, practical alternative for venous VSI is needed.
Purpose of the Study:
- To demonstrate the feasibility of venous VSI using a simple breath-hold task.
- To develop a method for measuring venous vessel radii in the brain without contrast agents or specialized gas delivery.
- To validate the breath-hold approach against established VSI techniques.
Main Methods:
- 14 subjects underwent brain scans on a 3-T scanner during a breath-hold task.
- Simultaneous gradient-echo and spin-echo signals were acquired using SAGE-EPI.
- Parametric maps of mean venous vessel radius were calculated from ΔR2* and ΔR2 changes.
- Numerical simulations were used to establish a relationship between vessel size index (q) and vessel radius.
Main Results:
- Venous vessel radii were determined to be 7.18 ± 0.49 μm in gray matter and 6.06 ± 0.22 μm in white matter.
- The breath-hold method provided results consistent with previous contrast-based and hypercapnia studies.
- The study established an empirical relation between vessel size index q and average vessel radii.
Conclusions:
- A simple breath-hold task can be effectively used for non-invasive venous vessel size imaging (VSI).
- This method avoids contrast agents and specialized equipment, offering a practical alternative for vascular property assessment.
- The findings support the validity and feasibility of this novel noninvasive neuroimaging technique.
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