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Published on: January 4, 2013
Time-of-flight and black-blood MRI to study intracranial arteries in rats
Anne F Cayron1,2,3,4, Olivia Bejuy5,6, Maria Isabel Vargas7
1Department of Pathology and Immunology, Faculty of Medicine, University of Geneva, CMU, Rue Michel-Servet 1, CH-1211, Geneva, Switzerland.
Abstract:
Intracranial aneurysms (IAs) are usually incidentally discovered by magnetic resonance imaging (MRI). Once discovered, the risk associated with their treatment must be balanced with the risk of an unexpected rupture. Although clinical observations suggest that the detection of contrast agent in the aneurysm wall using a double-inversion recovery black-blood (BB) sequence may point to IA wall instability, the exact meaning of this observation is not understood. Validation of reliable diagnostic markers of IA (in)stability is of utmost importance to deciding whether to treat or not an IA. To longitudinally investigate IA progression and enhance our understanding of this devastating disease, animal models are of great help. The aim of our study was to improve a three-dimensional (3D)-time-of-flight (TOF) sequence and to develop a BB sequence on a standard preclinical 3-T MRI unit to investigate intracranial arterial diseases in rats. We showed that our 3D-TOF sequence allows reliable measurements of intracranial artery diameters, inter-artery distances, and angles between arteries and that our BB sequence enables us to visualize intracranial arteries. We report the first BB-MRI sequence to visualize intracranial arteries in rats using a preclinical 3-T MRI unit. This sequence could be useful for a large community of researchers working on intracranial arterial diseases.Relevance statement We developed a black-blood MRI sequence to study vessel wall enhancement in rats with possible application to understanding IAs instability and finding reliable markers for clinical decision-making.Key points• Reliable markers of aneurysm stability are needed for clinical decision.• Detection of contrast enhancement in the aneurysm wall may be associated with instability.• We developed a black-blood MRI sequence in rats to be used to study vessel wall enhancement of IAs.
Insights
Researchers developed a new black-blood MRI sequence for rats to visualize intracranial arteries. This advancement aids in studying aneurysm instability and finding reliable markers for clinical decisions.
Area of Science:
- Biomedical Engineering
- Radiology
- Neuroscience
Background:
- Intracranial aneurysms (IAs) are often found incidentally via MRI.
- Assessing IA rupture risk versus treatment risk is crucial for patient management.
- Contrast enhancement in IA walls may indicate instability, but its significance is unclear.
Purpose of the Study:
- To develop and optimize MRI sequences for studying intracranial arterial diseases in rats.
- To investigate intracranial aneurysm (IA) progression and stability using preclinical models.
- To establish reliable diagnostic markers for IA instability.
Main Methods:
- Improved a 3D-time-of-flight (TOF) MRI sequence for precise arterial measurements.
- Developed a novel double-inversion recovery black-blood (BB) MRI sequence for rat intracranial arteries.
- Utilized a standard preclinical 3-Tesla (3T) MRI unit.
Main Results:
- The 3D-TOF sequence enabled accurate measurement of intracranial artery dimensions and spatial relationships.
- The developed BB-MRI sequence successfully visualized intracranial arteries in rats.
- This represents the first BB-MRI sequence for visualizing rat intracranial arteries on a preclinical 3T unit.
Conclusions:
- The developed 3D-TOF and BB-MRI sequences are valuable tools for preclinical research on intracranial arterial diseases.
- These sequences can aid in understanding IA wall enhancement and instability.
- The findings support the potential for developing reliable clinical markers for IA stability assessment.

