Quantitative magnetic resonance angiography of the cerebrovasculature in physiologic and pathologic states
Stafford A Conway1, Susana M Bowling, James D Geyer
1Alabama Neurological Institute, Birmingham, Alabama 35209, USA. stconwaymd@yahoo.com
Insights
Quantitative magnetic resonance angiography (QMRA) noninvasively measures cerebral artery blood flow. This method accurately quantifies flow in normal and diseased vessels, offering a valuable tool for diagnosing neurovascular disorders.
Area of Science:
- Neurology
- Radiology
- Medical Imaging
Background:
- Traditional assessment of neurovascular disorders relies on stenosis percentage, which doesn't always correlate with flow reduction.
- Accurate, noninvasive measurement of cerebral artery blood flow is crucial for clinical decision-making.
Purpose of the Study:
- To quantify mean blood flow (Qm) in cerebral arteries using quantitative magnetic resonance angiography (QMRA).
- To compare blood flow measurements in normal versus pathologically narrowed cerebral arteries.
Main Methods:
- Quantitative magnetic resonance angiography (QMRA) was used to measure mean blood flow (Qm) in 157 arteries across 57 patients.
- Statistical analysis, including ANOVA, compared Qm values between different vessel types and between normal and abnormal vessels.
Main Results:
- Significant differences in Qm were observed between individual cerebral arteries (P < .00001).
- Mean Qm values were CCA = 313.9, ICA = 231.1, VA = 90.5, MCA = 92.5, and BA = 120.1 mL/min.
- Statistically significant differences in Qm were found between normal (186.5 mL/min) and abnormal (117.9 mL/min) vessels (P = .000514).
Conclusions:
- QMRA enables direct, noninvasive measurement of absolute blood flow in cerebral arteries under various conditions.
- This technique holds potential for characterizing absolute flow compromise in clinically relevant neurovascular scenarios.
Background:
In the past, clinical decisions regarding treatment of neurovascular disorders leading to ischemia have been guided by the percentage of stenosis of the vessel in question. However, such an approach assumes a predictable and stable relationship between the percentage of stenosis and the degree of flow reduction it causes. Historically, this type of relationship has been difficult to document. Thus, a method for noninvasively measuring the absolute flow of specific cerebral arteries is of potential practical value.
Methods:
We set to quantify the mean blood flow (Qm, in mL/min) in the cerebral arteries using quantitative magnetic resonance angiography (QMRA), and to compare the findings in normal vessels with those found in vessels considered pathologically narrowed. Specific vascular segments were identified, studied, and the results entered into a database. Statistical analyses of the measurements were carried out using StatPlus for Microsoft Excel. It involved comparing of the Qm found in specific vessels, as well as those found in normal and abnormal vessels, using analysis of variance (ANOVA). The abnormal vessels were selected from specifically identified magnetic resonance angiography (MRA) studies.
Results:
A total of 57 patients, 26 men and 31 women, with ages ranging from 19 to 86 years (mean = 64.5), underwent MRA with subsequent QMRA of 157 arteries. The latter included 72 internal carotid (ICA), 45 vertebral (VA), 18 common carotid (CCA), 13 middle cerebral (MCA), and nine basilar (BA) arteries. The mean Qm obtained were CCA = 313.9 (+/-115.4), ICA = 231.1 (+/-83.7), VA = 90.5 (+/-45.8), MCA = 92.5 (+/-62.3) and BA = 120.1 (+/-64.5). ANOVA showed significant differences between individual vessels (P < .00001). The values obtained were consistent with those predicted mathematically, as derivatives of their proportional contributions to overall cerebral arterial flow (Qbrain) as a product of the normal cardiac output (CO) [ie, Qbrain = CO*.2]. Further ANOVA of the normal and abnormal vessels showed statistically significant differences between the two groups (186.5 +/- 108.6 vs. 117.9 +/- 76.1, respectively; P= .000514).
Conclusions:
The use of QMRA provides the mean for direct measurement of absolute blood flow within the cerebral arteries in physiologic and pathologic states. This technique may be of future importance in characterizing absolute flow compromise in the cerebral arteries under a variety of clinically relevant circumstances.
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