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Updated: Jul 9, 2025

A Magnetic Resonance Imaging Protocol for Stroke Onset Time Estimation in Permanent Cerebral Ischemia
Published on: September 16, 2017
Cerebral microcirculatory pulse wave propagation and pulse wave amplitude mapping in retrospectively gated MRI
Norman Kornemann1,2, Filip Klimeš1,2, Agilo Luitger Kern1,2
1Institute for Diagnostic and Interventional Radiology, Hannover Medical School, Hannover, Germany.
Abstract:
To analyze cerebral arteriovenous pulse propagation and to generate phase-resolved pulse amplitude maps from a fast gradient-echo sequence offering flow-related enhancement (FREE). Brain MRI was performed using a balanced steady-state free precession sequence at 3T followed by retrospective k-space gating. The time interval of the pulse wave between anterior-, middle- and posterior cerebral artery territories and the superior sagittal sinus were calculated and compared between and older and younger groups within 24 healthy volunteers. Pulse amplitude maps were generated and compared to pseudo-Continuous Arterial Spin Labeling (pCASL) MRI maps by voxel-wise Pearson correlation, Sørensen-Dice maps and in regards to signal contrast. The arteriovenous delays between all vascular territories and the superior sagittal sinus were significantly shorter in the older age group (11 individuals, ≥ 31 years) ranging between 169 ± 112 and 246 ± 299 ms versus 286 ± 244 to 419 ± 299 ms in the younger age group (13 individuals) (P ≤ 0.04). The voxel-wise pulse wave amplitude values and perfusion-weighted pCASL values correlated significantly (Pearson-r = 0.33, P < 0.01). Mean Dice overlaps of high (gray) and low (white matter) regions were 73 ± 3% and 59 ± 5%. No differences in image contrast were seen in the whole brain and the white matter, but significantly higher mean contrast of 0.73 ± 0.23% in cortical gray matter in FREE-MRI compared to 0.52 ± 0.12% in pCASL-MRI (P = 0.01). The dynamic information of flow-related enhancement allows analysis of the cerebral pulse wave propagation potentially providing information about the (micro)circulation on a regional level. However, the pulse wave amplitude reveals weaknesses in comparison to true perfusion-weighting and could rather be used to calculate a pulsatility index.
Insights
Older adults exhibit faster cerebral arteriovenous pulse wave propagation compared to younger individuals. This study utilized flow-related enhancement MRI to analyze pulse wave timing and amplitude, revealing age-related differences in cerebral circulation dynamics.
Area of Science:
- Neuroimaging
- Cardiovascular Physiology
- Medical Physics
Background:
- Cerebral arteriovenous pulse propagation is a key indicator of cerebrovascular health.
- Traditional MRI methods may have limitations in capturing dynamic pulse wave information.
- Flow-related enhancement (FREE) MRI offers potential for analyzing dynamic vascular processes.
Purpose of the Study:
- To analyze cerebral arteriovenous pulse propagation using FREE MRI.
- To generate phase-resolved pulse amplitude maps.
- To compare pulse wave characteristics between younger and older healthy adults.
Main Methods:
- Brain MRI performed using a balanced steady-state free precession sequence at 3T with retrospective k-space gating.
- Calculation of pulse wave time intervals between cerebral artery territories and the superior sagittal sinus.
- Generation and comparison of pulse amplitude maps with pseudo-Continuous Arterial Spin Labeling (pCASL) MRI.
Main Results:
- Significantly shorter arteriovenous delays were observed in older adults (≥31 years) compared to younger adults.
- Voxel-wise pulse wave amplitude values correlated significantly with perfusion-weighted pCASL values (Pearson-r = 0.33, P < 0.01).
- FREE-MRI demonstrated significantly higher contrast in cortical gray matter compared to pCASL-MRI.
Conclusions:
- Dynamic information from FREE-MRI enables analysis of cerebral pulse wave propagation, potentially reflecting regional microcirculation.
- Pulse wave amplitude derived from FREE-MRI shows potential for calculating a pulsatility index.
- FREE-MRI provides valuable insights into age-related changes in cerebral hemodynamics.

